Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have to port on a GPU a structure that use extensively the random numbers. Everything could be ported without a lot of problems but the random generator function is the only thing that it's called extensively in all the function of this class. I though I could simply reimplement it as a internal device function of the class itself. Below I put a toy model of what I need (take in consideration that the class with which I am working is more complicated). I need also that each call of the function "rand" give a different random number (even in the same object). Here the toy model, however it produce wrong results. Could anyone help me to correct it please?

#include <cuda.h>
#include <iostream>
#include <curand_kernel.h>
using namespace std;

struct test{

float value;

curandState B;

void __device__ rand(){value=curand_uniform(&B);}
void __device__ foo(){rand();}
};

__global__ void setup_kernel(curandState *state)
{
const int id=blockIdx.x;
curand_init(id, id, 0, &state[id]);
}

__global__ void fill_mat(struct test *anobj, curandState *state)
{
 const int Idx=blockIdx.x;
 curandState localState = state[Idx];
 anobj[Idx].B=localState;
 anobj[Idx].foo();
}

int main()
{
int num=10;
curandState *devStates;
cudaMalloc(  (void **)&devStates, num*sizeof(curandState) );

struct test *results = (struct test*)malloc(num*sizeof(struct test));
struct test *to_device;
cudaMalloc ( (void **)&to_device, num*sizeof(to_device));

setup_kernel<<<num, 1>>>(devStates);

fill_mat<<<num,1>>>(to_device, devStates);

cudaMemcpy(results,to_device,num*sizeof(struct test),cudaMemcpyDeviceToHost);

for(int i=0;i<num;i++)
 cout<<results[i].value<<endl; 
return 0;
}
share|improve this question
1  
Can you explain in more detail what "wrong results" you get? –  harrism Feb 3 '12 at 2:36
    
@harrism at the beginning I was calling anobj[Idx].rand(), I added foo() later and I didn't check if it compile, now I can't check I don't have nvcc on this computer (but I will check in few hours). However I expect that if you call anobj[Idx].rand() from the kernel then "value" should get a random number. Instead I get a series of zeros when I print the output in the last for cycle. –  Fabrizio Feb 3 '12 at 17:16
add comment

1 Answer

Thanks for the great (and complete) example. After building it I found two issues.

When you cudaMalloc to_device you want to allocate num*sizeof(struct test) bytes.

I'm assuming you might want to invoke fill_mat more than once, or you might have other kernels and you want them to get different numbers each time. If so, at the end of fill_mat (or other kernels that make a copy of curandState), you need to copy your local state back to curandState. This is because curand advances the state each time you generate a number.

Lastly (and this is not necessarily a bug) I see you are using thread id as both the seed and the sequence in the call to curand_init. This is OK, but there is some (extremely unlikely) risk that curand's seed scrambling algorithm would land you in a part of the sequence that overlaps with that of some other thread. curand_init uses a scrambled version of the seed to generate an initial state, and then applies a skipahead of 2*67 times the sequence. Generally, the intent is that all threads would use the same seed, to guarantee that each thread is 2*67 away from the previous, within the sequence.

PaulS.

share|improve this answer
    
Thank you for the answer. Actually i found that without a call of cudaMemcpy "host to device" the code don't give the right results. For the rest you are completely right. Now I am moving to the next issue, when "value" is an array of size "N" (but you allocate it at the host!) and you want to fill it in the kernel. –  Fabrizio Feb 5 '12 at 23:19
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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