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I am trying to get parameter substitution working in my bash script ... I know I have gotten this all wrong ... I am trying to create a script that will rename a PART of a file.

for i in *.hpp; do  mv -v "$3 ${$3/$1/$2}" ; done

The error I am getting is:

line 2: $3 ${$3/$1/$2}: bad substitution
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It is not at all clear what transformation you want to apply to each filename. Edit your post to include an example (or several examples) of the “before” and “after” filenames. –  rob mayoff Feb 22 '13 at 2:41
And i variable is never called ! –  Gilles Quenot Feb 22 '13 at 2:41
Crumbs ... it should be for i in *.hpp; do mv -v "$i ${i/$1/$2}" ; done –  Xofo Feb 22 '13 at 2:50
My blunder there ... What am I trying to do - Rename any part of a file ... using mv and parameter substitution Foo1_ABC.hpp Foo2_ABC.hpp Foo3_ABC.hpp > ABC CDG Foo1_CDG.hpp Foo2_CDG.hpp Foo3_CDG.hpp ---- –  Xofo Feb 22 '13 at 2:51

1 Answer 1

up vote 1 down vote accepted

${$3} will attempt to interpolate ${"CONTENTS OF $3"} into a variable. It is more likely that you want ${3}. It is even more likely that you want ${i}.

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Yes ... I see that ... a series of errors ... on my part. Thanks. –  Xofo Feb 22 '13 at 2:57
@Xofo if you have rename installed you can just use rename 's/ABC/CDG/' *.hpp –  Explosion Pills Feb 22 '13 at 3:02
There's different implementations of rename, take care. This is for the perl one –  Gilles Quenot Feb 22 '13 at 3:08
To be honest everyone says use the rename script ... but it never seems to be there when I want it (on machines that I do not directly manage). So I wrote: ---- #!/bin/bash for i in "${@:3}"; do mv -v "$i" "${i/$1/$2}" ; done echo "DONE!" ---- –  Xofo Feb 22 '13 at 3:17

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