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I am computing average of many values and printing it using awk using following script.

for j in `ls *.txt`; do
  for i in emptyloop dd cp sleep10 gpid forkbomb gzip bzip2; do
    echo -n $j $i" "; cat $j | grep $i | awk '{ sum+=$2} END {print sum/NR}'
  done;
  echo ""
done

but problem is, it is printing the value in in 1.2345e+05, which I do not want, I want it to print values in round figure. but I am unable to find where to pass the output format.

EDIT: using {print "average,%3d = ",sum/NR}' inplace of {print sum/NR}' is not helping, because it is printing "average,%3d 1.2345e+05".

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2 Answers 2

You need printf instead of simply print. Print is a much simpler routine than printf is.

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for j in *.txt; do
    for i in emptyloop dd cp sleep10 gpid forkbomb gzip bzip2; do
        awk -v "i=$i" -v "j=$j" '$0 ~ i {sum += $2} END {printf j, i, "average %6d", sum/NR}' "$j"
    done
    echo
done

You don't need ls - a glob will do.

Useless use of cat.

Quote all variables when they are expanded.

It's not necessary to use echo - AWK can do the job.

It's not necessary to use grep - AWK can do the job.

If you're getting numbers like 1.2345e+05 then %6d might be a better format string than %3d. Use printf in order to use format strings - print doesn't support them.

The following all-AWK script might do what you're looking for and be quite a bit faster. Without seeing your input data I've made a few assumptions, primarily that the command name being matched is in column 1.

awk '
    BEGIN {
        cmdstring = "emptyloop dd cp sleep10 gpid forkbomb gzip bzip2";
        n = split(cmdstring, cmdarray);
        for (i = 1; i <= n; i++) {
            cmds[cmdarray[i]]
        }
    }
    $1 in cmds {
        sums[$1, FILENAME] += $2;
        counts[$1, FILENAME]++
        files[FILENAME]
    }
    END {
        for file in files {
            for cmd in cmds {
                printf "%s %s %6d", file, cmd, sums[cmd, file]/counts[cmd, file]
            }
        }
    }' *.txt
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