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I'm having a very hard time finding the problem in my code. I'm trying to pass a function pointer to the GPU to be executed by the kernel, but for some reason it all fails. Here's my declaration:

typedef void* (*map_func)(void* p);

__device__ void* f(void* param)
{
    int value = (intptr_t)param;
    return (void*)(value * value * value);
}

__device__ map_func d_map = f;

Notice the assignment of f. This is to prove that calling the function pointer with a device function works.

In the kernel I'm calling d_map. On the host I'm declaring and copying a function pointer:

void* square(void* param)
{
    int value = (intptr_t)param;
    return (void*)(value * value);
}

...

map_func h_map = square;    
cudaMemcpyToSymbol(d_map, &h_map, sizeof(map_func));

However, when actually executing the kernel, I get unspecified launch failure, which I suspect means a segfault. I've tested the return code of cudaMemcpyToSymbol and it is success.

In summary: calling d_map if it's pointing to a device function works, but if I try to copy a host function it fails.

I'm sure it's some stupid mistake that I'm unable to spot. Thanks for your help.

share|improve this question
    
Note that you're not dereferencing param, you probably want int value = *(intptr_t)param; unless the int value is the value of the pointer itself, in which case you want int value = (int)param; –  Seth Carnegie Mar 16 '12 at 15:29
    
Are you sure about this? Because in the current version it works fine, but using both the versions suggested (which I actually did before this one) the code does not compile with gcc. In the first version it says that "operand of * must be a pointer", while in the second one, "cast from void* to int loses precision". –  Tudor Mar 16 '12 at 15:34
    
What type is intptr_t, int* right? –  Seth Carnegie Mar 16 '12 at 15:56
    
I have not done this kind of stuff before, but why do you have d_map and &h_map ? Is that the api ? or did you forget an & before d_map or incude it by mistake before h_map ? –  Pavan Yalamanchili Mar 16 '12 at 15:57
    
@Pavan: It's the API. –  Tudor Mar 16 '12 at 15:58

1 Answer 1

up vote 1 down vote accepted

This just occured to me, it may worth a try. Declare the functions you want to be passed around as device functions. Give each of them a device function pointer like you've done for f. Call

cudaMemcpyToSymbol(d_map, &<function of choice>, sizeof(d_map), 0, cudaMemcpyDeviceToDevice)

Since you are copying memory allocated on your device, the function pointer size should hopefully match.

This is completely untested. It may kill your card.

share|improve this answer
    
Thanks for the suggestion. Unfortunately compilation fails saying that the second parameter (address of device function) does not match the signature of cudaMemcpyToSymbol. –  Tudor Mar 16 '12 at 18:06
    
Hmm... oh well. I don't have a setup to compile the code with at the moment. Another thing you can try is to use a __global__ function to do the selection. –  Camford Mar 16 '12 at 18:12
    
Well, I did eventually manage to do what you suggested, but in a more convoluted way and I ended up having the d_map as a parameter to the kernel. Thanks anyway. –  Tudor Mar 16 '12 at 18:35
    
Glad to be of help :) –  Camford Mar 16 '12 at 18:49

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