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Is there a standard library function which will set a minimum value to a division operation, for example:

min(1, a/b)

This will ensure that min value of operation above will always be 1, never 0.

Such as:

min(1, 1/5)
1

Also, how do I round up a division:

round_up(1/5) = 1

I always get "0" when I divide 1/5, even with ceil function:

math.ceil(1/5)
0
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4 Answers 4

up vote 2 down vote accepted

If you want to use floating point division as default, you can do from __future__ import division:

>>> 1/5
0
>>> from __future__ import division
>>> 1/5
0.2
>>> math.ceil(1/5)
1.0

If you need the result to be of integer type, e.g. for indexing, you can use

int(math.ceil(1/5))
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The result of 1/5 is an integer already. If you want the floating point version you need to do 1.0/5. The math.ceil function will then work as you expect: math.ceil(1.0/5) = 1.0.

If you're working with variables instead of constants, use the float(x) function to convert an integer into a floating point.

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In [4]: 1/5
Out[4]: 0

In [5]: math.ceil(1/5)
Out[5]: 0.0

In [7]: float(1)/5
Out[7]: 0.2

In [8]: math.ceil(float(1)/5)
Out[8]: 1.0
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You could make a round up function for integers like this

>>> def round_up(p, q):
...     d, r = divmod(p, q)
...     if r != 0:
...         d += 1
...     return d
... 
>>> round_up(1, 5)
1
>>> round_up(0, 5)
0
>>> round_up(5, 5)
1
>>> round_up(6, 5)
2
>>> 

Your example doesn't work because an integer dividing an integer is an integer.

As for your min question - what you wrote is probably the best you can do.

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