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I have an image I am trying to display in a QImage.

This is the snippet of code that populates the rows*cols image:

    rgbMapped[row][col * 3] = red;

    rgbMapped[row][col * 3 + 1] = green;

    rgbMapped[row][col * 3 + 2] = blue;

As you can see, my data buffer is "rows-high" and is "cols*3 wide"

rgbMapped is an unsigned char** array. So back in my QT code I have the following:

QImage *qi = new QImage(getWidth(), getHeight(), QImage::Format_RGB888);

for (int h = 0; h< getHeight(); h++){
    memcpy(qi->scanLine(h), rgbMapped[h], getWidth()*3);
}
QPixmap p(QPixmap::fromImage(*qi,Qt::ColorOnly));

if(scene.items().contains(item)){
    scene.removeItem(item);
}
item = new ImagePixmapItem(p);
scene.addItem(item);
ui->graphicsView->setScene(&scene);
ui->graphicsView->show();

ImagePixMapItem is a QGraphicsPixmapItem that I have created to allow me to intercept some mouse events, but I dindt do anyhting with any of the paint functions or anything.

When I run this code, my return comes back as an image that looks like my image, except there are three copies, one with a green tint, one looking yellow-ish and one with a noticeable purple tint.

It seems like maybe it would be the correct image if these three pieces of data were..overlayed on each other?

share|improve this question
    
- I'd try to simplify the test case and save the image to a file instead or paint directly using QPainter. Just to make sure nothing goes wrong with QImage-QPixmap conversion or graphicsview. - My first guess would be that rows and columns get mixed up somehow. –  Frank Osterfeld Mar 17 '11 at 21:04
    
By 3 copies, do you mean you have 3 of the same image squeezed horizontally or vertically into the same size of the image? Or the result is 3x the width or height as it suppose to? –  Stephen Chu Mar 18 '11 at 1:29
    
It was 3x the width as it was supposed to be. I think that part could be because my getHeight() and getWidth() were returning dimensions of the array. Should that be dimensions of the image instead? –  Derek Mar 18 '11 at 15:28
    
If getWidth() is an array dimension (=3 * image-width) the code above is not correct. In the "new QImage(...)" you should put getWidth()/3 and in the memcpy(..) you should put just getWidth() - not getWidth()*3. I think it will make your code more clear if getHeight(), getWidth() refer to the actual image semantics and not to the implementation details. In my answer bellow, I assumed that getWidth() was the actual image-width. –  Fivos Vilanakis Mar 18 '11 at 17:15
    
Yes, the width and height input for QImage is the pixel dimension, not your array size. –  Stephen Chu Mar 19 '11 at 1:46

2 Answers 2

up vote 1 down vote accepted

Just an assumption, but from the (wrong) colors you mentioned, I suspect the problem could be with your allocation/initialization code regarding the char **rgbMapped variable. Could you please post this code?

I will try to write bellow a possibly correct(?) initialization code just to give you a hint which may help (I haven't compile the code, therefore I apologize for any syntax errors). I use malloc() but you can also use the new() operator.

// allocate a single buffer for all image pixels
unsigned char *imgbuf = malloc(3 * getWidth() * getHeight());

// allocate row pointers
unsigned char **rgbMapped = malloc(getHeight() * sizeof (unsigned char *)); 

// Initialize row pointers
for (int h=0; h < getHeight(); h++)
{
  *rgbMapped[h] = &imgbuf[h * 3 * getWidth()];
}

// ... do your processing

// Free the image buffer & row pointers
free(imgbuf);
imgbuf = NULL;
free(rgbMapped);
rgbMapped = NULL;

The important part is the initialization of row pointers (did you forget the *3?). Just my 2c.

share|improve this answer
    
I do like this method. You can get a contiguous block of memory that is accesible with bracket notation. +1 –  Derek Mar 18 '11 at 15:29
    
Just to avoid any confusion: In the code sample above, I assume that getHeight(), getWidth() refer to the actual image height and width - not the width of the required char arrays. Another approach is to allocate a single memory block on every row pointer, but it's slower and more prone to memory fragmentation situations in some systems. –  Fivos Vilanakis Mar 18 '11 at 17:32

Are you accounting for stride? Each scanline must begin on a 4 byte boundary. Also it may not be a packed pixel format, so each pixel is 4 bytes not 3

share|improve this answer
    
I did not know that the scanline had to be on a 4 byte boundary –  Derek Mar 18 '11 at 15:30
    
It's not the problem here. He let QImage allocate the memory and use the scanline buffer from it. Any stride requirement will be handled by QImage code. –  Stephen Chu Mar 19 '11 at 1:42

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