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I have a series of numbers I need to find the sum of. The value of the first iterative operation is 1, the second is 20. Every iteration which follows then uses the previous result in the formula n * (n + 1) / 2, so the third iteration, say i03 = 20 * (20 + 1) / 2, and the fourth, i04 = i03 * (i03 + 1) / 2. This continues until the 20th iteration of i20 = i19 * (i19 + 1) / 2. I want to do this using memoization. This is my code:

def outFun():
    def sumFun(squares, total = 0, CONST = 20):
        if squares > 2:
            total = sumFun(squares - 1) * int((sumFun(squares - 1) + 1) / 2)
        elif not squares - 2:
            total = CONST
        return total

    return 1 + sumFun(20)

What am I doing wrong?

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You have a lot of recursion, but no memoization. Which is to say, somewhere you need to assign _cache[inargs] = result before returning it, then when calling, test for something like if inargs in _cache: return cachedval. –  g.d.d.c Feb 20 '13 at 20:04
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2 Answers

up vote 1 down vote accepted

Here is how I understand your problem: You have a formula x_n = x_{n-1} * (x_{n-1} + 1)/2 with recursion base defined as x_1 = 20 (or x_2 = 20? Not clear from your description). The most efficient way to solve the recursion is bottom-up approach, when you start with x_1, then calculate x_2, etc. Alternative is to use dynamic programming/memorization:

mem={}
def f(x):
    if x == 1:   # base case
        return 20
    if not x in mem:    # if we did not calculate it before - calculate
        mem[x] = f(x-1) * (f(x-1) +1) / 2
    return mem[x]   # otherwise return it

print f(1)    
print f(2)
print f(3)

prints

20
210
22155

f(20) is a little large to print, so I will print the number of digits in it:

print "number of digits: %s" % len(str(f(20)))

number of digits: 530115

The code took about 9 seconds to run on my desktop:

import timeit
mem={}
print "Execution time: %s" % timeit.Timer("len(str(f(20)))",
                            setup = "from __main__ import f").timeit(1)
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you're calling

sumFun(squares - 1)

twice!

Why not introduce a variable to store the result? Something like:

if squares > 2:
    nextResult = sumFun(squares - 1)
    total = nextResult * ((nextResult + 1) / 2)
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