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I have put together this one-liner that prints all the words in a file on different lines: sed -e 's/[^a-zA-Z]/\n/g' test_input | grep -v "^$"

If test_input contains "My bike is fast and clean", the one-liner's output will be:
My
bike
is
fast
and
clean

What I would need now is a different version that prints all the 2-word terms in the text, like this (still with the Bash):
My bike
bike is
is fast
fast and
and clean

Would you know how to do it?

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Would sed 's/([a-zA-Z]+[^a-zA-Z]+[a-zA-Z]+)[^a-zA-Z]+/$1\n/g' do it? I have no linux at hand... –  chiccodoro Jun 21 '10 at 16:33
    
@chiccodoro: Changing yours to sed -r ... and the $1 to \1, it prints two words per line, but it doesn't repeat the words. –  Dennis Williamson Jun 21 '10 at 17:28

5 Answers 5

Pipe your word file to this script's standard input.

#! bash
last_word=""
while read word
do
  if [ $last_word != "" ] ; then
      echo $last_word $word
  fi
  last_word=$word
done
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This script is not general. –  crenate May 16 '12 at 15:00

This also works:

paste  <(head -n -1 test.dat) <(tail +2 test.dat)
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use awk for this, no need anything else

$ echo "My bike is fast and clean" | awk '{for(i=1;i<NF;i++){printf "%s %s\n",$i,$(i+1) } }'
My bike
bike is
is fast
fast and
and clean
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sweet and simple:) –  Vijay Jun 22 '10 at 5:50

This probably requires GNU sed and there's probably a simpler way:

sed 's/[[:blank:]]*\<\(\w\+\)\>/\1 \1\n/g; s/[^ ]* \([^\n]*\)\n\([^ ]*\)/\1 \2\n/g; s/ \n//; s/\n[^ ]\+$//' inputfile
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to your command add:

| awk '(PREV!="") {printf "%s %s\n", PREV, $1} {PREV=$1}'
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