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While reading about bitmap processing in C++ I came across this block of code used for loading a color palette with data taken from a bitmap file:

//set Number of Colors
numColors = 1 << bmih.biBitCount;

//load the palette for 8 bits per pixel
if(bmih.biBitCount == 8) {
        colours=new RGBQUAD[numColours];
        fread(colours,sizeof(RGBQUAD),numColours,in);
}

where "bmih.biBitCount" is a predefined variable that already has a value. Why does the author declare numColors to equal 1 then assign the value bmih.biBitCount to that variable in the same line? what exactly does this do and what are the benefits of assigning a variable a value twice inline like this?

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1 is not assigned to numColors as u think –  Blue Moon Sep 10 '12 at 19:21
5  
You really need to get a beginners book on c++ –  David Rodríguez - dribeas Sep 10 '12 at 19:21

2 Answers 2

up vote 4 down vote accepted

Why does the author declare numColors to equal 1 then assign the value bmih.biBitCount to that variable in the same line?

He doesn't; he assigns the result of the expression 1 << bmih.biBitCount to numColors. The assignment occurs last. << is the bitwise left shift operator. Think of it this way:

//set Number of Colors
numColors = (1 << bmih.biBitCount);
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so does (1 << bmih.biBitCount) basically mean "copy the value of bmih.biBitCount into numColors for a bitlength of 1*sizeof(bmih.biBitCount)"? –  kjh Sep 10 '12 at 19:23
    
@bjh: No. Follow the link about bitwise shift operators. –  Loki Astari Sep 10 '12 at 19:25

He doesn't, and this is a case where using << as a "streaming" operator confuses people.

The << and >> operators were traditionally bit shift operators, which is their meaning in this case. These operators shift a variable left or right by a number of places. Say we have x = 0b00001 (and your compiler understands binary notation like that). x << 2 will give the result 0b00100.

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1 << bmih.biBitCount means 1 shifted left bitwise with 'bmih.biBitCount, which is, most probably zero. I guess bmih.biBitCount << 1` would be more appropiate. –  Lorlin Sep 10 '12 at 19:24
    
@Lorlin - no it doesn't. 1 will be casted to the type of numColors, then shifted left by bmih.biBitCount. –  slugonamission Sep 10 '12 at 19:25
    
Yep. And 1 shifted left with n is zero for any n!=0. Isn't? –  Lorlin Sep 19 '12 at 15:34
    
@Lorlin - No, it's 2^n... –  slugonamission Sep 19 '12 at 23:10
    
Oh, gosh, I was mistaken! I send back my diploma to the uni. –  Lorlin Sep 21 '12 at 7:32

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