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I have lines in a file which look like the following

....... DisplayName="john" ..........

where .... represents variable number of other fields.

Using the following grep command, I am able to extract all the lines which have a valid 'DisplayName' field

grep DisplayName="[0-9A-Za-z[:space:]]*" e:\test

However, I wish to extract just the name (ie "john") from each line instead of the whole line which is returned by grep. I tried pipelining the output to the cut command but it does not accept string delimiters.

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4 Answers 4

You can do it with sed by selecting some specific regexp group. Check it here: http://superuser.com/questions/11130/can-gnu-grep-output-a-selected-group

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Specifically:

sed 's/.*DisplayName="\(.*\)".*/\1/' 

Should do, sed semantics is s/subsitutethis/forthis/ where "/" is delimiter. The escaped parentheses in combination with escaped 1 are used to keep the part of the pattern designated by parentheses. This expression keeps everything inside the parentheses after displayname and throws away the rest.

This can also work without first using grep, if you use:

sed -n 's/.*DisplayName="\(.*\)".*/\1/p'

The -n option and p flag tells sed to print just the changed lines.

More in: http://www.grymoire.com/Unix/Sed.html

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This works for me:

awk -F "=" '/DisplayName/ {print $2}'

which returns "john". To remove the quotes for john use:

awk -F "=" '/DisplayName/ {gsub("\"","");print $2}'
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The grep -o option just displays the match, and if that's still too much you can try sed.

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