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I am really new to bash scripting, and I can not figure it out how to do this. I have string which is an output of another command. I only need the end of this string to display. The separator string is ". " (dot and space), and I need the string after the last index of ". "

It would be easy in other languages for me, but I do not know how to do this basic operation in bash.

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3 Answers

up vote 1 down vote accepted

try this:

your cmd...|sed 's/.*\. //'

this works no matter how many "dot" or "dot and space" do you have in your input. it takes the string after the last "dot and space"

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@sputnick no, the two are different. mine works for OP, yours not. :) –  Kent Mar 21 '13 at 13:06
    
True. Thank you Kent! –  Patartics Milán Mar 21 '13 at 13:08
    
Yes, edited my post with only awk, thanks –  sputnick Mar 21 '13 at 13:09
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If the string is in a variable:

$ foo="header. stuff. more stuff"
$ echo "${foo##*. }
more stuff

If there could be multiple instances of ". " (as in my example) and you want everything after the first occurance, instead of the last, just use one #:

$ echo "${foo#*. }"
stuff. more stuff
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Try this:

echo "This is a sentence. This is another sentence" | rev | cut -d "." -f1 | rev

The rev reverses the output. The -d specifies the delimiter, breaking everything up into fields. The -f specifies the fields you want to use. We can select f1, because we reversed the data. We don't need to know how many fields there are in total. We just need to know the first. At the end, we reverse it again, to put it back in the right order.

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-1 the delimiter is dot-space, not dot. This answer will give you a leading space. –  dogbane Mar 21 '13 at 13:12
    
You should read again the question (I do the same error in first instance) –  sputnick Mar 21 '13 at 13:12
    
Ahh, I missed that. Thx –  Paul Calabro Mar 21 '13 at 13:19
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