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Code executes, but nothing gets passed on image_data (line 44 the write_function)

So I have no working array for the function (line 11), why is that so? I thought passing on the reference for image_data should be enough? (I'm used to it, mostly developing JAVA)

#include <iostream>
#include <string.h>
#include <fstream>

using namespace std;

//Expects bgra image data
//Only makes bgr and bgra with 8 bits per pixel pictures
//Expects big endian ushorts
//makes no checks on the data supplied!
void write_tga(ofstream& output,char image_data[],unsigned short xWidth,unsigned short yWidth,bool transparency) //Line 11 - Line 11 - Line 11 - Line 11
{
    char zero = static_cast<char>(0x00);
    char two = static_cast<char>(0x02);

    //Convert uint to char Array
    unsigned char xWidth_arr[2];
    unsigned char yWidth_arr[2];
    memcpy(xWidth_arr, &xWidth, 2);
    memcpy(yWidth_arr, &yWidth, 2);

    char header[18] = {zero,zero,two,zero,zero,zero,zero,zero, zero,zero,zero,zero, xWidth_arr[0],xWidth_arr[1],yWidth_arr[0],yWidth_arr[1],static_cast<char>(0x18),zero};
    //enabling transparency
    if(transparency){
        header[16]= static_cast<char>(0x20);
        header[17]= static_cast<char>(0x08);
    }
    char footer[26] = {zero,zero,zero,zero,zero,zero,zero,zero, 'T','R','U','E','V','I','S','I','O','N','-','X','F','I','L','E','.',zero};

    output.write((char*)&header,sizeof(header));
    output.write((char*)&image_data,sizeof(image_data));
    output.write((char*)&footer,sizeof(footer));
    output.close();
    cout << image_data[0] << endl;
}

int main()
{
    ofstream output("data.tga",ios::binary);
    output.seekp(0);

    char zero = static_cast<char>(0x00);
    char image_data[12] = {static_cast<char>(0xff),static_cast<char>(0xff),static_cast<char>(0xff), zero,zero,zero, zero,zero,zero, zero,zero,zero};

    write_tga(output,image_data,2,2,false); //Line 44 - Line 44 - Line 44 - Line 44
    return 0;
}
share|improve this question
    
sizeof (imagedata) is not what you expect, insert some debug code to see what it is. (and change your cout to cout << image_data << endl; to get 'some' output - though nothing useful) –  KevinDTimm Jul 25 '11 at 22:42
1  
Instread of output.write((char*)&image_data,sizeof(image_data));, say output.write(image_data, n);, and you have to pass the size n somehow, because the array size doesn't survive the decay-to-pointer of image_data. (It might be that in your case you can just say 12.) –  Kerrek SB Jul 25 '11 at 22:43

2 Answers 2

up vote 2 down vote accepted

What exactly are you trying to do in this code:

output.write((char*)&image_data,sizeof(image_data));

Array name is a pointer. You're writing to output its content (the memory address), not the actual data it points to. Remove the & operator to write the content it points to, which is what you wanted, I think. Or use & on the first member (e.g.: (char*)&image_data[0]).

sizeof returns a size of a pointer for image_data. Use a "size" parameter to convey the size.

And you're abusing static_cast for no apparent reason.

share|improve this answer
    
I think that taking the operator& of an array gives the address of the first element of the array; not sure if that's still true when the array is a function parameter, but that's the way I'd bet. –  Mark Ransom Jul 25 '11 at 22:48
2  
array as a function parameter is a pointer, taking its address gives you its address, not the address it points to. –  littleadv Jul 25 '11 at 22:49
1  
Got it working: output.write(image_data,n); n is the size parameter that has to be passed on to the function. Why do I abuse static_cast? Is there an easier way? (actually got that from an example from some other site) –  whyRegister Jul 25 '11 at 23:19
    
@whyRegister, you're abusing static_cast because it's totally unnecessary. Any integer constant that fits will convert to char without casting. –  Mark Ransom Jul 26 '11 at 2:31

C++ does not have dynamic arrays. There's an unfortunate syntax choice that char imagedata[] may be used as a parameter, but it's actually treated as a char * imagedata. This means that the sizeof operator is returning the size of a pointer, not the size of the array.

share|improve this answer
    
imagedata isn't a dynamic array, and it could be passed as an array (by reference), but the code shown doesn't do that. –  Ben Voigt Jul 25 '11 at 22:52
    
@Ben, of course imagedata isn't a dynamic array, because C++ doesn't have such a thing! (vector doesn't quite count). It could be passed as an array either by reference or not, but the size would need to be a constant specified in the parameter list. I'm sure you already know that, but I gotta keep the record straight. –  Mark Ransom Jul 26 '11 at 2:36
    
Whaddaya mean C++ doesn't have a dynamic array? What do you call new int[n]? And if you did pass a statically-sized array by reference, the compiler could find the size during template parameter inference. –  Ben Voigt Jul 26 '11 at 5:17

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