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from my ksh I have

  [[  ` echo $READ_LINE | awk '{print $2}' ` != SOME_WORD  ]] && print "not match"

can I get suggestion how to verify the same without echo command? ( maybe awk/sed is fine for this? )


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4 Answers 4

up vote 0 down vote accepted

Something like this will work:

awk -v x="$READ_LINE" -v y="SOME_WORD" 'BEGIN { split(x, a); if (a[2] != y) print "not match";}'

But where does $READ_LINE come from? What are you trying to accomplish? There might just also is a good plain sh or ksh solution.

I highly doubt your claim that echo (which might be a shell builtin) takes more time than awk. Here is a plain sh version:

set -- $READ_LINE
[ x$2 != xSOME_WORD] && echo "not match" 

But the ksh solution of Dennis Williamson looks the best for your situation.

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the target is to save time (echo take time awk not) – lidia Aug 30 '10 at 9:07
read ign val && [ X$val != XSOME_WORD ] && echo "not match"
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This splits the line by words and tests the second word.

[[  ${var[1]} != SOME_WORD  ]] && print "not match"

What is it you're trying to accomplish? Several of your questions are nearly identical.

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var=($READ_LINE) isnt valid syntax in ksh! – lidia Aug 30 '10 at 9:59
yes it is. you must be using very old ksh – ghostdog74 Aug 30 '10 at 13:48
@lidia: What version of ksh? Are you using #!/bin/ksh, #!/usr/bin/ksh or #!/bin/sh as the first line of your script (the shebang)? – Dennis Williamson Aug 30 '10 at 14:23

if you are using ksh, then just use the shell without having to call external commands

set -- $READ_LINE
case "$2" in
  "SOME_WORD" ) echo "found";;

Why are you still tacking this problem since I see you have other threads similar to this.?

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