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I want to compare the total size of two directories dir1 and dir2 on different file-systems so that if diff -r dir1 dir2 returns 0 then the total sizes will be equal. The du command returns the disk usage, and its option --apparent-size doesn't solve the problem. I now use something like

find dir1 ! -type d |xargs wc -c |tail -1

to know an approximation of dir1's size. Is there a better solution?

edit: for example, I have (diff -r dir1 dir2 returns 0: they are equal):

du -s dir1 --> 540
du -s dir2 --> 166

du -sb dir1 --> 250815 (the -b option is equivalent to --apparent-size -B1)
du -sb dir2 --> 71495

find dir1 ! -type d |xargs wc -c --> 62399
find dir2 ! -type d |xargs wc -c --> 62399 
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1  
Why don't you use du -s to know the size of a directory? –  Wok Sep 22 '10 at 12:39
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Define exactly what you mean by "size of two directories". –  joschi Sep 22 '10 at 12:41
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@wok: it may report different sizes for two directories on different file-sytems even if the directories compare equal with diff. –  rafak Sep 22 '10 at 12:41
    
@joschi: more or less the same as du -s but with the result being independant of the file-system where the directory is. –  rafak Sep 22 '10 at 12:44
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It would be interesting to see some data. Could you post a comparison for an example dir1 and dir2 showing du -s, du --apparent-size and your character counting script. –  Dennis Williamson Sep 22 '10 at 14:03
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2 Answers

If your version of find has -printf you may find this to be quite a bit faster.

find dir1 ! -type d -printf "%s\n" | awk '{sum += $1} END{print sum}'

There are at least two ways to avoid scientific notation for outputting large numbers in AWK.

END {OFMT = "%.0f"; print sum}

END {printf "%.0f\n", sum}

The .0 truncates the decimal places since we're really dealing with an integer and gawk's %d seems to incorrectly act like %g in version 3.1.5 (but not 3.1.6 and later).

However, from the gawk documentation:

NOTE: When using the integer format-control letters for values that are outside the range of the widest C integer type, 'gawk' switches to the '%g' format specifier.

Beware of exceeding the maximum integer for your system/version of AWK.

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I tried this and got an imprecise result: 2.11437e+11. Awk has a printf function so I tried: find dir1 ! -type d -printf "%s\n" | awk '{sum += $1} END{printf "%f\n", sum}' and I think it got a precise result: 211436502457.000000. Edit your answer and I'll definitely +1! –  JMcF Sep 23 '12 at 18:40
    
@JMcF: What version of AWK are you using? I edited my answer to add a little more information. –  Dennis Williamson Sep 23 '12 at 20:42
    
It's mawk 1.3.3 which comes with Ubuntu 12.04. It's the 64-bit version so these numbers should be well within range. Nevertheless, a very thorough answer, thanks. –  JMcF Sep 25 '12 at 16:16
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i can't know what you want clearly. Maybe you want this?
diff <(du -sh dir1) <(du -sh dir2)

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Maybe not, but it was exactly what I was searching for. –  Peter Mellett Aug 9 '13 at 11:58
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