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I have a line in my log file that has the version number of the build in question. it will always be 1.43.93.* e.g.

<some text > Version=1.43.98.7488, <more text>

I just want to extact the version number.

None of the following return anything:

grep -G -m 1 1.43.98\.\d+ mylog.txt
egrep -m 1 "1.43.98\.\d+" mylog.txt

The build number occurs in mutliple places in the logfile (which is why I'm passing the -m flag with a value of 1), but obviously I'm only interested in the first match.

Any tips will be appreciated. I'm using Cygwin (GNU grep 2.6.3).

Thanks

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3 Answers 3

First make sure that \d works - you will probably have to set the -P option (perl regex) and test it against a something simple.

I spent many hours wondering why my regex worked on one platform and not another only to find that grep on one machine had been built without the -P option enabled. All \d regexs were being ignored and I had to use either [:digit:] or [0-9] instead :(

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yep, seems \d is being ignored. thanks –  Pyderman Jun 11 '12 at 10:43

I don't have cygwin env. the following grep line was tested under linux.

kent$  cat a
<some text > Version=1.43.98.7488, <more text>
<some text > Version=1.43.98.7488, <more text>
<some text > Version=1.43.98.7488, <more text>
<some text > Version=1.43.98.7488, <more text>
<some text > Version=1.43.98.7488, <more text>

kent$  grep -oPm 1 '(?<=Version=)[0-9\.]+(?=,)' a
1.43.98.7488


kent$  grep -V
GNU grep 2.5.3
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thanks. the -o flag was the key and in the end, egrep -om 1 1.43.98.[0-9]+ a did the trick –  Pyderman Jun 11 '12 at 10:45
grep -o -m 1 1.43.98.[[:digit:]]* a
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that worked, thanks –  Pyderman Jun 11 '12 at 10:47

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