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Here's a piece of code that takes most time in my program, according to timeit statistics. It's a dirty function to convert floats in [-1.0, 1.0] interval into unsigned integer [0, 2**32]. How can I accelerate floatToInt?

piece = []
rng = range(32)
for i in rng:
    piece.append(1.0/2**i)

def floatToInt(x):
    n = x + 1.0
    res = 0
    for i in rng:
        if n >= piece[i]:
            res += 2**(31-i)
            n -= piece[i]

    return res
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1 Answer 1

up vote 4 down vote accepted

Did you try the obvious one?

def floatToInt(x):
    return int((x+1.0) * (2**31))
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No, I made things more complicated. This worked 10x faster. –  culebrón Mar 23 '10 at 12:56
3  
231 evaluates to 2147483648 every time. Since you are focused on speed here, replacing 231 with this constant is one less calculation you'll need to do in your time-critical code segment. –  Paul McGuire Mar 23 '10 at 13:02
    
I checked with timeit and 2**31 is only slower when there is no "x" in the equation?? –  pixelbeat Mar 23 '10 at 14:01
    
Import the dis module to disassemble the code for floatToInt using dis.dis(floatToInt) to see that Python evaluates this constant internally, so this part of the calculation is not done at loop runtime. –  Paul McGuire Mar 26 '10 at 4:12

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