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I have a bunch of times from apache logs...

96.99.193.124 - - [10/May/2012:22:59:29 +0000] 0 "GET / " 200 123 "-" "-"
96.29.193.124 - - [10/May/2012:22:59:56 +0000] 0 "GET / " 200 123 "-" "-"
96.29.193.125 - - [10/May/2012:22:59:56 +0000] 0 "GET / " 200 123 "-" "-"
96.29.193.125 - - [10/May/2012:23:00:00 +0000] 0 "GET / " 200 123 "-" "-"
96.29.193.125 - - [10/May/2012:23:00:00 +0000] 0 "GET / " 200 123 "-" "-"

To pull out the date timestamps, I do:

sed -e 's;^.*\(\[.*\]\).*$;\1;' inputFileName > outputFileName

Which gives me

[10/May/2012:22:59:29 +0000]
[10/May/2012:22:59:56 +0000]
[10/May/2012:22:59:56 +0000] 
[10/May/2012:22:59:56 +0000]
[10/May/2012:23:00:00 +0000] 
[10/May/2012:23:00:00 +0000]

I would like to drop the seconds part and the square brackets and the seconds and just get:

10/May/2012:22:59 
10/May/2012:22:59 
10/May/2012:22:59 
10/May/2012:23:00
10/May/2012:23:00

from the original file... Any tips?

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try sed -e 's;^.*\(\[(.*)\+\d+\]\).*$;\2; –  kuh-chan May 11 '12 at 14:18
    
That gives... sed: -e expression #1, char 30: unknown option to `s' –  dublintech May 11 '12 at 14:25

7 Answers 7

up vote 2 down vote accepted

why not just

 echo '96.99.193.124 - - [10/May/2012:22:59:29 +0000] 0 "GET / " 200 123 "-" "-""' \
 | sed 's/^.*\[//;s/ .*$//;s/...$//'

output

10/May/2012:22:59

explanation

       96.99.193.124 - - [10/May/2012:22:59:29 +0000] 0 "GET / " 200 123 "-" "-""'
      ^........pt1.......[                    ...............pt2.................$
                                           :.. (pt3)

Each part eliminates one chunk of the excess string

 pt1 s/^.*\]\[// 
     match/deletes everything up to the first [. 
     I use to `\[' to escape the normal meaning of that char in sed 
       as the beginning of a character class, i.e. `[a-z]` (for 1 example)
 pt2 s/ .*$//
     match/deletes everything from the first space char to the end of the line
 pt3 s/...$//
     match/deletes the last 3 chars form the end of the line.

Recall that in sed

  1. 's/matchpattern/replacepattern/' with the intitial 's' = substitute, is one of the main tools available.
  2. the ^ char in a regex anchors the matching to the beginning of the line
  3. the $ char anchors the matching of the regex to the end of the line.

You should execute just pt1, then add pt2 and then pt3 to easily see what is being achieved.

I hope this helps.

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@Shelter thanks. Good answer. –  dublintech May 11 '12 at 14:36
    
@shelter can you explain what every character in the regular expression is doing? –  dublintech May 15 '12 at 13:26

try this

sed -e 's;^.*\[\([^+]*\).*\].*$;\1;' 

explain:

1- I put the brackets outside of the group 2- and put the +something outside

and it is done.

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That gives a big blank file. –  dublintech May 11 '12 at 14:24
    
Prints the 29s of 2012:22:59:29. –  user unknown May 11 '12 at 14:59

This might work for you:

sed 's/.*\[\(.*\):.*/\1/' file

You can use greed to your advantage i.e. \(.*\): grabs everything before the last :

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or with -r switch and less masking: sed -r 's/.*\[(.*):.*/\1/' –  user unknown May 11 '12 at 14:56
sed -e 's;^.*\[\(.\{17\}\).*\].*$;\1;'

This version locates the starting bracket, then explicitly includes the next 17 characters (the string of interest) in the extracted group.

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You can simplify (remove many backslashes) with sed -r, see here: sed -re 's;^.*\[(.{17}).*\].*$;\1;' –  user unknown May 11 '12 at 14:54

Another way with grep -oP :

grep -oP "\[\K[^\]\[ ]+" FILE

If your grep does not have -P switch, try pcregrep

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Here is a pattern:

\[(\d+/\w+/\d+:\d+:\d+)

The bracket is used as an anchor. The matchers here are very general. For example, the month is captured using \w+ which will match any word containing letters or digits, but all the matchers combined using this order for that kind of Apache lines give a robust pattern.

You use this pattern on the entire line, and thus don't need to first capture the part within the bracket. Simply capture the eventual data you want.

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grep "[(\d+/\w+/\d+:\d+:\d+)" inputFileName gives nothing. Note: I am using cygwin for windows. –  dublintech May 11 '12 at 14:27
    
There should be a backslash in the beginning, like in my example –  CodeChords man May 12 '12 at 19:06
sed 's/.*\[//;s/:.. .*//' infile > outfile

Delete before [ and then from blank. Two commands.

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