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I want to search Exact word pattern in Unix,

Example : Log.txt file contains following text :

aaa
bbb
cccaaa   ---> this should not be counted in grep output

I am using following code-

count=$?
count=$(grep -c aaa $EAT_Setup_BJ3/Log.txt)

Here output should be ==> 1 not 2, using above code i m getting 2 as output something is missing So, can any one help me for the this please?

share|improve this question
    
What's count=$? supposed to do? It certainly doesn't count the number of matches. It records grep's exit status. – Jens Apr 2 '13 at 7:54
up vote 5 down vote accepted

Word boundary matching is an extension to the standard POSIX grep utility. It might be available or not. If you want to search for words portably, I suggest you look into perl instead, where you would use

perl -ne 'print if /\baaa\b/' $EAT_Setup_BJ3/Log.txt
share|improve this answer
    
This should be "/\baaa\b/" for the regex. \W searches for a character that is NOT a word character so it can cause some odd behavior; especially if you are doing back references for matches. \b will find a word boundary (basically the same thing but more robust and without matching a character). – whitey04 Apr 8 '15 at 23:01
    
@whitey04 Thank you for your helpful observation. I have adjusted the regex accordingly. – Jens Apr 9 '15 at 7:52

Use whole word option:

grep -c  -w aaa $EAT_Setup_BJ3/Log.txt

From the grep manual:

-w, --word-regexp

Select only those lines containing matches that form whole words. The test is that the matching substring must either be at the beginning of the line, or preceded by a non-word constituent character.

As noted in the comment -w is a GNU extension. Wit a non GNU grep you can use the word boundaries:

grep -c "\<aaa\>" $EAT_Setup_BJ3/Log.txt
share|improve this answer
    
Thanks will try and revert back if i face any problem :) – Bhushan J Apr 2 '13 at 7:52
2  
Note that -w is a GNUism, not a standard POSIX grep option. – Jens Apr 2 '13 at 7:53
    
Note that word boundary matching with \<...\> is also not POSIX. A more "portable" solution would be a perl one liner – Jens Apr 2 '13 at 8:30
    
Here I ma facing Problem with grep, I used above mentioned code : grep -c -w aaa $Log.txt ==> but Its also counting for the words like : ccc-aaa etc.. I want to count only for aaa pattern srtictly only not for such, bbb-aaa or ccc_aaa patterns... so, any 1 help me please? – Bhushan J Apr 4 '13 at 6:33
    
@Jens Yes. However, there might be cases when you do need to simulate word boundary anyhow, e. g. in mine, considering that (traditional) awk will neither support \b nor \y (the latter one being used in gawk). And those scripts that only work with GNU tools (and their extensions) are my pet peeve, so my regexps might sometimes look insanely complicated, but they'd need no extended regexps either. – syntaxerror Sep 10 '14 at 17:26

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