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I have 15 numbers,

[1, 5, 10, 20, 30, 50, 70, 100, 150, 200, 500, 1000, 2000, 5000, 10000]

I have people entering the quantity and what I want is it to round to the lowest number. hence if someone enters 36 it will round to 30.

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11  
What have you tried? –  Chris Morgan May 10 '12 at 12:35
2  
Welcome to to the Stackoverflow community. In order to participate, it's best to include code of what you have tried rather than asking for a solution. Plenty of people will help you with your questions but it's bad practice to ask someone to come up with the solution for you. –  jlafay May 10 '12 at 12:39
    
Sorry Chris, thanks for the tip, will do in future –  Greggy D May 10 '12 at 12:46

3 Answers 3

up vote 2 down vote accepted

Here is a recursive solution. It should be O(log n); it relies on the fact that the list is sorted.

L = [1, 5, 10, 20, 30, 50, 70, 100, 150, 200, 500, 1000, 2000, 5000, 10000]

def roundit(x,n):
    if len(x) == 1:
        return x[0]
    elif x[len(x)/2] > n:
        return roundit(x[0:len(x)/2],n)
    else:
        return roundit(x[len(x)/2 :],n)

Result:

>>> roundit(L,36)
30
>>> roundit(L,77)
70
>>> roundit(L,150)
150
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Is it O(ln(n)) ? getting half of the tab with x[0:len(x)/2] takes log(n), no ? –  MatthieuW May 10 '12 at 15:33
    
@MatthieuW, O(ln(n)) = O(log(n)), I just called it a natural log. –  Akavall May 10 '12 at 17:43
    
@MatthieuW, OK, I google around and it seems that "my notation" is not used; hence, I changed to what is standard. Thanks for pointing it out. –  Akavall May 10 '12 at 17:49
    
My remark was more about time took by copying part of the list. If you take this time into account you are O(n) –  MatthieuW May 11 '12 at 11:30

With pure python:

>>> numbers = [1, 5, 10, 20, 30, 50, 70, 100, 150, 200, 500, 1000, 2000, 5000, 10000]
>>> x = 36
>>> max(n for n in numbers if n <= x)
30

note: Does not rely on numbers list being sorted.

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bisect will do it in O(log N):

>>> import bisect
>>> L = [1, 5, 10, 20, 30, 50, 70, 100, 150, 200, 500, 1000, 2000, 5000, 10000]
>>> L[bisect.bisect(L, 36) - 1]
30

or with pure python and O(N):

>>> L = [1, 5, 10, 20, 30, 50, 70, 100, 150, 200, 500, 1000, 2000, 5000, 10000]
>>> next(elem for elem in reversed(L) if elem <= 36)
30

assumed the L list is sorted. Otherwise L.sort() it before.

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2  
+1, but you should not call the variable l. (violates pep8) –  ch3ka May 10 '12 at 12:38
3  
It's important to note that bisect assumes that the list is sorted, and won't work properly with a list that is not. –  Lauritz V. Thaulow May 10 '12 at 12:39
3  
If you're using iterators, why not reversed? –  JBernardo May 10 '12 at 12:46
    
L renamed, sorted list assumed, iterator reversed, thanks to all comments. –  eumiro May 10 '12 at 12:47
    
Thanks all this site is amazing! –  Greggy D May 10 '12 at 12:55

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