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how can I capture all lines from a text file that begin with the character "X" or contain the word "foo"?

This works:

cat text | grep '^@'  # begins with @

but I tried:

cat text | grep '^@|[foo]' 

and variations but cannot find the right syntax anywhere. how can this be done?

thanks.

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3 Answers 3

up vote 5 down vote accepted

If your grep implementation isn't POSIX compliant, you can use egrep instead of grep:

egrep '^@|foo' text
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1  
With GNU grep, grep -E is an alternative –  Armand Apr 25 '13 at 5:28
cat text | grep '^@|foo'

does this. [foo] matches one character that's either an f or an o.

If you don't want to match parts of words like the foo in foobar, use word boundary anchors:

cat text | grep '^@|\bfoo\b'
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contains the word "foo" is: (.*foo.*) so your regex would become:

cat yourFilePath | grep -E '^@|(.*foo.*)'
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+1 for grep -E, although shouldn't it be grep -E '(^@|foo)' ?? –  Tom McClure Jan 15 '13 at 17:53
    
@TomMcClure Both will work for grep (ie. both will return the whole line containing foo). From the regular expressions point of view /.*foo.*/ matches the whole line contaning foo while /foo/ only matches the word foo. As I said there's no difference here unless you use grep with -o option. –  fardjad Jan 15 '13 at 22:42
    
Down voter, care to explain? –  fardjad May 28 '13 at 8:18

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