5

I am trying to sum a list of integers from a logfile using awk

{sum+=$1} END {print sum}

The problem is that the result is larger than the MAX_INT specified in my limits.h file, so the print returns 3.68147e+09

Is there an elegant way of printing the entire value of the sum?

Thank you!

  • tried gawk's -M option? – Kent Jan 22 '14 at 8:42
  • i am not sure how to make gawk use the GNU MPFR and MP libraries – Alex Jan 22 '14 at 9:17
0

You could use bc which supports arbitrary precision arithmetic. The equivalent of what you're trying to achieve would be:

cut -d' ' -f1 inputfile | paste -sd+ | bc -l

EDIT: As per your comment, if you want to prevent splitting of output into multiple lines, set BC_LINE_LENGTH to 0. Say:

cut -d' ' -f1 inputfile | paste -sd+ | BC_LINE_LENGTH=0 bc -l
  • The sum is correct, but the output is split in two lines: 45000000000000000045000000000000000045000000000000000009999999999999\ 99999 – Alex Jan 22 '14 at 9:41
  • i've added a sed for a good output, but your solution is nicer: code cut -d' ' -f1 inputfile |paste -sd+ | bc -l | sed 'N;s/\n//' |sed 's/\\//' – Alex Jan 22 '14 at 9:54
  • @Alex The sed command you've used to fix the splitted output would break if the output is spans over more than 2 lines. – devnull Jan 22 '14 at 9:58
  • @Alex A better sed expression for that would be: sed -e :a -e '/\\$/N; s/\\\n//; ta' – devnull Jan 22 '14 at 10:02
3

gnu awk has -M option, you can try with it. it should keep the precision for you.

The MPFR and MP libraries should be used when you compile gawk, not at run time.

here is an example, with or without -M. tested with gawk 4.1.0 on 64bit linux (Archlinux):

kent$  awk 'BEGIN{printf "%d\n","368147000099999999999999999999999999"}'  
368147000099999983291776543710248960

kent$  awk -M 'BEGIN{printf "%d\n","368147000099999999999999999999999999"}'
368147000099999999999999999999999999
  • The gawk in Centos 7 does not seem to have the -M option. – Onnonymous Dec 8 '18 at 15:09
2

awk does not have integral type that is large enough for your data, and promotes the sum into floating point. As far as I know, there is no data type in awk with enough precision for what you ask. I.e. the problem is not in printing; awk literally does not have the information you want.

You can try ruby instead, for example (it promotes integers into big integers rather than into floats):

ruby -nae 'BEGIN{sum=0}; END{puts sum}; sum+=$F[0].to_i'
0

I'm pretty sure that AWK uses double, internally, for arithmetic, so beyond a certain limit, you're going to loose precision.

Have a look on this link if it helps you out.

Adding large number using AWK issue cases

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