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Suppose I have multiple random .txt files, and in the same directory I have nearly-identically-named files like filename.sql and filename.txt. How would I find those .sql and their counterpart .txt files without selecting any other .txt files? (The intent here is to move them to a separate folder. There is a guaranteed 1:1 relationship between the relevant .sql and .txt files, meaning that I'm not worried about moving one of the random .txt files mentioned initially.)

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closed as off topic by Linus Kleen, hammar, Mark, Joe Doyle, Linus Caldwell May 23 '13 at 0:08

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2 Answers 2

up vote 3 down vote accepted

Very simple:

$ mv `ls *.sql|sed s/.sql$/.txt/g` dir

To see and understand how it works, how the shell expands the line before executing mv, start the line with echo:

$ ls
a.sql b.sql a.txt b.txt c.txt
$ echo mv `ls *.sql|sed s/.sql/.txt/g` dir
mv a.txt b.txt dir

Something more "robust" if the file names have spaces (generally not a good idea in Unix, but happens) or you have hundreds of files in the directory:

$ for f in *.sql; do mv "$(echo $f|sed s/.sql$/txt/)" dir; done

To move the .sql files along with the corresponding .txt files:

$ for f in *.sql; do mv "$f" "$(echo $f|sed s/.sql$/txt/)" dir; done
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2  
Select all .sql files in the current directory, replace .sql in their names to .txt and move files having resulting names to dir –  piokuc May 22 '13 at 21:26
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To be slightly more robust (i.e. only substitute .sql for .txt at the end of the filename) use s/.sql$/.txt/. The g at the end of the substitution is unnecessary because each filename from ls will be on its own line anyway. –  Lorkenpeist May 22 '13 at 21:29
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@verbsintransit sed does not modify the filenames at all, it only modifies the output provided by ls. So when ls would print foo.sql, sed will cause it to instead print foo.txt, so that mv can move the correct file. –  Lorkenpeist May 22 '13 at 21:31
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No, you didn't understand. To see what's happening prepend echo to the line and see how shell expands this. –  piokuc May 22 '13 at 21:32
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Well. Don't I feel clever. I mean it would be pedagogically nice to do it in one command, but it's not necessary in my current situation. –  verbsintransit May 22 '13 at 21:59
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piokuc's answer works great, but if you get an argument list too long error (happens if you're moving a lot of files at once), this works as well:

ls *.sql | sed s/.sql/.txt/g | xargs -I% mv % /path/to/new/directory

Explanation:

  1. List all files name ending with .sql extension.
  2. Replace .sql with .txt in the filename list (this doesn't rename the files, just operates on the piped input).
  3. xargs

    • xargs is a program that runs other programs. We are going to run the mv (move file) command through it.
    • The -I option tells xargs to run the mv command individually for every single file name being passed by sed.
    • The % refers to actual object/filename being passed to xargs, so upon each iteration this is going to be one of the substituted file names.
    • Notice that there are 2 %: one is attached next to -I, which tells xargs to use the ampersand character as a token for a file name. The second occurrence is with mv, where the actual (and by now changed) file name gets substituted for the token.

    Esentially, xargs is saying, "For each one of the piped-in file names, run mv NEW_FILE_NAME.txt /path/to/new/directory."

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+1 yeah, I was just thinking about adding a comment like that. Similarly one could do something like for f in *.sql; do mv echo $f|sed s/.sql$/txt/` dir; done` –  piokuc May 22 '13 at 21:29
    
can't show it properly with the formatting in a comment, will copy to my answer –  piokuc May 22 '13 at 21:30
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