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I have a very simple grep problem but can't seem to solve it. I have several files like this:

sample.txt
sample7.doc.txt
another_sample.sample.lst.txt
three.txt

...And I just want to grab everything before the ".txt". I was trying to do this in shell script like this:

ame=`echo $1 | grep -Po "^[A-Za-z0-9]+"`

...But of course that returns only the portion up until the first 'dot'. Can someone please help modify this regex?

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4 Answers 4

up vote 7 down vote accepted

No need for regexp:

$ basename sample.txt .txt
sample

or using any POSIX-compatible shell:

$ echo "$a"
sample.txt

$ y=${a%.txt}

$ echo "$y"
sample
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+1 for the bash one –  Kent May 23 '13 at 14:02
    
Nice, I wasn't aware of 'basename' –  jake9115 May 23 '13 at 14:03
    
That's a nice tool to have in your utility belt, together with dirname –  Fredrik Pihl May 23 '13 at 14:04
2  
@Kent That's Bourne Shell (sh), and has ever been. –  Jens May 23 '13 at 16:10
    
Expansions need to be quoted to still work correctly for names containing whitespace or other IFS characters (or glob expressions). –  Charles Duffy May 23 '13 at 16:14

try this:

grep -Po '.*(?=\.txt$)'
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  1. remove .txt

    name=echo $1|sed 's/.txt$//'

  2. use basename

    name=echo $fullname|basename .txt

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Tempted to -1 for not using double quotes around variables. –  tripleee May 23 '13 at 16:51

Here is the script for renaming file.

Pass file name as argument

!/bin/bash

mv $1 $(echo $1 | awk -F.txt '{print $1}')

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