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I am doing a (typical) assignment of finding primes. I thought I'd be clever and, for large numbers, skip the division process with this trick:

def div5(candidate):
    return str(candidate)[-1] == "5"

Adding 5 to itself a few thousand times seems like a waste (I only need the last member), but I wanted to be sure.

credit to unutbu on measure time passed in Python?

%>python -mtimeit -s"import intDiv" "intDiv.div5(2147483645)"
1000000 loops, best of 3: 0.272 usec per loop

%>python -mtimeit -s"import strDiv" "strDiv.str5(2147483645)"
1000000 loops, best of 3: 0.582 usec per loop

For clarification, here are the two methods I defined.

def div5(maxi): return not (maxi%5)

def str5(maxi): return str(maxi)[-1] == '5'

This is too slow. How can I analyze the last member of str(maxi), without converting the whole number (needlessly)?

Thanks to @Claudiu for help with cleaning up the eyesores.

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9  
How do you think string conversion works, exactly? (Hint: Computers do not think in base 10.) –  Nemo Sep 19 '11 at 17:09
3  
try running these two funcs to get more accurate (less noisy) results: def div5(maxi): return not (maxi%5), def str5(maxi): return str(maxi)[-1] == '5' –  Claudiu Sep 19 '11 at 17:11
1  
@Nemo: Please make that an answer. –  delnan Sep 19 '11 at 17:12
    
try it with just the conversion to str to see how much does that take –  F.C. Sep 19 '11 at 17:13
    
@delnan: That's OK, someone else can take it :-). –  Nemo Sep 19 '11 at 17:19

3 Answers 3

up vote 10 down vote accepted
% python -mtimeit "str(2147483645)"
1000000 loops, best of 3: 0.321 usec per loop

% python -mtimeit "2147483645 % 5"
10000000 loops, best of 3: 0.0351 usec per loop

% python -mtimeit "'2147483645'[-1]"
10000000 loops, best of 3: 0.0349 usec per loop

I'd say the bottleneck is converting to a string.

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This technically answers the question, but it doesn't get to my point: Is there a way to get information about the last digit of an int without converting it into a string? I will give you the best answer award, and re-submit my question with a better title. Hope you re-submit an answer, as well. –  Droogans Sep 20 '11 at 18:05

One problem is the conversion of an integer to a string. This is much more work than doing integer division. I am not sure how Python does it, but most algorithms work like

def tostring(value):
    result = ""
    while True:
        digit = value % 10
        value = value / 10
        result = chr(digit + ord('0')) + result
        if value == 0: break

    return result

That is you have more than one modulo operation per value.

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Although I didn't select this to be the best answer, really it was. This is clear, without being overly verbose. –  Droogans Sep 20 '11 at 21:40

Converting the number to a string will look something like this:

digits = []
while x:
    digits.append(x % 10)
    x //= 10

You can see this is going to do lots of % operations (aside from the construction of the list of digits or string).

Apart from this optimisation problem, your function isn't correct. For example, 10 doesn't end with 5, yet is divisible by 5.

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1  
You may have to go in with the assumption he's only working with odd numbers to begin with –  Austin Salonen Sep 19 '11 at 17:22
    
I am using range(3, candidate**2, 2) –  Droogans Sep 19 '11 at 17:30

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