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I'm having some performance problems with 'append' in Python. I'm writing an algorithm that checks if there are two overlapping circles in a (large) set of circles. I start by putting the extreme points of the circles (x_i-R_i & x_i+R_i) in a list and then sorting the list.

class Circle:
def __init__(self, middle, radius):
    self.m = middle
    self.r = radius

In between I generate N random circles and put them in the 'circles' list.

"""
Makes a list with all the extreme points of the circles.
Format = [Extreme, left/right ~ 0/1 extreme, index]
Seperate function for performance reason, python handles local variables faster.
Garbage collect is temporarily disabled since a bug in Python makes list.append run in O(n) time instead of O(1)
"""
def makeList():
    """gc.disable()"""
    list = []
    append = list.append
    for circle in circles:
        append([circle.m[0]-circle.r, 0, circles.index(circle)])
        append([circle.m[0] + circle.r, 1, circles.index(circle)])
    """gc.enable()"""
    return list

When running this with 50k circles it takes over 75 seconds to generate the list. As you might see in the comments I wrote I disabled garbage collect, put it in a separate function, used

append = list.append
append(foo)

instead of just

list.append(foo)

I disabled gc since after some searching it seems that there's a bug with python causing append to run in O(n) instead of O(c) time.

So is this way the fastest way or is there a way to make this run faster? Any help is greatly appreciated.

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3  
list is not a good variable name in python. –  eumiro Apr 14 '11 at 12:29
4  
list is never a good variable name in any language... –  Gordon Gustafson Apr 14 '11 at 12:30
6  
"""String literals""" are not # comments. And docstrings must go inside the function, not before the function. –  Sven Marnach Apr 14 '11 at 12:37
    
@eumiro, CrazyJugglerDrummer: true, changed to cirkeList instead. @Sven: Not used to the Python way of commenting things yet, I'll keep your advice in mind. –  Harm De Weirdt Apr 14 '11 at 12:57

3 Answers 3

Instead of

for circle in circles:
    ... circles.index(circle) ...

use

for i, circle in enumerate(circles):
    ... i ...

This could decrease your O(n^2) to O(n).

Your whole makeList could be written as:

sum([[[circle.m[0]-circle.r, 0, i], [circle.m[0]+circle.r, 1, i]] for i, circle in enumerate(circles)], [])
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1  
@Harm this is good advice - you should also consider using a deque for this (see collections module) as it has reportedly marginally better performance for append operations. You may then want to convert it to a list at the end though, so the savings might not outweigh the overhead. –  theheadofabroom Apr 14 '11 at 12:42
    
Ah ok, I was looking at the wrong thing the whole time.. Thanks for the answer :) Care to explain why getting the index of a circle is O(N²)? O(n) I would understand since getting the index of an object in a list equals linearly searching trough the list until you find that object. –  Harm De Weirdt Apr 14 '11 at 12:50
2  
@Harm: The linear search is done in each of the n iterations of the for-loop, giving a total of O(n*n). –  Sven Marnach Apr 14 '11 at 13:02
2  
@Harm: one single .index() is O(n), but doing it for every element of the list makes it O(n^2). –  eumiro Apr 14 '11 at 13:02
2  
He's misusing sum to concatenate lots of lists - sum([x, y, z] default) is default + x + y + z. Has quite suboptimal performance by the way - it first creates a large list in memory, then makes n time O(n) concatenation with them. A better one-liner would be list(item for i, circle in enumerate(circles) for item in ([circle.m[0]-circle.r, 0, i], [circle.m[0]+circle.r, 1, i]) which avoids having all data in memory before construction the list and builds the whole result list at once without concats. –  delnan Apr 14 '11 at 13:59

Your performance problem is not in the append() method, but in your use of circles.index(), which makes the whole thing O(n^2).

A further (comparitively minor) improvement is to use a list comprehension instead of list.append():

mylist = [[circle.m[0] - circle.r, 0, i]
          for i, circle in enumerate(circles)]
mylist += [[circle.m[0] + circle.r, 1, i]
           for i, circle in enumerate(circles)]

Note that this will give the data in a different order (which should not matter as you are planning to sort it anyway).

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I'm quite new to Python and am still learning about python-esque things like list comprehensions. Thanks for the answer :) –  Harm De Weirdt Apr 14 '11 at 12:54

If performance were an issue, I would avoid using append. Instead, preallocate an array and then fill it up. I would also avoid using index to find position within the list "circles". Here's a rewrite. It's not compact, but I'll bet it's fast because of the unrolled loop.

def makeList():
    """gc.disable()"""
    mylist = 6*len(circles)*[None]
    for i in range(len(circles)):
        j = 6*i
        mylist[j] = circles[i].m[0]-circles[i].r
        mylist[j+1] = 0
        mylist[j+2] = i
        mylist[j+3] = circles[i].m[0] + circles[i].r
        mylist[j+4] = 1
        mylist[j+5] = i
    return mylist
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