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After applying some commands I have a data set as below

graph_name=abc
group_name=def
factory=xyz
export a=1
export b=2
export c=3

Now how can i acheieve the below output

graph_name=abc
export a=1
export b=2
export c=3

I need all the export statements in addition with just graph_name containing record.

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Do you only want the first "graph_name" line because its value contains the exported variable names? –  glenn jackman May 4 '11 at 13:16
    
no its not like that I asked this as per my requirement.Thanks Jack. –  srihari May 4 '11 at 13:53
    
Ah, I read "group_name" as another "graph_name" record. –  glenn jackman May 4 '11 at 14:06

4 Answers 4

up vote 1 down vote accepted
sed -n -e '/^graph_name=/p' -e '/^export /p' your-file

This doesn't print by default (-n); it then explicitly prints those lines that match what you want.

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Try egrep to match any of a number of patterns separated by the pipe symbol. Here I am looking for lines beginning with "graph_name" or "export":

egrep "^graph_name|^export" your_file
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some awk solutions:

awk '/^graph_name=/ || /^export /' filename
awk '/^(graph_name|export)\>/' filename
awk -F '[= ]' '$1 == "graph_name" || $1 == "export"' filename
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A simple grep command:

grep -w -e "graph_name=" -w -e "export" tmp FILENAME
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Isn't that two grep commands? Also, the * in the commands mean that you'll print 'graph_nam=xyz' and 'expor p=4' lines too. –  Jonathan Leffler May 3 '11 at 20:46
    
Fixed. Also, the question is asking for the graph_name line, so printing "graph_name=xyz" shouldn't be an issue. Neither is printing export d and so on. –  Apophenia Overload May 3 '11 at 20:51
    
Note the spelling I quoted - dropping the 'e' in graph_nam=xyz was not an accident (nor was dropping the 't' in 'expor p=4'). –  Jonathan Leffler May 3 '11 at 20:57
    
Fixed, thanks. Added the -w flag. –  Apophenia Overload May 3 '11 at 21:02
    
Thank you Apophendia –  srihari May 3 '11 at 21:10

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