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Recently the documentation for GCC 4.8 was updated which now introduces a new optimization switch, -Og. This

[..] addresses the need for fast compilation and a superior debugging experience while providing a reasonable level of runtime performance. Overall experience for development should be better than the default optimization level -O0.

Does this switch imply -g or do I have to add it to my CXXFLAGS manually?

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short answer is yes. –  January Oct 19 '12 at 9:36
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Apparently not "Note that -Og does not imply -g, it simply disables optimizations that may interfere with debugging." - Gentoo wiki –  Marco Scannadinari Nov 9 '13 at 22:10
    
It would be nice to have something that proves either of both statements, maybe some code excerpt from gcc? If posted as an answer, I will accept and upvote it. –  cschwan Nov 18 '13 at 10:35

1 Answer 1

up vote 2 down vote accepted

Short answer: No, you must still add -g manually.

Long answer:

I have struggled to find a hard answer straight from the source, so I decided to test it out myself using the methods described here: How to check if program was compiled with debug symbols?

I built an executable with the -O3 flag and without -g. Using objdump --syms <file> | grep debug yielded nothing, as expected.

I then built an executable with -g and without any optimization flags. The same objdump command yielded six results such as this:

0000000000000000 l d .debug_info 0000000000000000 .debug_info

I finally built an executable with the -Og flag and without -g. The objdump command yielded nothing. That implies that debug symbols are not present in this case.

While I can't find any explicit documentation from GCC itself, the Gentoo Wiki (as mentioned before by Marco Scannadinari) confirms my assertion that -Og does not imply -g.

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