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ls -la

Permissions   links  Owner  Group  Size   Date        Time    Directory or file
-rwxr--r--     1     User1  root    26    2012-04-12  19:51    MyFile.txt
drwxrwxr-x     3     User2  csstf  4096   2012-03-15  00:12     MyDir

when I write the ls -la | sed -n 's/\(..........\) \(.*\).*$/\1/p' It show the following output.

Permissions   links  Owner    Group  
 -rwxr--r--     1     User1   root    
 drwxrwxr-x     3     User2   csstf  

But I need the following output.

Size  
 26    
4096

Note that I need to use sed. And also I need to sort the sizes from largest to smallest and need shows the largest 3 files only.

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4  
This is a job for awk. Nearly all system having sed also have awk. ls -la | awk '{print $5}' –  Jotne May 2 at 4:44

3 Answers 3

up vote 0 down vote accepted

The general caveat applies: awk is the better tool for the job.

Here's a simpler sed solution:

ls -la | sed -E 's/^(([^[:space:]]+)[[:space:]]+){5}.*/\2/'
  • works with both spaces and tabs between columns
  • takes advantage of repeating capture groups only reporting the last captured instance - in this case, the 5th column
  • caveat: will not work correctly with filenames with embedded spaces

In case only spaces separate the columns - which is the case with ls output, the command simplifies to:

ls -la | sed -E 's/^(([^ ]+)[ ]+){5}.*/\2/' 

To skip the first input line you have several options, but the simplest is to prepend 1d to your sed program:

ls -la | sed -E '1d; s/^(([^ ]+)[ ]+){5}.*/\2/'

(Other options:

Use tail to skip the first line:

ls -la | tail +2 | sed -E 's/^(([^ ]+)[ ]+){5}.*/\2/'

More generically, use sed to ignore lines that do not have at least 5 columns:

ls -la | sed -E -n 's/^(([^ ]+)[ ]+){5}.*/\2/p'
  • -n suppresses default output
  • appending p to the substitution command only produces output if a substitution was made

)

To show only the 3 largest files (a requirement added later by the OP), courtesy of @JS웃:

ls -la | sed -E '2d; s/^(([^ ]+)[ ]+){5}.*/\2/' | sort -nr | head -3

The above will not output the header line, however. To include the header line, use (courtesy of this unix.stackexchange.com answer):

ls -la | sed -E '1d; s/^(([^ ]+)[ ]+){5}.*/\2/' | 
  { IFS= read -r l; echo "$l"; sort -nr | head -3; }
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This works perfectly. Only problem is during the output of file sizes, it shows i the first line total 65492. Actually I don't need that –  user3574773 May 2 at 4:56
    
If I want ls -la to output through pipe, how should I write the script. For example ls -la | prog.sh. The program needs to show largest three files and total number of lines –  user3574773 May 2 at 7:43
1  
@codeSlayer789: You keep expanding the scope of your question. These additional questions are quite basic, and you ask to just be given the answer, which is not how SO works; just a few pointers, so you can figure out the rest by yourself: put the part of the pipeline starting with sed into a script file with appropriate shebang line (e.g., #!/bin/sh and make the file executable (man chmod); see man wc for how to count lines. –  mklement0 May 2 at 14:02

Use the right tool for the job. If you're processing columns, awk is a better solution:

ls -la | awk '{print $5}'

Given your ls -la output, that should generate:

Size
26
4096

If, for some bizarre reason you cannot use the correct tool, the following sed command will work, but it's rather ugly:

sed 's/[ \t]*[0-9][0-9][0-9][0-9]-.*//;s/[ \t]*Date.*//;s/^.*[ \t]//'

It works by removing from the year column (9999-) and preceding tabs/spaces, to the end of the line.

Then it does something similar for the header.

Then it just removes everything from line start to the final tab/space, which is now just before the size column.

I know which one I'd prefer to write and maintain :-)

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yeah but I need to use sed. That's the reason I ask all about this. @paxdiablo –  user3574773 May 2 at 4:14
    
@codeSlayer789: why do you need to use sed? I don't try to eat my dinner with a chainsaw or cut down a tree with a haddock. –  paxdiablo May 2 at 4:16
    
yeah I accept it. But, the question I am doing, they ask me to use sed to do that and sort them. @paxdiablo –  user3574773 May 2 at 4:19
    
@codeSlayer789: okay, if you must, see the update. –  paxdiablo May 2 at 4:27
1  
@codeSlayer789, suggest you check that all those gaps are spaces rather than tabs. Also suggest you check the actual input data matches what you've shown. The command works fine for your given sample assuming it's spaces. That's the major problem with using sed over awk - awk will automagically handle different column separators. –  paxdiablo May 2 at 4:31

Here is another way with GNU sed:

ls -la | sed -r '1d;s/([^ ]+ *){4}([^ ]+).*/\2/' 

If your version of sed does not support -r option, then use -E.

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1  
If you use -E, it'll work on both Linux (GNU sed) and BSD-derived systems, including OSX. –  mklement0 May 2 at 5:09
1  
JS웃: Thank you, I really appreciate it - I'll add your sort ... | head ... command - with proper attribution to my answer; @codeSlayer789: Please add the sort requirement to your answer, and make it clear that it was added later. –  mklement0 May 2 at 5:21

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