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here's the code:

def findsort(something, alist):
    for item in alist:
        if item == something:
            return "found"
            return "not found"

def main():

    print(findsort(6, [3, 6, 1, 8, 11, 14]))


for some reason, this doesn't work the way i thought it should work.

when i run this, it will say "not found." however, if i change the value i want to find to the first item in the list, the 3, it comes back as "found."

i have tried this with strings, and i get the same results.

can someone please tell me what i am doing wrong?

share|improve this question
Just a suggestion, you could simplify that function to return "found" if something in alist else "not found" – John Dec 13 '12 at 3:36

2 Answers 2

Because if in the first iteration the item doesn't match, you go into the else branch returning "not found", thus exiting the loop.

Try this:

def findsort(something, alist):
    for item in alist:
        if item == something:
            return "found"
    return "not found"

or simply:

def findsort(something, alist):
    return "found" if something in alist else "not found"
share|improve this answer
@Dan D. Please do not truncate other users' posts due to personal preference of coding style. Do revise other users' posts in order to correct typos and the such. – Hyperboreus Dec 13 '12 at 6:10
I agree with you that Dan should rather add comment. On the other hand, the answer goest to a beginner and the information dosage should use the correct size of drops. The removed code actually means: Use this complicated way to give the name to the unnamed function. – pepr Dec 13 '12 at 7:38
thank you for this information. while i understand that this is not the most efficient way to code, this class was designed for the absolute beginner. as you can tell, i still have a long way to go before fully understanding something as simple as a for loop. – Sameer Sheikh Dec 20 '12 at 0:15
You are most welcome. Think about accepting any of these answers, so people stay motivated to answer your questions. – Hyperboreus Dec 20 '12 at 1:15

@hyperboreus pointed out the cause of the error (the else branch executing before all items are seen).

To find an item in a sorted ("ordered") list you could use bisect module that performs binary search (O(log(n)) instead of linear search item in alist (O(n)) e.g., for a million items binary search would require around a couple dozen operations against a million operations for the linear search.

from bisect import bisect

findsort = lambda x, L: "found" if L and L[bisect(L,x) - 1] == x else "not found"
share|improve this answer
+1 for bisect; this was a new one for me. – Burhan Khalid Dec 13 '12 at 4:21
True, but this assumes that the list is ordered. – John Dec 13 '12 at 4:23
@John: findsort name suggests that the input is sorted but the example list in the question is not sorted. I've made it bold to avoid possible confusion. – J.F. Sebastian Dec 13 '12 at 4:26
@J.F.Sebastian Yeah, it is an odd name. Still, +1 for binary search. And sorry, I meant to type "ordered ascending", but I must've spaced. – John Dec 13 '12 at 4:28
thank you, but i am such novice with programming that i can't even begin to get my head 'round what you just wrote. it looks pretty sweet though. :) – Sameer Sheikh Dec 20 '12 at 0:16

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