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 def min_value(L)

'''L i s a list of ints that are >= -1. Return the minimum value in L that is >-1. If L doesn't have any value in it other than -1, return -1.'''

 ans = -1
 for n in L:
     if n> -1:
        if ans == -1: <------------?? Can someone explain why they are doing this. Isn't ans already equal -1?? Thus processing ans = n every time??
           ans = n 
        else:
           ans = min(ans, n)
 return ans 

ANYHELP WOULD BE GREATLY APPRECIATED.

share|improve this question

ans starts out as -1, but the value changes:

        if ans == -1:
            ans = n             # Right here
        else:
            ans = min(ans, n)   # And right here

If ans stays at -1, then there are no numbers in the list that are greater than -1.

A slightly more readable way of doing this would be:

def min_value(L):
    filtered = [n for n in L if n > -1]

    if not filtered:
        return -1
    else:
        return min(filtered)
share|improve this answer
    
@DSM: Yep. I've deleted it. – Blender Dec 9 '12 at 6:00
    
THANK YOU SO MUCH – Eric Jung Dec 9 '12 at 6:00

If you leave out the if ans == -1: ans = n lines, and instead always just execute ans = min(ans, n), then ans would remain at -1 instead of changing to the minimum value that's larger than -1.

Here is some slightly shorter alternate code:

def min_value(L)
    ans = -1
    for n in L:
        if n > -1:
            ans = min(n, max(ans,n))
    return ans

Eg:
min_value([-2, 3, -4, -5]) gives 3,
min_value([-2, 3, -4, 2]) gives 2, and
min_value([-2, -3, -4, -5]) gives -1.

share|improve this answer
    
THIS IS MUCH BETTER FUNCTION AND MUCH EASIER TO UNDERSTAND THANK YOU – Eric Jung Dec 9 '12 at 6:25

I think this is clearer:

def min_value(L):
    try:
        return min(n for n in L if n > -1)
    except ValueError:
        # this gets raised if all n in L are not > -1
        return -1
share|improve this answer
def min_value(L):
    return min([i for i in L if i >= -1] or [-1])
share|improve this answer

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