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Making Distinctions Between Different Kinds of JSF Managed-Beans
JSF has a simple Inversion-of-Control (IoC) container called the JSF Managed Bean Facility (MBF). Although it has a verbose XML syntax, and is not as robust as the Spring BeanFactory, PicoContainer, or the JBoss Microcontainer, the MBF does have the basics of an IoC container, and offers features like dependency injection. When a POJO is managed by the JSF MBF, it is typically referred to as a managed-bean. But if you're going to create a maintainable JSF webapp/portlet, it is necessary to distinguish between different kinds of managed-beans. This practice will also preserve the clean separation of concerns that JSF provides by implementing the Model-View-Controller (MVC) design pattern: Managed-Bean Type Nickname Typical Scope Model Managed-Bean model-bean session Description: This type of managed-bean participates in the "Model" concern of the MVC design pattern. When you see the word "model" -- think DATA. A JSF model-bean should be a POJO that follows the JavaBean design pattern with getters/setters encapsulating properties. The most common use case for a model bean is to be a database entity, or to simply represent a set of rows from the result set of a database query. Backing Managed-Bean backing-bean request Description: This type of managed-bean participates in the "View" concern of the MVC design pattern. The purpose of a backing-bean is to support UI logic, and has a 1::1 relationship with a JSF view, or a JSF form in a Facelet composition. Although it typically has JavaBean-style properties with associated getters/setters, these are properties of the View -- not of the underlying application data model. JSF backing-beans may also have JSF actionListener and valueChangeListener methods. Controller Managed-Bean controller-bean request Description: This type of managed-bean participates in the "Controller" concern of the MVC design pattern. The purpose of a controller bean is to execute some kind of business logic and return a navigation outcome to the JSF navigation-handler. JSF controller-beans typically have JSF action methods (and not actionListener methods). Support Managed-Bean support-bean session / application Description: This type of bean "supports" one or more views in the "View" concern of the MVC design pattern. The typical use case is supplying an ArrayList to JSF h:selectOneMenu drop-down lists that appear in more than one JSF view. If the data in the dropdown lists is particular to the user, then the bean would be kept in session scope. However, if the data applies to all users (such as a dropdown lists of provinces), then the bean would be kept in application scope, so that it can be cached for all users. Utility Managed-Bean utility-bean application Description: This type of bean provides some type of "utility" function to one or more JSF views. A good example of this might be a FileUpload bean that can be reused in multiple web applications. Now... One of the main benefits in making fine distinctions like this is loose coupling. What's that you ask? Well let's first take a look at an example of tight coupling, where MVC concerns can be smashed/confused into a single managed-bean: public class ModelAndBackingAndControllerBean { private String fullName; // model-bean property private boolean privacyRendered; // backing-bean property // model-bean getter public String getFullName() { return fullName; } // model-bean setter public void setFullName(String fullName) { this.fullName = fullName; } // backing-bean getter public boolean isPrivacyRendered() { return privacyRendered; } // backing-bean setter public void setPrivacyRendered(boolean privacyRendered) { this.privacyRendered = privacyRendered; } // backing-bean actionListener for UI support logic public void togglePrivacySection(ActionEvent actionEvent) { privacyRendered = !privacyRendered; } // controller-bean business logic public String submit() { System.out.println("fullName=" + fullName); return "success"; } } The problem here is that the bean would have to be kept in session scope because of the model-bean property. Additionally, what if we wanted to do some unit testing with mock model data? Can't do it. So in order to fix these problems, and to promote loose coupling, we would have three separate Java classes: public class ModelBean { private String fullName; public void setFullName(String fullName) { this.fullName = fullName; } public String getFullName() { return fullName; } } public class BackingBean { private boolean privacyRendered; public void setPrivacyRendered(boolean privacyRendered) { this.privacyRendered = privacyRendered; } public boolean isPrivacyRendered() { return privacyRendered; } public void togglePrivacySection(ActionEvent actionEvent) { privacyRendered = !privacyRendered; } } public class ControllerBean { private ModelBean modelBean; public ModelBean getModelBean() { return modelBean; } public void setModelBean(ModelBean modelBean) { // Dependency injected from the JSF managed-bean facility this.modelBean = modelBean; } public String submit() { System.out.println("fullName=" + getModelBean().getFullName()); return "success"; } } Now that the beans are found in different classes, they can all be kept in their appropriate scopes. The model-bean can be kept in session scope, and the backing-bean and controller-bean can be kept in request scope, thus saving memory resources on the server. Finally, we can use the dependency injection features of the JSF MBF in order to inject the model-bean into the controller-bean. This can be seen in the following WEB-INF/faces-config.xml example, where the #{modelBean} Expression Language (EL) binding is used: modelBean myproject.ModelBean session backingBean myproject.BackingBean request controllerBean myproject.ControllerBean request modelBean #{modelBean} From http://blog.icefaces.org/
April 24, 2009
by Neil Griffin
· 64,363 Views · 2 Likes
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Dynamic Java Programming With Rule Engine
Rules are statements that define business procedures and policies. Normally, every business application contains many embedded business rules that determine business process flow and execution. When we program these rules with static languages like Java, there is no problem at all. However, the problem is that some business rules change over time very frequently. It is very expensive to fix these changing parts since it requires new versions and software development cycles; develop, deploy on a test server, test, package, deploy on a production server etc. Here “Dynamic Programming” comes to our rescue. Our program doesn’t have to necessarily be written with a dynamic language. We can use this advantage in Java with Rule Engine mechanism. Rule Engines don’t serve only the dynamic programming. They evaluate rules and extract some inferences by using some algorithms like RETE. This inference mechanism is hardly possible with many “if-else” statements in normal program code. Rule Engines have generally 4 types of rules; Constraint Rule: We may need to define restriction or limits for some entities. “A customer sales order amount must be lower than 100 if the plant is over capacity ” Validation Rule: Some validation rules may change over time. “Production order can’t be accepted if current day is Sunday” Action Rule: Some actions may be triggered. “Send a notification e-mail if a purchase order is over $1000 to boss”. Computation Rule: Some formula may be executed. “Discount is 20% if customer is Mr. Anderson” We can use Rule Engines on the market but even we can write our own Rule Engine to benefit the dynamic programming in Java. By using Java compilers, classloaders, it is not so much hard. My favorite rule definition format is Java source code instead of some natural languages or XML. This can also reduce the overall development cost of your custom rule engine. By writing Java rule definitions, we can also use the IDE debugger features without learning a new syntax. If we develop our own Rule Engine, we may skip the inference engine part since we only want dynamic programming feature for now. Best place for plugging rule execution is database access layer. Rules should work invisibly behind the database objects. In some cases, some rules might be invoked from static program codes. The benefits that we have when using Rule Engine are: Dynamic programming with hotswapping feature that provides fix&run easiness. Minimal cost of business rule changes that occurs many times. Accumulation of business rules in one place that may result re-usability and code repetition prevention. Dynamic validations that may change over time. Constraints can be defines for default values, assertion checks etc. In any time rule may be turned off/on. Some of the features of Rule Engine may remind us database constraints and triggers. Using database may hinder portability and require DBA involvement. I think Rule Engine is better for business rule definitions. These database features may be used for other purposes. The critical question we should ask ourselves is which part of business rules should be taken into Rule Engine from the programs. The answer is “frequently changing” rules. Some changing parts can be defined within parameter tables (processing options) but we can’t define computation or many if-else statements in these tables. But we should prefer parameter table if it is enough for the problem. Links: http://java.sun.com/developer/technicalArticles/J2SE/JavaRule.html http://www.javaworld.com/javaworld/jw-04-2005/jw-0425-ruleengine.html http://www.javaworld.com/javaworld/jw-06-2006/jw-0612-dynamic.html http://www.amazon.com/Principles-Business-Addison-Wesley-Information-Technology/dp/0201788934/ref=sr_1_3?ie=UTF8&s=books&qid=1236927606&sr=1-3 http://www.amazon.com/Business-Rules-Applied-Building-Approach/dp/0471412937/ref=sr_1_1?ie=UTF8&s=books&qid=1236927606&sr=1-1
March 13, 2009
by Adam Brown
· 33,365 Views
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Wicket Tutorial Series: Setting Up the Project
Each day this week will feature a new article with an in-depth look at the creation process behind setting up a Java project and implementing the frontend with Apache Wicket. Wicket is a Java web application framework which allows “Designers” (people good with Dreamweaver) and “Developers” (people good with Java and Databases) to collaborate on a project with minimal chances of stepping on each other’s toes or wearing each other’s hats. The beauty of Wicket is that it uses plain xhtml pages as it’s templating markup. This means that html pages can be loaded into Dreamweaver (or whatever tool the Designer is comfortable with) and they will look very close to the same as they would when rendered on the deployment web server. Workflow The basic workflow involved in creating and maintaining html rendered by Wicket is as follows: The Designer creates the html for the website and fleshes it out with “mock” sections. For instance in the application we intend to create during our Five Days of Wicket will be a pastebin application called “Mystic Paste”. In our application we’ll have an “Add Code to Mystic Paste” page, mock data might include some user created content in the textarea of the page. All css/images, etc… are setup such that if they were to be put on a webserver, everything would work. The Developer needs to flesh out the dynamic areas of the webpage, that is, he needs to instruct Wicket where it will need to show information from the server. The developer does this by decorating the designer’s html page with special Wicket tags and attributes. Because these tags and attributes are just considered part of another namespace separate from xhtml’s, editors like Dreamweaver and browsers will simply ignore them - It is important to note: The developer will still keep the “mocked” sections of the page intact, this is so the page renders and looks fleshed out on its own. The mocked sections will be replaced by real data when rendered by Wicket. The Developer hands the file back to the Designer. The Designer is free to make further edits, so long as he/she does not remove or manipulate the Wicket tags and attributes present in the file. If the Designer does need to remove any Wicket tags or attributes, they need to consult the Developer as such an action will “break” the webpage when Wicket renders it. Example Wicket Page Here is an example of a Wicket page. This example was taken from Manning Publishing’s book “Wicket in Action”: ... Gouda Gouda is a Dutch... $1.99 add to cart Emmental Emmental is a Swiss che... $2.99 add to cart ... This looks almost 100% like a normal webpage would look, the only difference is the addition of the “wicket:XXX” attributes and tags sprinkled through the document. The parts of the document using the special Wicket namespace modifiers will be replaced/removed in the final markup when Wicket renders the page to the user’s browser. Notice the “” element? This is where your designer can put a “mocked” version of what that area of the page should look like. You as a developer can take that mocked html and divide it out into a template that is dynamically driven from the backend. Here is how the final page looks if you were to simply load the page into a web browser (or Dreamweaver) from your hard drive: Preparing for Setup Deviating a bit from the Standard Wicket Convention One of the first things a developer notices when starting out with Wicket is the convention where Wicket likes having its html template files live at the same level and in the same packages as it’s Java source files. Sure you can jump through hoops to get Wicket to load the html template files from elsewhere but a nice compromise is to simply keep your html template files within the same package directory structure but in a source folder separate from the Java classes. Why? Well quite simply to keep your designers (Dreamweaver folks!) from having to grab Java source files along with the html files they are working on. It will just confuse them and clutter their directories. You can of course stick with the typical “Java source files along side html” convention if you wish, but I find it much cleaner to separate them during design time, and have Maven combine them only at build time into the target war (which it will gladly do automagically). Project Folder Structure . |-- pom.xml |-- src | `-- main | |-- filters | |-- java | | `-- com | | `-- mysticcoders | | `-- mysticpaste | | |-- model | | |-- persistence | | | |-- exception | | | |-- hibernate | | |-- services | | `-- web | | |-- ajax | | |-- pages | | |-- panels | | `-- servlet | |-- resources | | |-- com | | | `-- mysticcoders | | | `-- mysticpaste | | | |-- spring | | | `-- web | | | |-- ajax | | | |-- pages | | | `-- panels | | `-- log4j.properties | |-- sql | `-- webapp | |-- WEB-INF | |-- images | |-- js | `-- css src/main: maven builds source and resources from this directory to the main deployable target (i.e. our war file) filters: we keep a set of “filters” files that maven can use to interpolate variables at build time. What does this mean? It means that inside your configuration files, the files you use to setup database connections or file paths, you can insert variable place holders like ${db.host}. When maven does a build, it looks up the correct filter file to use and looks for the key=value part corresponding to “db.host” and inserts it into the configuration file for you. This ensures that you are able to configure your application per environment you deploy to (i.e. DEV, QA, PROD, etc…) by having different filter files with the same keys but different values. For more information see Maven’s documentation on filtering resource. java/*: this folder will contain all of the application’s source code. Everything from the database access code, wicket code and services code for the mysticpaste application (see below). model: all “domain” classes, that is, classes that represent the objects in the application. For mysticpaste you’ll see classes like “PasteItem” which represents an item pasted to the mysticpaste. persistence: at this level of the persistence package a list of interfaces will be kept. The interfaces comprise the basic access layer the services layer will use to save, retrieve and update items to/from the paste bin. exception: the peristence layer needs to tell the services layer when things have gone wrong. It does this via delcaring and throwing exceptions. hibernate: such is our case, our persistence interfaces will be implemented via the ORM known as Hibernate. This package will store all of the custom hibernate implementations and hibernate specific classes services: The services layer will be stored here. Both the generic interfaces and their implementation classes. The persistence layer will be injected via spring. web: this folder is where our Wicket classes will reside and it’s split into several category packages which are as follows: ajax: mysticpaste uses Ajax to render portions of its UI. The wicket classes which render the xml/html to be injected dynamically into the page are stored here. pages: standard Wicket page classes which are used throughout the application are stored here panels: reusable panel classes are stored here. Panels may be included within Wicket pages for sake of templating servlet: any run of the mill servlet code we need is stored here. A good example might be an ImageUploadServlet resources/*: the resources folder will hold our non-java based files. Noteably html files and spring confguration files spring: Holds any spring configuration files needed to wire the services and persistence layer web: this folder and all subfolders mirror the packages under src/main/java/…/web and hold the .html files that the Wicket page/panel classes use as their templates. As described above, a “standard” wicket application simply stores the .html files along side their Wicket classes under src/main/java/…/web, however we want to keep these files separate from the Java source so as to keep the directory our designers checkout from version control contianing only the files they need to work on. sql: any sql scripts we need to keep handy for building the mysticpaste database. webapp: this folder will keep the files which live at the base directory of our war file WEB-INF: where you keep your web.xml file images: any image resource, .gif/.png/.jpg files your webapp will reference js: javascript files your webapp will reference css: style sheets your webapp uses src/test/*: All files which reside under this folder are test classes and resources needed to support the tests. Maven will build everything under src/main/java and add it to the class path of the JUnit or TestNG classes you create. java: JUnit or TestNG test classes which will be run during a build resources: resource files which are needed to support the tests Getting Started Since we are using Maven as our build tool we can take advantage of the fact that the fine folks at the Wicket project have created a specialized “archetype“ which creates a skeleton web application complete with a folder structure which mimics roughly what we have outlined above and Maven pom.xml file used to build a war. The Wicket contributors have even gone one step further and have created a little web page which will, based off a few drop down options, generate the maven command you need to execute in order to create the boiler plate Wicket project. You can find this web page over on the Apache Wicket site under the “Quick Start” link. Copying the above Maven command creates a Skeleton Wicket Project To be precise, the command I used was: mvn archetype:create -DarchetypeGroupId=org.apache.wicket -DarchetypeArtifactId=wicket-archetype-quickstart -DarchetypeVersion=1.3.5 -DgroupId=com.mysticcoders -DartifactId=mysticpaste And I ended up with the following folder structure: . `-- mysticpaste |-- pom.xml `-- src |-- main | |-- java | | `-- com | | `-- mysticcoders | | |-- HomePage.html | | |-- HomePage.java | | `-- WicketApplication.java | |-- resources | | `-- log4j.properties | `-- webapp | `-- WEB-INF | `-- web.xml `-- test `-- java `-- com `-- mysticcoders |-- Start.java `-- TestHomePage.java Now obviously we’ll have to rearrange a few things, for instance I want my base package to be com.mysticcoders.mysticpaste, but that’s easy enough to do once we are in an IDE. For now, let’s test this example webapp out and see if it works. To do that switch into the mysticpaste directory (the directory that has pom.xml in it) and type the following: mvn jetty:run This will start up a Jetty webapp container running on port 8080 (if you have something running there already, use the -Djetty.port= option). Startup a webbrowser and navigate to http://localhost:8080/mysticpaste/ You should see: Your IDE Sooner or later you’re going to want to crack open your IDE and start hacking away. Maven makes this extremely easy by allowing you to create IDE specific project files based off of the Maven pom.xml file. Eclipse mvn eclipse:eclipse For eclipse you’ll also have to set the M2_REPO classpath