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I have a web application that executes on tomcat 6.

I have a MysqlDb class that uses a BasicDataSource from a spring JDBC.

so far I've used the following bean configuration in web.xml:

<bean id="MysqlDb" class="com.xpogames.gamesisland.mysql.MysqlDb">
    <property name="idDataSource" ref="idDataSource"/>
 </bean>

and I had the following setter function:

  public void setidDataSource(BasicDataSource ds) {
    this._dataSource=(DataSource)ds;
    this._simpleJdbcTemplate = new SimpleJdbcTemplate(_dataSource);
    this._jdbcTemplate = new JdbcTemplate(_dataSource);
 }

I want to convert my class to use static functions, so I created an empty private constructor so the class won't explicitly instantiated by callers.

besides that I changed the setidDataSource function to a static function, but when I try to do that I get the following error:

Error setting property values; nested exception is org.springframework.beans.NotWritablePropertyException: Invalid property 'idDataSource' of bean class [com.xpogames.gamesisland.mysql.MysqlDb]: Bean property 'idDataSource' is not writable or has an invalid setter method. Does the parameter type of the setter match the return type of the getter?

is there a way to resolve this issue in web.xml or do I need to manually fetch the ServletContext

ServletContext servletContext = this.getServletContext();
this._context = WebApplicationContextUtils.getRequiredWebApplicationContext(servletContext);

and fetch the bean from there and just remove the lines i printed here from web.xml ?

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You can't use static setter methods. That just won't work, they need to be instance methods. –  skaffman Jun 22 '11 at 9:24
    
It's not a bean if it doesn't have a setter (instance) method. Basically, a bean is an instance/an object; and static members don't refer to an instance but just to static data. Hence you've got an object without a method to mutate it (I have no idea why you want static "setters", this seems oxymoronic). You might be able to persuade the datasource to work with it, depending on how strict its checks are, but I wouldn't hold anything against it if it refused to cooperate. –  Andrzej Doyle Jun 22 '11 at 9:26
    
what exactly are you trying to achieve? Spring offers other ways for bean creation, like factories. –  donneo Jun 22 '11 at 9:27
    
I don't want to paste a pointer to the already constructed class to each part of my application. I want to be able to call each function in this class using a static method –  ufk Jun 22 '11 at 9:34
2  
I want to convert my class to use static functions - Why? This is a very bad idea. –  Qwerky Jun 22 '11 at 9:35
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4 Answers

Spring-beans are by default singletons, you do not need to implement your class as a singleton as long as you use the bean from the context. The simplest answer to your question is getting the bean from the context after setting the datasource in the context, but I thought you want to stay away from the context.

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maybe using context is a better idea. still considering. thanks for the advice. –  ufk Jun 23 '11 at 15:58
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For one, you've declared the setter setidDataSource. It should be setIdDataSource. The first letter of a property must be a capital letter after the word set.

Also, a setter method must not be static but an instance method.

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welp it did work with lowercase letters :) i guess it depends how i configure the property name is web.xml –  ufk Jun 22 '11 at 9:24
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Static setters for class are of course possible (they would just set static property for all instances), but in IoC pattern (which is used in spring), bean is instance, and term "property of bean" always means "property of instance of class" - consider it as limitation of given IoC implementation.

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up vote 0 down vote accepted

I understand know that I had a bad implementation idea. I still need a constructor, so building a class with static functions and static init is a bad idea, and trying to execute a static setter from a bean is not logical and impossible.

Instead I changed the class to be a singleton class, so I will be able to use it anywhere in my application and it will be constructed only once.

thanks for all the information.

update

I still don't know if that's a good method, but at least it works.

in my red-web.xml (consider it as spring applicationContext.xml), I have the following:

 <bean id="MysqlDb" class="com.xpogames.gamesisland.mysql.MysqlDb" init-method="getInstance">
    <property name="idDataSource" ref="idDataSource"/>
 </bean>

Here it creates a MysqlDb bean and configure it to use the getInstance() init method if MysqlDb Class. i made sure to have a setidDataSource() function in mysqlDb class for the datasource to be properly set.

<bean id="web.handler" class="com.xpogames.gamesisland.Application">
    <property name="MysqlDb" ref="MysqlDb"/>
</bean>

Here, I create the main bean of my application and I made sure to have the function setMysqlDb for the MysqlDb class to be set from the bean configuration.

So far mysqlDb acts as a singelton class because it's constructor is protected and it creates the instance only once:

public static MysqlDb getInstance() {
    if (instance == null) {
        instance = new MysqlDb();
    }
    return instance;
}

The problem that I encountered was that in other parts of my application whenever I used getInstance(), the MysqlDb class would come up and all the variables that where set with setidDataSource where null.

so resolve that issue I created another function called setInstance in mysqlDb:

public static void setInstance(MysqlDb db) { instance=db; }

this is my main setMysqlDb function in my main application:

public void setMysqlDb(MysqlDb db) {
    this._mysqlDb=db;
    /* it seems that without forcing a setInstance on the class, whenever other classes
     * would try to getInstance(), variables that are supposed to be configured by the bean
     * would be empty. this resolves that issue
     */
    MysqlDb.setInstance(db);
}

so this configuration works. it's obviously not the recommended or best solution! but it seems that I need to read and learn further before I come up with a better solution.

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This should be a comment. –  Buhake Sindi Jun 22 '11 at 10:34
    
your answer comes across as "commentary" rather than an answer. You could try to make it more "answery", as it's already received a couple of "not an answer" flags =) –  Rob Jun 22 '11 at 11:32
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