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I'm getting the number of appearances of a specific string in a file with:

grep -o "\bstring \b" $file | wc -l

But when I have a string like ":2_n" this string has ":" at the beginning and in this case grep doesn't work, it gives me a count of 0 each time even though my file has multiples ":2_n" How can I do this? Thankyou.

My file is like this

:2_n nE Ea an no o:2 :2_n _na 

If I use grep to see the number appearances of ":2_n"

grep -o "\b:2_n \b" $file | wc -l

grep gives me 0, With other strings it works perfectly, the problem is with the strings that have ":" at the beginning

  • Since you have not shown samples so I couldn't test it in grep, if you are ok with awk could you please try following once awk '{sum+=gsub(/:2_n/,"&")} END{print sum}' Input_file? – RavinderSingh13 Jan 20 at 17:17
  • Try with "grep -F "\bstring \b" $file | wc -l – Maulik Sakhida Jan 20 at 17:18
  • :2_n doesn't match with :2_n (white space just after). – Jean-Baptiste Yunès Jan 20 at 17:18
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    \b matches a word boundary, which means character on left is word and character on right is non-word, or vice versa. : and beginning of line are both non-word, so : is not at a word boundary. – Barmar Jan 20 at 17:40
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    The obvious fix is to not look for a word boundary before the :. Why can't you just remove that initiial \b? – Toby Speight Jan 20 at 17:40
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As Barmar explains, the expression \b matches at the boundary between a word character (alphanumeric plus "_") and a non-word character (other characters than "word").

As the string :2_n starts with a non-word character and ends with a word character, it is not suitable to use \b to extract the string out of the sentence.
Let's see examples.

^:2_n    ("^" indicates the start of line)
 | Both "^" and ":" are non-word characters hence "\b" doesn't match.

:2_n :2_n
     | Both " " and ":" are non-word characters hence "\b" doesn't match.

Assuming your string is defined as a sequence of non-blank character(s), separated by a blank character, you can say instead:

grep -Po "(^|(?<=\s)):2_n((?=\s|$))" file | wc -l
  • The -P option to grep enables the perl-compatible regex.
  • The pattern (^|(?<=\s)) is a zero-width lookbehind assertion and matches the start of line or a preceding blank character without including it in in the result.
  • The pattern ((?=\s|$)) is a zero-width lookahead assertion and matches the end of line or a following blank character without including it in in the result.

The -P option may not be supported depending the grep version. Please let me know in such a case.

| improve this answer | |
  • The -P option worked but is very slow – David Romero Jan 21 at 16:45
  • Then please try ripgrep instead. It is much faster than grep. – tshiono Jan 22 at 6:22

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