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I’m trying to count a particular word occurrence in a whole directory. Is this possible?

Say for example there is a directory with 100 files all of whose files may have the word “aaa” in them. How would I count the number of “aaa” in all the files under that directory?

I tried something like:

 zegrep "xception" `find . -name '*auth*application*' | wc -l 

But it’s not working.

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6 Answers 6

up vote 27 down vote accepted

grep -roh aaa . | wc -w

Grep recursively all files and directories in the current dir searching for aaa, and output only the matches, not the entire line. Then, just use wc to count how many words are there.

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You probably want add -h too. Dont print out filenames. So, grep -roh aaa . | wc -w –  jm666 May 26 '11 at 19:15
    
@jm666 true, I'll update the answer –  Carlos Campderrós May 27 '11 at 13:30
    
Also if you don't want the actual matches, only the count, you can use grep -rcP '^aaa$' . That saves you the piping and prevents getting embedded 'aaa' –  cgledezma Jul 30 '13 at 9:56
    
@cgledezma good point about -c, but it fails if there are two or more occurrences of the searchString in one line. –  Carlos Campderrós Jul 30 '13 at 10:50
1  
MM... Indeed, I hadn't noticed it only counts the number of lines matched and not the actual number of matches. Still I think it may be useful to place the word boundaries to avoid nested matches. Sorry, I placed them incorrectly on the previous comment: grep -rohP '\baaa\b . | wc -w –  cgledezma Jul 30 '13 at 11:41

Another solution based on find and grep.

find . -type f -exec grep -o aaa {} \; | wc -l

Should correctly handle filenames with spaces in them.

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perfect! I was using find based on size, this works perfectly –  SeanDowney Sep 29 '11 at 16:11
    
@Fredrik : this executes perfectly but is there a way to the word count by avoiding multiple counts for that word in the same file? Eg : if word "aaa" appears in "file1.txt" 10 times, but count should increase only by 1 but not 10 & similarly in other files too within a directory. –  annunarcist Nov 8 '13 at 21:23
    
@annunarcist -- yes it can be done. Post a new question and I`ll take a look :-) –  Fredrik Pihl Nov 8 '13 at 21:31
    
@Fredrik : posted! Here is the link –  annunarcist Nov 8 '13 at 21:59
find .|xargs perl -p -e 's/ /\n'|xargs grep aaa|wc -l
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cat the files together and grep the output: cat $(find /usr/share/doc/ -name '*.txt') | zegrep -ic '\<exception\>'

if you want 'exceptional' to match, don't use the '\<' and '\>' around the word.

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How about starting with:

cat * | sed 's/ /\n/g' | grep '^aaa$' | wc -l

as in the following transcript:

pax$ cat file1
this is a file number 1

pax$ cat file2
And this file is file number 2,
a slightly larger file

pax$ cat file[12] | sed 's/ /\n/g' | grep 'file$' | wc -l
4

The sed converts spaces to newlines (you may want to include other space characters as well such as tabs, with sed 's/[ \t]/\n/g'). The grep just gets those lines that have the desired word, then the wc counts those lines for you.

Now there may be edge cases where this script doesn't work but it should be okay for the vast majority of situations.

If you wanted a whole tree (not just a single directory level), you can use somthing like:

( find . -name '*.txt' -exec cat {} ';' ) | sed 's/ /\n/g' | grep '^aaa$' | wc -l
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There's also a grep regex syntax for matching words only:

# based on Carlos Campderrós solution posted in this thread
man grep | less -p '\<'
grep -roh '\<aaa\>' . | wc -l

For a different word matching regex syntax see:

man re_format | less -p '\[\[:<:\]\]'
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