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So I have a rather strange error that is happening. I have a kernel that is supposed to alter the value of every element in an array. As of right now I only test with launching one thread.

    __global__ void kernel(int* data) {
        for (int var = 0; var < SIZE; ++var) {
            data[var] = data[var] + 1;
        }
    }

Here is the whole code:

    #include "stdint.h"
    #include "stdio.h"
    #include "kernelLauncher.cuh"
    #include <cuda_runtime.h>

    #define  SIZE 10485760

    typedef uint64_t POLY_64;
    typedef unsigned char BYTE;


    __global__ void kernel(int* data) {

        for (int var = 0; var < SIZE; ++var) {
            data[var] = data[var] + 1;
        }

    }

    int main() {

        int* data = (int*) malloc(sizeof(int) * SIZE);
        int* data_d;

        for (int var = 0; var < SIZE; ++var) {
            data[var] = 1;
        }
        //allocate device memory for the fingerprinting data
        cudaMalloc((void**) &data_d, sizeof(int) * SIZE);

        //copy the data to device

        CUDA_CHECK_RETURN(
                cudaMemcpy(data_d, data, sizeof(int) * SIZE, cudaMemcpyHostToDevice));

        kernel<<<1, 1>>>(data_d);
        cudaThreadSynchronize();


        CUDA_CHECK_RETURN(cudaMemcpy(data, data_d, sizeof(int) * SIZE, cudaMemcpyDeviceToHost));

        //try to print the result
        for (int var = 0; var < SIZE; ++var) {
            printf("%d\n", data[var]);
        }

        CUDA_CHECK_RETURN(cudaFree(data_d));
        return 0;
    }

When my SIZE is defined to 1048576, I get my data back just fine. Unfortunatelly when I define it as 10485760 (10 times more). I get:

    Error unspecified launch failure at line 40 in file ../src/runTest.cu

Can somebody point me in the right direction. Why is this problem happening ? Thank you in advance

EDIT: So yes.. it is the size definition. I changed my code now so there are no discrepancies between the hard coded loop value in the kernel and the defined constant. However, if I have 10485760 instead of 1048576 it simply does not work.. Why is that. This is not too much allocation at one go.. My card is a Quadro FX 770m with compute capability 1.1

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1  
Which line is 89? Why don't you have error checking for all the API calls and the kernel launch. It is very hard to give an answer without knowing where in the code the error is arising.... –  talonmies Jun 6 '13 at 11:59
    
I am really sorry. I am a real noob when it comes to CUDA. The line of the error is actually not in the soruce code posted.. The line is the one that copies the result back to the host : CUDA_CHECK_RETURN(cudaMemcpy(data, data_d, sizeof(int) * SIZE, cudaMemcpyDeviceToHost)); Having said that.. could the problem be that I am not synchronizing with cudaThreadSynchronize(); after I launch the kernel and before I try and copy the data back ? –  Zahari Jun 6 '13 at 12:07
    
I have updated my code so it reflects better what is happening. –  Zahari Jun 6 '13 at 12:11
    
What about the kernel? Is 1048576 really hardcoded in the loop, or is it actually SIZE? If you want us to tell you exactly what is going wrong you have to show us the exact code. Otherwise how can we possibly say what the problem is? (and it almost certainly anything like what you think it is) –  talonmies Jun 6 '13 at 12:15
2  
So now the code looks like it should work correctly when SIZE=10485760 and not correctly when SIZE=1048576, ie. the opposite of what you are telling us. I say that because the SIZE=1048576 case should be a guaranteed out of bounds memory error in the kernel. –  talonmies Jun 6 '13 at 12:34

1 Answer 1

up vote 0 down vote accepted

So.. here is what actually seemed to be happening. As some of you suggested, the kernel was indeed taking too long and timing out (although I read from various soruces that this does not happen on Linux systems) So separating the work like this in fact solves the issue and avoids the watchdog killing the kernel :

        kernel<<<1, 1>>>(data_d, 0, 1048576);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 1048576, 2097152);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 2097152, 3145728);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 3145728, 4194304);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 4194304, 5242880);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 5242880, 6291456);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 6291456, 7340032);
        cudaDeviceSynchronize();
        kernel<<<1, 1>>>(data_d, 7340032, 8388608);
        cudaDeviceSynchronize();

Now I wonder, what is the way to avoid hitting this threshold. I tried adding

    Section "Device"
        Identifier     "Device0"
        Driver         "nvidia"
        VendorName     "NVIDIA Corporation"
        Option         "Interactive" "0"  #<<--- added to avoid kernel time-out
    EndSection

into the device section in my Xorg.conf, but this did not really help.

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Linux also has some watchdog mechanisms for GPUs that are hosting X displays. This document may be of interest. I think you want to set that "Interactive" parameter to "off" not "0", but check your driver release notes to confirm the correct settings. –  Robert Crovella Jun 7 '13 at 2:15

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