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I had a test today and one of the questions asked: Write function doubles() that takes as input a list of integers and outputs the integers in the list that are exactly twice the previous integer in the list, one per line.

I couldn't figure out how exactly to do this my code was

def doubles(x):
    for a in range(len(x)-1):
        for b in (range(a,len(x))):
            if x[a]*2==x[b]:
                print(b)

For example doubles([3,0,1,2,3,6,2,4,5,6,5]) would print 2 , 6 , 4

Can someone help me figure out how to do this?

share|improve this question
    
What was the problem with your code? – Latty Mar 20 '13 at 19:29
    
It wasn't printing out the correct values – JGrazza Mar 20 '13 at 19:29
    
What values was it giving? – Latty Mar 20 '13 at 19:29
5  
@JGrazza You've asked 8 questions, accepted no answers, and never voted. Time for a trip to the faq to learn more about how you are expected to contribute to SO. – David Heffernan Mar 20 '13 at 19:37

You only need to go over the list once, testing each element with the one after it or the one before it.

The example below tests each number with the one after it and stops at the number before last.

def doubles(x):
    for i,a in enumerate(x[:-1]):
        if x[i+1] == a*2:
            print a*2
share|improve this answer
def doubles(lst):
    prev = None
    for actual in lst:
        if prev is not None and actual == 2*prev:
            print actual
        prev = actual
share|improve this answer

Your code is that it compares each value with all values that appear later in the list. But the question asks you to consider adjacent pairs only.

So, you only need to walk the list once. Like this:

def doubles(x):
    for i in range(1, len(x)):
        if x[i] == 2*x[i-1]:
            print x[i]

What's more, your code printed indices rather than values, a fault that I fixed in the above.

share|improve this answer
    
Ohh I see now. I feel stupid for not knowing this but thanks for your help! – JGrazza Mar 20 '13 at 19:34
    
@JGrazza, since David was the first to nail down the root of you problem, printing the index instead of the value at the index, you should accept his answer. – John Mar 20 '13 at 21:02
    
@johnthexiii I'd have said that root cause was the double loop and the erroneous comparisons. Also, first should not be chosen over best. The best answer is always the one I would like to see accepted. It shouldn't be down to who can type the fastest, but who can write the best. – David Heffernan Mar 20 '13 at 21:07
    
@DavidHeffernan, point taken. – John Mar 20 '13 at 23:44

The simplest approach would be to zip with one element shift and check the element pair for your condition

>>> def doubles(x):
    return [b for a,b in zip(x,x[1:]) if b == 2*a]

>>> for e in doubles([3,0,1,2,3,6,2,4,5,6,5]):
    print e


2
6
4

Similar solution but just using iterators

>>> def doubles(x):
    it1, it2 = tee(x)
    next(it2)
    return [b for a,b in izip(it1,it2) if b == 2*a]

>>> for e in doubles([3,0,1,2,3,6,2,4,5,6,5]):
    print e


2
6
4
share|improve this answer
    
By what metric is this the simplest? – David Heffernan Mar 20 '13 at 19:38

This can be done quite simply:

def doubles(seq):
    after = seq[1:]
    for previous, current in zip(seq, after):
        if current == previous * 2:
            print(current)

Which works as expected:

>>> print(list(doubles([3, 0, 1, 2, 3, 6, 2, 4, 5, 6, 5])))
2
6 
4

We take a slice of the list to get a list of the values from the second one. We then use zip() to loop through each value with the previous one, and simply perform the check, and print the value if it matches.

You could also construct this as a generator by replacing print() with yield (which is generally a better option), or if you really wanted a list:

def doubles(seq):
    after = seq[1:]
    return [current for previous, current in zip(seq, after) 
            if current == previous * 2]
share|improve this answer
    
@DavidHeffernan Wow, assumption on my part, simple to fix. – Latty Mar 20 '13 at 19:43

You don't need nested loops. For each element, you only need to test it against the element preceding it.

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