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I have entries like

[NGS|00219|17-10-2012 19:05:43:977|INFO]

in my log file , how can find the unique time values (excluding milli second) in this log file using grep or other linux shell tools

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What do you mean by distinct time? Do you want all the logs where the timestamp (excluding millisecond) is unique? –  sampson-chen Oct 18 '12 at 6:09
    
@sampson-chen yes unique time excluding the millisecond information .. –  Akhil Thayyil Oct 18 '12 at 6:10
    
Does "time" include the date? –  jordanm Oct 18 '12 at 6:23
    
@jordanm only time date is not required .. –  Akhil Thayyil Oct 18 '12 at 6:24
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7 Answers

up vote 3 down vote accepted

Here's one way to print the unique times:

awk '!a[substr($2,0,8)]++ { print substr($2,0,8) }' file.txt
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+1 Cleaner than my single awk solution. –  jordanm Oct 18 '12 at 6:41
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Many ways, of course -- how about using cut, sed, and uniq:

 cut -d' ' -f2 logfile | sed -e 's/:[^:]*$//' | uniq

(Take only the stuff after the space, remove everything from the last colon to the end, and then eliminate duplicates.)

Or, just using sed and uniq:

 sed -e 's/.*\ \(.*\):[^:]*$/\1/' logfile | uniq
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Maybe not the most elegant:

awk '{print $2}' log.txt | cut -c 1-8 | uniq
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This script gives you all the unique timestamps (time only; excludes date. all duplicate timestamps are ignored):

#!/bin/bash

awk -F'[: ]' '{print $2 ":" $3 ":" $4}' | sort | uniq -u

The use of sort is optional (since I assume the logs are in chronological order)

If you want the entire lines that these timestamps are found in, let me know.

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awk can get unique elements. If gawk is available, you can easily do the sorting as well, without needing 3 processes. –  jordanm Oct 18 '12 at 6:22
    
That's good to know, thanks =) I'm looking at your solution now –  sampson-chen Oct 18 '12 at 6:23
    
My solution may not be exactly what he wanted. I went under the assumption of a unique date and time, but the logic is still the same. –  jordanm Oct 18 '12 at 6:24
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This is pretty simple in awk

awk -F'|' '{  
              split($3, a, / /);
              sub(/:[[:digit:]]+$/, "", a[2]); 
              arr[a[2]] = 1; 
           } END { 
              for (i in arr) 
                 print i 
           }' file.log

You can use the sub() function to remove miliseconds and then add the value as a key to an array. Since array keys are unique, this will remove any duplicates. After processing, the END block iterates over the keys and prints them.

Answer updated to exclude the date. This is done by using split() on the timestamp to remove the date portion.

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Not getting any output on my environment after your last edit, how about your side? –  sampson-chen Oct 18 '12 at 6:33
    
@sampson-chen I messed up the edit, thanks for pointing it out. It is fixed now. –  jordanm Oct 18 '12 at 6:39
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Myself found a good answer

egrep -o '[[:digit:]]+[:][[:digit:]]+[:][[:digit:]]+' NGS.log | uniq
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1  
There is always more than one way to do it! –  squiguy Oct 18 '12 at 6:40
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Similar to egrep command, you can use grep as follows:

grep -o -E '[[:digit:]]+[:][[:digit:]]+[:][[:digit:]]+' NGS.log|uniq

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