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I have a small problem with the size of my buffers in a C++ program. I grab YUYV images from a camera using V4L2 (an example is available here )

I want to take one image and put it into a my own image structure. Here is the buffer given by the V4L2 structure and its size

(uchar*)buffers_[buf.index].start, buf.bytesused

In my structure, I create a new buffer (mybuffer) with a size of width*height*bitSize (byte size is 4 since I grab YUYV or YUV422 images).

The problem is that I was expecting the buffer buf to be the same size as the one that I created. But this is not the case, for example when I grab a 640*480 image buf=614400 and mybuffer=1228800 (twice as big).

Does anyone have any idea why this is the case ?

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How do you get 32 bits/pixel out of YUV422? –  Ben Voigt May 4 '13 at 21:56
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YUYV format is 16 bits per pixel because you have two Y, one U and one V for every TWO pixels (U and V are sub-sampled). –  6502 May 4 '13 at 22:02
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1 Answer 1

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YUV422 uses 4 bytes per 2 pixels

In YUV422 mode the U ans V values are shared between two pixels. The bytes in the Image are ordered like U0 Y0 V0 Y1 U2 Y2 V2 Y3 etc.

Giving pixels like:

pixel 0   U0Y0V0
pixel 1   U0Y1V0
pixel 2   U2Y2V2
pixel 3   U2Y3V2
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Ok, I understand that, but since my buffer's type is unsigned char, how would you represent that fact ? By dividing the size of mybuffer by two when I allocate the memory ? –  Athanase May 4 '13 at 22:43
    
Your buffer ought to be 640*480*2 = 614400 bytes, right? That does not change with it being unsigned char. sizeof(char) is required to be 1 –  Ebbe M. Pedersen May 4 '13 at 23:02
    
Ok my question was exactly that: because YUV422 -> 4 bytes per 2 pixels is that allowed to write in my code that the number of channels for this format is 2 (and not 4) ? –  Athanase May 4 '13 at 23:10
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