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I want to pretty-print the output of a find-like script that would take input like this:

- 2015-10-02 19:45 102 /My Directory/some file.txt

and produce something like this:

-         102 /My Directory/some file.txt

In other words: "f" (for "file"), file size (right-justified), then pathname (with an arbitrary number of spaces).

This would be easy in awk if I could write a script that takes $1, $4, and "everything from $5 through the end of the line".

I tried using the awk construct substr($0, index($0, $8)), which I thought meant "everything starting with field $8 to the end of $0".

Using index() in this way is offered as a solution on linuxquestions.org and was upvoted 29 times in a stackoverflow.com thread.

On closer inspection, however, I found that index() does not achieve this effect if the starting field happens to match an earlier point in the string. For example, given:

-rw-r--r-- 1 tbaker staff 3024 2015-10-01 14:39 calendar
-rw-r--r-- 1 tbaker staff 4062 2015-10-01 14:39 b
-rw-r--r-- 1 tbaker staff 2374 2015-10-01 14:39 now or later

Gawk (and awk) get the following results:

$ gawk '{ print index($0, $8) }' test.txt
49
15
49

In other words, the value of $8 ('b') matches at index 15 instead of 49 (i.e., like most of the other filenames).

My issue, then is how to specify "everything from field X to the end of the string".

I have re-written this question in order to make this clear.

  • 4
    Because the letters b and a both appear earlier in the line (in the username). What are you actually trying to do? – Phylogenesis Oct 2 '15 at 9:17
  • Relevant reading: mywiki.wooledge.org/ParsingLs – Tom Fenech Oct 2 '15 at 9:21
  • @Phylogenesis, I think he wants the column of the 8th field. So ugly but working solution would be to return length($1+$2+$3+..) + some offset for the separators (hopefully fixed length) – Pieter21 Oct 2 '15 at 9:28
  • 1
    Is there any particular reason why you can't just use ls -1 (or possibly ls -b1 if you want to protect from filenames with newlines, too)? – Phylogenesis Oct 2 '15 at 9:40
  • 2
    How does the output you've shown match up to the input? You should edit your question to make them consistent. Currently it's unclear where f comes from (is it constant?). Are the numbers the file sizes? – Tom Fenech Oct 2 '15 at 9:57
1

Looks to me like you should just be using the "stat" command rather than "ls", for the reasons already commented upon:

stat -c "f%15s %n" *

But you should double-check how your "stat" operates; it apparently can be shell-specific.

  • Thank you very much - this does indeed solve the problem as I describe it above. In my desire to isolate the problem, however, I failed to describe fully the problem I really wanted to solve (see my Answer above). – Tom Baker Oct 2 '15 at 16:11
  • Unfortunately, find ... -ls will have all the same problems as plain ls. If all you want is the full path showing in the filename part, change the above to stat -c "f%15s %n" $(pwd)/*. And if you really want the entire directory subtree recursively displayed as well, as find does: find $(pwd)/* -type f -exec stat -c "f%15s %n" {} +. – Jeff Y Oct 2 '15 at 17:50
  • Thank you! This works fine, and I'm surprised how fast it runs. I had avoided solutions with find ... -exec... because I had found this approach to be slow in the past. – Tom Baker Oct 3 '15 at 6:35
  • Using the + at the end of the "find-exec" usually speeds things up considerably because it only runs the exec command once with all results of the "find" tacked on as the argument list (rather than running the command once for each result, when \; is used in place of +). – Jeff Y Oct 8 '15 at 12:21
0

The built-in awk function index() is sometimes recommended as a way to print "from field 5 through the end of the string" [1, 2, 3].

In awk, index($0, $8) does not mean "the index of the first character of field 8 in string $0". Rather, it means "the index of the first occurrence in string $0 of the string value of field 8". In many cases, that first occurrence will indeed be the first character in field 8 but this is not the case in the example above.

It has been pointed out that parsing the output of ls is generally a bad idea [4], in part because implementations of ls significantly differ in output. Since the author of that note recommends find as a replacement for ls for some uses, here is a script using find:

find $@ -ls |
    sed -e 's/^ *//' -e 's/  */ /g' -e 's/ /|/2' -e 's/ /|/2' -e 's/ /|/4' -e 's/ /|/4' -e 's/ /|/6' |
    gawk -F'|' '{ $2 = substr($2, 1, 1) ; gsub(/^-/, "f", $2) }
                { printf("%s %15s %s\n", $2, $4, $6) }'

...which yields the required output:

f            4639 /Users/foobar/uu/a
f            3024 /Users/foobar/uu/calendar
f            2374 /Users/foobar/uu/xpect

This approach recursively walks through a file tree. However, there may of course be implementation differences between versions of find as well.

  1. http://www.linuxquestions.org/questions/linux-newbie-8/awk-print-field-to-end-and-character-count-179078/
  2. How to print third column to last column?
  3. Print Field 'N' to End of Line
  4. http://mywiki.wooledge.org/ParsingLs
  • This solution shows the entire pathname (which is actually what I wanted) but could be adapted to show just the filename. This solution correctly shows filenames with spaces. I do not know if it addresses all of the points raised in the article about the pitfalls of parsing ls. – Tom Baker Oct 2 '15 at 15:24
  • On further testing, I found that find output occasionally (i.e., for some directories and not for others) includes leading spaces, which must be removed for the rest of the script to work. Maybe find is no more consistent than ls in this regard? – Tom Baker Oct 2 '15 at 16:06
  • No. find outputs exactly what you tell it to, it does not add spurious spaces at random times. Having said that, you are using it incorrectly so it won't do what you think it will for some directories. If you want help, edit your question as requested previously so we can help you. So far you haven't even told us what that leading f is for or what the number before the file path is intended to represent. – Ed Morton Oct 2 '15 at 17:12
  • @EdMorton I want to pretty-print a find-like output with "f" at the beginning (for file), the file size right-justified, and filenames with spaces printed correctly. This thread got off to a bad start because I misunderstood how the awk function index() works. – Tom Baker Oct 2 '15 at 18:04
  • It sounds like you want some variation of find dir -type f -printf "f %s %p\n" piped to awk or something to treat the first 2 spaces as field separators and the rest as part of the file name. If you'd just edit your question..... – Ed Morton Oct 2 '15 at 19:33
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Maybe some variation of find -printf | awk is what you're looking for?

$ ls -l tmp
total 2
-rw-r--r-- 1 Ed None 7 Oct  2 14:35 bar
-rw-r--r-- 1 Ed None 2 Oct  2 14:35 foo
-rw-r--r-- 1 Ed None 0 May  3 09:55 foo bar

$ find tmp -type f -printf "f %s %p\n" | awk '{sub(/^[^ ]+ +[^ ]/,sprintf("%s %10d",$1,$2))}1'
f          7 tmp/bar
f          2 tmp/foo
f          0 tmp/foo bar

or

$ find tmp -type f -printf "%s %p\n" | awk '{sub(/^[^ ]+/,sprintf("f %10d",$1))}1'
f          7 tmp/bar
f          2 tmp/foo
f          0 tmp/foo bar

It won't work with file names that contain newlines.

  • This looks very nice! Unfortunately, my OSX version of /usr/bin/find does not have the option -printf. – Tom Baker Oct 3 '15 at 6:40

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