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in the following snippet I wish the function accept a double pointer(2D array) which can be in any data type(in this case, integer), and use memcpy to copy one element at a time of the array to another variable. It passed the compiler but still shows an access violation.

I looked everywhere around the forum but still can't get this right.

Any tips are appreciated. I am nearly devastated by the complexity of C.

void ShowImg(void **ptr, IplImage *sample, char window_name[])
{
    int value;
    IplImage *sml_img= cvCreateImage(cvSize(sample->width,sample->height),IPL_DEPTH_8U, 1);
    for(int j=0; j<sample->height; j++)
        for(int i=0; i<sample->width; i++){
            memcpy(&value, ptr+i*sizeof(int)+j*sample->width*sizeof(int), sizeof(int));
            ((uchar *)(sml_img->imageData + sml_img->widthStep*j))[i] = value;
            printf("%d,%d\n", i, j);
        }
    cvNamedWindow(window_name);
    cvShowImage(window_name, sml_img);
    cvWaitKey(0);
    cvDestroyWindow(window_name);
    cvReleaseImage(&sml_img);

}
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1  
If you want to assign something to value, why don't you just use assignment? –  Ilya Kogan Apr 5 '11 at 7:58
    
Because I wish the function to be more general, so I pass a 'void **' pointer to the function. Thus I can assign any data type without rewriting the code very much. –  Anthony Apr 5 '11 at 8:13

2 Answers 2

up vote 3 down vote accepted

I think there's a mistake here: ptr+i*sizeof(int) since ptr is of type void** ptr+1 is the next element, meaning ptr+sizeof(void*), why would you multiply it by sizeof(int)?

for example:

ptr = 0x00000000, 
sizeof(void*) = 4, 
sizeof(int) = 4
||
\/
ptr+1 = 0x00000004. 
ptr+1*sizeof(int) = 0x00000010.

and I don't think that's what you want. (the same about j*sample->width*sizeof(int))

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How can the compiler know the memory location of 'ptr+1'? It's a void type. Since in this case 'ptr' is actually a 2D int array, so I increment 4 byte each time I access an element. If it's a double, I would increment 8 bytes. –  Anthony Apr 5 '11 at 8:27
    
The compiler knows the type of the variable (in your case void**) since it is declared (in the function arguments in this case). So it knows that each time you add X to the pointer, to add x * sizeof(void*) to the pointer. this is pointer arithmetic. (see more here: cs.umd.edu/class/spring2003/cmsc311/Notes/BitOp/pointer.html) –  MByD Apr 5 '11 at 8:40
    
Thanks. I didn't know void* is of size 4 bytes. Seems the problem is solved. –  Anthony Apr 5 '11 at 9:05
    
Well; void* is the size of an adress. On a 32 bit computer that is 4 bytes, on a 64 bit computer that is 8 bytes. –  user422005 Apr 5 '11 at 9:34
    
@user422005 - due to earlier arguments here regarding pointer size, I didn't even want to get into this :) –  MByD Apr 5 '11 at 10:12

memcpy(3) is really for copying objects that are larger than the primitive types. You could replace this line:

memcpy(&value, ptr+i*sizeof(int)+j*sample->width*sizeof(int), sizeof(int));

with this line:

value = ptr+i*sizeof(int)+j*sample->width*sizeof(int);

The sizeof(int) scaling is throwing me; you shouldn't need this if your datatypes are known to the compiler at compile time. Why is your array a void ** rather than something more specific, which the compiler could work with? (int ** would be a good first start, but I'm not very good at multidimensional arrays in C, so I'm not positive this would be a better replacement. But I do dislike what you have now. :)

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