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Hello Basically i need to extract the version info from the XML I thought of puttin the entire result to a XML file and then parse it to get the revision information.

i tried to output the svn info to a xml file by specifying

$ svn info C:\Projects\Foo.xml --xml C:\Projects\FileInfo.xml

Im getting errors if i try to save

$ svn info --xml C:\Projects\Foo.xml
<?xml version="1.0"?>
<info>
<entry
   kind="dir"
   path="."
   revision="1">
<url>https://rbins.com/trunk/Projects/Foo.xml</url>
<repository>
<root>https://rbins.com/trunk/Projects/</root>
<uuid>5e7d134a-54fb-0310-bd04-b611643e5c25</uuid>
</repository>
<wc-info>
<schedule>normal</schedule>
<depth>infinity</depth>
</wc-info>
<commit
   revision="240">
<author>sally</author>
<date>2003-01-15T23:35:12.847647Z</date>
</commit>
</entry>
</info>

i do not receive error if i run

$ svn info C:\Projects\Foo.xml --xml

Help me where am i going wrong also suggest me if theres any alternative available to extract the revision number of the working copy

Thanks in advance

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2 Answers 2

up vote 3 down vote accepted

You need to redirect svn info's output to the file, the --xml option takes no parameter:

svn info C:\Projects\Foo.xml --xml > C:\Projects\FileInfo.xml

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Use svnversion instead:

>C:\mydir>svnversion
1652:1653
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Hello Jason I need the version info for a particular file and not the revision of all the files in the directory of working copy –  this-Me Jan 18 '11 at 15:03
    
Ah, got it..... –  Jason S Jan 18 '11 at 15:19

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