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How am I supposed to print with one Unix command the names (and only the names) of company JMT? Problems with scandinavian letters? By typing

grep JMT url | egrep --only-matching '[^[:digit:]]+'

I still have company name and + marks I should get rid of.

I'd be very grateful of your help bacause I am new to this.

   [Name]                      [Company]

1. Matti Meikäläinen              TTK              36.9
2. Teemu Aho                      JMT              37.0  +0.1
3. Kaarna Käyrä                   JMT              37.1  +0.1
4. Maija Meheväv                  TTK              37.2  +0.1
5. Giglio Matjusha                JMT              37.3  +0.1
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closed as off topic by esaj, talonmies, PHeiberg, casperOne Feb 13 '12 at 1:59

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Use awk rather than grep, it's much easier to search for text and print other details from matching lines. For example:

% echo '[Name] [Company]

Matti Meikäläinen TTK 36.9
Teemu Aho JMT 37.0 +0.1
Kaarna Käyrä JMT 37.1 +0.1
Maija Meheväv TTK 37.2 +0.1
Giglio Matjusha JMT 37.3 +0.1' | awk '$3 == "JMT" { print $1, $2 }'
Teemu Aho
Kaarna Käyrä
Giglio Matjusha

This checks whether the third "word" is "JMT" and if so, prints the first and second words. No regular expressions needed (for this case).

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That works beautifully as long as there are no company names with just one word, or three or more words. – Jonathan Leffler Feb 12 '12 at 17:57

Try using the -o flag to grep for printing just the matches (like --only-matching), and feeding in the -P flag for perl regex:

grep -o -P '\b[^\d]+\bJMT\b' <your_file_name>

gives:

Teemu Aho JMT
Kaarna Käyrä JMT
Giglio Matjusha JMT

This does assume "JMT" is the last word in the company name. If not just add a following [^\d+]\b to the end (The \b ensure that trailing/leading spaces aren't included).

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Imagine your output as a file (for suppressing odd symbols)

$> cat ./text 
[Name] [Company]

Matti Meikäläinen TTK 36.9
Teemu Aho JMT 37.0 +0.1
Kaarna Käyrä JMT 37.1 +0.1
Maija Meheväv TTK 37.2 +0.1
Giglio Matjusha JMT 37.3 +0.1

So the solution is

$> cat ./text | grep --perl-regexp --only-matching ".*(?=JMT)"
Teemu Aho 
Kaarna Käyrä 
Giglio Matjusha 

If you wanna get rid of the number in front of name:

$> cat ./text | grep --perl-regexp --only-matching "[^0-9]*(?=JMT)"
Teemu Aho 
Kaarna Käyrä 
Giglio Matjusha 

What are we use here is regexp extension from perl, where from we've got those lookahead operator (there is a nice link with some info about it).

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It works perfectly but how am i supposed to get rid of the number in front of the name? – user1204954 Feb 12 '12 at 11:32
1  
Add that condition to regexp: "[^0-9]*(?=JMT)" – ДМИТРИЙ МАЛИКОВ Feb 12 '12 at 11:34
    
How does this cat command work? Can I just type $> cat my url | grep --perl-regexp --only-matching ".*(?=JMT) ? – user1204954 Feb 12 '12 at 11:48
    
Grep can takes input stream and process it (like echo "ab" | grep -o "a" returns a). Grep also can takes file as argument. So you should redirect your output (it could be the file output or some command output) to grep wipe | . – ДМИТРИЙ МАЛИКОВ Feb 12 '12 at 11:51

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