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Suppose we have a string of the form

first;second;third;fourth

I would like to print

second;third;fourth

How would I do it?

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Where is that string coming from? Is it stored in a variable? –  ztank1013 Oct 29 '11 at 19:22
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5 Answers

up vote 3 down vote accepted

Reading between the lines of your requirements, if you want to print everything after the first semicolon, I would use the POSIX standard expr utility.

expr "first;second;third;fourth" : '[^;]*;\(.*\)'
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thats rather cryptic for such a simple task .... –  ennuikiller Oct 29 '11 at 19:43
    
@ennuikiller: What exactly do you mean by cryptic? It was the most portable solution that I could think of at the time. –  Charles Bailey Oct 29 '11 at 20:19
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Use parameter substitution (match beginning; delete shortest part):

str="first;second;third;fourth"

echo "${str#*;}"
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The cut command may do the trick very nicely:

echo "first;second;third;forth" | cut -d';' -f2-
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    $ v="first;second;third;fourth"
    $ echo ${v#first;}
    second;third;fourth
    $ q=${v#*;}
    $ echo $q
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echo "first;second;thrid;fourth" | awk -F";" '{print substr($0,index($0,$2))}'

A lot of these answers work, and I think cut may be the best solution, but its a slow night so I added another, print field 2 to end of the line.

Its very similar to a different question however:

Print Field 'N' to End of Line

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