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In general my code just checks if a value in match1 is greater than a certain value and returned the first pair of values that meet this criteria.

list1 = []
list2 = []
list3 = []
match1 = []
match2 = []

def readmod(infile): 
    with open(infile, 'rb') as csvfile1:                       
        datain = csv.reader(csvfile1, delimiter=',')
        for line in datain:
            if "#" not in line[0]:
                list1.append(float(line[3]))
                list2.append(float(line[4]))
                list3.append(float(line[5]))

def findall(value):
    for i in numpy.arange(len(list1)):
        if value == list1[i]:
            match1.append(list2[i])
            match2.append(list3[i])

def check(threshold = 1.0):
    for i in numpy.arange(len(match1)):
        if match1[i] >= threshold:
            print match1[i], match2[i]
            return match1[i], match2[i]
        elif i+1 == len(match1):
            print match1[0], match2[0]
            return match1[0], match2[0]


testinfile = mock.csv
testvalue = 1.3
readmod(testinfile)
findall(testvalue)
result = check()
print result

However when I run the code, the function prints the correct values, eg. 1.1, 3.1. But it returns NONE

EDIT: Sorry in answer to previous responses, i just edditing my variable names for this post, so "Threshold" should've actually been "threshold". I uploaded more of the code with changed variables names of course. So the lists are read in from the csv, and the match lists are made properly, but the check() still returns NONE

result = check()
print result

it returns NONE

share|improve this question

closed as too localized by Makoto, talonmies, Perception, Bart, Sameer Jan 23 '13 at 4:58

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
doesn't seem to be any reason to use numpy.arange() here... why not just use range() or xrange()? – monkut Jan 23 '13 at 3:30
4  
threshold != Threshold – monkut Jan 23 '13 at 3:31
    
I'm not seeing anything return None, not from your current syntax. – Makoto Jan 23 '13 at 3:35
    
Have you tried running the code you're posting exactly as it is, along with the line print check()? (And changing Threshold to threshold? – David Robinson Jan 23 '13 at 3:49
    
To your last edit: Not seein' any None when I assign to a variable. – Makoto Jan 23 '13 at 4:11

I believe, if the above code is what you are running without getting a NameError for 'Threshold', you most possibly have a defination of this variable at global level which is causing it to behave in an undesirable manner.

As others have already mentioned in their comments, change the line if match1[i] >= Threshold: to if match1[i] >= threshold:

Also for the sake of completion of the answer, I am posting a better itertools solution

>>> from itertools import izip
>>> next(e for e in izip(match1, match2) if e[0] > 1.0)
(1.1, 3.1)
share|improve this answer

Works fine here. Although from your code, I don't see you actually calling your function. Hence, if you run that piece of code as-is it will define 2 variables and return, indeed, nothing.

share|improve this answer
    
None != nothing. – Makoto Jan 23 '13 at 3:32
    
@Makoto: agreed, although I still lack a piece of code that actually prints a return value or something in those lines. Hence I deliberately used the word 'nothing' in my answer. – favoretti Jan 23 '13 at 3:34
    
Did you glance over the return match1[i],match2[i] statement there? There's even print in there as well. – Makoto Jan 23 '13 at 3:35
    
Yes, did you also notice that there is no function call, just the definition? :) return x, y returns a tuple, as it does in my test I just ran. So there's something else that's fishy. – favoretti Jan 23 '13 at 3:36
    
Well no, it's not implicitly called in that code. The REPL takes it just fine without even printing anything, which is what I think you were getting at (may be miscommunication). If it's called then it works as expected. It could easily be that this question is incomplete. – Makoto Jan 23 '13 at 3:38

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