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I get seg fault error when memcpy is called (last line) in the following code. Can anyone guess why?

%gds0 = getelementptr i16* %ldcs0, i32 0
%gds0.i8 = bitcast i16* %gds0 to i8*
%gdd0 = getelementptr i16* %ldcs0, i32 0
%gdd0.i8 = bitcast i16* %gdd0 to i8*
call void @llvm.memcpy.p0i8.p0i8.i32(i8* %gdd0.i8, i8* %gds0.i8 ,i32 2, i32 4, i1 false)
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1 Answer 1

First, what is the point of getelementptr i16* %ldcs0, i32 0? Those instructions don't do anything. And you use the same base address and same index twice, so your code is equivalent to

%ldcs.i8 = bitcast i16* %ldcs to i8*
call void @llvm.memcpy.p0i8.p0i8.i32(i8* %ldcs.i8, i8* %ldcs.i8 ,i32 2, i32 4, i1 false)

And having the source and destination pointers point to the same location is not allowed, as you can read on the intrinsic's documentation:

The 'llvm.memcpy.*' intrinsics copy a block of memory from the source location to the destination location, which are not allowed to overlap.

So this could explain your error. Even if you fix it to use two different locations, though, it might still fail if:

  1. Either the source or the destination memory are not owned by the process
  2. Either the source or the destination memory are not aligned to 4 bytes, after you explicitly specified (in the argument list) that they are

Finally, you don't really need to use a memcpy for copying just two bytes, the above code could be rewritten by a load i16* followed by store i16.

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