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how to print text between two specific words using awk, sed ?

$ ofed_info | awk '/MLNX_OFED_LINUX/{print}'
MLNX_OFED_LINUX-4.1-1.0.2.0 (OFED-4.1-1.0.2):
$

Output required:-

4.1-1.0.2.0
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Following awk may help you here.(considering that your input to awk will be same as shown sample only)

your_command | awk '{sub(/[^-]*/,"");sub(/ .*/,"");sub(/-/,"");print}' 

Solution 2nd: With sed solution now.

your_command | sed 's/\([^-]*\)-\([^ ]*\).*/\2/'

Solution 3rd: Using awk's match utility:

your_command | awk 'match($0,/[0-9]+\.[0-9]+\-[0-9]+\.[0-9]+\.[0-9]+\.[0-9]+/){print substr($0,RSTART,RLENGTH)}'
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You may use this sed:

echo 'MLNX_OFED_LINUX-4.1-1.0.2.0 (OFED-4.1-1.0.2):' |
sed -E 's/^[^-]*-| .*//g'

4.1-1.0.2.0

This sed command removes text till first hyphen from start or text starting with space towards end.

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Try this:

ofed_info | sed -n 's/^MLNX_OFED_LINUX-\([^ ]\+\).*/\1/p'

The sed command only selects lines starting with the keyword and prints the version attached to it.

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