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Trying to compute the average for unsigned long long from a file using bash.

So I have a text file which has unsigned long long in a column (e.g. 18446743829774150033) and I want to compute the average of the numbers in the file and output it to the file. I tried awk but I think it doesn't work for the unsigned long long.

awk '{a+=$1; b++} END{print a/b}' file.txt   

Anyone have any ideas on how to do this?

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The problem is that awk falls back on floating point when the numbers are too large, causing inaccuracies. You can use a use bc instead, which supports arbitrary precision:

a=($(cut -f1 file.txt))
echo "($(IFS=+; echo "${a[*]}"))/${#a[@]}" | bc

It's a bit magic, but if you just remove the bc, you see that it turns a set of numbers like 1 2 3 into (1+2+3)/3, which bc can work on.

If you want decimals, you can set the scale:

a=($(cut -f1 file.txt))
echo "scale=4; ($(IFS=+; echo "${a[*]}"))/${#a[@]}" | bc
share|improve this answer
    
NICE! will this restore into the same file? – Bukk Feb 15 '13 at 1:53
    
It does not modify the file, if that's what you're asking – that other guy Feb 15 '13 at 1:54
    
How do I make it skip the first line and re output to the end of the same file? – Bukk Feb 15 '13 at 1:55
    
echo "($(IFS=+; echo "${a[*]}"))/${#a[@]}" | bc >> file.txt works I believe for outputing to the end of the same file. How do I just check to make sure the value being read is a number? – Bukk Feb 15 '13 at 1:56
    
Yes. And you can use a=($(cut -f1 file.txt | sed 1d | grep '^[0-9]*$)) to skip the first line and only sum the numbers – that other guy Feb 15 '13 at 1:58

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