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i'm looking at a c source file and i found this macro:

#define random ( (float) rand() / (float) ((1 << 31) -1) )

while in standard ANSI C rand() returns an integer in [0,32767], i really appreciate an help to understand what kind of normalization factor is the denominator, because signed integer are 16 bit and the expression does a 31-bit shift.

Thank you very much for your attention Best regards

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why do you say signed integer is 16 bits? –  TJD Feb 2 '12 at 19:45
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For one, signed integers aren't always 16 bits. It's probably 32 bits in this case. –  Mysticial Feb 2 '12 at 19:45
    
The C standard only guarantees that ints are AT LEAST 16 bits (they are quite often 32 bits, but they could also be 64 or 48 bits or many other sizes). –  Adam Rosenfield Feb 2 '12 at 19:49
    
Actually, rand() returns an integer in the range [0, RAND_MAX]. On my platform RAND_MAX is 2147483647. –  FatalError Feb 2 '12 at 19:49
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2 Answers 2

rand does not return an integer in [0,32767] in "ANSI C". §7.20.2:

The rand function computes a sequence of pseudo-random integers in the range 0 to RAND_MAX.

It seems likely that whoever wrote that macro was working on a platform on which RAND_MAX was 2147483647.


You also seem to be confused about signed integers. int must be at least 16 bits wide, but it is often wider.

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In C, RAND_MAX is at least 32767. RAND_MAX is usually equal to 32767 on systems with 16-bit int. –  ouah Feb 2 '12 at 19:54
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#define random ( (float) rand() / (float) ((1 << 31) -1) )

in a system with 16-bit int, this macro is undefined behavior because of 1 << 31 expression (1 is of int type).

(C99, 6.5.7p3) "If the value of the right operand is negative or is greater than or equal to the width of the promoted left operand, the behavior is undefined."

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