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I didn't know cuda doesn't support reference arguments. There are these two functions in my program:

  __global__ void
  ExtractDisparityKernel (  ExtractDisparity& es)
  {
    es ();
  }

  __device__ __forceinline__ void
  computeAdjacentValue (int x1, int y1, int x2, int y2, float& value )
  {   ....
  }

Given the global function, the compiler reports error: /home/lv/pcl-trunk/gpu/kinfu_large_scale/src/cuda/estimate_combined.cu(959): error: a global routine cannot have reference arguments

I searched for some solutions. Somebody says it is not allowed. But the device function doesn't report such kind of errors. I'm confused that whether cuda supports reference argument. Or the compiler is fooled somehow.

Can anyone give a complete answer to this problem: where reference is allowed and not allowed?

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1 Answer 1

up vote 2 down vote accepted

A reference argument on a __global__ function would not work, because passing the argument by reference in effect creates a pointer that the function will use to reference the argument. However this would usually result in dereferencing a host pointer on the device code, which is not allowed.

A __device__ function may use reference arguments, however, because dereferencing a device pointer in device code is legal.

Regarding a "solution", just pass a pointer:

ExtractDisparityKernel (  ExtractDisparity *es)

And of course, make sure the argument you pass is a proper cudaMalloc-created pointer.

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