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I have a variable in a linux bash ".sh" script

$data="test_1"

now I want to create a new variable ($name) that contains only the part of $data before the underscore, so

$name="test"

I thought of doing this with sed

name=$(echo "$dataset" | sed 's/_.*//');

but this doesn't seem to work. What am I doing wrong?

  • 2
    $data="test_1" is wrong. Variables are set without the dollar sign: data="test_1". – fedorqui Jun 1 '16 at 10:48
  • To me it does work, even though it is best to say echo "${data%%_*}". – fedorqui Jun 1 '16 at 10:49
5

No need to call an external process(sed). Instead you can use shell's parameter substitution like this:

$ data="test_1"

$ echo "${data%%_*}"
test

${var%%Pattern} Remove from $var the longest part of Pattern that matches the back end(from the right) of $var.

${var%Pattern} for removing shortest pattern

More info on parameter substitution can be found here.

You can store it in a variable like this:

$ name="${data%%_*}"

$ echo "$name"
test
  • but this doesn't store it in a new variable? – user1987607 Jun 1 '16 at 10:54

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