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In an ant build script I have a list of projects we are depending on. I need to create a classpath for compilation.

I have:

included.projects=ProjectA, ProjectB

and I need:

included.project.classpath=../ProjectA/bin, ../ProjectB/bin

current code:

<echo message="${included.projects}" />

<pathconvert property="included.projects.classpath" dirsep="," >
      <map from="" to="../"/>
        <path location="${included.projects}"/>
    </pathconvert>

<echo message="${included.projects.classpath}" />

<javac srcdir="${src.dir}" destdir="${build.dir}" includeantruntime="false" source="1.6">
    <classpath>
        <pathelement path="${classpath}" />
        <dirset includes="${included.projects.classpath}" />
    </classpath>
</javac>

I've tried it with explicit declaration too, but didn't work:

<path id="modules.classpath"> 
  <fileset dir="../ModuleA/bin" /> 
  <fileset dir="../ModuleB/bin"/> 
</path> 
<path id="libraries.classpath"> 
  <fileset dir="lib" includes="*.jar"/> 
</path> 
<javac srcdir="${src.dir}" destdir="${build.dir}" includeantruntime="false" source="1.6"> 
   <classpath refid="libraries.classpath" /> 
   <classpath refid="modules.classpath" /> 
</javac>

I'm curious, what is the problem with explicit declaration code, and is it possible to solve with the comma-separated-string to classpath solution.

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It is working when using <path id="modules.classpath"> <pathelement path="../ModuleA/bin" /> ... –  BTakacs Feb 22 '13 at 15:09
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1 Answer

I think it would be simpler to explicity declare the classpath at the top of your build as follows:

<path id="compile.path">
   <fileset dir="../ProjectA/bin" includes="*.jar"/>
   <fileset dir="../ProjectB/bin" includes="*.jar"/>
</path>

Used as follows:

<javac srcdir="${src.dir}" destdir="${build.dir}" includeantruntime="false" source="1.6">
    <classpath>
        <path refid="compile.path"/>
        <pathelement path="${classpath}" />
    </classpath>
</javac>

Note:

  • I read your question again and just realised that you're not using jar files built by the other projects, are you? .... Not a great idea....
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With your solution I would need to to put the big 'compile.path' declaration in all my build.xml but I would like to use a commmon build.xml. About Note: sure... why would I? I know it is a kind of standard, but I don't see the point in my case: It's a small project with 5-10 modules, and everything is constantly changing. This way I can save a compression, a copy-to-repository and decompression. –  BTakacs Feb 22 '13 at 9:18
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