variable for the workspace your project resides under. Do this by entering the following command: mvn -Declipse.workspace= eclipse:add-maven-repo IntelliJ IDEA mvn idea:idea -OR- in IDEA 7+ simply open the pom.xml file Netbeans Netbeans supports maven out of the box, just “Open Project” and choose the mysticpaste directory that contains the pom.xml file When generating the project files through Maven, the project is setup such that classpath entries point to your local Maven repository (i.e. ~/.m2/repository, or C:Documents and Settingsyourusername.M2repository on Windows). It also sets up src/main/java, src/main/resources as “source folders”. You may add other folders to the source folder list as per your IDE if needed, the only thing you have to remember is if you ever use mvn eclipse:clean followed by mvn eclipse:eclipse again, those other source folders will have to be readded through your IDE. Instead, you should add the source/resource folders directly to your pom.xml, this way they will be maintained. Spring The Mystic Paste application will use Spring, and really you should too. Unless you have been hiding under a rock or work in a corporate environment so lame as to which technologies newer than 2002 are forbidden you should learn to accept Spring as a defacto standard. Dependency injection for the win! We add the following to our pom.xml: org.apache.wicket wicket-spring-annot org.springframework spring org.springframework spring-test org.springframework spring-tx wicket-spring-annot: allows us to wire our Wicket application via handy dependency injection annotations (i.e. @SpringBean, see Wicket documentation for more detail) spring: is just the core spring libraries spring-test: is a set of Spring integration classes for Unit testing spring-tx: is the Spring Transaction Management api for declarative transactions web.xml additions for Spring In order for Spring to manage our Wicket application we need to setup the Wicket filter with a Spring-aware application factory. This allows us to wire our Wicket Application class in our applicationContext.xml file, which is really handy if you have a services and configuration settings you want to inject into the Wicket Application object so the rest of your application can access them. To do this, we change the original Wicket filter like so: wicket.mysticpaste org.apache.wicket.protocol.http.WicketFilter applicationFactoryClassName org.apache.wicket.spring.SpringWebApplicationFactory As well, we want our Spring context to be available to our webapp if ever there is a need for one of our pages to access the Spring managed beans directly: contextConfigLocation classpath:com/mysticcoders/mysticpaste/spring/applicationContext.xml org.springframework.web.context.ContextLoaderListener Hibernate Hibernate is our ORM of choice, it will allow us to persist and retrieve our model objects to and from the underlying database, whatever that database may be. We add the following to our pom.xml: org.hibernate hibernate-annotations c3p0 c3p0 commons-dbcp commons-dbcp javax.transaction jta 1.0.1B hibernate-annotations: used so we can annotate our model classes with mapping information, instead of having to create a separate mysticpaste.hbm.xml file. c3p0: provides a connection pooling library Hibernate can use commons-dbcp: another connection pooling library, we’ll add it as well and decide whether to use it or c3p0 later jta: this is the Java Transaction API which is needed by Hibernate (Hibernate provides an implementation of the API) web.xml additions for Hibernate To have a Hibernate Session open and ready for our webapplication during a Request Cycle we need to setup a Hibernate filter like so (otherwise, good luck getting lazy loading working!): open.hibernate.session.in.view org.springframework.orm.hibernate3.support.OpenSessionInViewFilter open.hibernate.session.in.view /* As the comment states above, make sure this filter-mapping exists *before* your wicket.mysticpaste filter or else it just plain won’t work. Database For the Mystic Paste we decided to use the freely available PostgreSQL. Adding support for PostgreSQL is very easy, unlike with some of the commercial DBMSes where you have to download and install their JDBC driver into your repository. To add support for Postgres, we simply add the following to our pom.xml: postgresql postgresql Servlets Regardless of which webapplication framework you choose there are just some times when a plain jane Servlet comes in really handy. If you have a need for Servlets and the Servlet must have access to the Wicket session add the following to your web.xml: wicket.session org.apache.wicket.protocol.http.servlet.WicketSessionFilter filterName wicket.mysticpaste And then, after your other filter-mappings add the following (assuming you mount your servlet-mappings under /servlet/): wicket.session /servlet/* Maven Filters and Profiles In order to build our Mystic Paste project for various environments (DEV/QA/PROD) we need to implement both Maven profiles and filters. Filters Filters allow you to place variables inside your configuration files and have those variables filled in durring build time. This is very handy for setting environment specific things such as database connection information. Enabling filters is quite easy, we open up the pom.xml file and find the section for and set the value for the element to true as follows: true src/main/resources . . . But for filtering to work, we need to specify a filters file. It’s not enough to specify only one filter file because we need to specify different filters per environment and we’ll do that by using Maven Profiles. Profiles To setup a profile, create a new set of elements following the section in your pom.xml file. Like so: DEV DEV DEV QA QA PROD PROD and just above your tag underneith your tag you would add the following elements: mysticpaste src/main/filters/filters-${env}.properties true src/main/resources src/main/filters will contain the following files. |-- pom.xml |-- src | `-- main | |-- filters | | `-- filters-DEV.properties | | `-- filters-QA.properties | | `-- filters-PROD.properties filters-DEV.properties jdbc.url=jdbc:postgresql://localhost:5432/mysticpaste jdbc.user=mysticpaste jdbc.password=password image.upload.path=/tmp/pasetbin/userimages image.upload.size.limit=4096K filters-PROD.properties jdbc.url=jdbc:postgresql://192.168.2.10:5432/mysticpaste jdbc.user=mysticpaste jdbc.password=CrYp71c image.upload.path=/mysticpaste/userimages image.upload.size.limit=4096K Now within any file under src/main/resources that has variables of the form ${variable.name} will have those variables replaced with the values specified in the proper filters file located under src/main/filters. For instance here is an example of a Spring applicationContext.xml file which will be interpolated with proper variables values at build time: applicationContext.xml To determine which filters file will be used depends on the profile chosen when building. For example, to build to production using the filters-PROD.properties we would execute the following: mvn clean deploy -P PROD The profile you use with the -P switch must match one of the values of the element for a profile. Conclusion Although it’s quite easy to get started with the Maven QuickStart project it is sometimes a bit frustrating putting some of the additonal pieces together. Building to several environments, setting up depenencies not included in the QuickStart project and strucuturing your project in an effort to make life easy for yourself as a developer and for your designer. I hope our Day 1 tutorial leaves you with a good sense of how a Wicket project is setup, now we can move onto coding the app! In the next four days we will be covering: Writing the Tests Designing the backend Designing the Wicket components Putting it all together Mystic Coders, LLC has been coding web magic since 2000. Mystic is a full-service Development Agency specializing in Enterprise development with Java. They are usually involved in developing enterprise-grade software for companies large and small, and have experience working in diverse industries, including b2b, b2c, and government-based projects. Mystic has done work with large companies such as LeapFrog, Nestlé, Harrah's Entertainment and the Los Angeles Conventions & Visitor's Bureau, among others. Andrew Lombardi, CTO of Mystic, is available for speaking engagements. For more about Mystic, check us out at http://www.mysticcoders.com
March 10, 2009
by Craig Tataryn
· 30,345 Views
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Performance Monitoring Using Glassbox
The industry is recognizing the fact that performance testing & engineering should be part of the project execution road map starting from the requirements gathering phase. At many times during project executions, performance engineering related activities are executed based on customer need or slow response time of application after development phase gets completed. Glassbox can be leveraged (by developers/testers/business users) during and after the development cycle to monitor the response times of requests with-out being aware of underlying application structure and code details. Analysis generated by Glassbox gives direct pointers on where is the bottleneck which causes slow response time for that particular request/page/URL. About Glassbox Glassbox is an open source web application which aid in performance monitoring and troubleshooting of multiple web applications deployed in container. Troubleshooting It contains the built-in knowledge repository of common problems which are used to pinpoint the issues and suggestions on causes as Java code executes. Performance Monitoring It monitors the requests as Java code executes and provides details about response times. Glassbox web client (AJAX GUI) provides nice summary dashboard view which contains various attributes like (server-name, application name, operation/request-URL, average time, no. of executions, status (slow / OK) and analysis details). By default, an operation that takes more than 1 sec execution time is marked as SLOW status. Such SLA can be modified using Glassbox properties file. Analysis part describes the problem precisely and very clearly in plain English words, rather than displaying large code/exception trace. This definitely increases developer productivity by reducing developer’s time spent in log files and using IDE debuggers. Internals The two main components of Glassbox are Monitor and Agent. Monitor uses Aspect-Oriented Programming (AOP) to monitor the JVM activity. Agent diagnoses and presents the monitoring results and uses knowledge repository to cross reference the problem with suggestions/solutions. Glassbox agent supports viewing of the analysis results using JMX (eg. Java 5 JConsole) Consoles. Glassbox extensively uses the AOP approach internally to monitor the Java code. This gives the benefit of not making any changes to source code or build-process and hence can work with any legacy web application/jar file as well. Technologies Glassbox should work on any application server that supports Servlet 2.3 or later. The servers where Glassbox is tested and installation process is automated are Apache Tomcat, weblogic, websphere, Resin, Oracle OC4J, websphere, Resin, Jetty & GlassFish. Overhead Having Glassbox application running on same container would generate a performance overhead. Typically this would affect the response time and memory overhead. Hence it is recommended to start the Glassbox application only when it’s required for performance monitoring. Licensing Glassbox is an open source project, it is free to download and run. Glassbox uses the GNU Lesser General Public License to distribute software and documentation. Demo Application Development & Deployment to Tomcat To test the capabilities of Glassbox, a sample application is developed which has a TestServlet class. This servlet calls DelayGenerator class’s generateDelay() method. This method calls Thread class’s sleep() method which suspends the execution of servlet. A counter is being initialized in DelayGenerator class which determines the time interval till which servlet is needed to be suspended. TestServlet.java /** * File: TestServlet.java * @author Viral Thakkar */ package com.infosys.star.glassbox; import java.io.IOException; import java.io.PrintWriter; import javax.servlet.ServletException; import javax.servlet.http.HttpServlet; import javax.servlet.http.HttpServletRequest; import javax.servlet.http.HttpServletResponse; public class TestServlet extends HttpServlet { protected void doGet(HttpServletRequest request, HttpServletResponse response) throws ServletException, IOException { DelayGenerator delayObj = new DelayGenerator(); int delay = delayObj.generateDelay(); response.setContentType("text/html"); PrintWriter out = response.getWriter(); out.println(""); out.println(" Hello World from Test Servlet : "+delay+" milliseconds "); out.println(""); out.flush(); } } DelayGenerator.java /** * File: DelayGenerator.java * @author Viral Thakkar */ package com.infosys.star.glassbox; public class DelayGenerator { private static int counter = 1; public int generateDelay() { try { Thread.sleep(counter * 100); counter++; } catch (InterruptedException e) { e.printStackTrace(); } return counter*100; } } Glassbox Installation & Integration to Apache Tomcat 6.0 Glassbox installation is very straightforward for non-clustered environment for the server where it’s automated. Simply drop the glassbox.war file at the appropriate folder inside server folder or perform the server specific steps/configuration to deploy the war file. Browse to server url with context root as glassbox – http://<>:/glassbox. Follow the instructions available on this page. According to specific server, this page would suggest the configuration changes for a server. Please refer to Glassbox User Guide document for details on how to install Glassbox for clustered application server environment. For Apache Tomcat 6.0- Add following command line arguments to Tomcat’s Java options: -Dglassbox.install.dir=C:\Tomcat6.0\lib\glassbox -Djava.rmi.server.useCodebaseOnly=true -javaagent:C:\Tomcat6.0\lib\aspectjweaver.jar Monitoring & Technical Analysis Glassbox web client (URL- http://<>:<>/glassbox ) shows the summary and detailed view of all the requests/operations that container/JVM has executed. Summary Section View Different attributes (columns) which gets displayed in this table are as below - Attribute / Column Name Comments Status This indicates whether operation/request is performing OK, SLOW or FAILING Analysis For SLOW/FAILING status, this value provides the small summary of the cause of the problem. Operation This is name of the operation/request of an application Server Name of the server where monitoring is being done. In a clustered environment, this allows to distinguish operations on different servers. Executions This value indicates how many times this operation has run since the application server was started or Glassbox’s statistics were last reset. Click the request in above summary table to view its detailed analysis in below detailed section. Detailed Section View The details area provides information relating to operations selected in the summary table. Different sub-sections which gets displayed in this view are as below - Sub-section Name Comments Executive Summary High level summary view of the selected operation gets displayed in a table format. This is neat view to senior stake holders who are not interested in technical details. Technical Summary This section contains more technical details in paragraph and table representation formats to provide insight into root cause of the problem if any, like which operation, query is slow and statistics of same. Details like stack trace, thread lock name are provided to find and fix the problem. “Common solutions” sub section shows pointers to resolve the identified problem/s. “Glassbox has ruled out other potential problems” sub section saves time to know what problems have already been ruled out. Executive Summary View Technical Summary -> Technical Details Views Above two snapshots are parts of the Technical Details section and provide minute details at code level with line number so as to pinpoint where the problem is. Here cause is identified at Class com.infosys.star.glassbox.DelayGenerator inside Method generateDelay at line number 12 where Thread.sleep is invoked. Perform Load Testing Using JMeter and Monitor Using Glassbox Apache JMeter is used to test performance both on static and dynamic resources (files, Servlets, Perl scripts, Java Objects, Data Bases and Queries, FTP Servers and more). It can be used to simulate a heavy load on a server, network or object to test its strength or to analyze overall performance under different load types. It can be used to make a graphical analysis of performance or to test server/script/object behavior under heavy concurrent load. Using JMeter, create a test plan that simulates 10 users requesting for 1 page 5 times. i.e. 10 x 1 x 5 = 50 HTTP requests. First step is to add a Thread Group element. The Thread Group tells JMeter the number of users to simulate, how often the users should send requests, and the how many requests they should send. Next step is to add HTTP Request element to added Thread Group. In parallel, have the Glassbox up and running to monitor response time statistics of the load generated by JMeter application. Below is the Executive summary view of above test in Glassbox web UI interface. Section “Monitoring & Technical Analysis” contains the details to understand the Glassbox generated analysis. Conclusion Glassbox is not the replacement for performance testing tool like load runner. Glassbox aids in the project to various stakeholders in finding, conveying and fixing the performance problems at all phases starting build (development) to post deployment. Glassbox application to be started/installed only during monitoring time so as to avoid the performance overhead for other applications due to CPU & memory footprint occupied by Glassbox application on the container. During load testing of the application, Glassbox turns out to be good option to figure out the root causes inside an application code. References Glassbox web site - http://www.glassbox.com/glassbox/Home.html Glassbox User Guide - http://nchc.dl.sourceforge.net/sourceforge/glassbox/Glassboxv2.0UserGuide.pdf Apache JMeter - http://jakarta.apache.org/jmeter/ Download & Support Glassbox Download Link - http://www.glassbox.com/glassbox/Downloads.html Glassbox forum Link - http://sourceforge.net/forum/forum.php?forum_id=575670 About Author Viral Thakkar is a Technical Architect with the Banking and Capital Markets vertical at Infosys. He has 9.5 years of technology consulting experience mainly on Java/JEE technologies and frameworks with large banks and financial institutions across the globe. He has been part of many small and large-scale initiatives related to application development, architecture creation and strategy definition. From http://viralpatel.net/blogs
March 5, 2009
by Viral Thakkar
· 20,838 Views
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Java:SWT: Click On Table Column Header To Sort Table
Java:SWT: click on table column header to sort table package ca.freewill.swt.test; import java.util.Arrays; import org.eclipse.jface.viewers.TableViewer; import org.eclipse.jface.viewers.Viewer; import org.eclipse.jface.viewers.ViewerComparator; import org.eclipse.swt.SWT; import org.eclipse.swt.events.SelectionAdapter; import org.eclipse.swt.events.SelectionEvent; import org.eclipse.swt.widgets.Table; import org.eclipse.swt.widgets.TableColumn; public class TableSorter { private final TableViewer tableViewer; public TableSorter(TableViewer tableViewer) { this.tableViewer = tableViewer; addColumnSelectionListeners(tableViewer); tableViewer.setComparator(new ViewerComparator() { public int compare(Viewer viewer, Object e1, Object e2) { return compareElements(e1, e2); } }); } private void addColumnSelectionListeners(TableViewer tableViewer) { TableColumn[] columns = tableViewer.getTable().getColumns(); for (int i = 0; i < columns.length; i++) { addColumnSelectionListener(columns[i]); } } private void addColumnSelectionListener(TableColumn column) { column.addSelectionListener(new SelectionAdapter() { public void widgetSelected(SelectionEvent e) { tableColumnClicked((TableColumn) e.widget); } }); } private void tableColumnClicked(TableColumn column) { Table table = column.getParent(); if (column.equals(table.getSortColumn())) { table.setSortDirection(table.getSortDirection() == SWT.UP ? SWT.DOWN : SWT.UP); } else { table.setSortColumn(column); table.setSortDirection(SWT.UP); } tableViewer.refresh(); } private int compareElements(Object e1, Object e2) { IColumnContentProvider columnValueProvider = (IColumnContentProvider) tableViewer.getContentProvider(); Table table = tableViewer.getTable(); int index = Arrays.asList(table.getColumns()).indexOf(table.getSortColumn()); int result = 0; if (index != -1) { Comparable c1 = columnValueProvider.getValue(e1, index); Comparable c2 = columnValueProvider.getValue(e2, index); result = c1.compareTo(c2); } return table.getSortDirection() == SWT.UP ? result : -result; } } // Content provider must implement this interface package ca.freewill.swt.test; public interface IColumnContentProvider { Comparable getValue(Object element, int column); }
