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I have to move the 20TB file system with a couple of million of files to a ZFS file system. So I would like to get an idea of the file sizes in order to make a good block size selection.

My current idea is to `stat --format="%s" each file and then divide the files into bins.

#!/bin/bash

A=0 # nr of files <= 2^10
B=0 # nr of files <= 2^11
C=0 # nr of files <= 2^12
D=0 # nr of files <= 2^13
E=0 # nr of files <= 2^14
F=0 # nr of files <= 2^15
G=0 # nr of files <= 2^16
H=0 # nr of files <= 2^17
I=0 # nr of files >  2^17

for f in $(find /bin -type f); do

    SIZE=$(stat --format="%s" $f)

    if [ $SIZE -le 1024 ]; then
    let $A++
    elif [ $SIZE -le 2048 ]; then
    let $B++
    elif [ $SIZE -le 4096 ]; then
    let $C++
    fi
done

echo $A
echo $B
echo $C

The problem with this script is that I can't get find to work inside a for-loop.

Question

How to fix my script?

And is there a better way to get the all the file sizes of a file system?

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Maybe use awk... But I am not convinced at all that you should make bins of files of similar sizes... –  Basile Starynkevitch Apr 21 '13 at 15:06
    
What error are you getting with the code you have above? –  Mat Apr 21 '13 at 15:25
    
@Mat It just doesn't do anything. So it is hard to tell what is wrong. –  Sandra Schlichting Apr 21 '13 at 15:38
    
It appears not to do anything (and might end up failing). That's just because you're too far away from the disks to hear them churn. –  Mat Apr 21 '13 at 15:39
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5 Answers

up vote 2 down vote accepted

The main problem is that you are using command substitution to feed the output of find to the for loop. Command substitution works by running the command within parentheses (or backticks) to completion, collecting its output, and substituting it in to the script. That doesn't support streaming, meaning the for loop won't run until the find scan is completely done, and you'll need lots of memory to buffer the output of find too.

Especially because you are scanning many terabytes worth of files, you will want to use something that supports streaming, like a while loop:

find /bin -type f | while read f; do
    ...
done

With something that can stream, your script will at least work, but keep in mind that this technique forces you to invoke an external command (stat) once for each and every file that is found. This will incur a lot of process creation, destruction, and startup cost for the stat command. If you have GNU find, something that outputs the size of each file right in the find command with its -printf option for example would perform much better.

Aside: the let statements in the body of the loop look wrong. You are expanding the contents of the $A, $B, and $C variables instead of referencing them. You shouldn't use $ here.

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If I execute your find command with an echo $f inside it doesn't print anything. It is as if it doesn't enter the loop like like mine. –  Sandra Schlichting Apr 21 '13 at 15:48
    
Using find /bin/ -type f -printf "%s\n" > /tmp/all_sizes.txt is a very interesting idea, and then post-process the output afterwards. –  Sandra Schlichting Apr 21 '13 at 16:03
1  
Yes, and you can also stream that using a pipe so that you don't need to store the intermediate result in a very large temp file. –  Celada Apr 21 '13 at 16:14
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If just want to find out the number of files between say 100M and 1000M you can do the following

find . -size +100M -size -1000M  -type f | wc -l
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This is not a good solution as I would need to stat each file for each range. Doesn't scale for 20TB. –  Sandra Schlichting Apr 21 '13 at 15:40
    
@SandraSchlichting actually I think this is a very good alternate solution. You'll have to run this command 9 times with different -size parameters in order to match each of your 9 buckets, which means scanning the filesystem 9 times, but each scan will be very fast compared to a shell script. –  Celada Apr 21 '13 at 15:52
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I would investigate using dd to read the zfs metadata, which should be contained on the data disks themselves.

That might be a bad suggestion and could result in you wasting time. But crawling the filesystem with bash is going to take a long time and chew system cpu utilization.

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Can you give an example how that is done for one file? –  Sandra Schlichting Apr 21 '13 at 15:52
    
I'm sorry, no. Assuming you have time to investigate this option, then I would read the ZFS white papers and design docs, and then begin experimenting. –  Lurk21 Apr 21 '13 at 16:04
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find /bin/ -type f -printf "%s\n" > /tmp/a

And then use the following as script.pl < /tmp/a.

#!/usr/bin/perl

use warnings;
use strict;
use Data::Dumper;

my %h = ();

while (<STDIN>) {
    chomp;
    if    ($_ <= 2**10) { $h{1} += 1}
    elsif ($_ <= 2**11) { $h{2} += 1}
    elsif ($_ <= 2**12) { $h{4} += 1}
    elsif ($_ <= 2**13) { $h{8} += 1}
    elsif ($_ <= 2**14) { $h{16} += 1}
    elsif ($_ <= 2**15) { $h{32} += 1}
    elsif ($_ <= 2**16) { $h{64} += 1}
    elsif ($_ <= 2**17) { $h{128} += 1}
    elsif ($_ >  2**17) { $h{big} += 1}
}

print Dumper \%h;
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The venerable du command would provide you with sizes more directly.

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