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In a bash script, when an input line contains the starting comment token /* it is evaluated to all entries in root directory "/". How can we avoid this?

Edit: Code from comment in more readable form:

while read line; do
    echo -e "input line: [$line]"
    aaa=`echo -e $line`
    echo -e "aaa=$aaa"
done < $infile 
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In a bash script, the starting comment token is '#', not '/*'. – davmac Apr 6 '11 at 1:09
    
post the snippit of code in question – SiegeX Apr 6 '11 at 1:10
    
while read line; do echo -e "input line: [$line]" aaa=echo -e $line echo -e "aaa=$aaa" done < $infile – user693986 Apr 6 '11 at 1:38
    
sorry not familiar with the input system. when input contains "/*" i got a list of the entries in root dir in the output of echo -e "aaa=$aaa" – user693986 Apr 6 '11 at 1:42

You can tell bash to ignore certain patterns when doing file expansion:

$ export GLOBIGNORE='/*'
$ ls /* | wc
ls: cannot access /*: No such file or directory
      0       0       0

or you can disable pathname expansion altogether using the set builtin: set -f

share|improve this answer
    
thanks, it works fine. – user693986 Apr 6 '11 at 1:48

Whenever you use a variable without putting it in double-quotes, its value is parsed in a couple of ways after being substituted: it's broken into "words", and wildcards get expanded. In your case, the line:

aaa=`echo -e $line`

is causing trouble because there are no quotes around $line -- it'll expand wildcards, convert strings of spaces, tabs, etc into single spaces, and maybe some other things I haven't though of. BTW, read line will trim leading and trailing whitespace, and join lines ending with a backslash; if you don't want this, use IFS= read -r line instead. Finally, using echo -e twice will lead to double-interpretation of escape sequences in the input file. Here's my recommended rewrite:

while IFS= read -r line; do
    echo -e "input line: [$line]"
    aaa=$(echo -e "$line")
    echo "aaa=$aaa"
done < "$infile"
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