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I was getting into trouble when tried to find a solution for my problem. I have an xml Schema that I download from the internet and create SchemaFactory with it. The code goes like this:

SchemaFactory schemaFactory = SchemaFactory.newInstance(XMLConstants.W3C_XML_SCHEMA_NS_URI);

The problem is that it takes a descent amount of time to load it so I want to serialize this object and then deserialize it . I didn't succeed to even create a file within a war(read file I found how to do). Would be glad if someone could help me. Thanks, Pavel

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Writing serialized object(data) to the *.war(application) is a bad idea. Its better to use the work area of the webapp. –  Rajeev Sep 1 '11 at 9:40

1 Answer 1

You can't store a new file dynamically in a running war. You may use an external directory to store the serialized object in a file, though, or store it in a database.

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My intention was to use the work area of the webapp. But how do I get the path dynamically ? I don't know where it will be stored and unpacked yet. –  Pavel Sep 1 '11 at 9:45
    
A webapp doesn't necessarily have a work area. The app server classloader could keep everything packed into the war file. The container must provide you a temporary directory where you can store what you want, though. Get it using servletContext.getAttribute(ServletContext.TEMPDIR) –  JB Nizet Sep 1 '11 at 9:50
    
@Pavel: Can't you cache the SchemaFactory in memory - servletContext.setAttribute(...);? –  home Sep 1 '11 at 9:51
    
Oh, thank you very much! This is what I was looking for! –  Pavel Sep 1 '11 at 9:53

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