Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

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
share|improve this question

5 Answers 5

up vote 3 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))
share|improve this answer

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.

share|improve this answer
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
share|improve this answer

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.

share|improve this answer

I don't know about anything in the standard library, but if you are just trying to make sure the answer is never less than 1, the function is pretty easy:

def min_dev(x,y):
    ans = x/y
    if ans < 1:      # ensures answer cannot be 0
        return 1
    else:            # answers greater than 1 are returned normally
        return ans

If, instead, you are looking to round up every answer:

def round_up(x,y):
    ans = x//y         # // is the floor division operator
    if x % y == 1:     # tests for remainder (returns 0 for no, 1 for yes)
        ans += 1       # same as ans = ans + 1
        return ans
    else:
        return ans

This will round up any answer with a remainder. I believe Python 3.3 (and I know 3.4) return a float by default for integer division: https://docs.python.org/3/tutorial/introduction.html

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.