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Is there a built-in function that can round like this:

10 -> 10
12 -> 10
13 -> 15
14 -> 15
16 -> 15
18 -> 20
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9 Answers 9

up vote 80 down vote accepted

I don't know of a standard function in Python, but this works for me:

def myround(x, base=5):
    return int(base * round(float(x)/base))

It is easy to see why the above works. You want to make sure that your number divided by 5 is an integer, correctly rounded. So, we first do exactly that (round(float(x)/5)), and then since we divided by 5, we multiply by 5 as well. The final conversion to int is because round() returns a floating-point value in Python.

I made the function more generic by giving it a base parameter, defaulting to 5.

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+1 nice :) ---- –  Felix Kling Feb 16 '10 at 10:42
1  
I think it would look better with: int(base * round(float(x)/base)) instead of the 1.0*x which feels a bit kludgy. –  Olivier Verdier Feb 20 '10 at 12:00
    
I agree. Thanks for the comment. I changed it. –  Alok Singhal Feb 20 '10 at 17:10

It's just a matter of scaling

>>> a=[10,11,12,13,14,15,16,17,18,19,20]
>>> for b in a:
...     int(round(b/5.0)*5.0)
... 
10
10
10
15
15
15
15
15
20
20
20
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I'd wrap the round() in an int() - then you get the answers the OP asked for... –  Matthew Schinckel Feb 16 '10 at 12:38
    
Agree, I updated my comment –  amo-ej1 Feb 16 '10 at 12:47

For rounding to non-integer values, such as 0.05:

def myround(x, prec=2, base=.05):
  return round(base * round(float(x)/base),prec)

I found this useful since I could just do a search and replace in my code to change "round(" to "myround(", without having to change the parameter values.

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Removing the 'rest' would work:

rounded = int(val) - int(val) % 5

If the value is aready an integer:

rounded = val - val % 5

As a function:

def roundint(value, base=5):
    return int(value) - int(value) % int(base)
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round(x[, n]): values are rounded to the closest multiple of 10 to the power minus n. So if n is negative...

def round5(x):
    return int(round(x*2, -1)) / 2

Since 10 = 5 * 2, you can use integer division and multiplication with 2, rather than float division and multiplication with 5.0. Not that that matters much, unless you like bit shifting

def round5(x):
    return int(round(x << 1, -1)) >> 1
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1  
+1 for showing us that round() can handle rounding to multiples other than 1.0, including higher values. (Note, however, that the bit-shifting approach won't work with floats, not to mention it's much less readable to most programmers.) –  Peter Hansen Feb 16 '10 at 14:50
1  
@Peter Hansen thanks for the +1. Need to have an int(x) for the bit shifting to work with floats. Agreed not the most readable and I wouldn't use it myself, but I did like the "purity" of it only involving 1's and not 2's or 5's. –  pwdyson Feb 16 '10 at 22:26

Modified version of divround :-)

def divround(value, step, barrage):
    result, rest = divmod(value, step)
    return result*step if rest < barrage else (result+1)*step
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so in this case you use divround(value, 5, 3)? or maybe divround(value, 5, 2.5)? –  pwdyson Feb 16 '10 at 13:13
    
divround(value, 5, 3), exactly. –  Christian Hausknecht Feb 16 '10 at 13:18

Sorry, I wanted to comment on Alok Singhai's answer, but it won't let me due to a lack of reputation =/

Anyway, we can generalize one more step and go:

def myround(x, base=5):
    return base * round(float(x) / base)

This allows us to use non-integer bases, like .25 or any other fractional base.

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What about this:

 def divround(value, step):
     return divmod(value, step)[0] * step
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Damn, this was not the question... but I modifed it (see modified version!). –  Christian Hausknecht Feb 16 '10 at 13:10

You can “trick” int() into rounding off instead of rounding down by adding 0.5 to the number you pass to int().

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This does not actually answer the question –  Uri Agassi Apr 27 at 19:24

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