February 28, 2009
by Ivor Williams
· 6,855 Views
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Programming LDAP with Groovy
It all started with a task to do: Print all members of the group within Active Directory, including members of the nested groups. And a deadline: 15 minutes. Given the deadline, I had no chance to get it done in time. Having 15 minutes means you need to get it right from the first run. Googling for groovy ldap brought Gldapo. But after looking at it and seeing how much configuration has to be done, I searched for some alternatives. Groovy LDAP was beautifully simple and had no external dependencies. I downloaded the jar, dropped it into my GROOVY_HOME/lib directory and started to write the script: import org.apache.directory.groovyldap.LDAP ldap = LDAP.newInstance('ldap://ldap.mycompany.com:389/dc=mycompany,dc=com') After reading through the sample scripts, I already had the main part: ldap.eachEntry ('&(objectClass=person)(memberOf=cn=mygroup') { person -> println "${person.displayName} (${person.cn})" } I saved it as listGroup.groovy and ran it from the command line: groovy listGroup It worked out of the box, printing on the console all the members of the group: John Smith (smithj) Amanda McDonald (mcdonaa) Isabelle Dupre (duprei) Of course, the script was not printing members of the nested groups. In order to do that, I had to turn the snippet into the Groovy recurrent function and avoid hardcoding a group's name in favor of taking it as a command line parameter. Here is the entire script: import org.apache.directory.groovyldap.LDAP import org.apache.directory.groovyldap.SearchScope List getMembersOfAGroup(connection, groupName) { def members = [] def result = connection.searchUnique("cn=$groupName”); connection.eachEntry("memberOf=${result.dn}") { member -> if (member.objectclass.contains("group")) members.addAll(getMembersOfAGroup(connection, member.cn)) else members.add("${member.displayName} (${member.cn})") } return members } LDAP ldap = LDAP.newInstance("ldap://ldap.mycompany.com:389/dc=mycompany,dc=com") getMembersOfAGroup(ldap, args[0]).each { println it } If your directory contains circular group relations, the script has to be further adjusted. This detail has been omitted for simplicity reasons. Please note, that the examples in this article work only with Microsoft Active Directory, because they use vendor specific structure and schema elements. In other directory solutions for instance, group membership is often stored in group entries only, while in Active Directory it is stored in both group and member object. But the examples can easily be adjusted to fit another directory's solution, e.g. by modifying filter expressions. What is this LDAP thing you're talking about? LDAP 101: LDAP stands for Lightweight Directory Access Protocol. A directory is a storage organized as a tree of directory entries. The tree usually reflects political, geographical and/or organizational boundaries. Every directory entry consists of a set of attributes (name/value pairs). These attributes are defined in the LDAP schema. Each directory entry has a unique identifier named DN (Distinguished Name). For more information please read Apache Directory introductory article. Project background Groovy LDAP is a small library started by Stefan Zoerner from the Apache Directory project. Its goal was to create minimalistic LDAP API for Groovy, with metaphors understood by the LDAP community (e.g. members of the Apache Directory team). As such, the only two dependencies of Groovy LDAP are: Java SE (5 or later) Groovy 1.0 or later Under the hood, JNDI is used to perform LDAP queries, but fortunately Groovy LDAP hides it and lets you use a bunch of useful methods and objects, instead. It actually reminds me of the time when Netscape LDAP API was widely used. It defines a set of methods to perform basic LDAP operations: create, modify, delete, compare, search. Groovy LDAP is written in Java, not Groovy. The only Groovy dependency is a reference to a Closure class, which is used as a parameter in a couple of search methods. So with the exception of the method taking the closure, others can be also used in Java programs. How to get it The simplest way is to get the binaries from the Groovy LDAP download page. After downloading and expanding the zip file you need to look for groovy-ldap.jar in the dist directory. Drop it into your GROOVY_HOME/lib directory and you’re ready to write your first script. How to build it If you want to build the library on your own, you will need: Apache Ant 1.7.1 Ivy 1.4.1 or later After you download and install Ant, drop Ivy's jar (ivy-1.4.1.jar) into your ANT_HOME/lib directory. Now you can check out the source files from Apache Directory sandbox Subversion repository. Once the files are checked out, just type ant and wait until the distribution jar is built in the dist directory. Connecting to the directory The first thing you will want to do is to connect to the directory. Groovy LDAP offers here two types of connection: anonymous bind and simple bind. Anonymous bind happens when you connect to the directory without providing your credentials. Many directories allow anonymous bind if the client is only reading from the directory. In corporations anonymous bind is often disabled for security reasons. So, in order to connect you need to instantiate LDAP class using newInstance() method, with the following variants: public LDAP newInstance() public LDAP newInstance(url) A non-parameter method connects to the default address, which is localhost:389. It proves to be useful for various short proof-of-concept scripts. The second method takes the url of the directory as a second parameter. If anonymous bind is not allowed or not sufficient there is an equivalent method, taking additionally user credentials: public LDAP newInstance(url, user, password) Once the connection is established, you can perform any other actions. One tip is to always provide a baseDN as a part of the connection url e.g. ldap://ldap.mycompany.com:389/dc=mycompany,dc=com By doing so you define the default base, upon which searches will be performed, which in turn allows you to use convenient one parameter search methods, instead of specifying a search base and scope each time. Reading and searching directory entries You may want to start with checking if a specific directory entry exists: def found = ldap.exists('cn=smithj,dc=mycompany,dc=com') exists() method is searching the directory by DN (Distinguished Name) and returning a boolean result detailing whether an entry was found. As a companion there is read() method, that reads directory entry, specified by its DN: if (found) def entry = ldap.read('cn=smithj,dc=mycompany,dc=com') This method returns either a boolean value or a given entry, accordingly. But there might be cases when you do not want to search by DN, but by another attribute which is also unique. A good example of this is a userId attribute, which is usually unique within a company. def entry = ldap.searchUnique('userId=smithj') This method assumes uniqueness of an object. If more than one result is returned from the search, you will get an exception. When more results are expected, you can use search() method: and then iterate over a result set: results = ldap.search('(objectClass=user)') println 'Found: $results.size entries' results.each { entry -> println entry.dn } Searches can be also performed with more compact and more Groovy method eachEntry() taking a closure as the last parameter: ldap.eachEntry('(objectClass=user)') { entry -> println entry.dn } As you see, when you have the entry object, you can reference all its properties using native map syntax e.g. entry.dn. This is possible, because all result objects returned from Groovy LDAP search methods are Maps or Lists of Maps. But, how does Groovy LDAP know in which subtree you would like to perform your search? It doesn't, because you haven't specified anything else, but the basic query. So it assumed you want to search in baseDN (hopefully specified, when connecting to the directory). When you want to have more control over how the query is performed, there is a different version of search(), searchUnique() and eachEntry() methods that support it e.g. public List or Search class instance as parameters, but we'll leave them as for now. When you deal with LDAP directories as a part of your daily job, you may want to have a look at Apache Directory Studio, a full-fledged LDAP client tool, which allows you to connect, browse and modify any LDAP-compatible directory. It can also be used as diagnostic tool when your query in Groovy LDAP doesn't work as expected. Adding, modifying and deleting directory entries When you know how to search and read from the directory, it's time to do some modifications. Let's start from adding a new entry: def attributes = [ objectclass: ['top', 'person'], cn: 'smithc', displayName: 'John Smith' ] ldap.add('cn=smithc,dc=example,dc=com', attributes) add() method takes DN and a Map with attributes as parameters. You need to remember not to put DN in the attributes map, as it is not an attribute but rather the unique identifier of an entry. Removing a directory entry is even more straightforward: ldap.delete('cn=smithc,dc=example,dc=com') delete() method will throw an exception, if an object with the given DN does not exist. Modifying a directory entry is not very Groovyish for the time being. Adding single attributes is still relatively easy: def dn = 'cn=smithj,dc=mycompany,dc=com' def email = [ email: '[email protected]' ] ldap.modify(dn, 'ADD', email) Performing batch modifications could be more readable using Builder-like syntax.. The current way to do this is the following: def modifications = [ [ 'REPLACE', [email: '[email protected]'] ], [ 'ADD', [phone: '+48 99 999 99 99'] ] ] ldap.modify(dn, modifications) The same operation, using more expressive syntax, would potentially look like: ldap.modify ('cn=smithj,dc=mycompany,dc=com') { replace(email: '[email protected]') add(phone: '+48 99 999 99 99') } Summary As you can see, Groovy LDAP is a neat little library, delivering simple but convenient API to deal with LDAP directories, which makes it an ideal candidate to use in various administrator scripts and short programs. As a project it resides in Apache Directory sandbox, so when you have a chance, contribute and help Groovy LDAP to become an official subproject of the Apache Directory. Thanks I would like to thank Stefan Zoerner and Carolyn Harman for thorough review of the article. Resources Apache Directory Project Groovy LDAP Gldapo Apache Ant Apache Ivy Groovy
February 16, 2009
by Michal Szklanowski
· 53,244 Views · 5 Likes
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JBoss RichFaces with Spring
This article is going to show you how to build a RichFaces application with Spring.
February 16, 2009
by Max Katz
· 203,945 Views
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Generic Repository and DDD - Revisited
Greg Young talks about the generic repository pattern and how to reduce the architectural seam of the contract between the domain layer and the persistence layer. The Repository is the contract of the domain layer with the persistence layer - hence it makes sense to have the contract of the repository as close to the domain as possible. Instead of a contract as opaque as Repository.FindAllMatching(QueryObject o), it is always recommended that the domain layer looks at something self revealing as CustomerRepository.getCustomerByName(String name) that explicitly states out the participating entities of the domain. +1 on all his suggestions. However, he suggests using composition, instead of inheritance to encourage reuse along with encapsulation of the implementation details within the repository itself .. something like the following (Java ized) public class CustomerRepository implements ICustomerRepository { private Repository internalGenericRepository; public IEnumerable getCustomersWithFirstNameOf(string _Name) { internalGenericRepository.fetchByQueryObject( new CustomerFirstNameOfQuery(_Name)); //could be hql or whatever } } Quite some time ago, I had a series of blogs on DDD, JPA and how to use generic repositories as an implementation artifact. I had suggested the use of the Bridge pattern to allow independent evolution of the interface and the implementation hierarchies. The interface side of the bridge will model the domain aspect of the repository and will ultimately terminate at the contracts that the domain layer will use. The implementation side of the bridge will allow for multiple implementations of the generic repository, e.g. JPA, native Hibernate or even, with some tweaking, some other storage technologies like CouchDB or the file system. After all, the premise of the Repository is to offer a transparent storage and retrieval engine, so that the domain layer always has the feel that it is operating on an in-memory collection. // root of the repository interface public interface IRepository { List read(String query, Object[] params); } public class Repository implements IRepository { private RepositoryImpl repositoryImpl; public List read(String query, Object[] params) { return repositoryImpl.read(query, params); } //.. } Base class of the implementation side of the Bridge .. public abstract class RepositoryImpl { public abstract List read(String query, Object[] params); } One concrete implementation using JPA .. public class JpaRepository extends RepositoryImpl { // to be injected through DI in Spring private EntityManagerFactory factory; @Override public List read(String query, Object[] params) { //.. } Another implementation using Hibernate. We can have similar implementations for a file system based repository as well .. public class HibernateRepository extends RepositoryImpl { @Override public List read(String query, Object[] params) { // .. hibernate based implementation } } Domain contract for the repository of the entity Restaurant. It is not opaque or narrow, uses the Ubiquitous language and is self-revealing to the domain user .. public interface IRestaurantRepository { List restaurantsByName(final String name); //.. } A concrete implementation of the above interface. Implemented in terms of the implementation artifacts of the Bridge pattern. At the same time the implementation is not hardwired with any specific concrete repository engine (e.g. JPA or filesystem). This wiring will be done during runtime using dependency injection. public class RestaurantRepository extends Repository implements IRestaurantRepository { public List restaurantsByEntreeName(String entreeName) { Object[] params = new Object[1]; params[0] = entreeName; return read( "select r from Restaurant r where r.entrees.name like ?1", params); } // .. other methods implemented } One argument could be that the query string passed to the read() method is dependent on the specific engine used. But it can very easily be abstracted using a factory that returns the appropriate metadata required for the query (e.g. named queries for JPA). How does this compare with Greg Young's solution ? Some of the niceties of the above Bridge based solution are .. The architecture seam exposed to the domain layer is NOT opaque or narrow. The domain layer works with IRestaurantRepository, which is intention revealing enough. The actual implementation is injected using Dependency Injection. The specific implementation engine is abstracted away and once agian injected using DI. So, in the event of using alternative repository engines, the domain layer is NOT impacted. Greg Young suggests using composition instead of inheritance. The above design also uses composition to encapsulate the implementation within the abstract base class Repository. However in case you do not want to have the complexity or flexibility of allowing switching of implementations, one leg of the Bridge can be removed and the design simplified From http://debasishg.blogspot.com/
January 20, 2009
by Debasish Ghosh
· 40,857 Views · 1 Like
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Hello EclipseLink on the NetBeans Platform
Let's use EclipseLink to set up some very basic database interaction in a NetBeans Platform application. Though it will be the ultimate 'Hello World' scenario, it should show how to get started with database interactivity on the NetBeans Platform, while also yet again showing the benefit of the NetBeans Platform's modular architecture. Of course, feel free to adapt these instructions to your needs, for example, instead of EclipseLink, use TopLink, or Hibernate, or whatever. You should also be surprised by how easy it is, once you know how. We'll simply access a database and display what we find there: Our application will look as follows: Notice that we will have 4 separate modules, which will enable us to easily provide alternative database providers, as well as alternative persistence providers, because the UI module uses generic code that could make use of any alternative backing modules. Let's get started. Create a Java Library and Generate Entity Classes from the Database. Firstly, create a Java Library project. Then use the Entity Classes from Database wizard to generate entity classes from your database. In the wizard, select EclipseLink in the step where you use the wizard to generate a persistence unit. Look at the generated code and notice that, among other things, you have a persistence.xml file in a folder called META-INF, thanks to the wizard. In my case, I chose a Sample database that comes with the IDE, and then I specified I want an entity class for the Customer table, which resulted in the IDE also creating an entity class for the related DiscountCode table: Build the Java Library and you will have a JAR file in the above application's "dist" folder. As you will read in the next step, that JAR file needs to be added as a library wrapper module to the application you will start creating in the next step. Create a NetBeans Platform Application. In the New Project dialog, specify that you want to create a new NetBeans Platform Application. Once you've created it, right-click the Modules node in the Projects window and choose Add New Library. Then select the JAR you created in the previous step. You now have your first custom module in the new application. Create Supporting Library Wrappers. Do the same as you did when creating the library wrapper for the entity class JAR, but this time for the EclipseLink JARs (which are in your GlassFish distro, make sure to include the persistence JAR that you find there too and, if you don't know which ones to include, go back to the Java Library shown in the previous screenshot and then expand the Libraries folder, which will show you which libraries you need). Next, create yet another library wrapper module... for the DerbyClient JAR. Create the UI Module. The final module you will need will provide the UI. So, create a new module (not a Library Wrapper Module, but just a plain NetBeans Module) and add a Window Component via the New Window Component wizard. Set Dependencies. You now have lots of classes all neatly separated into distinct modules. In order to be able to use code from one module in another module, you'll need to set dependencies, i.e., very explicit contracts (as opposed to accidental reuse of code in one place from another place, resulting in unmaintainable chaos). First, the entity classes module needs to have dependencies on the DerbyClient module, as well as on the EclipseLink module. Then, the UI module needs a dependency on the EclipseLink module as well as the entity classes module. (You could split things further so that the EclipseLink module is not a dependency of the UI module, by putting the persistence JAR in one module, with the other EclipseLink JARs separated in a different module.) Now, finally, let's do some coding. Not much needed, though. Add a JTextArea to the TopComponent in the UI module. Then add this to the end of the TopComponent constructor: EntityManager entityManager = Persistence.createEntityManagerFactory("EntityLibPU").createEntityManager(); Query query = entityManager.createQuery("SELECT c FROM Customer c"); List resultList = query.getResultList(); for (Customer c : resultList) { jTextArea1.append(c.getName() + " (" +c.getCity() + ")" + "\n"); } Above, you can see I am referring to a persistence unit named "EntityLibPU", which is the name set in the persistence.xml file. In addition, I am referring to one of the entity classes, called Customer, which is in the entity classes module. Adapt these bits to your needs. Deploy the Application. Start your database server and then run the application. You should see this: Congrats, you've just managed to set up JPA via EclipseLink in a modular NetBeans Platform application... and you only typed 6 lines of code.
