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I want to be able to do something like the following...

Say I want a list of every number from 100-500 that is a multiple of 33.

>>> a = 100
>>> b = 500
>>> range(a,b,33)
[100, 133, 166, 199, 232, 265, 298, 331, 364, 397, 430, 463, 496]

This is not what I want, this is because a is not a multiple of 33.

To get the next multiple of 33 from a I can do:

a = a - a % 33 + 33

I want to know if there is an easier way to do this so that if I want to create this range without knowing the actual values and without having to define them beforehand..

Such as:

>>> def multiple(a, b, c):
    return range(a+=%c, b, c) #if this was possible

And obviously it would return me a range which would be correct, for example:

>>> multiple(100, 500, 33)
[132, 165, 198, 231, 264, 297, 330, 363, 396, 429, 462, 495]

I am aware I can do something simple like:

range(a - a%c + c, b, c)

However, without getting into details, calling the value of a is expensive for me in my case, and I would like to be able to find a way to not have to call it a second time, and also the above method is really not nice looking at all.

I really was not sure what the title of my question should be, but I suppose what I am looking for is a way to find the next multiple of a number after another given number.

Thank you.

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1  
What should be the result of multiple(66, 132, 33)? –  NPE Dec 5 '12 at 14:49
    
@NPE nice question, It should be [66, 99, 132] –  Inbar Rose Dec 5 '12 at 14:53
    
why not simply store a in a variable so you can use it twice w/o loading it twice? –  jcr Dec 5 '12 at 15:04

2 Answers 2

up vote 3 down vote accepted

The following does what you want and only uses a once:

In [4]: range((a + c - 1) // c * c, b + 1, c)
Out[4]: [132, 165, 198, 231, 264, 297, 330, 363, 396, 429, 462, 495]

I would still place it into a helper function, rendering moot the question of how many times a is used.

Unlike the code in your question, this actually works correctly for cases when a is evenly divisible by c. Also, unlike the code in your question, it includes b in the range (as it should, according to your answer to my question in the comments):

In [15]: range((a + c - 1) // c * c, b + 1, c)
Out[15]: [66, 99, 132]
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this seems also quite wasteful. could you explain to me what exactly is going on here? –  Inbar Rose Dec 5 '12 at 14:47
    
@InbarRose: If I were in your shoes, I'd focus on correctness first and on performance second. There are at least two bugs in the range() call in your question. That said, when I time my solution on a=100 b=500 c=33, it takes under 800ns. Are you saying that's not fast enough for your needs? –  NPE Dec 5 '12 at 15:03
    
Thank you NPE. you have helped me with the problem, as well as understanding what it is exactly I was actually looking for in the first place. with the knowledge brought on by hindsight, I would have asked a completely different question. You managed to answer it nonetheless, good job, thanks again. (and to more directly answer your question, my code now simply uses a helper function that gets a,b,c and uses your range suggestions. –  Inbar Rose Dec 5 '12 at 15:22

Well, to get the multiple of 33 everytime, you would need to start with a multiple of 33 only.

So, start with first multiple of 33 after 100, because range function will just keep on adding 33 to get next multiples.

To get the first multiple of 33 after a number num, you can use: -

num / 33 * 33 + 33  <==>  (num / 33 + 1) * 33

So, for your range you can use: -

>>> a = 100
>>> b = 500
>>> a = (a / 33 + 1) * 33
>>> range(a, b, 33)
[132, 165, 198, 231, 264, 297, 330, 363, 396, 429, 462, 495]
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