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I would like to search through a rather large, sorted file (by the 4th, then the 3rd column), find the first time a new word is found in the 4th column and print out the whole line to a new file. For example, my file looks like this:

c1 23 1912 PE_1.7
c1 25 2334 PE_1.7
c1 59 2340 PE_1.7
c1 28 2342 PE_1.7
c1 30 2345 PE_1.7
c1 45 2346 PE_1.7
c1 23 2348 PA_11.4
c1 24 2352 PA_11.4
c1 57 2362 PA_123.2
c1 26 2372 DA_1.5

And I would hope the new file would look like this:

c1 23 1912 PE_1.7
c1 23 2348 PA_11.4
c1 57 2362 PA_123.2
c1 26 2372 DA_1.5

I am rotten with regex but I was thinking something along these lines:

grep \t.[_].[\.]$

Is there a good way to do this type of grep, or am I barking up the wrong tree, so to speak?

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4 Answers 4

1

This

uniq --skip-fields=3 input.txt 

Yields:

c1 23 1912 PE_1.7
c1 23 2348 PA_11.4
c1 57 2362 PA_123.2
c1 26 2372 DA_1.5
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  • Chosen because it lets me do what I need to, without the need for sticky regex Commented Oct 1, 2013 at 15:09
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try this awk one-liner:

awk 'p!=$4{print;p=$4}' file > newFile
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  • 1
    @fedorqui fyi sorted file (by the 4th, then the 3rd column)
    – Kent
    Commented Oct 1, 2013 at 15:02
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Try this:

$ awk '!x[$4]++' file
c1 23 1912 PE_1.7
c1 23 2348 PA_11.4
c1 57 2362 PA_123.2
c1 26 2372 DA_1.5
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  • Could you explain the regex you chose? As I mentioned, I am really rotten at it and I hope to learn from what you did. Commented Oct 1, 2013 at 15:07
  • @user2076476 It's a concise way of saying what is mentioned in this answer.
    – devnull
    Commented Oct 1, 2013 at 16:12
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It is simpler to use awk:

awk '!($4 in a) {a[$4]; print}' file
c1 23 1912 PE_1.7
c1 23 2348 PA_11.4
c1 57 2362 PA_123.2
c1 26 2372 DA_1.5
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  • Could you explain the regex you chose? As I mentioned, I am really rotten at it and I hope to learn from what you did. Commented Oct 1, 2013 at 15:08

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