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I have a floating point number which I would like to round to an integer, but always round up (where 'up' means larger in magnitude)

For example, 4.2 would be rounded to 5, and -4.2 would be rounded to -5.0

Is there a nice way to do this that is built into Python? If not, what would you recommend as the most efficient way of performing this operation?

Originally I was just using math.ceil(), until I realized math.ceil(4.2) gives 5, while math.ceil(-4.2) gives -4, which is not what I want.

One way that to get around this is to use ceil for positive numbers, and floor for the negative ones, but the code starts to look really gross with inline if statements everywhere (I use this operation in multiple places)

Another possibility might be something like math.copysign( math.ceil( abs( x ) ), x ) which also seems a little excessive

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1  
There's nothing wrong with your copysign(ceil(abs(n)), n) solution - just stick it in a function (wrapped in int(), presumably) and forget about it. –  Zero Piraeus Jun 24 '13 at 17:23

2 Answers 2

up vote 2 down vote accepted

If you don't want to scatter "inline if statements everywhere", you could defined your own function:

def my_rounding(x):
    return math.ceil(x) if x > 0. else math.floor(x)

:D

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looks like defining my own function is the way to go. I was hoping there would be something built in that might run slightly faster, but the difference is probably negligible :) –  Brent Jun 24 '13 at 17:32
1  
if .. else statement ain't that expensive! –  Gauthier Boaglio Jun 24 '13 at 17:38
    
Interesting to note, the x > 0 part of the expression is evaluated before the floor or the ceil so only one of the two options needs to be evaluated, which is really nice. I was worried it might evaluate both. I just discovered this from here –  Brent Jun 24 '13 at 17:43
1  
@Brent This is the syntax for the Python "ternary conditional operator". Some like it. Some dislike it ;) As of performances, you shouldn't worry to much about that. As @Golgauth said, if...else is efficient. Function call are a little bit less. But it shouldn’t be a concern. Really. Once your program will work, if profiling shows this function as a major bottleneck -- that day, you could start to think about "optimization". Not before :D –  Sylvain Leroux Jun 24 '13 at 18:13

but the code starts to look really gross with inline if statements everywhere (I use this operation in multiple places)

Then write a function:

def myround(flt):
   return math.ceil(flt) if flt > 0.0 else math.floor(flt)
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