January 17, 2009
by Geertjan Wielenga
· 34,592 Views
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JPA's Nasty "Unknown abstract schema type" Error
I'd been trying to debug the following error for days, and it drove me crazy. The problem, in a nutshell, is that JPA refuses to compile one of my NamedQueries, throwing the following error: Error compiling the query [UserVO.findByUserName: SELECT u FROM UserVO u WHERE u.name = :name]. Unknown abstract schema type [UserVO] After numerous Google searches, I concluded that JPA will throw the "Unknown abstract schema type" error when JPA fails to locate your entity class. Most often, this type of error occurs when: You have provided the database table name instead of the entity class name in the JPA query. For example, if you have an entity class called "UserVO", which maps to the table name "users", the query "SELECT u from users u" will throw the above exception. When running JPA in standalone mode, or not in a Java EE container (such as Tomcat 5 or 6), you forget to explicitly list all entity classes in the persistence.xml file, thus causing JPA to fail to locate the entities when compiling the query. Neither of above applied to my case. I have explicitly listed all my entity classes in the persistence.xml and I am sure my JPA query is valid. I have tested my code with different JPA implementations, but always saw the same error. Here's my UserVO class: @Entity(name = "users") @NamedQuery(name = "UserVO.findByUserName", query = "SELECT u FROM UserVO u WHERE u.name = :name") public class UserVO extends BaseVO implements Serializable { ... ... } If I remove the NamedQuery, my JPA works as expected, i.e, I am able to insert, delete, and update the UserVO object. Now, to all my smart readers, can you spot what's wrong in my code? Think about it and then scroll down for the answer... Answer: The culprit is the Entity annotation. I explicitly named the UserVO entity "users". JPA has no problem to map the UserVO entity to the users database table. However, JPA has a problem when compiling the JPA Query: it can't find the UserVO entity in the JPA context because I have renamed the UserVO entity to users. To resolve this, just add a @Table annotation with the table name, as shown in the code below: @Entity @Table(name = "users") @NamedQuery(name = "UserVO.findByUserName", query = "SELECT u FROM UserVO u WHERE u.name = :name") public class UserVO extends BaseVO implements Serializable { ... ... } Haha, stupid me... Anyway, Happy New Year to everyone.
January 13, 2009
by Khoo Chen Shiang
· 54,255 Views
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The Three Pillars of Continuous Integration
Continuous Integration commonly known as CI is a process that consists of continuously compiling, testing, inspecting, and deploying source code. In any typical CI environment, this means running a new build every time code changes within a version control repository. Martin Fowler describes CI as: A software development practice where members of a team integrate their work frequently, usually each person integrates at least daily - leading to multiple integrations per day. Each integration is verified by an automated build to detect integration errors as quickly as possible. Many teams find that this approach leads to significantly reduced integration problems and allows a team to develop cohesive software more rapidly. While CI is actually a process, the term Continuous Integration often is associated with three important tools in particular. As shown in the image the three pillars of CI are: 1. A version control repository like Subversion, or CVS. 2. A CI Server such as Hudson, or Cruise Control 3. An automated build process like Ant or Nant So, let’s look at each of these in detail: Version Control Repository: Version control repositories also known as SCM (source code management) play a crucial role in any software development environment. They also play a very important role for a successful CI process. The SCM is a central place for the team to store every needed artifact for the project. It is mandatory for the teams to put everything needed for a successful build into this repository. This includes the build scripts, property files, database scripts, all the libraries required to build the software and so on. The CI Server: For CI to function properly, we also need to have an automated process that monitors a version control repository and runs a build when any changes are detected. There are several CI servers available, both open source and commercial. Most of them are similar in their basic configuration and monitor a particular version control repository and run builds when any changes are detected. Some of the most commonly used open source CI servers are; Cruise Control, Continuum, and Hudson. Hudson is particularly interesting because of its ease of configuration and compelling plug-ins, which makes integration with test and static analysis tools much easier. Automated Build: The process of CI is about building software often, which is accomplished through the use of a build. A sturdy build strategy is by far the most important aspect of a successful CI process. In the absence of a solid build that does more than compile your code, CI withers. With automated builds, teams can reliably perform (in an automated fashion) otherwise manual tasks like compilation, testing, and even more interesting things like software inspection and deployment. Now that we have seen the important tools in our CI process, let’s see how a typical CI scenario looks like for a developer: CI server is configured to poll the version control repository continuously for changes. Developer commits code to the repository. CI server detects this change, and retrieves the latest code from the repository. This causes the CI server to invoke the build script with the given targets and options. If configured, CI Server will send out an e-mail to the specified recipients when a certain important event occurs. The CI server continues to poll for changes. Why is CI Important? This is one of the most frequently asked questions, and here are a few points to note about this powerful technique: Building software often greatly increases the likelihood that you will spot defects early, when they still are relatively manageable. Extends defect visibility. CI ensures that you have production ready software at every change. CI also ensures that you have reduced the risk of integration issues by building software at every change. CI server can also be configured to run continuous inspection which can assist the development team in finding potential bugs, bad programming practice, automatically check coding standards, and also provide valuable feedback on the quality of code being written. Over the past several months, I have assisted several companies in implementing CI. There was a little bit of resistance from the developers in the early stages when we implemented continuous feedback. But, never heard a single negative comment about this approach. If you already have a version control repository and automated builds, you are very close to the CI process. Download one of the open source CI servers, configure and setup a simple project. It should take less than an hour if you have automated build scripts. Start adding additional features like code inspections, generating reports, metrics, documentation and so on. Most important, send continuous feedback to your team. Give this process a try, you sure will be surprised to see how effective it is. And, as always share your thoughts, concerns or questions.
December 15, 2008
by Meera Subbarao
· 24,120 Views
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Computing 95 Percentile In MySQL
When doing performance analyzes you often would want to see 95 percentile, 99 percentile and similar values. The "average" is the evil of performance optimization and often as helpful as "average patient temperature in the hospital". Lets set you have 10000 page views or queries and have average response time of 1 second. What does it mean ? Really nothing - may be one page view was 10000 seconds and the rest was in low milliseconds or may be you had every single page view taking 1 second, which are completely different. You also do not really care about average performance - the goal of good user experience is majority of users to have good experience and average is not a good fit here. Defining your response time goal in 95 or 99 percentile is much better. Say you say 99 percentile response time should be one second, this means only 1 percent of queries/page views are allowed to take more than that. For larger systems defining (increasing) response times for 99.9 or even 99.99 percentile numbers often make sense. It also often makes sense to define response time goals separately for different transactions - the AJAX widget response time requirements may be very different from the slow search page. So you have defined your response time in terms of 95/99 percentile and get your logs in the table, so how to get the data if MySQL only provides you the avg: mysql> SELECT count(*),avg(wtime) FROM performance_log_081128 WHERE page_type='search'; +----------+-----------------+ | count(*) | avg(wtime) +----------+-----------------+ | 106859 | 1.4469140766532 +----------+-----------------+ 1 row IN SET (2.08 sec) The average response time here is for example; the real data what we need is number of rows which matches for given query type. Dividing the count by 100 we get our 1% of values and dividing by 20 5% of values, now we can get the response time we concerned about simply by running following order-by queries: mysql> SELECT wtime FROM performance_log_081128 WHERE page_type='search' ORDER BY wtime DESC LIMIT 1068,1; +---------+ | wtime +---------+ | 10.1007 +---------+ 1 row IN SET (2.06 sec) mysql> SELECT wtime FROM performance_log_081128 WHERE page_type='search' ORDER BY wtime DESC LIMIT 5342,1; +---------+ | wtime +---------+ | 5.09297 +---------+ 1 row IN SET (2.06 sec) So for this system the 95 percentile is just over 5 sec (some 3 times more than the average) and 99% percentile is just a bit over 10 seconds (6 times more than average). The both numbers are horrible and system surely needs to be fixed. These numbers are to illustrate - the percentile numbers can be quite different from average numbers (it is not rare to see 99 percentile to be order of magnitude different from the average) and this is what you really need to focus on. Looking at the numbers from the business standpoint try to understand what these really are. In some cases I see rather bad percentile on the backend which are not really the problem for the business because there is a cache up front anyway. If 99% of requests are coming from the cache and you observe certain 99 percentile response time on the backend it is often 99.99 percentile response time which is a lot different - you often can afford 1/10000 requests to stall for few seconds, because things outside of your control (like packet loss at client side) would be responsible for larger amount of delays. Be careful though - the "random" delays, for example if system was busy and delayed servicing request is one thing, "systematic" delays, when response time is always bad in given conditions can be much worse problems. You do not want your best client to suffer for example, even if he is the only one.
December 3, 2008
by Peter Zaitsev
· 15,526 Views
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Importing XML Data Into A SQLite Table
For inserting into a SQLite table, use the code as follows: //DB Connection private var dbconn:SQLConnection; //Query Statement private var sqlQuery:SQLStatement; //Create Table Statement private var sqlCreateTable:SQLStatement; //Insert Statement private var sqlInsert:SQLStatement; //Import Statement private var sqlImport:SQLStatement; /** * This is for importing xml data to a SQLite table * @param node xml node * @param user the user whos data this is * */ public function importPostXML( node:XMLNode, user:User ):void { var query:String = "INSERT INTO posts (" + "post_url," + "post_hash," + "post_desc," + "post_tags," + "post_time," + "post_extended," + "post_shared," + "post_replace," + "post_user)" + "VALUES ( " + ":post_url," + ":post_hash," + ":post_desc," + ":post_tags," + ":post_time," + ":post_extended," + ":post_shared," + ":post_replace," + ":post_user)"; sqlImport = new SQLStatement(); sqlImport.sqlConnection = dbconn; sqlImport.addEventListener( SQLEvent.RESULT, onSQLSave ); sqlImport.addEventListener( SQLErrorEvent.ERROR, onSQLError ); sqlImport.text = query; sqlImport.parameters[":post_url"] = node.attributes.href; sqlImport.parameters[":post_hash"] = node.attributes.hash; sqlImport.parameters[":post_desc"] = node.attributes.description; sqlImport.parameters[":post_tags"] = node.attributes.tag; sqlImport.parameters[":post_time"] = node.attributes.time; sqlImport.parameters[":post_extended"] = node.attributes.extended; sqlImport.parameters[":post_shared"] = node.attributes.shared; sqlImport.parameters[":post_replace"] = node.attributes.replace; sqlImport.parameters[":post_user"] = user.user_name; sqlImport.execute(); trace( "Importing XML to SQLite Database" ); }
September 21, 2008
by Jonnie Spratley
· 15,984 Views · 1 Like
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The Capability Pattern: Future-Proof Your APIs
Here is a simple pattern which you can use to make your APIs extensible, even by third parties, without sacrificing your ability to keep backward compatibility. It is very frequent to create a library which has two “sides” — an API side and an SPI side. The API is what applications call to use the library. The SPI (Service Provider Interface) is how functionality — for example, access to different kinds of resources, is provided. One example of this is JavaMail: To read/write email messages, you call JavaMail's API. Under the hood, when you ask for a mail store for, say, an IMAP mail server, the JavaMail library looks up all the providers registered (injected) on the classpath, and tries to find one that supports that protocol. The protocol handler is written to JavaMail's SPI. If it finds one, then you can fetch messages from IMAP servers using it. But your client code only ever calls the JavaMail API - it doesn't need to know anything about the IMAP service provider under the hood. There is one very big problem with the way this is usually done: API classes really ought to be final in almost all cases. SPI classes ought to be abstract classes unless the problem domain is extremely well-defined, in which case interfaces make sense (you can use either, but in a not-well-defined problem domain you may end up, over time, creating things with awful names like LayoutManager2). I won't go into great detail about why this is true here (my friend Jarda does in his new book and we discuss it somewhat in our book Rich Client Programming). In abbreviated form, the reasons are: You can provably backward compatibly add methods to a final class. And if the class is final, that fact has communication-value — it communicates to the user of that class that it's not something they might need to implement, where an interface would be more confusing. You can backward compatibly remove methods from an SPI interface or abstract class, if your library is the only thing that will ever call the SPI directly is your library. Older implementations will still have the method, it just will never be called (in a modular environment such as the NetBeans module system, OSGi or presumably JSR-277, you would enforce this by putting the API and SPI in separate JAR files, so a client can't even see the SPI classes). A minor benefit of using abstract classes is that you can semi-compatibly add non-abstract methods to an abstract class later. But do remember that you run the risk that someone will have a subclass with the same method name and arguments and an incompatible return-type (the JDK actually did this to us once in NetBeans, by adding Exception.getCause() in JDK 1.3). So adding methods to a public, non-final class in an API is a backward-incompatible change. Given those constraints, what happens if you mix API and SPI in the same class (which is what JavaMail and most Java standards do)? Well, you can't add methods compatibly because that could break subclasses. And you can't remove them compatibly, because clients could be calling them. You're stuck. You can't compatibly add or remove anything from the existing classes. As I've written elsewhere, it is the height of insanity that an application server vendor is supposed to implement interfaces and classes that its clients directly call — for exactly this reason. It would be much cleaner, and allow Java APIs to evolve much faster, if API and SPI were completely separated. But part of the appeal to vendors, for better or worse, to implement these specifications, is that they can extend them in custom ways that will tie developers who use those extensions to their particular implementation. This behavior not entirely about being evil and locking people in. There is a genuine case for innovation on top of a standard - that's how standards evolve, and some people will need functionality that the standard doesn't yet support. Enter the capability pattern. The capability pattern is very, very simple. It looks like this: public getCapability (Class type); That's it! It's incredibly simple! It has one caveat: Any call to getCapability() must be followed by a null-check. But this is much cleaner than either catching UnsupportedOperationExceptions, or if (foo.isAbleToDoX()) foo.doX() or if (foo instanceof DoerOfX) ((DoerOfX) foo).doX(). A null-check is nice and simple and clean by comparison. It's letting the Java type system work for you instead of getting into a wrestling match with it. Now, what can you do with it? Here's an example. In my previous blog I introduced an alternative design for how you could do something like SwingWorker. It contains a class called TaskStatus, which abstracts the task status data from the task-performing object itself. It is a simple interface with setters that allow a background thread to inform another object (presumably a UI) about the progress of a task. In light of what we just discussed, TaskStatus really ought to be a final class. So let's rewrite it a little, to look like this. We will use a mirror-class for the SPI. public final class TaskStatus { private final StatusImpl impl; TaskStatus (StatusImpl impl) { this.impl = impl; } public void setTitle (String title) { impl.setTitle (title); } public void setProgress (String msg, long progress, long min, long max) { //We could do argument sanity checks here and make life //simpler for anyone implementing StatusImpl impl.setProgress (msg, progress, min, max); } public void setProgress (String msg) { //...you get the idea //... } public abstract class StatusImpl { public abstract void setTitle (String title); public abstract void setProgress (String msg, long progress, long min, long max); public abstract void setProgress (String msg); //indeterminate mode public abstract void done(); public abstract void failed (Exception e); } So we have an API that handles basic status display. But people are going to invent new aspects to status display. We can't save the world and solve everybody's task-status problems before they even think of them - and we shouldn't try. We don't want to set things up so that it's up to us to implement everything the world will ever want. Luckily, it doesn't have to be that way. Since we've designed our API so that it can be compatibly added to, we let the rest of the world come up with things they need for displaying task status, and the ones that a lot of people need can be added to our API in the future. The capability pattern lets us do that. We add two methods to our API and SPI classes: public abstract class StatusImpl { //... public T getCapability (Class type); } public final class TaskStatus { //... public T getCapability (Class type) { return impl.getCapability (type); } } Let's put that to practical use. Someone might want to display how much time remains before the task is done. Our API doesn't handle that. Through the capability pattern, we can add that. We (or anyone implementing StatusImpl) can create the following interface: public interface StatusTime { public void setTimeRemaining (long milliseconds); } A task that wants to provide this information to the UI, if the UI supports it, simply does this: public T runInBackground (TaskStatus status) { StatusTime time = status.getCapability (StatusTime.class); for (...) { //do some slow work... if (time != null) { long remaining = //estimate the time remaining time.setTimeRemaining (remaining); } } } Even better, our Task API is, right now, not tied specifically to Swing or AWT - it could be used for anything that needs to follow the pattern of computing something on a background thread and then doing work on another one. Why not keep it un-tied to UI toolkits? All we have to do is make the code that actually handles the threading pluggable (I'll talk about how you do this simply using the Java classpath for dependency injection in my next blog). Then the result could be used with SWT or Thinlet as well, or even in a server-side application. Instead of a SwingWorker, we have an AnythingWorker! But we know we need a UI - and we know we are targetting Swing right now. How can we really keep this code completely un-tied from UI code and still have it be useful? The capability pattern comes to our rescue again - very very simply. An actual application using this UI simply fetches the default factory for StatusImpls (you need such a thing if you want to run multiple simultaneous background tasks and show status for each — my next blog will explain how this can be injected just by putting a JAR on the classpath) and does something like: Component statusUi = theFactory.getCapability (Component.class); if (statusUi != null) { statusBar.add (statusUi); } (or if we want to allow only one background task at a time, we can forget the factory and put the Component fetching code directly in our implementation of StatusImpl). If you are familiar with NetBeans Lookup API, the capability pattern is really a simplification of that (minus collection-based results and listening for changes). The point here is that the capability pattern lets you have an API that is composed completely of nice, future-proofed, evolvable, final classes, but the API is extensible even though it is final. The result is that the API can evolve faster, with fewer worries about breaking anybody's existing code. Which reduces the cycle time to improve existing libraries, and all our software evolves and improves faster, which is good for everyone. It also helps one to avoid trying to “save the world” — by allowing for extensibility, it is possible to create an API that is useful without needing to handle every possible thing anyone might ever want to do in that problem domain. Trying to save the world is what leads to scope-creep and never-finished projects. In this tutorial I discuss the don't try to save the world principle in a practical example. Does the mirror-class design seem a bit masochistic? I think it does point up a weakness in the scoping rules of the Java language. It would definitely be nicer to be able to, on the method level, make some methods visible to some kinds of clients, and other methods visible to other kinds of clients. But regardless of this, it's even more masochistic to end up “painted into a corner,”[1] and unable to fix bugs or add features without potentially breaking somebody's code. That's how you end up with ten-year-old unfixed bugs. [1]painted into a corner — An English idiom meaning to leave yourself with no options — you were painting the floor of a room in a pattern such that you end up standing in an unpainted corner of the room, and you can't leave the corner until the paint dries. From http://weblogs.java.net/blog/timboudreau/
