31

I have b number of blocks and each block has t number of threads. I can use

 __syncthreads()

to synchronize the threads that are in a particular block. for example

__global__ void aFunction()
{
    for(i=0;i<10;i++)
    {
       //execute something
        __syncthreads();
    }
}

But my problem is to synchronize all the threads in all the blocks. How can I do this?

49

In CUDA 9, NVIDIA is introducing the concept of cooperative groups, allowing you to synchronize all threads belonging to that group. Such a group can span over all threads in the grid. This way you will be able to synchronize all threads in all blocks:

#include <cooperative_groups.h>

grid_group g = this_grid();
g.sync();

You need a Pascal (compute capability 60) or a newer architecture to synchronize grids. In addition, there are more specific requirements. See: https://docs.nvidia.com/cuda/cuda-c-programming-guide/index.html#grid-synchronization-cg

Basic functionality, such as synchronizing groups smaller than a thread block down to warp granularity, is supported on all architectures, while Pascal and Volta GPUs enable new grid-wide and multi-GPU synchronizing groups.

Source: https://devblogs.nvidia.com/parallelforall/cuda-9-features-revealed/


Before CUDA 9, there was no native way to synchronise all threads from all blocks. In fact, the concept of blocks in CUDA is that some may be launched only after some other blocks already ended its work, for example, if the GPU it is running on is too weak to process them all in parallel.

If you ensure that you don't spawn too many blocks, you can try to synchronise all blocks between themselves, e.g. by actively-waiting using atomic operations. This is however slow, eating up your GPU memory controller, is considered "a hack" and should be avoided.

So, if you don't target Pascal (or newer) architecture, the best way that I can suggest is to simply terminate your kernel at the synchronisation point, and then launch a new kernel which would continue with your job. In most circumstances it will actually perform faster (or at least - with simmilar speeds) than using the mentioned hack.

  • 1
    Yay! After 6 years from the original answer, a new version of CUDA makes me revisit it and give a more positive solution :) – CygnusX1 Jul 9 '17 at 14:53
  • 1
    more specifically #include <cuda_runtime_api.h> #include <cuda.h> #include <cooperative_groups.h> ... cooperative_groups::grid_group grp = cooperative_groups::this_grid(); grp.sync(); – ragerdl Mar 6 '19 at 10:02
  • @ragerdl this code is to be written in the cuda kernel or the main program? – Andreas Hadjigeorgiou Dec 10 '19 at 8:56
  • 1
    @AndreasHadjigeorgiou both my code in the solution, as well as ragerdl's is written within the kernel. Except for the includes of course. – CygnusX1 Dec 10 '19 at 12:23
  • thank you it works pretty good! just to note that you need to define like: cooperative_groups::grid_group g = cooperative_groups::this_grid(); and also consider reading this because the kernel should be launched via API cudaLaunchCooperativeKernel – Andreas Hadjigeorgiou Dec 11 '19 at 12:57

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