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I have a file named LastNames.txt that lists 100 last names with percentage of popularity from 0 to 100. The question is how to use grep to create new file that contains last names with 0.000 percent popularity only. Note: I use Unix commands and this is the code I used:

grep '0.000' LastNames.tab > unpopularNames.tab

When I use this command I get some last names with greater percentage than 0.000.

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Better gives sample input/output here –  sputnick Feb 12 '13 at 23:46
    
input: grep '0.000' LastNames.tab > unpopularNames.tab output: PEACE 0.003 GAGLIARDI 0.001 ZUPAN 0.000 ZUCHOWSKI 0.000 –  user2066595 Feb 13 '13 at 2:45
    
@user2066595 - sputnik meant update your question with formatted sample input and formatted expected output, not add a comment with unformatted, undesirable output. –  Ed Morton Feb 13 '13 at 13:41
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3 Answers

Try doing this :

 grep '\b0\.000\b' LastNames
  • the dot . mean any character in
  • \. mean a literal .
  • \b means word boundaries
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that would match 10.000 –  Ed Morton Feb 13 '13 at 13:39
    
POST edited with word boundaries \b –  sputnick Feb 13 '13 at 13:56
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There's no reason to try to make grep do an RE comparison when what you really want is an arithmetic comparison:

$ cat file
PEACE 0.003
GAGLIARDI 0.001
ZUPAN 0.000
ZUCHOWSKI 0.000

$ awk '$NF == 0' file
ZUPAN 0.000
ZUCHOWSKI 0.000
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I suggest using the -F and -w flags to do a fixed string match on whole words:

grep -Fw 0.000 file

From man grep:

-F, --fixed-strings

Interpret PATTERN as a list of fixed strings, separated by newlines, any of which is to be matched. (-F is specified by POSIX.)

-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. Similarly, it must be either at the end of the line or followed by a non-word constituent character. Word-constituent characters are letters, digits, and the underscore.

Demo:

$ cat file
error      0E000
top      100.000
middle    50.000
lower     25.000
bottom     0.000

# Orignal over matching grep 
$ grep 0.000 file
error      0E000
top      100.000
middle    50.000
bottom     0.000

# With correct flags only right lines are matched
$ grep -Fw 0.000 file
bottom     0.000

Note: You could use fgrep instead of grep -F:

fgrep -w 0.000 file
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