August 29, 2008
by Tim Boudreau
· 20,302 Views
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Using a Hibernate Interceptor To Set Audit Trail Properties
In almost every application I've done, the database tables have some kind of audit trail fields. Sometimes this is a separate "audit log" table where all inserts, updates, deletes, and possibly even queries are logged. Other times there are the four typical audit trail fields in each table, for example you might have created_by, created_on, updated_by, and updated_on fields in each table. The goal in the latter case is to update those four fields with the appropriate information as to who created or updated a record and when they did it. Using a simple Hibernate Interceptor this can be accomplished with no changes to your application code (with several assumptions which I'll detail next). In other words, you won't need to and definitely should not be manually setting those audit properties littered around your application code. The basic assumptions I'll make for this simple audit interceptor are that: (1) model objects contain the four audit properties mentioned above, and (2) there is an easy way to obtain the current user's information from anywhere in the code. The first assumption is needed since you need some way to identify which properties constitute the audit trail properties. The second assumption is required because you need some way to obtain the credentials of the person making the change in order to set the createdBy or updatedBy property in your Hibernate Interceptor class. So, for reference purposes, assume you have a (Groovy) base entity like this with the four audit properties: @MappedSuperclassclass BaseEntity implements Serializable { String createdBy Date createdOn String updatedBy Date updatedOn} I'm using the Hibernate ImprovedNamingStrategy so that camel case names are translated to underscored names, e.g. "createdBy" becomes "created_by". Next assume there is a BlogEntry entity class that extends BaseEntity and inherits the audit trail properties: @Entityclass BlogEntry extends BaseEntity { @Id @GeneratedValue (strategy = GenerationType.IDENTITY) Long id @Version Long version String title @Column (name = "entry_text") String text @Temporal (TemporalType.TIMESTAMP) Date publishedOn} To implement the interceptor, we need to implement the aforementioned Interceptor interface. We could do this directly, but it is better to extend EmptyInterceptor so we need only implement the methods we actually care about. Without further ado, here's the implementation (excluding package declaration and imports): class AuditTrailInterceptor extends EmptyInterceptor { boolean onFlushDirty(Object entity, Serializable id, Object[] currentState, Object[] previousState, String[] propertyNames, Type[] types) { setValue(currentState, propertyNames, "updatedBy", UserUtils.getCurrentUsername()) setValue(currentState, propertyNames, "updatedOn", new Date()) true } boolean onSave(Object entity, Serializable id, Object[] state, String[] propertyNames, Type[] types) { setValue(state, propertyNames, "createdBy", UserUtils.getCurrentUsername()) setValue(state, propertyNames, "createdOn", new Date()) true } private void setValue(Object[] currentState, String[] propertyNames, String propertyToSet, Object value) { def index = propertyNames.toList().indexOf(propertyToSet) if (index >= 0) { currentState[index] = value } } So what did we do? First, we implemented the onFlushDirty and onSave methods because they are called for SQL updates and inserts, respectively. For example, when a new entity is first saved, the onSave method is called, at which point we want to set the createdBy and properties. And if an existing entity is updated, onFlushDirty is called and we set the updatedBy and updatedOn. Second, we are using the setValue helper method to do the real work. Specfically, the only way to modify the state in a Hibernate Interceptor (that I am aware of anyway) is to dig into the currentState array and change the appropriate value. In order to do that, you first need to trawl through the propertyNames array to find the index of the property you are trying to set. For example, if you are updating a blog entry you need to set the updatedBy and updatedOn properties within the currentState array. For a BlogEntry object, the currentState array might look like this before the update (the updated by and on propertes are both null in this case because the entity was created by Bob but has not been updated yet): { "Bob", 2008-08-27 10:57:19.0, null, null, 2008-08-27 10:57:19.0, "Lorem ipsum...", "My First Blog Entry", 0} You then need to look at the propertyNames array to provide context for what the above data represents: { "createdBy", "createdOn", "updatedBy", "updatedOn", "publishedOn", "text", "title", "version"} So in the above updatedBy is at index 2 and updatedOn is located at index 3. setValue() works by finding the index of the property it needs to set, e.g. "updatedBy," and if the property was found, it changes the value at that index in the currentState array. So for updatedBy at index 2, the following is the equivalent code if we had actually hardcoded the implementation to always expect the audit fields as the first four properties (which is obviously not a great idea): // Equivalent hard-coded code to change "updatedBy" in above example// Don't use in production!currentState[2] = UserUtils.getCurrentUsername() To actually make your interceptor do something, you need to enable it on the Hibernate Session. You can do this in one of several ways. If you are using plain Hibernate (i.e. not with Spring or another framework) you can set the interceptor globally on the SessionFactory, or you can enable it for each Session as in the following example code: // Configure interceptor globally (applies to all Sessions)sessionFactory = new AnnotationConfiguration() .configure() .setNamingStrategy(ImprovedNamingStrategy.INSTANCE) .setInterceptor(new AuditTrailInterceptor()) .buildSessionFactory()// Enable per SessionSession session = getSessionFactory().openSession(new AuditTrailInterceptor()) If you enable the interceptor globally, it must be thread-safe. If you are using Spring you can easily configure a global interceptor on your session factory bean: On the other hand, if you would rather enable the interceptor per session, you either need to use the openSession(Interceptor) method to open your sessions or alternatively implement your own version of CurrentSessionContext to use the getCurrentSession() method in order to set the interceptor. Using getCurrentSession() is preferable anyway since it allows several different classes (e.g. DAOs) to use the same session without needing to explicitly pass the Session object around to each object that needs it. At this point we're done. But, if you know about the Hibernate eventing system (e.g. you can listen for events such as inserts and updates and define event listener classes to respond to those events), you might be wondering why I didn't use that mechanism rather than the Interceptor. The reason is that, to the best of my current knowledge, you cannot alter state of objects in event listeners. So for example you would not be able to change an entity's state in a PreInsertEventListener implementation class. If anyone knows this is incorrect or has implemented it, I'd love to hear about it. Until next time, happy auditing! Originally posted on Scott Leberknight's blog
August 27, 2008
by Scott Leberknight
· 103,648 Views · 2 Likes
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SelectMany: Probably The Most Powerful LINQ Operator
Hi there back again. Hope everyone is already exploiting the power of LINQ on a fairly regular basis. Okay, everyone knows by now how simple LINQ queries with a where and select (and orderby, and Take and Skip and Sum, etc) are translated from a query comprehension into an equivalent expression for further translation: from p in products where p.Price > 100 select p.Name becomes products.Where(p => p.Price > 100).Select(p => p.Name) All blue syntax highlighting has gone; the compiler is happy with what remains and takes it from there in a left-to-right fashion (so, it depends on the signature of the found Where method whether or not we take the route of anonymous methods or, in case of an Expression<…> signature, the route of expression trees). But let’s make things slightly more complicated and abstract: from i in afrom j in bwhere i > jselect i + j It’s more complicated because we have two from clauses; it’s more abstract because we’re using names with no intrinsic meaning. Let’s assume a and b are IEnumerable sequences in what follows. Actually what the above query means in abstract terms is: (a X b).Where((i, j) => i > j).Select((i, j) => i + j) where X is a hypothetical Cartesian product operator, i.e. given a = { 1, 4, 7 } and b = { 2, 5, 8 }, it produces { (1,2), (1,5), (1,8), (4,2), (4,5), (4,8), (7,2), (7,5), (7,8) }, or all the possible pairs with elements from the first sequence combined with an element from the second sequence. For the record, the generalized from of such a pair – having any number of elements – would be a tuple. If we would have this capability, Where would get a sequence of such tuples, and it could identify a tuple in its lambda expression as a set of parameters (i, j). Similarly, Select would do the same and everyone would be happy. You can verify the result would be { 6, 9, 12 }. Back to reality now: we don’t have the direct equivalent of Cartesian product in a form that produces tuples. In addition to this, the Where operator in LINQ has a signature like this: IEnumerable Where(this IEnumerable source, Func predicate) where the predicate parameter is a function of one – and only one – argument. The lambda (i, j) => i > j isn’t compatible with this since it has two arguments. A similar remark holds for Select. So, how can we get around this restriction? SelectMany is the answer. Demystifying SelectMany What’s the magic SelectMany all about? Where could we better start our investigation than by looking at one of its signatures? IEnumerable SelectMany( this IEnumerable source, Func> collectionSelector, Func resultSelector) Wow, might be a little overwhelming at first. What does it do? Given a sequence of elements (called source) of type TSource, it asks every such element (using collectionSelector) for a sequence of – in some way related – elements of type TCollection. Next, it combines the currently selected TSource element with all of the TCollection elements in the returned sequence and feed it in to resultSelector to produce a TResult that’s returned. Still not clear? The implementation says it all and is barely three lines: foreach (TSource item in source) foreach (TCollection subItem in collectionSelector(item)) yield return resultSelector(item, subItem); This already gives us a tremendous amount of power. Here’s a sample: products.SelectMany(p => p.Categories, (p, c) => p.Name + “ has category “ + c.Name) How can we use this construct to translate multiple from clauses you might wonder? Well, there’s no reason the function passed in as the first argument (really the second after rewriting the extension method, i.e. the collectionSelector) uses the TSource argument to determine the IEnumerable result. For example: products.SelectMany(p => new int[] { 1, 2, 3 }, (p, i) => p.Name + “ with irrelevant number “ + i) will produce a sequence of strings like “Chai with irrelevant number 1”, “Chai with irrelevant number 2”, “Chai with irrelevant number 3”, and similar for all subsequent products. This sample doesn’t make sense but it illustrates that SelectMany can be used to form a Cartesian product-like sequence. Let’s focus on our initial sample: var a = new [] { 1, 4, 7 };var b = new [] { 2, 5, 8 };from i in afrom j in bselect i + j; I’ve dropped the where clause for now to simplify things a bit. With our knowledge of SelectMany above we can now translate the LINQ query into: a.SelectMany(i => b, …) This means: for every i in a, “extract” the sequence b and feed it into …. What’s the …’s signature? Something from a (i.e. an int) and something from the result of the collectionSelector (i.e. an int from b), is mapped onto some result. Well, in this case we can combine those two values by summing them, therefore translating the select clause in one go: a.SelectMany(i => b, (i, j) => i + j) What happens when we introduce a seemingly innocent where clause in between? from i in afrom j in bwhere i > jselect i + j; The first two lines again look like: a.SelectMany(i => b, …) However, going forward from there we’ll need to be able to reference i (from a) and j (from b) in both the where and select clause that follow but both the corresponding Where and Select methods only take in “single values”: IEnumerable Where(this IEnumerable source, Func predicate);IEnumerable Select(this IEnumerable source, Func projection); So what can we do to combine the value i and j into one single object? Right, use an anonymous type: a.SelectMany(i => b, (i, j) => new { i = i, j = j }) This produces a sequence of objects that have two public properties “i” and “j” (since it’s anonymous we don’t care much about casing, and indeed the type never bubbles up to the surface in the query above, because of what follows: a.SelectMany(i => b, (i, j) => new { i = i, j = j }).Where(anon => anon.i > anon.j).Select(anon => anon.i + anon.j) In other words, all references to i and j in the where and select clauses in the original query expression have been replaced by references to the corresponding properties in the anonymous type spawned by SelectMany. Lost in translation This whole translation of this little query above puts quite some work on the shoulder of the compiler (assuming a and b are IEnumerable and nothing more, i.e. no IQueryable): The lambda expression i => b captures variable b, hence a closure is needed. That same lambda expression acts as a parameter to SelectMany, so an anonymous method will be created inside the closure class. For new { i = i, j = j } an anonymous type needs to be generated. SelectMany’s second argument, Where’s first argument and Select’s first argument are all lambda expressions that generate anonymous methods as well. As a little hot summer evening exercise, I wrote all of this plumbing manually to show how much code would be needed in C# 2.0 minus closures and anonymous methods (more or less C# 1.0 plus generics). Here’s where we start from: class Q{ IEnumerable GetData(IEnumerable a, IEnumerable b) { return from i in a from j in b where i > j select i + j; } This translates into: class Q{ IEnumerable GetData(IEnumerable a, IEnumerable b) { Closure0 __closure = new Closure0(); __closure.b = b; return Enumerable.Select( Enumerable.Where( Enumerable.SelectMany( a, new Func>(__closure.__selectMany1), new Func>(__selectMany2) ), new Func, bool>(__where1) ), new Func, int>(__select1) ); } private class Closure0 { public IEnumerable b; public IEnumerable __selectMany1(int i) { return b; } } private static Anon0 __selectMany2(int i, int j) { return new Anon0(i, j); } private static bool __where1(Anon0 anon) { return anon.i > anon.j; } private static int __select1(Anon0 anon) { return anon.i + anon.j; }private class Anon0 // generics allow reuse of type for all anonymous types with 2 properties, hence the use of EqualityComparers in the implementation{ private readonly TI _i; private readonly TJ _j; public Anon0(TI i, TJ t2) { _i = i; _j = j; } public TI i { get { return _i; } } public TJ j { get { return _j; } } public override bool Equals(object o) { Anon0 anonO = o as Anon0; return anonO != null && EqualityComparer.Default.Equals(_i, anonO._i) && EqualityComparer.Default.Equals(_j, anonO._j); } public override int GetHashCode() { return EqualityComparer.Default.GetHashCode(_i) ^ EqualityComparer.Default.GetHashCode(_j); // lame quick-and-dirty hash code } public override string ToString() { return “( i = “ + i + “, j = ” + j + “ }”; // lame without StringBuilder } Just a little thought… Would you like to go through this burden to write a query? “Syntactical sugar” might have some bad connotation to some, but it can be oh so sweet baby! Bind in disguise Fans of “monads”, a term from category theory that has yielded great results in the domain of functional programming as a way to make side-effects explicit through the type system (e.g. the IO monad in Haskell), will recognize SelectMany’s (limited) signature to match the one of bind: IEnumerable SelectMany( this IEnumerable source, Func> collectionSelector) corresponds to: (>>=) :: M x –> (x –> M y) –> M y Which is Haskell’s bind operator. For those familiar with Haskell, the “do” notation – that allows the visual illusion of embedding semi-colon curly brace style of “imperative programming” in Haskell code – is syntactical sugar on top of this operator, defined (recursively) as follows: do { e } = edo { e; s } = e >>= \_ –> do { s }do { x <- e; s } = e >>= (\x –> do { s })do { let x = e; s } = let x = e in do { s } Rename to SelectMany, replace M x by IEnumerable and assume a non-curried form and you end up with: SelectMany :: (IEnumerable, x –> IEnumerable) –> IEnumerable Identifying x with TSource, y with TResult and turning a –> b into Func yields: SelectMany :: Func, Func>, IEnumerable> and you got identically the same signature as the SelectMany we started from. For the curious, M in the original form acts as a type constructor, something the CLR doesn’t support since it lacks higher-order kinded polymorphism; it’s yet another abstraction one level higher than generics that math freaks love to use in category theory. The idea is that if you can prove laws to be true in some “structure” and you can map that structure onto an another “target structure” by means of some mapping function, corresponding laws will hold true in the “target structure” as well. For instance: ({ even, odd }, +) and ({ pos, neg }, *) can be mapped onto each other pairwise and recursively, making it possible to map laws from the first one to the second one, e.g. even + odd –> oddpos * neg –> neg This is a largely simplified sample of course, I’d recommend everyone who’s interested to get a decent book on category theory to get into the gory details. A word of caution Now that you know how SelectMany works, can you think of a possible implication when selecting from multiple sources? Let me give you a tip: nested foreachs. This is an uninteresting sentence that acts as a placeholder in the time space while you’re thinking about the question. Got it? Indeed, order matters. Writing the following two lines of code produces a different query with a radically different execution pattern: from i in a from j in b …from j in b from i in a … Those roughly correspond to: foreach (var i in a) foreach (var j in b) … versus foreach (var j in b) foreach (var i in a) … But isn’t this much ado about nothing? No, not really. What if iterating over b is much more costly than iterating over a? For example, from p in localCollectionOfProductsfrom c in sqlTableOfCategories… This means that for every product iterated locally, we’ll reach out to the database to iterate over the (retrieved) categories. If both were local, there wouldn’t be a problem of course; if both were remote, the (e.g.) SQL translation would take care of it to keep the heavy work on the remote machine. If you want to see the difference yourself, you can use the following simulation: using System; using System.Collections.Generic; using System.Diagnostics; using System.Linq; using System.Threading; class Q { static void Main() { Stopwatch sw = new Stopwatch(); Console.WriteLine("Slow first"); sw.Start(); foreach (var s in Perf(Slow(), Fast())) Console.WriteLine(s); sw.Stop(); Console.WriteLine(sw.Elapsed); sw.Reset(); Console.WriteLine("Fast first"); sw.Start(); foreach (var s in Perf(Fast(), Slow())) Console.WriteLine(s); sw.Stop(); Console.WriteLine(sw.Elapsed); } static IEnumerable Perf(IEnumerable a, IEnumerable b) { return from i in a from j in b select i + "," + j; } static IEnumerable Slow() { Console.Write("Connecting... "); Thread.Sleep(2000); // mimic query overhead (e.g. remote server) Console.WriteLine("Done!"); yield return 1; yield return 2; yield return 3; } static IEnumerable Fast() { return new [] { 'a', 'b', 'c' }; } } This produces: [img_assist|nid=4625|title=|desc=|link=none|align=none|width=259|height=374] Obviously, it might be the case you’re constructing a query that can only execute by reaching out to the server multiple times, e.g. because order of the result matters (see screenshot above for an illustration of the ordering influence – but some local sorting operation might help too in order to satisfy such a requirement) or because the second query source depends on the first one (from i in a from j in b(i) …). There’s no silver bullet for a solution but knowing what happens underneath the covers certainly provides the necessary insights to come up with scenario-specific solutions. Happy binding!
