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next code doesnt work because of spaces in file names, How to fix?

IFS = '\n'
for name in `ls `
do
    number=`echo "$name" | grep -o "[0-9]\{1,2\}"`
    if [[ ! -z "$number" ]]; then
        mv "$name" "./$number"
    fi
done
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1  

3 Answers 3

up vote 12 down vote accepted

Just don't use command substitution: use for name in *.

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Note that this may fail in an empty directory. Thee loop will be executed once with name="*". Not a problem in this particular case though. –  user123444555621 Dec 27 '11 at 15:03
    
If it does turn out to be a problem, shopt -s nullglob will cause * to expand to zero words if there are no matches. –  ephemient Dec 27 '11 at 19:31

Replace

for name in `ls`

with:

ls | while read name

Notice: bash variable scoping is awful. If you change a variable inside the loop, it won't take effect outside the loop (in my version it won't, in your version it will). In this example, it doesn't matter.

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"If you change a variable inside the loop, it won't take effect outside the loopIf you change a variable inside the loop, it won't take effect outside the loop" -- if you use your construct, yes, because whatever is after the pipe is launched in a subshell. It is therefore expected that it has a different variable scope. –  fge Dec 27 '11 at 14:28
    
I think bash's behavior here is erratic. If you understand it, and it seems like you (i.e. fge) do, then you know what to expect. But I learned it the hard way, it it still looks strange to me. –  ugoren Dec 27 '11 at 14:36

Looks like two potential issues:

First, the IFS variable and it's assignment should not have space in them. Instead of

IFS = '\n' it should be IFS=$'\n'

Secondly, for name in ls will cause issues with filename having spaces and newlines. If you just wish to handle filename with spaces then do something like this

for name in *

I don't understand the significance of the line

number=`echo "$name" | grep -o "[0-9]\{1,2\}"`

This will give you numbers found in filename with spaces in new lines. May be that's what you want.

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Actually, it should be IFS=$'\n' -- without the $, \n doesn't get interpreted as a newline, but as a literal backslash and the letter "n". –  Gordon Davisson Dec 27 '11 at 15:48
    
Oops … good catch, fixed. Thanks Gordon. :) –  jaypal singh Dec 27 '11 at 15:52

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