Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a file containing 14000 dates . I wrote a script to find the last 5 days ,

26/03/2002:11:52:25
27/03/2002:11:52:25
29/03/2002:11:30:41
30/03/2002:11:30:41
26/03/2002:11:30:41
02/04/2002:11:30:41
03/04/2002:11:30:41
04/04/2002:11:30:41
05/04/2002:11:52:25
06/04/2002:11:52:25

suppose this is the file , now I have date 02/04/2002:11:30:41 as an out put . I want to put the dates from 02/04/2002 till the end of the file in another file .

start-date = 02/04/2002 (this is my start date) 
while [start-date lt end-date] do (while start date is less than end date )
start-date++ ( add one day to start day so if its 2/4/2002 it will become 3/4/2002)
echo $start-date|tee -a file1  (put it in a file)

this code suppose to do so but it has problem ! why?

grep -n $SDATE thttpd.log | cut -d: -f1 (pattern=$SDATE)
sed '/$SDATE/=' thttpd.log
awk '/$SDATE/{ print NR }' thttpd.log
$ sed -n "$(awk '$SDATE/ { print NR }' input),$ p" thttpd.log
$ awk 'NR >= line_number' line_number=$(grep -n $SDATE -m 1 thttpd.log | cut -d: -f1) thttpd.log
share|improve this question
    
Are the dates sorted? –  gforcada Sep 23 '11 at 14:25
    
yeah yes the file is sorted in ascending order –  matarsak Sep 23 '11 at 14:26
add comment

6 Answers 6

up vote 2 down vote accepted

Assuming that the file is sorted by date-time:

 sed -n '\.^02/04/2002.,$p' dates.list > results.list

Prints from the first line starting with 02/04/2002 to the end of the file.

share|improve this answer
add comment

I haven't used it myself, but the gawk command (GNU's AWK) has the ability to manipulate date/time strings. And, gawk is the Linux version of the awk command.

You can also rewrite your whole program as a single awk script. That might make things a lot easier. Remember awk is a full blown programming language that simply assumes a read loop on the file and processes each line of a file.

share|improve this answer
add comment

programmatically, you can find the 5th last day like this:

startdate=$( cut -d: -f1 filename | sort -u -t/ -k3 -k2 -k1 | tail -5 | head -1 )

Then, you can print all days greater than or equal to this day:

awk -F: -v start="$startdate" '
  BEGIN { split(start, s, "/"); sdate=s[3] s[2] s[1] } 
  { split($1, d, "/");  if (d[3] d[2] d[1] >= sdate) print }
' filename
share|improve this answer
    
actually it not the 5th last day ! I work with 5 as an example to later on generate it ! it should work with any numbers ! and the script you wroe printed the whole logfile not what I wanted ! –  matarsak Sep 23 '11 at 19:58
add comment
awk -F"/|:" '{print $3$2$1}' File_Name|sort -u| tail -5
share|improve this answer
    
He already has the last 5 days, it's a subset of that which he's after. –  Sorpigal Sep 25 '11 at 3:58
add comment

I wrote a whole set of tools (dateutils) to tackle these kinds of problems. In your case it's simply:

dgrep -i '%d/%m/%Y:%H:%M:%S' '>=02/04/2002:11:30:41' < FILE

where the -i option specifies the input format and >=02/04/2002:11:30:41 is your cut-off date (>= means dates younger than the one specified of course).

share|improve this answer
add comment

Is this what you want?

#!/bin/bash
# presumes GNU date

# input date format won't be understood by GNU date
# reformat, then return date as seconds
reformat_date(){
    year=$(cut -d/ -f3<<<$(cut -d : -f1 <<<"$1"))
    month=$(cut -d/ -f2<<<$(cut -d : -f1 <<<"$1"))
    day=$(cut -d/ -f1<<<$(cut -d : -f1 <<<"$1"))

    hour=$(cut -d : -f2 <<<"$1")
    min=$(cut -d : -f3 <<<"$1")
    sec=$(cut -d : -f4 <<<"$1")

    date +%s -d "$(printf '%s-%s-%s %s:%s:%s' "$year" "$month" "$day" "$hour" "$min" "$sec")"
}

from=$(reformat_date "$1")

flag=
while IFS= read -r d ; do
    d_s=$(reformat_date "$d")
    if [ -z $flag ] && [ $(expr "$d_s" - "$from") -gt 0 ] ; then
            flag=1
    fi

    if [ ! -z $flag ] ; then
            printf '%s\n' "$d"
    fi
done < "$2"

Save as a script, pass your input date as the first argument and a filename to process as the second argument. Outputs lines from the file which appear after the first line to be later than the input date and time (including the first line).

So

./dates_from.sh '2/04/2002:11:30:41' dates.list > results.list

The pseudo-code you posted doesn't seem to do what the preceding sentence described, so I ignored it.

share|improve this answer
    
I changed the dates to epoch time to find the exact day that I want and again change it back, now i have a date and I want to print from that date till the end –  matarsak Sep 23 '11 at 18:33
    
@natarsak: That's what the code above does. Given a file with lines in the date format of your example it will find the first line which is on or after the date/time you specify and print all lines from that line to the end of the file. –  Sorpigal Sep 25 '11 at 3:59
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.