August 20, 2008
by Bart De Smet
· 135,406 Views · 1 Like
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ASP.NET - Query Strings - Client Side State Management
Continuing the tour in the ASP.NET client side state management our current stop is the query string technique. You can read my previous posts in the state management subject in the following links: Client side state management introduction ViewState technique Hidden fields technique What are Query Strings? Query strings are data that is appended to the end of a page URL. They are commonly used to hold data like page numbers or search terms or other data that isn't confidential. Unlike ViewState and hidden fields, the user can see the values which the query string holds without using special operations like View Source. An example of a query string can look like http://www.srl.co.il?a=1;b=2. Query strings are included in bookmarks and in URLs that you pass in an e-mail. They are the only way to save a page state when copying and pasting a URL. The Query String Structure As written earlier, query strings are appended to the end of a URL. First a question mark is appended to the URL's end and then every parameter that we want to hold in the query string. The parameters declare the parameter name followed by = symbol which followed by the data to hold. Every parameter is separated with the ampersand symbol. You should always use the HttpUtility.UrlEncode method on the data itself before appending it. Query String Limitations You can use query string technique when passing from one page to another but that is all. If the first page need to pass non secure data to the other page it can build a URL with a query string and then redirect. You should always keep in mind that a query string isn't secure and therefore always validate the data you received. There are a few browser limitation when using query strings. For example, there are browsers that impose a length limitation on the query string. Another limitation is that query strings are passed only in HTTP GET command. How To Use Query Strings When you need to use a query string data you do it in the following way: string queryStringData = Request.QueryString["data"]; In the example I extract a data query string. The structure of the URL can look like url?data=somthing. After getting to data parameter value you should validate it in order not to enable security breaches. The next example is a code to help inject a query string into a URL: public string BuildQueryString(string url, NameValueCollection parameters){ StringBuilder sb = new StringBuilder(url); sb.Append("?"); IEnumerator enumerator = parameters.GetEnumerator(); while (enumerator.MoveNext()) { // get the current query parameter string key = enumerator.Current.ToString(); // insert the parameter into the url sb.Append(string.Format("{0}={1}&", key, HttpUtility.UrlEncode(parameters[key]))); } // remove the last ampersand sb.Remove(sb.Length - 1, 1); return sb.ToString(); } Summary To sum up the post, query string is another ASP.NET client side state management technique. It is most helpful for page number state or search terms. The technique isn't secured so avoid using it with confidential data. In the next post in this series I'll explain the how to use cookies.
July 20, 2008
by Gil Fink
· 77,787 Views
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GWT Basic Project Structure And Components
[img_assist|nid=3421|title=|desc=|link=url|url=http://www.manning.com/affiliate/idevaffiliate.php?id|align=left|width=208|height=388]The core of every GWT project is the project layout and the basic components required—host pages, entry points, and modules. To begin a GWT project, you need to create the default layout and generate the initial files. The easiest way to do this is to use the provided ApplicationCreator tool. Generating a project ApplicationCreator is provided by GWT to create the default starting points and layout for a GWT project. ApplicationCreator, like the GWT shell, supports several command-line parameters, which are listed in table 1. ApplicationCreator [-eclipse projectName] [-out dir] [-overwrite] [-ignore] className Table 1 ApplicationCreator command-line parameters Parameter Description -eclipse Creates a debug launch configuration for the named eclipse project -out The directory to which output files will be written (defaults to the current directory) -overwrite Overwrites any existing files -ignore Ignores any existing files; does not overwrite className The fully qualified name of the application class to be created To stub out an example calculator project, we’ll use ApplicationCreator based on a relative GWT_HOME path, and a className of com.manning.gwtip.calculator.client.Calculator, as follows: mkdir [PROJECT_HOME] cd [PROJECT_HOME] [GWT_HOME]/applicationCreator com.manning.gwtip.calculator.client.Calculator GWT_HOME It is recommended that you establish GWT_HOME as an environment variable referring to the filesystem location where you have unpacked GWT. Additionally, you may want to add GWT_HOME to your PATH for further convenience. We use GWT_HOME when referencing the location where GWT is installed and PROJECT_HOME to refer to the location of the current project. PATH SEPARATORS For convenience, when referring to filesystem paths, we'll use forward slashes, which work for two-thirds of supported GWT platforms. If you are using Windows, please adjust the path separators to use backward slashes. Running ApplicationCreator as described creates the default src directory structure and the starting-point GWT file resources. The standard directory structure Even though it's quite simple, the GWT layout is very important because the toolkit can operate in keeping with a Convention over Configuration design approach. As we’ll see, several parts of the GWT compilation process make assumptions about the default layout. Because of this, not everything has to be explicitly defined in every instance (which cuts down on the amount of configuration required). Taking a look at the output of the ApplicationCreator script execution, you will see a specific structure and related contents, as shown in listing 1. This represents the default configuration for a GWT project. Listing 1 ApplicationCreator output, showing the default GWT project structure: src src/com src/com/manning src/com/manning/gwtip src/com/manning/gwtip/calculator src/com/manning/gwtip/calculator/Calculator.gwt.xml src/com/manning/gwtip/calculator/client src/com/manning/gwtip/calculator/client/Calculator.java src/com/manning/gwtip/calculator/public src/com/manning/gwtip/calculator/public/Calculator.html Calculator-shell.sh Calculator-compile.sh The package name, com.manning.gwtip.calculator, is represented in the structure as a series of subdirectories in the src tree. This is the standard Java convention, and there are notably separate client and public subdirectories within. The client directory is intended for resources that will be compiled into JavaScript . Client items are translatable, or serializable, and will ultimately be downloaded to a client browser—these are Java resources in the source. The client package is known in GWT terminology as the source path. The public directory denotes files that will also be distributed to the client, but that do not require compilation and translation to JavaScript . This typically includes CSS, images, static HTML, and any other such assets that should not be translated, including existing JavaScript. The public package is known as the public path. Note that our client-side example does not use any server resources, but GWT does include the concept of a server path/package for server-side resources. Figure 1 illustrates this default GWT project layout. [img_assist|nid=4037|title=|desc=|link=none|align=none|width=293|height=284] ApplicationCreator generates the structure and a required set of minimal files for a GWT project. The generated files include the XML configuration module definition, the entry point Java class, and the HTML host page. These are some of the basic GWT project concepts. Along with the module definition, entry point, and host page, some shortcut scripts have also been created for use with the GWTShell and GWTCompiler tools. These scripts run the shell and compiler for the project. Table 2 lists all of the files created by ApplicationCreator: the basic resources and shortcut scripts needed for a GWT project. Table 2 ApplicationCreator-generated initial project files that serve as a starting point for GWT applications File Name Purpose GWT module file ProjectName.gwt.xml Defines the project configuration Entry point class ProjectName.java Starting class invoked by the module Host page ProjectName.html Initial HTML page that loads the module GWTShell shortcut invoker script ProjectName-shell.sh Invokes GWTShell for the project GWTCompiler shortcut invoker script ProjectName-compile.sh Invokes GWTCompiler for the project The starting points ApplicationCreator provides essentially wire up all the moving parts for you and stub out your project. You take it from there and modify these generated files to begin building a GWT application. If the toolkit did not provide these files via ApplicationCreator, getting a project started, at least initially, would be much more time consuming and confusing. Once you are experienced in the GWT ways, you may wind up using other tools to kick off a project: an IDE plugin, a Maven “archetype,” or your own scripts. ApplicationCreator, though, is the helpful default. The contents and structure that ApplicationCreator provides are themselves a working GWT “hello world” example. You get “hello world” for free, out of the box. "Hello world", however, is not that interesting. The connection of all the moving parts is what is really important; how a host page includes a module, how a module describes project resources, and how an entry point invokes project code. These concepts are applicable to all levels of GWT projects—the basic ones and beyond. Understanding these parts is key to gaining an overall understanding of GWT. Next, we’ll take a closer look at each of these concepts, beginning with the host page. Host pages A host page is the initial HTML page that invokes a GWT application. A host page contains a script tag that references a special GWT JavaScript file, Module.nocache.js. This JavaScript file, which the toolkit provides when you compile your project, kicks off the GWT application loading process. Along with the script reference that loads the project resources, you can also specify several GWT-related tags in the host page. These tag options are not present in the default host page created by ApplicationCreator, but it’s still important to be aware of them. The GWT tags that are supported in a host page are listed in table 3, as a reference. Table 3 GWT tags supported in host pages Meta tag Syntax Purpose gwt:module (Legacy, pre GWT 1.4.) Specifies the module to be loaded gwt:property Statically defines a deferred binding client property gwt:onPropertyErrorFn Specifies the name of a function to call if a client property is set to an invalid value (meaning that no matching compilation will be found) gwt:onLoadErrorFn Specifies the name of a function to call if an exception happens during bootstrapping or if a module throws an exception out of onModuleLoad(); the function should take a message parameter Thus, a host page includes a script reference that gets the GWT process started and refers to all the required project resources. The required resources for a project are assembled by the GWT compilation process, and are based on the module configuration. Modules GWT applications inhabit a challenging environment. This is partly because of the scope of responsibility GWT has elected to take on and partly because of the Internet landscape. Being a rich Internet-based platform and using only the basic built-in browser support for HTML, CSS, and JavaScript makes GWT quite elegant and impressive, but this combination is tough to achieve. Browsers that are “guided” by standards, but that don’t always stick to them, add to the pressure. Couple that environment with an approach that aims to bring static types, code standards, profiling and debugging, inheritance, and reuse to the web tier, and you have a tall order. To help with this large task, GWT uses modules as configuration and execution units that handle discreet areas of responsibility. Modules enable the GWT compiler to optimize the Java code it gets fed, create variants for all possible situations from a single code base, and make inheritance and property support possible. One of the most important resources generated by the ApplicationCreator is the Module.gwt.xml module descriptor for your project. This file exists in the top-level directory of your project’s package and provides a means to define resource locations and structure. In a default generated module file, there are only two elements: and . An element simply includes the configuration for another named GWT module in the current definition, and defines a class that kicks things off and moves from configuration to code. Table 4 provides an overview of the most common GWT module descriptor elements. Table 4 A summary of the most common elements supported by the GWT module descriptor Module element Description Identifies additional GWT modules that should be inherited into the current module Specifies which EntryPoint class should be invoked when starting a GWT project Identifies where the source code that should be translated into JavaScript by the GWT compiler is located Identifies where assets that are not translatable source code, such as images and CSS files, are located
July 14, 2008
by Schalk Neethling
· 32,554 Views
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Glimmer - Using Ruby to Build SWT User Interfaces
Glimmer is a JRuby DSL that enables easy and efficient authoring of user-interfaces using the robust platform-independent Eclipse SWT library. Glimmer comes with built-in data-binding support to greatly facilitate synchronizing UI with domain models. The goal of the Glimmer project is to create a JRuby framework on top of Eclipse technologies to enable easy and efficient authoring of desktop applications by taking advantage of the Ruby language. With Glimmer having just become an Eclipse project, it's a good time to find out more. Philosophy Glimmer's design philosophy can be summarized as follows: Concise and DRY Asks for minimum info needed to accomplish task Convention over configuration As predictable as possible for existing SWT developers Conventions Since Glimmer relies on Ruby, it is different in its syntax and conventions from what typical Java SWT developers would expect: Method parentheses are optional Java-vs-Ruby example: show() => show Method names follow underscored syntax Java-vs-Ruby example: addListener => add_listener Classes are constructed using the new(...) method (as opposed to new keyword): Java-vs-Ruby example: new GridLayout() => GridLayout.new Download Please download Glimmer from RubyForge: https://rubyforge.org/projects/glimmer/ NOTE: Glimmer is moving to Eclipse.org. Please visit http://andymaleh.blogspot.com for up-to-date news on the move and the upcoming download location on the Eclipse website. Installation Extract the Glimmer zip file and follow the installation instructions in the README file. NOTE: While Glimmer is platform-independent, its functionality has only been verified on Windows. Feedback from Mac and Linux users would be greatly appreciated. Tutorial Let's start with a very simple Glimmer Hello World example: shell { label { text “Hello World!” } } This will render the following: [img_assist|nid=3586|title=|desc=|link=none|align=undefined|width=126|height=48] In the SWT library a shell represents an application's window. It acts as a frame around the application widgets, which are visual components that display information and/or enable interaction with the user. One widget that was used in the Hello World example is the label widget, which simply displays text on the screen. Shell is also considered a widget, except it is a special kind of widget called composite. The shell keyword, which declared the application's shell, was followed by a block of code encased in curly braces. This block contains the shell content declarations, such as the Hello World label. The label keyword was also followed by a block of code. However, this block contained a property declaration for the label, stating that the text value is “Hello World!” So, to declare a widget, simply state its name followed by a block of code. The block may specify property values or nest other widget declarations for composite widgets. Now, let's move on to a more advanced example: shell { text "User Profile" composite { layout GridLayout.new(2, false) group { text "Name" layout GridLayout.new(2, false) layout_data GridData.new(fill, fill, true, true) label {text "First"}; text {text "Bullet"} label {text "Last"}; text {text "Tooth"} } group { layout_data GridData.new(fill, fill, true, true) text "Gender" button(radio) {text "Male"; selection true} button(radio) {text "Female"} } group { layout_data GridData.new(fill, fill, true, true) text "Role" button(check) {text "Student"; selection true} button(check) {text "Employee"; selection true} } group { text "Experience" layout RowLayout.new layout_data GridData.new(fill, fill, true, true) spinner {selection 5}; label {text "years"} } button { text "save" layout_data GridData.new(right, center, true, true) } button { text "close" layout_data GridData.new(left, center, true, true) } } }.open This will render the following: [img_assist|nid=3587|title=|desc=|link=none|align=undefined|width=195|height=209] The example contains a variation of widgets from SWT: Composite: a widget that can simply contain other widgets and manage their layout Group: Similar to Composite except that it usually has a border and a title. Text Field: Enables user to type in text information Checkbox Button: Allows user to make a selection from different options Radio Button: Allows user to make a selection between options that are mutually exclusive Spinner: Enables user to type in numeric information or spinning a number selection by mouse Push Button: Enables user to initiate actions Given that Glimmer relies on the Eclipse SWT library, developers may consult the SWT API as a reference on all the widgets, including their properties and layout options: http://help.eclipse.org/stable/nftopic/org.eclipse.platform.doc.isv/reference/api/index.html Keep in mind the following rules when reading the SWT API: Any widget available in SWT, including custom widgets written by developers, can be accessed from Glimmer by downcasing/underscoring the widget's name (e.g. Composite -> composite, LabledText -> labeled_text) Properties available on SWT widgets are specified by listing them followed by their values, each on a line or separated by semicolons within the widget's block (e.g. label {text "Username:"; font some_font}) Property names are also downcased/underscored in Glimmer. SWT widgets must have a style value specified, which is a constant available on the “SWT” class. Glimmer generally hides that by relying on smart defaults. Here is a listing of the defaults configured in Glimmer: text: SWT::BORDER table: SWT::BORDER spinner: SWT::BORDER button: SWT::PUSH Nonetheless, to customize a widget, a style value may be optionally specified within parentheses after the widget name. For an example, “button(SWT::RADIO)” renders a radio button and “button(SWT::CHECK)” renders a checkbox button. Glimmer's syntax also has syntactic sugar for specifying the style. Simply state the name of the style in the standard Ruby downcased/underscored format without the “SWT::” prefix. For example, button(SWT::RADIO) becomes button(radio). SWT composite widgets, such as shell, composite, and group can have a layout manager that lays out child widgets according to a certain pattern without the need to specify the (x, y) position of each child widget explicitly. Layout managers come in many