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i have a file with lots of lines like that

Code:

randomstring | randomstring

and i want to remove everything until the "|".

Any ideas how to do this with sed/awk?

TIA!

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5 Answers

Try this

sed 's/^[^|]*.//' 

Basically from the beginning of the line, substitute everything from the beginning till "|" with blank

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Make sure to baruch the beginning and end of the line:

sed -e  's/^.*\(|.*\)$/\1/'
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In awk, you can set the field separator to just about anything.

awk 'BEGIN{ FS="|" }{print FS, $2}' yourfilename
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Sth shorter with same essence: awk -F'|' '{print $2}' filename –  ssapkota Jun 20 '11 at 17:57
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try this

awk '{print $3}' file
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He doesn't mean to get the third word, check the question again. He wants this: awk -F'|' '{print $2}' file –  ssapkota Jun 20 '11 at 17:54
    
@ssapkota. My solution is the same as yours, except I use the default FS. That of course, is according to his sample data and assuming they are uniform across.... –  ghostdog74 Jun 22 '11 at 0:58
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For the multiple | in the lines:

astr | bstr | cstr | dstr

Greedy match

sed 's/.*|//'  < file  # will result: ` dstr`
sed 's/.*|/|/' < file  # will result: `| dstr`

Non-greedy match

sed 's/^[^|]*|//'  < file # will result: ` bstr | cstr | dstr`
sed 's/^[^|]*|/|/' < file # will result: `| bstr | cstr | dstr`

shorter - with the cut command

cut -d'|' -f-1   < file # will result: `astr `
cut -d'|' -f-2   < file # will result: `astr | bstr `
cut -d'|' -f2-   < file # will result: ` bstr | cstr | dstr`
cut -d'|' -f3-   < file # will result: ` cstr | dstr`
cut -d'|' -f2    < file # will result: ` bstr `
cut -d'|' -f2-3  < file # will result: ` bstr | cstr`
cut -d'|' -f2,4  < file # will result: ` bstr | dstr`
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