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Hopefully this should be a simple one... Here is my test.sh file:

#!/bin/bash
patch_file="/home/my dir/vtk.patch"
cmd="svn up \"$patch_file\""
$cmd

Note the space in "my dir". When I execute it,

$ ./test.sh 
Skipped '"/home/my'
Skipped 'dir/vtk.patch"'

I have no idea how to accommodate the space in the variable and still execute the command. But executing this the following on the bash shell works without problem.

$ svn up "/home/my dir/vtk.patch"   #WORKS!!!

Any suggestions will be greatly appreciated! I am using the bash from cygwin on windows.

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Why do you want to put the command in a variable? Why not just execute the command directly? –  Dennis Williamson Feb 10 '11 at 0:28
    
@Dennis - The patch file's home dir is detected at runtime. Another script detects the home dir as "/home/my dir/" and passes it as an argument to this script. This script appends "vtk.patch" to the detected home dir and does an svn up on the patch file. –  Bala Feb 10 '11 at 0:32
    
    
@Bata that doesn't answer the question, why not do svn up "$patch_file" instead of putting the whole command in the $cmd variable, which is redundant. –  Slomojo Feb 10 '11 at 0:39
1  
You can build up the directory in a variable and pass that as an argument to the executable without also putting that (or other arguments) in the variable. svn up "$dir_and_filename_var". –  Dennis Williamson Feb 10 '11 at 0:40

2 Answers 2

up vote 4 down vote accepted

Use eval $cmd, instead of plain $cmd

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1  
eval $cmd works! Thanks much... –  Bala Feb 10 '11 at 0:42
2  
@Bala: Be aware of the security risks of eval. –  Dennis Williamson Feb 10 '11 at 0:45

Did you try escaping the space?
As a rule UNIX shells don't like non-standard characters in file names or folder names. The normal way of handling this is to escape the offending character. Try:

patch_file="/home/my\ dir/vtk.patch"

Note the backslash.

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1  
Yep, I tried it. Outputs, Skipped '"/home/my\' Skipped 'dir/vtk.patch"' –  Bala Feb 10 '11 at 0:33

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