flavors, such as GridLayout, offering a grid-like layout; FillLayout, allowing child widgets to fill the whole available area; and RowLayout, rendering child widgets one after the other in a row by default. Glimmer is configured with smart defaults for layout managers too: shell: FillLayout composite: GridLayout with one column group: GridLayout with one column GridLayout is a particularly useful SWT layout, so I will go over it in a little more detail here. GridLayout allows you to lay widgets out in a grid similar to HTML tables. To instantiate a custom GridLayout, you must specify the number of columns and whether they are of equal width or not. Here is a block of code demonstrating a group box having a GridLayout with 2 columns of unequal width: group { layout GridLayout.new(2, false) } Now, suppose we add four elements to that group box: group { layout GridLayout.new(2, false) label {text "First"}; text {text "Bullet"} label {text "Last"}; text {text "Tooth"} } The specified GridLayout will lay out the child widgets in the grid from left to right and top to bottom: The label with the text “First” will go into the 1st column of the 1st row. The text box with the text “Bullet” will go into the 2nd column of the 1st row. The label with the text “Last” will go into the 1st column of the 2nd row. The text box with the text “Tooth” will go into the 2nd column of the 2nd row. The group was actually a part of the advanced example illustrated earlier. It was given a title (by specifying the text attribute,) and the widget declarations were written in a way that maps visually to how they appear on the screen. Notice how text box declarations are on the same line as the label declarations since both the label and text box go under the same row, which helps improve code readability and maintainability: group { text "Name" layout GridLayout.new(2, false) layout_data GridData.new(fill, fill, true, true) label {text "First"}; text {text "Bullet"} label {text "Last"}; text {text "Tooth"} } That renders the following: [img_assist|nid=3588|title=|desc=|link=none|align=undefined|width=89|height=73] Layout of specific widgets may be further customized by specifying layout data. For GridLayout, layout data is specified through GridData objects. For example, we may decide to have the text boxes in the previous example have a greater width: group { layout GridLayout.new(2, false) label {text "First"}; text { text "Bullet" layout_data GridData.new(100, default) } label {text "Last"}; text { text "Tooth" layout_data GridData.new(100, default) } } This renders the following: [img_assist|nid=3589|title=|desc=|link=none|align=undefined|width=125|height=73] The used GridData constructor takes two parameters: width hint and height hint. The width was set to 100 pixels for both text boxes. The height was kept at the default value (SWT::DEFAULT) For more details about GridLayout, GridData, and other layout managers, please refer to the SWT API documentation. So far we have covered how to construct user-interfaces that can display data and gather input from the user. Next, we will demonstrate how to perform work based on actions taken by the user. SWT widgets can be monitored for certain user-interface events, such as mouse clicks, focus gain and loss, and key presses. With the original SWT API, events can be monitored by adding listeners to widgets. For example, to monitor the push of a button, you would add a SelectionListener that does some work in its widgetSelected event method. With Glimmer, events can be monitored by declaring their name (following Ruby conventions) prefixed by “on” Here is an example of how to monitor button selection: import org.eclipse.swt.widgets.MessageBox @shell1 = shell { composite { button { text 'Save' on_widget_selected { message_box = MessageBox.new(@shell1.widget, SWT::NULL) message_box.text = 'Information' message_box.message = 'Saved!' message_box.open } } } } @shell1.open This renders the following: [img_assist|nid=3590|title=|desc=|link=none|align=undefined|width=170|height=145] On click of the button, a message box is opened to let the user know that the information entered is saved. MessageBox is a class from SWT that represents message dialogs. It was imported using the JRuby import method. Its constructor takes a parent and style. To obtain the parent, we assigned the shell object to a Ruby class variable @shell1. Since Glimmer wraps all SWT constructed objects with Glimmer decorators ( e.g. Shell is wrapped with RShell,) to obtain the SWT Shell class and pass it as the parent to the MessageBox constructor, the widget method was called (e.g. @shell1.widget.) In the original SWT API, MessageBox has setter methods to set its text and message attributes. However in JRuby, the developer has the option to set them following the Ruby attribute conventions (e.g. message_box.text = 'value') because JRuby automatically enhances all Java objects with methods that follow the Ruby convention. Another example that benefits from event monitoring is field validation on loss of focus. For example, let's say we are validating the ZIP code on an address form, and we would like to display an error message if its value does not have a valid ZIP code format (e.g. 12345 or 12345-1234,) here is how we would do it with Glimmer (please add the following code before the button in the previous example): import org.eclipse.swt.widgets.MessageBox @shell1 = shell { composite { label { text "ZIP Code" } text { on_focus_lost { |focus_event| zip_code = focus_event.widget.text unless zip_code =~ /^\d{5}([-]\d{4})?$/ message_box = MessageBox.new(@shell1.widget, SWT::NULL) message_box.text = 'Validation Error' message_box.message = 'Format must match ##### or #####-####' message_box.open focus_event.widget.set_focus end } } button { text 'Save' on_widget_selected { message_box = MessageBox.new(@shell1.widget, SWT::NULL) message_box.message = 'Saved!' message_box.open } } } } @shell1.open Here is what it produces: [img_assist|nid=3591|title=|desc=|link=none|align=undefined|width=346|height=151] Notice how the on_focus_lost block has a FocusEvent object as a parameter. This parameter may be specified optionally whenever some information is needed from the event object. Again, this maps to the focusLost method on the FocusListener class in the original SWT API, which also takes a FocusEvent object as a parameter. While widgets in the original SWT API have a setFocus event to grab the user interface focus, in JRuby set_focus may be used instead following the Ruby naming conventions. Now, in order to cleanly separate event-driven behavior from user-interface code, we can rely on Glimmer's data-binding support. Stay tuned for the next tutorial, which will cover data-binding and how to achieve clean code separation with the Model-View-Presenter pattern. References: Glimmer Eclipse Technology Project Proposal: http://www.eclipse.org/proposals/glimmer/ Glimmer Newsgroup: http://www.eclipse.org/newsportal/thread.php?group=eclipse.technology.glimmer Glimmer at RubyForge: http://rubyforge.org/projects/glimmer/ Author Blog: http://andymaleh.blogspot.com Andy Maleh (andy at obtiva.com), Senior Consultant, Obtiva Corp.
June 19, 2008
by Andy Maleh
· 60,716 Views
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Running the Table With JMesa
Shhhh. I’ll tell you a secret. I don’t like tables. I know. Shocking, isn't it? Don't get me wrong: I don't dislike tables per se. They're great for displaying tabular material. (For page organization, not so much.) But I so dislike the code needed to build a table within a JSP. It usually comes down to something like this: User IDNameEmail${row.userID}${row.name}${row.email} All that iterative logic simply looks incomprehensible to me. It's still better than scriptlets or custom tag libraries (both of which were, to be sure, phenomenal in their time), but it's an undigestible mass, and even if I do step through it line by line and understand what it does, I'm still left with just a table. Users accustomed to active, Javascript-assisted widgets don't respond to tables that just lie there. Many more lines of code will be needed to enable them to do useful things like paginating through long lists of items, sorting by column values, and the like. It'll be an unholy mix of HTML, JSP directives, JSP tags, EL, Javascript, Java, XML, properties files, and so forth. The whole thing seems so error-prone (note to self: more code + more languages = more "opportunities" for bugs). But recently I discovered an open-source Java library called JMesa that provides another way. I'm going to share with you some of the things I've found in JMesa, building up an HTML page containing a table from nothing to, well, considerably more than nothing. There's a good deal of code here, to give you a sense of the JMesa API; hopefully. you'll come away with some ideas about how you can use JMesa in your own projects. I won't bother with package declarations, imports, or code not relevant to the point at hand; the complete code is available for download in the form of an Eclipse project. Installation instructions will be found at the end of this article. Join me in exploring JMesa! Preparation A Page to Show Before we can get to JMesa, though, we'll need a few things: a page within which to display our table, for instance. In fact, we'll learn even more if we put this page in a context. I have recently fallen in like with Spring MVC and so will use that to build a simple site with a few pages. Just to be clear, while Spring dependency injection and utilities are woven into the code below, JMesa does not depend upon Spring. The pages are not fancy, and I am going to skip most of the setup. Everything is included in the download, of course. One thing I shouldn't skip is the controller for the search results page, the page within which we will build our table. We'll start with pretty much the simplest functionality we can: public class SimpleSearchController extends AbstractController { @Override protected ModelAndView handleRequestInternal(HttpServletRequest request, HttpServletResponse response) throws Exception { return new ModelAndView("simple-results", "results", "Here we will display search results"); } } For those not familiar with Spring MVC, the ModelAndView return value contains a string that will be resolved to a view (in this project, it is resolved to "/WEB-INF/jsp/simple-results.jsp"), and a key-value pair (the second and third constructor arguments) that can be accessed using EL on the JSP page: ${results} Finally, we use the Spring jmesa-servlet.xml configuration file to create and associate a URL with our controller: welcomeController simpleSearchController Clicking on the "Search" link in the menu now produces: [img_assist|nid=3678|title=Figure 1.|desc=A simple page for our table|link=none|align=left|width=757|height=240] All right, not much. But it's the page we need. Something to Display Another thing we need before we can build a table is something to show in it. This "domain" object should be pretty easy to display: public class HelloWorld implements Comparable { private int pk; private String hello = "Hello"; private String world = "world"; private String from = "from"; private String firstName; private String lastName; private String format = "{0}, {1}! {2} {3} {4}"; // ... accessors and mutators public String toString() { return MessageFormat.format(getFormat(), hello, world, from, getFirstName(), getLastName()); } // ... implementations of equals, hashCode, and compareTo } Persistence Service Of course, we need instances of this domain object. Normally, we'd get them from a persistence service; for now, we'll just create them in memory: public class HelloWorldService { private int nextId; private Set helloWorlds = new TreeSet(); public HelloWorldService() { nextId = 1; helloWorlds.add(newInstance("Albert", "Einstein")); helloWorlds.add(newInstance("Grazia", "Deledda")); helloWorlds.add(newInstance("Francis", "Crick")); helloWorlds.add(newInstance("Linus", "Pauling")); helloWorlds.add(newInstance("Theodore", "Roosevelt")); helloWorlds.add(newInstance("Hideki", "Yukawa")); helloWorlds.add(newInstance("Harold", "Urey")); helloWorlds.add(newInstance("Barbara", "McClintock")); helloWorlds.add(newInstance("Hermann", "Hesse")); helloWorlds.add(newInstance("Mikhail", "Gorbachev")); helloWorlds.add(newInstance("Amartya", "Sen")); helloWorlds.add(newInstance("Albert", "Gore")); helloWorlds.add(newInstance("Amnesty", "International")); helloWorlds.add(newInstance("Daniel", "Bovet")); helloWorlds.add(newInstance("William", "Faulkner")); helloWorlds.add(newInstance("Otto", "Diels")); helloWorlds.add(newInstance("Marie", "Curie")); } public Set findAll() { return helloWorlds; } private HelloWorld newInstance(String firstName, String lastName) { HelloWorld hw = new HelloWorld(); hw.setPk(nextId++); hw.setFirstName(firstName); hw.setLastName(lastName); return hw; } } That's that. Now we're ready to focus on JMesa. JMesa Let's start with something extremely simple. On the very first page of the JMesa web site we find four lines of code that we can appropriate and refashion for a Spring controller: public class BasicJMesaSearchController extends AbstractController { private HelloWorldService helloWorldService; public void setHelloWorldService(HelloWorldService helloWorldService) { this.helloWorldService = helloWorldService; } @Override protected ModelAndView handleRequestInternal(HttpServletRequest request, HttpServletResponse response) throws Exception { Set results = helloWorldService.findAll(); TableFacade tableFacade = new TableFacadeImpl("results",request); tableFacade.setItems(results); tableFacade.setColumnProperties("pk", "firstName", "lastName", "format"); return new ModelAndView("results", "results", tableFacade.render()); } } We let Spring inject the HelloWorldService, which we use to retrieve a set of items to display. Then we create and configure the JMesa TableFacade class. This class takes an HTTP request in its constructor: TableFacade is going to send itself messages passed as parameters in the request (more on this in a moment). We supply it with the set of items and with which JavaBean property of those items we want displayed in each column. We'll also need a bit of new code in the search results page (in the project, this is actually a different search results page, as you, oh sharp-eyed reader, have already noticed): ${results} And we'll need to create and point to the new controller in jmesa-servlet.xml: ... basicSearchController Redeploy, and the results look like magic. How did we get them? [img_assist|nid=3679|title=Figure 2.|desc=Using JMesa "out of the box"|link=none|align=left|width=757|height=405] The key is in the variable results, which now holds the entire text of the table generated by the JMesa TableFacade when we called its render method. We also put a self-submitting HTML form around the JMesa table that it will use to send itself messages about how to alter itself. This makes possible many amazing features. The table automagically paginates itself. It allows the user to change the number of rows displayed. It allows sorting on any column or combination of columns. It provides color striping of table rows and onMouseOver row highlighting. And every bit of this came for free: we did nothing to enable it but what you have already seen. (OK, we played around with some of JMesa's images and CSS style sheets to make it fit in with our color scheme, but that really shouldn't count.) To demonstrate, we'll use the select at the top of the form to change the number of rows displayed to 16, sort by first name ascending and last name descending (by clicking on the first column header once and the second twice), and mouse over the third row to see the highlighting: [img_assist|nid=3681|title=Figure 3.|desc=JMesa search results sorted and highlighted|link=none|align=left|width=757|height=565] Now Al Gore and Einstein appear in the order we asked for. You will have noticed the images in the table toolbar. Those on the left are standard first, previous, next, and last navigation icons. The select we've already mentioned. But there are two other images as well: these turn filtering, another amazing feature of JMesa that is active by default, on and off. Filtering allows the user to apply expressions to a column in order to display only rows having matching values in that column. While filtering can take setup beyond the scope of this article, even by default it's astonishing. Try typing "Einstein" in the text field that appears above the last-name column header and clicking on the filter icon (the magnifying glass). The results show only the row containing Einstein's name in the last name column. And we didn't have to do a thing! [img_assist|nid=3680|title=Figure 4.|desc=JMesa search results filtered|link=none|align=left|width=757|height=280] See the JMesa web site for details about filtering, editable tables that keep track of your changes for you, and much, much more: it's impressive stuff. Customizing And now, to business. The JMesa default is astounding, but no default is ever exactly like you want it. The ability to customize is critical. Also, defaults rarely exercise every feature, and this one is no exception. Let's start with some requirements: We will display the value of each HelloWorld item's toString method in an additional column We will display more user-friendly values in the format column We will ensure that columns that cannot be reasonably sorted are made unsortable We will add columns containing links to edit and delete pages for the HelloWorld items We will display images in the edit and delete columns We will not display the Pk property of each item, but will pass its value to edit and delete pages as needed We will enable the user to retrieve a comma-separated-values (CSV) copy of the table contents We will enable the user to retrieve an Excel spreadsheet copy of the table contents We will disable filtering and highlighting We will reorganize the toolbar items in a different order Believe it or not, implementing each of these features will be quite easy! and you'll begin to get a sense for the possibilities of JMesa. ToString Column Each HelloWorld item produces a formatted string within its toString method. This is not a JavaBean property method, so we cannot directly point the TableFacade at it. We want this value to be rendered (to use JMesa terminology) as the contents of a (a cell) in each HTML row. Cell contents are produced by implementations of the CellEditor interface. Its getValue method is passed the item to be displayed, the property to be called, and the current row count. Since only the item itself is actually needed for our purpose, the implementation is simple: public class ToStringCellEditor implements CellEditor { @Override public Object getValue(Object item, String property, int rowcount) { if (item == null) { return ""; } return item.toString(); } } Of course, we'll need a column into which to put the results. All we need do is add an arbitrary value to the column properties list: tableFacade.setColumnProperties("firstName", "lastName", "format", "toString"); This value is used to retrieve the column: Row row = tableFacade.getTable().getRow(); Column column = row.getColumn("toString"); column.getCellRenderer().setCellEditor(new ToStringCellEditor()); Of course, this means that the getValue method of the ToStringCellEditor will always be passed a bogus property value, but since the editor doesn't use it, that's no problem. (Note that we've also left off the pk column as per requirements.) User-Friendly Format Column We continue by introducing a more user-friendly value into the format column. The format string "{0}, {1}! {2} {3} {4}" looks ugly and most likely won't be understood by an end user. The only real information it conveys is that it is the default value. We'll use a Spring MessageSource to supply something a little easier on the eyes at runtime. First, we'll add a property to the messages.properties file loaded by Spring at application startup: format.{0},\ {1}!