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when i tested the following example, i found that by increasing the blocksPerGrid and threadsPerBlock the Kernel delay increase

such that if

int threadsPerBlock = 1;    
int blocksPerGrid = 1;

blocksPerGrid and threadsPerBlock equal 1 the delay of the kernel = .0072 ms

but when i make the following it the delay become higher = .049 ms

int threadsPerBlock = 1024;
int blocksPerGrid = (N+threadsPerBlock-1) / threadsPerBlock;

where

N = 50000; //the no. of array elements

on the following the complete VecAdd example. you can test it

// Includes
#include <stdio.h>
#include <cutil_inline.h>
#include <shrQATest.h>

// Variables
float* h_A;
float* h_B;
float* h_C;
float* d_A;
float* d_B;
float* d_C;
bool noprompt = false;

// Functions
void CleanupResources(void);
void RandomInit(float*, int);
void ParseArguments(int, char**);

 // Device code
 __global__ void VecAdd(const float* A, const float* B, float* C, int N)
{
  int i = blockDim.x * blockIdx.x + threadIdx.x;
  if (i < N)
      C[i] = A[i] + B[i];
 } 

 // Host code
 int main(int argc, char** argv)
 {
     shrQAStart(argc, argv);

cudaEvent_t event1, event2;
cudaEventCreate(&event1);
cudaEventCreate(&event2);


 printf("Vector Addition\n");
 int N = 50000;
 size_t size = N * sizeof(float);
 ParseArguments(argc, argv);

// Allocate input vectors h_A and h_B in host memory
h_A = (float*)malloc(size);
if (h_A == 0) CleanupResources();
h_B = (float*)malloc(size);
if (h_B == 0) CleanupResources();
h_C = (float*)malloc(size);
if (h_C == 0) CleanupResources();

// Initialize input vectors
RandomInit(h_A, N);
RandomInit(h_B, N);

// Allocate vectors in device memory
cutilSafeCall( cudaMalloc((void**)&d_A, size) );
cutilSafeCall( cudaMalloc((void**)&d_B, size) );
cutilSafeCall( cudaMalloc((void**)&d_C, size) );

// Copy vectors from host memory to device memory
cutilSafeCall( cudaMemcpy(d_A, h_A, size, cudaMemcpyHostToDevice) );
cutilSafeCall( cudaMemcpy(d_B, h_B, size, cudaMemcpyHostToDevice) );

 // Invoke kernel
 int threadsPerBlock = 1024;
 int blocksPerGrid = (N+threadsPerBlock-1) / threadsPerBlock;

 cudaEventRecord(event1, 0); 
 VecAdd<<<blocksPerGrid, threadsPerBlock>>>(d_A, d_B, d_C, N);
 cudaEventRecord(event2, 0);

cudaEventSynchronize(event1); //optional
cudaEventSynchronize(event2);

float dt_ms;
cudaEventElapsedTime(&dt_ms, event1, event2);

printf("delay_time = %f\n", dt_ms);

   cutilCheckMsg("kernel launch failure");
 #ifdef _DEBUG
  cutilSafeCall( cutilDeviceSynchronize() );
 #endif

  // Copy result from device memory to host memory
  // h_C contains the result in host memory
  cutilSafeCall( cudaMemcpy(h_C, d_C, size, cudaMemcpyDeviceToHost) );

  // Verify result
  int i;
  for (i = 0; i < N; ++i) {
      float sum = h_A[i] + h_B[i];
      if (fabs(h_C[i] - sum) > 1e-5)
          break;
  }

     CleanupResources();
     shrQAFinishExit(argc, (const char **)argv, (i==N) ? QA_PASSED : QA_FAILED);

 }

  void CleanupResources(void)
 {
  // Free device memory
  if (d_A)
     cudaFree(d_A);
  if (d_B)
     cudaFree(d_B);
  if (d_C)
     cudaFree(d_C);

  // Free host memory
  if (h_A)
     free(h_A);
  if (h_B)
     free(h_B);
  if (h_C)
     free(h_C);

  cutilDeviceReset();
 }

  // Allocates an array with random float entries.
  void RandomInit(float* data, int n)
 {
    for (int i = 0; i < n; ++i)
    data[i] = rand() / (float)RAND_MAX;
 }

 // Parse program arguments
 void ParseArguments(int argc, char** argv)
 {
   for (int i = 0; i < argc; ++i) {
      if (strcmp(argv[i], "--noprompt") == 0 ||
          strcmp(argv[i], "-noprompt") == 0) 
      {
        noprompt = true;
        break;
        }
    }
  }

can any one explain for me what does it mean?

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3  
In case 1, a kernel of size 1 thread is launched and performs 2 reads and 1 write operation. In case 2, a kernel of size 50176 threads are launched and perform 100,000 reads and 50,000 writes operations. Increasing the workload by 50,000 increased execution time by ~7x. The work done by the two launches is significantly different. –  Greg Smith Jan 1 '13 at 15:08
    
You are right, thanks a lot. –  abdo.eng 2006210 Jan 6 '13 at 7:16

1 Answer 1

up vote 2 down vote accepted

In case 1, a kernel of size 1 thread is launched and performs 2 reads and 1 write operation. In case 2, a kernel of size 50176 threads are launched and perform 100,000 reads and 50,000 writes operations. Increasing the workload by 50,000 increased execution time by ~7x. The work done by the two launches is significantly different.

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