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Can anyone help me understand what the following command does in Linux.

sed -i file.c -e "s/  __attribute__ ((__unused__))$$/# ifndef __cplusplus\n  __attribute__ ((__unused__));\n# endif/"
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up vote 1 down vote accepted

It's doing an inplace search-and-replace on file.c, looking for

 __attribute__ (__unused__)

at the end of a line, and replacing any occurences with

# ifndef __cplusplus\n  __attribute__ (__unused__);\nendif

which works out to:

# ifndef __cplusplus
    __attribute__ (__unused__)
# endif

THe doubled brackets and $ signs are to "escape" those characters in the shell.

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1  
I think you'll find that the double bracket syntax is part of the __attribute__ specifier in gcc. And I'm not certain about the $$ escaping anything, since $$ is a shell variable that returns the current pid. – Greg Hewgill Jan 19 '11 at 3:18
    
True, but the $$ is within a double-quoted string, so it's going to be expanded. – Marc B Jan 19 '11 at 12:09
1  
Please correct your answer. The doubled characters do not do any "escaping". – Dennis Williamson Jan 19 '11 at 15:03

It adds # ifndef __cplusplus and # endif around __attribute__ ((__unused__)); in file.c

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As Greg says in a comment, the $$ will expand to the PID of the shell which doesn't make sense in the context. If it was a single dollar sign, or wasn't there, the command could be shortened to:

sed -i file.c -e "s/  __attribute__ ((__unused__))$/# ifndef __cplusplus\n&;\n# endif/"

since & brings forward what was matched between the first pair of delimiters (slashes in this example). The single dollar sign causes the match to only be made if the string is at the end of the line.

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