3

I am trying to extract "first 12 of last 24 character" from a line, i.e., for a line:

species,subl,cmp=    1    4    1    s1,torque= 0.41207E-09-0.45586E-13

I need to extract "0.41207E-0". (I have not written the code, so don't curse me for its formatting. )

I have managed to do this via:

  var_s=`grep "species,subl,cmp=    $3    $4    $5" $tfile |sed -n '$s/.*\(........................\)$/\1/p'|sed -n '$s/\(............\).*$/\1/p'`

but, is there any more readable way of doing this, rather then counting dots?

EDIT Thanks to both of you; so, I have sed,awk grep and bash. I will run that in loop, for 100's of file. so, can you also suggest me which one is most efficient, wrt time?

  • Haven't benchmarked anything but I tend to believe that pure bash solution should be fastest since it doesn't invoke any external binary. – anubhava Aug 2 '13 at 18:50
  • Don't pre-optimize.. Only optimize when speed becomes a problem. The best solution is the one you understand the most and feel most comfortable extending yourself. – Chris Seymour Aug 2 '13 at 19:01
7

One way with GNU sed (without counting dots):

$ sed -r 's/.*(.{11}).{12}/\1/' file
0.41207E-09

Similarly with GNU grep:

$ grep -Po '.{11}(?=.{12}$)' file
0.41207E-09

Perhaps a python solution may also be helpful:

python -c 'import sys;print "\n".join([a[-24:-13] for a in sys.stdin])' < file
0.41207E-09

I'm not sure your example data and question match up so just change the values in the {n} quantifier accordingly.

  • +1 for 3 interesting options. Just a note that on OSX replace sed -r with sed -E – anubhava Aug 2 '13 at 19:13
  • @anubhava you may be interested in this undocumented features of GNU sed that -E is an alias for -r unfortunately this is not the case the other way round. – Chris Seymour Aug 2 '13 at 19:17
  • Oh yes I came to know about it after installing gnu sed on my OSX last month using home brew – anubhava Aug 2 '13 at 19:23
  • Thanks for GREP solution ! It saves me loooong listing of logs with Base64 encode images. – Foton May 23 '16 at 11:54
4

Simplest is using pure bash:

echo "${str:(-24):12}"

OR awk can also do that:

awk '{print substr($0, length($0)-23, 12)}' <<< $str

OUTPUT:

0.41207E-09

EDIT: For using bash solution on a file:

while read l; do echo "${l:(-24):12}"; done < file
  • 1
    +1 for the bash solution, it would be useful to show how to extended it's use with files. – Chris Seymour Aug 2 '13 at 19:05
  • @sudo_O: Thanks, for using it file I guess a while loop will be required for bash solution. (which can be avoided in sed, grep, awk etc) – anubhava Aug 2 '13 at 19:07
2

Another one, less efficient but has the advantage of making you discover new tools

`echo "$str" | rev | cut -b 1-24 | rev | cut -b 1-12
0

You can use awk to get first 12 characters of last 24 characters from a line:

awk '{substr($0,(length($0)-23))};{print substr($0,(length($0)-10))}' myfile.txt
  • You can easily do this in a single invocation of awk; piping the output of awk to another awk is wasteful. – Keith Thompson Aug 20 '13 at 16:00

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