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So, I'm trying to perform batch processing on a lot of files, but I want the batch processing to start off with the smallest files first. What I need to do is get all the file names in ascending order, sorted by the file size. I've seen some examples, but one problem is that some of the file names contain spaces, hyphens, underscores, and other special characters, so I can't find anything that works for me.

3 Answers 3

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ls -rS will do the trick. The man page explains more: http://man7.org/linux/man-pages/man1/ls.1.html

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    This will not handle files with space between them as the question suggests.
    – Inian
    Commented Dec 24, 2016 at 20:44
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    @Inian why not? ls will handle files with spaces, carriage-returns just perfectly; the only problem I see is, that the OP intends to use the output of this as input to their script - but your answer doesn't provide a solution for that either.
    – umläute
    Commented Dec 24, 2016 at 21:19
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find . -type f -print0 | xargs -0 wc -c | sort -n

The above example lists files under the current directory in ascending order of size. The -print0 argument to the find command instructs it to use the null '\0' character instead of whitespace as the delimiter between search results. On the other side of the pipe, the -0 arguments prepares the xargs command to do the same thing. This will handle whitespace characters in file name as ordinary characters.

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  • find . -type f -exec wc -c {} + | sort -n is a more efficient alternative that is also POSIX-compliant (-print0 is not). The problem, however, is that wc, with more than 1 filename argument, prints a summary line in the form of <bytes> total, which you'd need to filter out. Note that with a large number of input files wc may be invoked more than once (if not all filenames fit on a single command line), which makes filtering the summary lines trickier, especially since there could be files named total.
    – mklement0
    Commented Dec 25, 2016 at 7:45
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If:

  • you're not worried about filenames with embedded newlines, and
  • you don't need the actual file sizes, just the filenames sorted by underlying file size,

then K. Matthews' answer should work for you.

Otherwise, assuming you have GNU utilities:

find . -mindepth 1 -maxdepth 1 -type f -printf '%s\t%f\0' | 
  sort -zn -k1,1 |
    while read -r -d '' size name; do echo "[$size] [$name]"; done

-mindepth 1 -maxdepth 1 limits matches to files directly located in ., similar to ls (though hidden files are always included). Omit it process files in the entire subtree.

The while loop shows one way to further process the NUL-terminated output produced by find's -printf '...\0' and sort -z.
Using awk -F'\t' -v RS='\0' ... is another.

Note that find's -printf and sort's -z are nonstandard, GNU-specific extensions, as is using '\0' as the RS value with awk.

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