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I am trying to write one shell script which will

  1. List all the files matching some criteria like 'files having .txt extension' and then
  2. Choose first file from that list

I have managed to list all the files having .txt extension using ls *.txt command saved it in variable. My shell script looks like following

#!/bin/bash

all_text_files=`ls *.txt`
echo $all_text_files

On my system, I get following output

sample_text_file_1.txt sample_text_file_2.txt sample_text_file_3.txt sample_text_file_4.txt sample_text_file_53.txt

As you can see, all the files are separated by single space. Now I want to select first file i.e. sample_text_file_1.txt file and then read that file.

As I am totally new to shell script programming, I do not know how to do this in shell script. In other programming languages we can just split the string using regex on single space character and then choose first item from resulting list.

Request you to please help.

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4 Answers

up vote 0 down vote accepted

Try this :

Using a array using no pipes and only bash built-in :

array=( *.txt )
echo "${arrray[0]}"

Using printf and head (no file-names with newlines allowed, but it's quite rare)

printf -- '%s\n' *.txt | head -n 1

Using :

printf -- '%s\n' *.txt | sed -n '1p'
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-1, your printf answer is not robust as it does not handle filenames containing newline characters. –  dogbane Mar 19 '13 at 8:35
    
Added more robustness –  sputnick Mar 19 '13 at 8:39
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Parsing the output of ls is not safe, so don't do it.

Store the files in an array and pick the first element like this:

arr=( *.txt )
echo "${arr[0]}"
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Exactly what I said before –  sputnick Mar 19 '13 at 8:28
1  
You hadn't said it when I checked your answer. Clearly you updated it. –  dogbane Mar 19 '13 at 8:31
    
No, check stackoverflow.com/posts/15494549/revisions –  sputnick Mar 19 '13 at 8:32
1  
It doesn't show up in the revision history if you edit it within 5 minutes. I'm not a newbie. –  dogbane Mar 19 '13 at 8:34
1  
I'm not going to argue with you anymore. I see that you have edited your answer and put my solution at the top of it. I have also flagged your comment. –  dogbane Mar 19 '13 at 8:48
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Awk has split functions, which is quite POWERFUL.

awk 'BEGIN{split ("file1 file2 file3", files, " "); print files[1]}'
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Use head to take the first output line:

ls *.txt | head -n 1

However you shouldn't use ls and parse its output unless you have specific reasons to do that (e.g. you want to sort files by some criterion and take the first one).

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awesome !!! thanks.. –  Shekhar Mar 19 '13 at 8:25
2  
Parsing ls is discouraged. mywiki.wooledge.org/ParsingLs –  sputnick Mar 19 '13 at 8:28
    
@sputnick, agree. Using ls makes sense if "first" is defined in terms of ls (sorted by time, size, etc). –  khachik Mar 19 '13 at 8:35
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