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So here is the task which I can't solve. I have a directory with .h files and a directory with .i files, which have the same names as the .h files. I want just by typing a command to have all .h files which are not found as .i files. It's not a hard problem, I can do it in some programming language, but I'm just curious how it will look like in cmd :). To be more specific here is the algo:

  • get file names without extensions from ls *.h
  • get file names without extensions from ls *.i
  • compare them
  • print all names from 1 that are not met in 2

Good luck!

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Please have a look at sed program in linux. –  maths-help-seeker Nov 29 '12 at 9:06

4 Answers 4

up vote 3 down vote accepted
diff \
  <(ls dir.with.h | sed 's/\.h$//') \
  <(ls dir.with.i | sed 's/\.i$//') \
| grep '$<' \
| cut -c3-

diff <(ls dir.with.h | sed 's/\.h$//') <(ls dir.with.i | sed 's/\.i$//') executes ls on the two directories, cuts off the extensions, and compares the two lists. Then grep '$<' finds the files that are only in the first listing, and cut -c3- cuts off the "< " characters that diff inserted.

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thanks for the super quick response. I tested and the results was : ls: dir.with.i: No such file or directory ls: dir.with.h: No such file or directory –  zwx Nov 29 '12 at 9:34
1  
I solved it by making little mod of your proposal: comm -23 <(ls *.h | sed 's/\.h$//') <(ls *.i | sed 's/\.i$//') Thanks for the idea ;) –  zwx Nov 29 '12 at 9:44
ls ./dir_h/*.h | sed -r -n  's:.*dir_h/([^.]*).h$:dir_i/\1.i:p' | xargs ls 2>&1 | \
grep "No such file or directory" | awk '{print $4}' | sed -n -r 's:dir_i/([^:]*).*:dir_h/\1:p'
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The result from my test was : such such such But it should be : hotfloorplan hotspot hotspot-iface npe such –  zwx Nov 29 '12 at 9:36
ls -1 dir1/*.hh dir2/*.ii | awk -F"/" '{print $NF}' |awk -F"." '{a[$1]++;b[$0]}END{for(i in a)if(a[i]==1 && b[i".hh"]) print i}'

explanation:

ls -1 dir1/*.hh dir2/*.ii

above will list all the files *.hh and *.ii files in both the directories.

awk -F"/" '{print $NF}'

above will just print the file name excluding the complete path of the file.

awk -F"." '{a[$1]++;b[$0]}END{for(i in a)if(a[i]==1 && b[i".hh"]) print i}'

above will create two associative arrays one with file name and one with excluding the extension. if both hh and ii files exist the value in the assosciative array will 2 if there is only one file then the value will be 1.so we need array item whose value is 1 and it should be a header file (.hh). this can be checked using the asso..array b which is done in the END block.

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Sorry, but it's not working. Result was : ls: dir1/*.hh: No such file or directory ls: dir2/*.ii: No such file or directory. Anyway it's a closed question. Thanks for the response :) –  zwx Nov 29 '12 at 9:48

Assuming bash is your shell:

for file in $( ls dir_with_h/*.h ); do
    name=${file%\.h};         # trim trailing ".h" file extension
    name=${name#dir_with_h/}; # trim leading folder name
    if [ ! -e dir_with_i/${name}.i ]; then
        echo ${name};
    fi
done

Undoubtedly this can be ported to virtually all other shells. I find this less cryptic than some other approaches (although this is surely my problem) but it is a little wordy. As such. a shell script might help recall it.

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