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I have following type of text pattern in a text file on Linux. I need to get only last part of this text. How can I get that?

tmk.mfg.pref.ZPreferes::getKey
com.sun.star.uno.SCompentCont::getSage
com.sun.star.lang.XMultiComponentFactory::createInstanceWithContext

I need only last part of each line i.e. getKey, getSage, etc. Can anyone tell me how to get it with cut or any other command. Thanks in advance.

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You have 10 questions, all of which are not accepted. Take care of them –  Mu Qiao Sep 6 '11 at 12:14

5 Answers 5

up vote 0 down vote accepted

One liner bash script:

for line in $(cat test); do echo ${line//*::}; done
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This assumes no white spaces in the lines. –  Teddy Sep 7 '11 at 11:50

I guess that you want to program a bash script for this since you are posting it on stack overflow. Of course you will never the less still get a one liner.

I would have used grep

grep -o -e "[a-zA-Z][a-zA-Z0-9_]*$" TEXTFILE.TXT

Note that the regexp I am using is for a standard identifier in java/c/c++ change it to suit your need.

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No underscore in an identifier? –  glenn jackman Sep 6 '11 at 17:44
    
of course, forgot :) Fixed now –  daramarak Sep 7 '11 at 6:25

Pipe it into cut: [...] | cut -d: -f3

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its not working it gives first part of line text i.e. in above case it gives tmk.mfg.pref.ZPreferes, com.sun.star.uno.SCompentCont.. can u tell me another solution? –  Prajkata Sep 6 '11 at 12:15
    
That would return the first field, which in this instance is tmk.mfg.pref.ZPreferes etc, I think you meant -f3 –  beny23 Sep 6 '11 at 12:16
    
@beny23: D'oh, typo... Prajkata: Sorry about that, should work now –  carlpett Sep 6 '11 at 12:29

I would suggest either sed:

sed --expression='s/.*://'

or awk:

awk -F: '{ print $NF }'

Or, if you explicitly want the third colon-separated field (instead of the last field):

awk -F: '{ print $3 }'

Or, if you want to use only bash builtins:

while read line; do echo "${line##*:}"; done
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while read line; do 
  echo "${line##*:}"  # removes everything up to and including the last colon
done < input.file
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You mean ##, not %% –  Teddy Sep 7 '11 at 7:35
    
Quite right, thanks. –  glenn jackman Sep 7 '11 at 10:08

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