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I am trying to write a script to read in a list of source files and compile them with gcc using this command: find $source -name '*.c' -or -name '*.cpp' -execdir gcc {} -o $output \; I am able to find the source files, but they are not compiled with gcc. What do I have to do to actually be able to compile them?

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What is the value of $output ? –  hek2mgl Apr 19 '13 at 12:23
    
I just used a test path such as /home/user/Desktop/file.out –  user1049697 Apr 19 '13 at 12:36
    
For me it worked. I've tested with simple 'void main() {}' files. This shows that the find command itself is working. –  hek2mgl Apr 19 '13 at 12:41
    
I found what causes the problem. I had -or -name '*.cpp' added to the find expression as well, and that causes -execdir to not work. –  user1049697 Apr 19 '13 at 12:58

1 Answer 1

up vote 2 down vote accepted

The -execdir action is evaluated as part of the expression. -a takes precedence over -o, so to find the expression reads like:

find $source \( -name '*.c' \) -or \( -name '*.cpp' -execdir gcc {} -o $output \; \)

You need to add parentheses to your expression to force find to behave as you want:

find $source \( -name '*.c' -or -name '*.cpp' \) -execdir gcc {} -o $output \;

Some simpler examples:

# touch a b
# find . -name a -o -name b -print
./b
# find . -name a -print -o -name b
./a
# find . \( -name a -o -name b \) -print
./b
./a
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