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I would like to grep lines which include a comma followed by four identical digits followed by a comma followed by an alphabetic character.

I tried

grep -E ,'1111|2222|3333|4444|5555|6666|7777|8888|9999',[[:alpha:]] file

This doesn't seem to do what I describe. The problem is that it doesn't handle the commas and [[:alpha:]] properly it seems.

How can you do this?

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2 Answers 2

up vote 6 down vote accepted

It's because your alternation is not applied in the way you are expecting. To make it behave as you want, you need to use groups:

grep -E ,'(1111)|(2222)|(3333)|(4444)|(5555)|(6666)|(7777)|(8888)|(9999)',[[:alpha:]] file

Alternatively, this could be expressed more succinctly using a backref:

grep -E ,'([[:digit:]])\1{3},[[:alpha:]]' file

which basically means the same digit 4 times. This also includes 0, however, so it may or may not help you.

EDIT:

Of course... to make it only 1-9, you could

grep -E ,'([1-9])\1{3},[[:alpha:]]' file
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Thank you. The options you give are very slow unfortunately. Is there a way to speed them up? –  Anush Sep 3 '13 at 15:07
    
@Anush: What's the scale of the file? MB? GB? How long is it taking? –  FatalError Sep 3 '13 at 15:09
    
About 1GB. It is much slower than the other answer. –  Anush Sep 3 '13 at 17:45
    
Could be the backref. Other than that it's not obvious to me why it should be so much slower, but regex can be a funny thing in terms of tuning them for efficiency. Do you see it only with the backref or with both? I'd be curious to know. –  FatalError Sep 3 '13 at 17:52
    
It is the backref. –  Anush Sep 3 '13 at 18:34

try this for you regex

',(1111|2222|3333|4444|5555|6666|7777|8888|9999|0000),\w'
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It should be [[:alpha:]] but apart from that this the fastest solution. Thank you. –  Anush Sep 3 '13 at 18:33

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