9

I'm working with the default C++ compiler (I guess it's called the "Visual Studio C++ compiler") that comes with Visual Studio 2013 with the flag /Ox (Full Optimization). Due to floating point side effects, I must disable the -ffast-math flag when using the gcc compiler. Is there an equivalent option for this flag in the configuration of the Visual Studio C++ compiler?

  • 1
    Note that disabling -ffast-math in gcc means not passing that option, it is more like "not enabling". – Marc Glisse Oct 21 '14 at 19:17
10

You are looking for /fp:precise, although that is also the default.

If you need the strictest floating point calculations that VS can offer, try /fp:strict, although that is probably overkill.

You probably have nothing to worry about since the default behavior should be what you desire. Just make sure that /fp:fast is not specified, but if you try to compile with both /fp:fast and /fp:precise you will get a compilation error anyway, so that should be easy to catch.

The link that Hans Passant provided to the MSDN website provides all the details you might want.

| improve this answer | |
-3

None of the MSVC++ options enable the optimizations which are invoked by g++ -ffast-math.

| improve this answer | |
  • 1
    are you sure? how about /fp:? – phuclv Oct 25 '16 at 7:00
  • Microsoft /fp:fast doesn't invoke those optimizations. You may be confused by the conflicting Intel C++ usage where fast=2 does operate similar to g++ -ffast-math ( and fast=1 invokes the important ones, except for complex limited range). – tim18 Jul 20 '17 at 17:45
  • obviously it may not be exactly the same but it does specify the floating-point operations behavior which is what the OP asked. He didn't ask about all -ffast-math side effects – phuclv Jul 21 '17 at 1:01
  • Does -ffast-math included in -O3 in GCC? Because it seems in my project (Image Convolution) that MSVC 2015 generate much faster code than GCC 7.1. – Royi Aug 5 '17 at 10:01
  • No,. -O3 doesn't set -ffast-math. – tim18 Aug 5 '17 at 10:20

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.