\ {2}\ {3}\ {4}=Default format (The backslashes are needed to escape the white space in the key.) As we have already seen, a CellEditor is needed to change a cell's displayed value. Using MessageSource to produce the display value at runtime requires a few more lines than the ToStringCellEditor: public class SpringMessageCellEditor implements CellEditor { MessageSource source; String prefix; Locale locale; public SpringMessageCellEditor(MessageSource source, String prefix, Locale locale) { this.source = source; this.prefix = prefix; this.locale = locale; } public Object getValue(Object item, String property, int rowcount) { if (item != null) { try { return source.getMessage(prefix + "." + PropertyUtils.getProperty(item, property), null, locale); } catch (IllegalAccessException ignore) { } catch (InvocationTargetException ignore) { } catch (NoSuchMethodException ignore) { } } return null; } } We still have to add this editor to the column displaying the format property: Column column = row.getColumn("format"); column.getCellRenderer().setCellEditor(new SpringMessageCellEditor(messageSource, "format", locale); Unsortable Columns Next, we want the table to know that some columns are unsortable. Columns are typically sorted by property value, but we just added a column that corresponds to no property, that displays the output of the toString method. If the user clicked on the header of that column, he or she would wind up with a very ugly NullPointerException message. Making a column (actually, we need to have an HtmlColumn, but most columns qualify) unsortable is very simple: htmlColumn.setSortable(false); With this, no onClick method will be generated for the column header, preventing users from accidentally causing a mess. Edit and Delete Columns Now we'll add columns containing links to edit and delete pages for HelloWorld items. I prefer using icons to buttons saying "Edit" and "Delete", as it reduces the amount of textual information the user must process. Tables typically present a lot of information in a compact space, making user overload a problem worthy of attention. To do this, we'll need a CellEditor (by now, you knew that was coming!). Since this is functionality I use a lot, let's design it for reuse, refactoring out reusable code into one class, and code tailored to this project into another. ImageCellEditor encapsulates the general process of setting up an image with a link, and includes a method that will let subclasses override the default processing of the link: public class ImageCellEditor extends AbstractContextSupport implements CellEditor { private String image; private String alt; private String link; public ImageCellEditor(String image, String alt, String link) { this.image = image; this.alt = alt; this.link = link; } public Object getValue(Object item, String property, int rowcount) { CoreContext context = getCoreContext(); String imagePath = context.getPreference("html.imagesPath"); StringBuilder img = new StringBuilder(); if (link != null && link.trim().length() != 0) { img.append(""); } img.append(""); if (link != null && link.trim().length() != 0) { img.append(""); } return img.toString(); } /** * This method can be overridden by subclasses to handle specific * HTML link needs. */ public String processLink(Object item, String property, int rowcount, String link) { return link; } } This is our opportunity to introduce CoreContext and WebContext, two important classes that plug our code into the JMesa infrastructure. Extending AbstractContextSupport gets us JavaBean property methods for these objects (just a convenience; I could have implemented the interface ContextSupport, but then I would have had to write the property methods myself). The CoreContext has many uses; our immediate purpose for it is to retrieve a value configured in the jmesa.properties file. This was pointed to in web.xml: jmesaPreferencesLocation WEB-INF/jmesa.properties It contains a preference called "html.imagesPath" that replaces the default path from which JMesa retrieves images: html.imagesPath=/images/ This means we won't have to hard-code a part of the image URL. (There are a lot more configurable preferences: for details, see the JMesa web site.) The WebContext provides us with the servlet context path, again letting us avoid hard-coding the image URL: getWebContext().getContextPath() Getting back to the two image columns, we have a requirement to pass the Pk property of the appropriate HelloWorld to the edit or delete pages when the images are clicked. Adding this property to the link is easy, using the MessageFormat class to process the link argument of the application-specific subclass: public class HelloWorldImageCellEditor extends ImageCellEditor { public String processLink(Object item, String property, int rowcount, String link) { return MessageFormat.format(link, ((HelloWorld) item).getPk()); } } After creating the editor, we can retrieve the context objects for it from the TableFacade: ImageCellEditor editor = new HelloWorldImageCellEditor("edit.gif", messageSource.getMessage("image.edit.alt", null, locale), "edit.html?pk={0,number,integer}"); editor.setWebContext(tableFacade.getWebContext()); editor.setCoreContext(tableFacade.getCoreContext()); Now we have the images and the links. But it would be awfully nice if the images could be centered within the column, something notoriously difficult to achieve with CSS style sheets. What would work would be to use the align and valign attributes of the cell. How can we do that? The cell itself, as opposed to its contents, is rendered by the interface CellRenderer. Unfortunately, the HtmlCellRenderer sub-interface that comes with JMesa has no method for adding attributes. The Decorator and Template patterns, however, come to the rescue. Again, we implement the functionality for reuse as two classes, the first a generic decorator with an additional template method: public abstract class AttributedHtmlCellRendererDecorator implements HtmlCellRenderer { // all other methods will be delegated to this renderer protected HtmlCellRenderer renderer; public AttributedHtmlCellRendererDecorator(HtmlCellRenderer renderer) { this.renderer = renderer; } public Object render(Object item, int rowcount) { HtmlBuilder html = new HtmlBuilder(); html.td(2); html.width(getColumn().getWidth()); addAttributes(html); html.style(getStyle()); html.styleClass(getStyleClass()); html.close(); String property = getColumn().getProperty(); Object value = getCellEditor().getValue(item, property, rowcount); if (value != null) { html.append(value.toString()); } html.tdEnd(); return html.toString(); } /** * Subclasses will add attributes. */ public abstract void addAttributes(HtmlBuilder html); } The second will be a subclass that adds the specific attributes we need: public class AlignedHtmlCellRendererDecorator extends AttributedHtmlCellRendererDecorator { private String align; private String valign; public AlignedHtmlCellRendererDecorator(HtmlCellRenderer renderer, String align, String valign) { super(renderer); this.align = align; this.valign = valign; } @Override public void addAttributes(HtmlBuilder html) { html.align(align); html.valign(valign); } } Whew, that was a mouthful! However, our images will come out nicely centered in the column, and we've learned a good deal more about how the JMesa API works. There will be edit and delete pages to link to, of course, but these are not of interest here and are completely trivial in the Eclipse project. CSV and Excel Output In JMesa terminology, output other than HTML is called exporting the table. As complex as it might seem, it's actually the easiest part of the process. Again, a single line of code will do all we need: tableFacade.setExportTypes(response, org.jmesa.limit.ExportType.CSV, org.jmesa.limit.ExportType.EXCEL); That's really all there is to it! (OK, you have to include some JAR files in the library, but what did you expect, magic?) Filtering and Highlighting Making a row (we need an HtmlRow) unfilterable and unhighlighted is just as simple as making a column unsortable: htmlRow.setFilterable(false); htmlRow.setHighlighter(false); With this, no filtering row or icons will be generated above the column header and the highlighting feature will be turned off. Toolbar The code to reorganize the toolbar is quite straightforward; while we're at it, we need to include icons for the various output formats: public class ReorderedToolbar extends AbstractToolbar { @Override public String render() { if (ViewUtils.isExportable(getExportTypes())) { addExportToolbarItems(getExportTypes()); addToolbarItem(ToolbarItemType.SEPARATOR); } MaxRowsItem maxRowsItem = (MaxRowsItem) addToolbarItem(ToolbarItemType.MAX_ROWS_ITEM); if (getMaxRowsIncrements() != null) { maxRowsItem.setIncrements(getMaxRowsIncrements()); } addToolbarItem(ToolbarItemType.SEPARATOR); addToolbarItem(ToolbarItemType.FIRST_PAGE_ITEM); addToolbarItem(ToolbarItemType.PREV_PAGE_ITEM); addToolbarItem(ToolbarItemType.NEXT_PAGE_ITEM); addToolbarItem(ToolbarItemType.LAST_PAGE_ITEM); return super.render(); } } I arranged the icons by simply specifying the order in which they are added to the toolbar. They look more natural to me this way; your mileage may vary. Note that we delegate the messy work of actually rendering the toolbar to the JMesa superclass. Putting It All Together We'll refactor out reusable code once more in writing a Factory to encapsulate building our customized table, starting with an abstract class: public abstract class AbstractTableFactory { protected abstract String getTableName(); protected abstract void configureColumns(TableFacade tableFacade, Locale locale); protected abstract void configureUnexportedTable(TableFacade tableFacade, Locale locale); protected abstract ImageCellEditor getEditImageCellEditor(Locale locale); protected abstract ImageCellEditor getDeleteImageCellEditor( Locale locale); public TableFacade createTable(HttpServletRequest request, HttpServletResponse response, Collection items) { TableFacade tableFacade = new TableFacadeImpl(getTableName(), request); tableFacade.setItems(items); tableFacade.setStateAttr("return"); configureTableFacade(response, tableFacade); Locale locale = request.getLocale(); configureColumns(tableFacade, locale); if (! tableFacade.getLimit().isExported()) { configureUnexportedTable(tableFacade, locale); } return tableFacade; } public void configureTableFacade(HttpServletResponse response, TableFacade tableFacade) { tableFacade.setExportTypes(response, getExportTypes()); tableFacade.setToolbar(new ReorderedToolbar()); Row row = tableFacade.getTable().getRow(); if (row instanceof HtmlRow) { HtmlRow htmlRow = (HtmlRow) row; htmlRow.setFilterable(false); htmlRow.setHighlighter(false); } } protected ExportType[] getExportTypes() { return null; } protected void configureColumn(Column column, String title, CellEditor editor) { configureColumn(column, title, editor, false, true); } protected void configureColumn(Column column, String title, CellEditor editor, boolean filterable, boolean sortable) { column.setTitle(title); if (editor != null) { column.getCellRenderer().setCellEditor(editor); } if (column instanceof HtmlColumn) { HtmlColumn htmlColumn = (HtmlColumn) column; htmlColumn.setFilterable(filterable); htmlColumn.setSortable(sortable); } } protected void configureEditAndDelete(Row row, WebContext webContext, CoreContext coreContext, Locale locale) { HtmlComponentFactory factory = new HtmlComponentFactory(webContext, coreContext); HtmlColumn col = factory.createColumn((String) null); col.setFilterable(false); col.setSortable(false); CellRenderer renderer = col.getCellRenderer(); ImageCellEditor editor = getEditImageCellEditor(locale); editor.setWebContext(webContext); editor.setCoreContext(coreContext); renderer.setCellEditor(editor); col.setCellRenderer(new AlignedHtmlCellRendererDecorator((HtmlCellRenderer) renderer, "center", "middle")); row.addColumn(col); col = factory.createColumn((String) null); col.setFilterable(false); col.setSortable(false); renderer = col.getCellRenderer(); editor = getDeleteImageCellEditor(locale); editor.setWebContext(webContext); editor.setCoreContext(coreContext); renderer.setCellEditor(editor); col.setCellRenderer(new AlignedHtmlCellRendererDecorator((HtmlCellRenderer) renderer, "center", "middle")); row.addColumn(col); } } This has a lot of code (note the abstract methods ), in part because I know I usually want edit and delete columns. One line that might pass by unnoticed in all this, however, is really quite something: tableFacade.setStateAttr("return"); When this attribute is set, JMesa uses the Memento design pattern to save the state of its tables. When you return to a table page and include the attribute you specify here in the URL, you return to the exact place you left: the page number to which you had moved before leaving the table, the number of values displayed per page, and so forth. The application-specific concrete class, after all this, can be pretty simple: public class HelloWorldTableFactory extends AbstractTableFactory { protected MessageSource messageSource; public void setMessageSource(MessageSource messageSource) { this.messageSource = messageSource; } @Override protected String getTableName() { return "results"; } @Override protected ExportType[] getExportTypes() { return new ExportType[] { CSV, EXCEL }; } @Override protected void configureColumns(TableFacade tableFacade, Locale locale) { tableFacade.setColumnProperties("firstName", "lastName", "format", "toString"); Row row = tableFacade.getTable().getRow(); configureColumn(row.getColumn("firstName"), messageSource.getMessage("column.firstName", null, locale), null); configureColumn(row.getColumn("lastName"), messageSource.getMessage("column.lastName", null, locale), null); configureColumn(row.getColumn("format"), messageSource.getMessage("column.format", null, locale), new SpringMessageCellEditor(messageSource, "format", locale), false, false); configureColumn(row.getColumn("toString"), messageSource.getMessage("column.toString", null, locale), new ToStringCellEditor(), false, false); } @Override protected void configureUnexportedTable(TableFacade tableFacade, Locale locale) { HtmlTable table = (HtmlTable) tableFacade.getTable(); table.setCaption(messageSource.getMessage("table.caption", null, locale)); configureEditAndDelete(table.getRow(), tableFacade.getWebContext(), tableFacade.getCoreContext(), locale); } @Override protected ImageCellEditor getEditImageCellEditor(Locale locale) { return new HelloWorldImageCellEditor("edit.gif", messageSource.getMessage("image.edit.alt", null, locale), "edit.html?pk={0,number,integer}"); } @Override protected ImageCellEditor getDeleteImageCellEditor(Locale locale) { return new HelloWorldImageCellEditor("delete.gif", messageSource.getMessage("image.delete.alt", null, locale), "delete.html?pk={0,number,integer}"); } } Controller We end as we began, with a Spring MVC Controller to launch all this infrastructure. Since the details of table creation are encapulated in a factory, this is uncluttered: the only decision to be made is whether or not the table is to be exported. If it is exported, the results will be written directly to the output stream of the response; if not, they'll be rendered as a string containing our HTML table: public class CustomJMesaSearchController extends AbstractController { private HelloWorldService helloWorldService; private HelloWorldTableFactory tableFactory; public void setHelloWorldService(HelloWorldService helloWorldService) { this.helloWorldService = helloWorldService; } public void setTableFactory(HelloWorldTableFactory tableFactory) { this.tableFactory = tableFactory; } @Override protected ModelAndView handleRequestInternal(HttpServletRequest request, HttpServletResponse response) throws Exception { Set results = helloWorldService.findAll(); TableFacade tableFacade = tableFactory.createTable(request, response, results); if (tableFacade.getLimit().isExported()) { tableFacade.render(); return null; } return new ModelAndView("results", "results", tableFacade.render()); } } We are actually reusing the same JSP page as in the basic JMesa setup: the only difference is in the Java code that generates the table. One more change in jmesa-servlet.xml to create everything and tie it all together: ... customSearchController And how different the display looks!: [img_assist|nid=3682|title=Figure 5.|desc=A customized search result|link=none|align=left|width=757|height=465] Ajax Finally, the table looks like we want it to, but it's irritating having to resubmit the form each time we want to make a change. Isn't that the sort of thing Ajax is supposed to help us avoid? The answer is, of course, yes! So how do we leverage Ajax to help us? Fortunately, the JMesa folks have already worked that out. There are two parts to the solution: changes to the controller and changes to the JSP page. ${results} In our previous solution, the onInvokeAction Javascript method called createHiddenInputFieldsForLimitAndSubmit, which submitted the form. In the Ajax solution, it assembles parameters for the TableFacade class and sends a request for the HTML for table display, adding a parameter to indicate that it's an Ajax request. Then a callback Javascript function substitutes the returned HTML for the contents of the that now holds the table. The simplicity and unusual syntax of the latter code come courtesy of the jQuery Ajax library, which is thoughtfully used by JMesa: The controller, of course, needs to interpret this new request correctly. This is just one more branch on the decision tree we saw in the previous controller: public class AjaxJMesaSearchController extends AbstractController { @Override protected ModelAndView handleRequestInternal(HttpServletRequest request, HttpServletResponse response) throws Exception { Set results = helloWorldService.findAll(); TableFacade tableFacade = tableFactory.createTable(request, response, results); if (tableFacade.getLimit().isExported()) { tableFacade.render(); return null; } else if ("true".equals(request.getParameter("ajax"))) { String encoding = response.getCharacterEncoding(); byte[] contents = tableFacade.render() .getBytes(encoding); response.getOutputStream().write(contents); return null; } return new ModelAndView("ajax-results", "results", tableFacade.render()); } } Of course, we have to make Spring aware of the controller change in jmesa-servlet.xml: ... ajaxSearchController That's all there is to it! The table looks and acts just as it did, except now it refreshes without resubmitting the form each time. Conclusion Now I don't have to like tables: I can program them in Java and not worry about them on a display JSP. This makes the page cleaner, gives me more functionality out-of-box, and enables me to nix at least some of the languages I'd otherwise have to fuss with. What's not to like? I hope you'll take a good look at JMesa and see if it can make your life easier, and that this article helps you decide. Good luck! Installation of the Eclipse Project Installing the Eclipse project is not difficult; the included Ant build file and these instructions assume Tomcat as the deployment target (I'm using version 6.0.14 with JDK 6.0_03). If you want to use another servlet container, though, feel free to modify the instructions and the Ant file as needed: download the ZIP archive unzip the archive to any directory; it will create its own top-level subdirectory open the project as a Java project in Eclipse the project must use the Java 6 compiler (available from "http://java.sun.com/javase/6/") the Tomcat installation must be version 6 (available from "http://tomcat.apache.org/download-60.cgi") open the build file and modify the path to the Tomcat root add an external JAR file to the Eclipse project build path from the Tomcat installation: lib/servlet-api.jar run the Ant "deploy" target, which will build automatically open a browser and point it to "http://localhost:8080/running-jmesa-examples/" or to an equivalent URL for your setup (N.B. Some code in the project has been refactored from the way it appears in the article.)
June 18, 2008
by David Sills
· 56,616 Views
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