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I have a zip file with the following structure

apache-tomcat-6.0.26.zip apache-tomcat-6.0.26/webapps/manager

I want to copy just the manager folder into another dir

I tried

<copy todir="${tomcat.webapp.dir}/manager/" includeEmptyDirs="true">
 <zipfileset src="${tomcat.zip.file}/" >
  <patternset>
   <include name="apache-tomcat-${tomcat.version}/webapps/manager" />
  </patternset>
 </zipfileset>
</copy>

The output manager folder contains the following structure apache-tomcat-6.0.26/webapps/manager. I just need the manager folder and its content not its parents.

Tried changing the to but get an error msg that the folder is not an archieve

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2 Answers

up vote 5 down vote accepted

Use a patternset to restrict the files to be extracted from the zip, coupled with a mapper that strips off the leading directory name

<unzip src="apache-tomcat-${tomcat.version}.zip" dest="${tomcat.webapp.dir}/manager">
    <patternset>
        <include name="**/webapps/manager/**"/>
    </patternset>
    <globmapper from="apache-tomcat-${tomcat.version}/webapps/manager/*" to="*"/>
</unzip>
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Awesome, Thanks a ton –  user373201 Aug 25 '10 at 2:36
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Here's my solution:

<copy todir="${tomcat.webapp.dir}/manager/" includeEmptyDirs="true">
 <zipfileset src="${tomcat.zip.file}/" prefix="apache-tomcat-${tomcat.version}/webapps" >
  <patternset>
   <include name="apache-tomcat-${tomcat.version}/webapps/manager" />
  </patternset>
 </zipfileset>
</copy>

I intensely dislike the <unzip> task because when it fails, it gives no errors (the default for <copy> is to fail on error, which is exactly what you want in a build.)

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