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Suppose that you have to find the name of the 4th smallest (non-hidden) file in the directory

What is the right command to do this? Suppose I'm a guy who only knows ls -l, head, tail, line, and awk '{print}' statement.

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2 Answers 2

From man ls: -S sorts the output by size descending, -r reverses the order of the output

So my solution would look like

ls -rS | sed -n '4p'

or, alternatively

ls -rS | awk 'NR==4'
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so how would the command be if i had to find the 4th biggest file for instance? thanks –  luc Mar 19 '13 at 11:35
1  
@luc just drop -r. –  EarlGray Mar 19 '13 at 11:56

Parsing ls is not safe because it is difficult and error prone to handle strange characters like spaces and newlines in filenames.

I would recommend using the following approach which is more robust since it uses null-terminated line endings.

count=0
while IFS= read -r -d '' line; do
    ((++count == 4)) && echo "${line#* }" && break
done < <(find . -type f -maxdepth 1 -printf '%s %p\0' | sort -zn)
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It is not the case that parsing ls is unsafe. It is the case that using spaces, newlines, and control characters in filenames is a bad decision. –  William Pursell Mar 19 '13 at 12:42
    
why not find -print0 ? –  EarlGray Mar 19 '13 at 19:43
    
@EarlGray Files will be printed out twice if you use printf and print0 in the same find command. –  dogbane Mar 20 '13 at 8:23

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