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How can I do a grep count by using timestamp?

Example: If I have a file in which I search a value xyz everytime. The file gets updated regularly.

20121912-07:15:55 abc cbfr xyz
20121912-07:16:40 mni cbfr xyz
-----------
-----------
-----------


20121912-08:15:55 gty cbfr xyz
20121912-08:20:55 jui uio xyz

I want to find out the occurences of xyz after 20121912-08:15:55 which in this case should be 2.

Doing a grep -c "xyz" filename reads the entire file and gives the result. I want to do it after the last update or using a timestamp.

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3  
Unfortunate choice for timestamp format. –  glenn jackman Dec 19 '12 at 19:39

6 Answers 6

try this one-liner:

awk '$NF=="xyz"&&$1>="20121912-08:15:55"{x++;}END{print x}' file
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didn't know awk would parse and compare timestamps; very neat one! –  Rubens Dec 19 '12 at 15:41
    
Dates are not in lexicographically descending order, e.g. 20122011-08:15:55 is "greater" than 20121912-08:15:55. –  Thor Dec 19 '12 at 15:42
    
does it work, then? i thought awk was parsing timestamps D: –  Rubens Dec 19 '12 at 15:43
2  
@Rubens: no it does not work, awk will perform a string comparison which, in this case, is not the same as a date comparison. It would work if the date format were: YYYYMMDD-HH:MM:SS. –  Thor Dec 19 '12 at 16:31

This is kind of a hack but just grep for the earliest date you want and print all lines after that using -A and then pipe to grep -c xyz:

$ fgrep -A 100 '20121912-08:15:55' file | fgrep -c 'xyz'
2

Note: fgrep is just fixed string grep as you're not using regex patterns, it's the same as doing grep -F.

As less hacky way would be to use sed to print all lines from the date, this way you wouldn't need to make sure the value to -A would cover the length of the file:

$ sed -n '/20121912-08:15:55/,$p' file | fgrep -c 'xyz'
2

This assumes of course you file is in sorted order by timestamps if it's not then:

$ sort file | sed -n '/20121912-08:15:55/,$p' | fgrep -c 'xyz'
2
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3 questions: a,what happens if the file is not sorted by timestamp? b, how about a line starting with 20121912-08:10:10? c, what if there are many many lines after 20121912-08 line? –  Kent Dec 19 '12 at 15:30
    
Answer now addresses all these points. –  iiSeymour Dec 19 '12 at 15:37

You can tell sed to print lines from a file given a range (start and stop point) - the range can be regex or line number notation.

For your need this should do it:

$ sed -n '/20121912-08:15:55/,$p' input.txt | grep -c xyz

Here the start point is given by the date, treated as a regular expression and the end point is the last line symbol $. p tells sed to print the lines within the range given. The -n option to sed tells it to not print the lines that it is processing.

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Taking inspiration from Kent's answer, here's some Perl that manipulates the odd timestamp into YYYYMMDD format:

ts="20121912-08:15:55" patt="xyz" perl -lane  '
    BEGIN {
        ($wanted_ts = $ENV{ts}) =~ s/^(....)(..)(..)/$1$3$2/;
        $pattern = qr{$ENV{patt}};
    }
    ($this_ts = $F[0]) =~ s/^(....)(..)(..)/$1$3$2/;
    $count++ if $this_ts ge $wanted_ts and /$pattern/;
    END {print $count}
'
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I'm assuming you want to find the occurrences of pattern: 'xyz' where the date/time value is greater than or equal to a specified date/time: '20121912-08:15:55'. Here's what I'd do using GNU awk. Run like:

awk -v pattern="xyz" -v time="20121912-08:15:55" -f script.awk file

Contents of script.awk:

BEGIN {
    stamp = convert(time)
}

$0 ~ pattern && convert($1) >= stamp {
    i++
}

END {
    print i
}

function convert(var) {

    x = "(....)(..)(..)-(..):(..):(..)"
    y = "\\1 \\3 \\2 \\4 \\5 \\6"

    return mktime(gensub(x,y,"",var))
}

Results:

2

Alternatively, here's the one-liner:

awk -v pattern="xyz" -v time="20121912-08:15:55" 'BEGIN { stamp = convert(time) } $0 ~ pattern && convert($1) >= stamp { i++ } END { print i } function convert(var) { return mktime(gensub(/(....)(..)(..)-(..):(..):(..)/,"\\1 \\3 \\2 \\4 \\5 \\6","",var)) }' file
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Hmmm, quickly written one :

 grep xyz filename | sed -r 's/^([^ ]+).*/ 20121912-08:15:55 <= \1/' | sed -r 's/([0-9]{4})([0-9]{2})([0-9]{2})/\1\3\2/g' | sed 's/[-:]//g' | bc | grep 1 | wc -l

It's pretty ugly (I'm not a sed nor command line master) and may probably be shortened, but it's a way to do it. Explanation below :

  grep xyz filename                                  //gets all interseting lines
| sed -r 's/^([^ ]+).*/ 20121912-08:15:55 <= \1/'    //transform them into 
                                                       //comparison with the 
                                                       //date you want
| sed -r 's/([0-9]{4})([0-9]{2})([0-9]{2})/\1\3\2/g' //invert day and month
| sed 's/[-:]//g'                                    //remove separators
| bc                                                 //ask bc result 
| grep 1                                             //get true results only
| wc -l                                              //and finally count them

For last line of your example, the steps would give :

20121912-08:20:55 jui uio xyz                  //grep 'xyz'
20121912-08:15:55 <= 20121912-08:20:55         //sed
20121219-08:15:55 <= 20121219-08:20:55         
20121219081555 <= 20121219082055               
1                                              //result from bc

HTH

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1  
Downvoting is fine, when explained... ? –  psycho Dec 19 '12 at 17:26

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