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This code will give the first part, but how to remove it, and get the whole string without the first part?

echo "first second third etc"|cut -d " " -f1
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up vote 7 down vote accepted

You should have a look at info cut, which will explain what f1 means. Also, a same question here: question-7814205

Actually we just need fields after(and) the second field. -f tells the command to search by field, and 2- means the second and following fields.

echo "first second third etc" | cut -d " " -f2-
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your answer was the first, thank you for your help – Hard Rain Dec 9 '12 at 14:24

You can do:

echo "first second third etc" | cut -d " " -f2-
>> second third etc
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thank you for your help – Hard Rain Dec 9 '12 at 14:25

You can use substring removal for that, no need for external tools:

$ foo="a b c d"
$ echo ${foo#* }
b c d
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thank you for your help – Hard Rain Dec 9 '12 at 14:30

Try this:-

  echo "first second third etc"|cut -d " " -f2-
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thank you for your help – Hard Rain Dec 9 '12 at 14:29

Try doing this :

echo "first second third etc"|cut -d " " -f2-

It's explained in

 man cut | less +/N-

N- from N'th byte, character or field, to end of line

As far of you have the tag, you can use bash parameter expansion like this :

x="first second third etc"
echo ${x#* }
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thank you for your help – Hard Rain Dec 9 '12 at 14:25

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