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I have a text stream that looks like this:

  heartbeat:test       @ 1344280205000000: '0'
  heartbeat:test       @ 1344272490000000: '0'

Those long numbers are timestamps in microseconds. I would like to run this output through some sort of pipe that will change those timestamps to a more human-understandable date.

I have a date command that can do that, given just the timestamp (with the following colon):

$ date --date=@$(echo 1344272490000000: | sed 's/.......$//') +%Y/%d/%m-%H:%M:%S

I would like to end up with something like this:

  heartbeat:test       @ 2012/06/08-12:10:05: '0'
  heartbeat:test       @ 2012/06/08-10:01:30: '0'

I don't think sed will allow me to match the timestamp and replace it with the value of calling a shell function on it (although I'd love to be shown wrong). Perhaps awk can do it? I'm not very familiar with awk.

The other part that seems tricky to me is letting the lines that don't match through without modification.

I could of course write a Python program that would do this, but I'd rather keep this in shell if possible (this is generated inside a shell script, and I'd rather not have dependencies on outside files).

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5 Answers 5

up vote 1 down vote accepted

Bash with a little sed, preserving the whitespace of the input:

while read -r; do                                                                                                                                                                                                                                          
    if [[ ${parts[0]} == "heartbeat:test" ]]; then
        dateStr=$(date --date=@${parts[2]%000000:} +%Y/%d/%m-%H:%M:%S)
        REPLY=$(echo "$REPLY" | sed "s#[0-9]\+000000:#$dateStr#")
    printf "%s\n" "$REPLY"
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Whitespace preservation is awesome! I changed the sed expression to use # instead of / so I don't have to do all that escaping, but otherwise this works wonderfully! Just for my edification, the parts=($REPLY) line is just splitting $REPLY into an array using the IFS, right? – Sam Mussmann Aug 9 '12 at 18:24
That's right. Good idea changing the delimiter for sed; I wish I'd remembered that was an option. I'll update the answer to use #. – chepner Aug 9 '12 at 18:41

This might work for you (GNU sed):

sed '/@ /!b;s//&\n/;h;s/.*\n//;s#\(.\{10\}\)[^:]*\(:.*\)#date --date=@\1 +%Y/%d/%m-%H:%M:%S"\2"#e;H;g;s/\n.*\n//' file


  • /@ /!b bail out and just print any lines that don't contain an @ followed by a space
  • s//&\n/ insert a newline after the above pattern
  • h copy the pattern space (PS) to the hold space (HS)
  • s/.*\n// delete upto and including the @ followed by a space
  • s#\(.\{10\}\)[^:]*\(:.*\)#date --date=@\1 +%Y/%d/%m-%H:%M:%S"\2"#e from whats remaining in the PS, make a back reference of the first 10 characters and from the : to the end of the string. Have these passed in to the date command and evaluate the result into the PS
  • H append the PS to the HS inserting a newline at the same time
  • g copy the HS into the PS
  • s/\n.*\n// remove the original section of the string
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Any chance I could get an explanation of why that works? :-) – Sam Mussmann Aug 9 '12 at 20:29
@SamMussmann see edit. – potong Aug 9 '12 at 23:27
The e flag works with files, but not with functions. I am using GNU sed version 4.2.1. – michelpm Mar 30 '13 at 14:09
@michelpm this probably only works with GNU sed within a linux/unix bash environment. – potong Mar 30 '13 at 21:37
@potong as I said, I am using GNU sed version 4.2.1 and I tested on Ubuntu 13.04 with both bash and zsh. It DOES work with executable files, but not with functions. square () { echo $(($1 * $1)) }, seq () { for (( i = 0 ; i < $1 ; i++ )); do echo $i; done }, seq 10 | sed 's/[0-9]*/square &/ge' complains that function square doesn't exist. It does work if I turn the square function into and change sed to call the file instead. Any ideas? – michelpm Mar 30 '13 at 22:14

How about:

while read s1 at tm s2
    echo $s1 $at $(date --date @$tm +%Y/%d/%m-%H:%M:%S)
done < yourfile
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This barfs on the lines without the timestamps -- I like the simplicity, though. – Sam Mussmann Aug 9 '12 at 17:27

I would also like to see a sed solution, but it is a bit beyond my sed-fu. As awk supports strftime it is fairly straight forward here:

awk '
/^ *heartbeat/ { 
  gsub(".{7}$", "", $3)
  $3 = strftime("%Y/%d/%m-%T", $3)
  print " ", $1, $3

$0 !~ /heartbeat/' file


heartbeat:test 2012/06/08-21:10:05
heartbeat:test 2012/06/08-19:01:30

$3 is the microsecond field. gsub converts the timestamp to seconds.

The $0 !~ makes sure non-heartbeat lines are printed ({ print } implicitly is the default block).

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I don't think gsub is working -- I run this, and I get dates of 42600513/23/11-15:33:20, which is a little bit off. :-) – Sam Mussmann Aug 9 '12 at 18:15
That's odd, I've added what I get to the answer. Which version of awk are you using? I've tested this with gawk. – Thor Aug 9 '12 at 18:40
I'm using GNU awk 3.1.6. If I remove the strftime line, then I'm getting the long timestamps. – Sam Mussmann Aug 9 '12 at 18:43
Maybe try with the original format string you were using? %Y/%d/%m-%H:%M:%S. – Thor Aug 9 '12 at 19:02
That doesn't seem to work -- if I change the regexp from ".{7}$" to "000000:" it does work, though. – Sam Mussmann Aug 9 '12 at 20:08

This does it mostly within bash using your date command:

while read a ; do
case "$a" in
*" @ "[0-9]*) pre=${a% @ *}
              a=${a#$pre @ }
              echo "$pre$(date --date=@$a +%Y/%d/%m-%H:%M:%S):$post"
*)            echo "$a" ;;
done <<.
  heartbeat:test       @ 1344280205000000: '0'
  heartbeat:test       @ 1344272490000000: '0'
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