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__constant__ float constData[256];
float data[256];
cudaMemcpyToSymbol(constData, data, sizeof(data));
cudaMemcpyFromSymbol(data, constData, sizeof(data));
__device__ float devData;
float value = 3.14f;
cudaMemcpyToSymbol(devData, &value, sizeof(float));
__device__ float* devPointer;
float* ptr;
cudaMalloc(&ptr, 256 * sizeof(float));
cudaMemcpyToSymbol(devPointer, &ptr, sizeof(ptr));

This is an example taken from nvidia's website. According to the same site, the signature for cudaMemcpyToSymbol takes a pointer as it's first argument. The variable devData is not a pointer and still being used in place of one. How is this possible? I also realize that signature has changed, but why would this make sense in any context? Would that be a valid argument as the symbol to the new functions as well?

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1 Answer 1

up vote 1 down vote accepted

Look at the documentation for the C++ version of cudaMemcpyToSymbol().

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This is an example from the cuda c guide –  rubixibuc Apr 15 '13 at 22:53
    
And it is correct. Have you tried compiling it and run into problems or are you just saying that according to your understanding it should not work? –  tera Apr 15 '13 at 23:05
    
I admit that the documentation for cudaMemcpyToSymbol() is confusing, particularly as it evolved over time. But the code above is correct, as far as I can tell without running it. –  tera Apr 15 '13 at 23:07
    
I'm studying in preparation for a experiment, in which I will be remotely running the code. I currently don't have access to any card that runs CUDA. Will this function work with any CUDA setup, or does something need to be added to run the C++ like functions. –  rubixibuc Apr 16 '13 at 0:49
    
It will work with any setup, as long as you use nvcc to compile the code (which is the normal way of compiling CUDA code). Let me applaud you for getting this far with only the documentation! I believe it is very difficult to get to know CUDA without some hands-on experience with an actual GPU. –  tera Apr 16 '13 at 1:27

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