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My previous post caused a lot of confusion and it flooded with answers that is not relevant to my questions. (My fault for not clarifying things) I flagged that post and this is the new post. So basically I would like to do a conjunction of words.

EG1

    input [jason, sonny, nyorth]

    output [jason, sonny, nyorth, jasonnyorth]

EG2
    Sample input: [aw, was,poq, qo, soo] 
    Output [aw, was, poq, qo, soo, awasoo, poqo] 


EG3

    input: `[keyboard, ardjimmy]    
    output: `[keyboard, ardjimmy, keyboardjimmy]

I am trying to have the output of

['jimmy', 'myolita'] 
jimmyolita
['jimmy', 'myolita', 'jimmyolita']

['myolita', 'jimmy']
jimmyolita
['myolita', 'jimmy', 'jimmyolita']

I know it's a double for loop but I just keep getting super weird stuff. I want to keep my post simple so I am not posting my attempts S=. On the side note I also dislike the way I do the "check" and "maxNum" thing, I have a feeling that it doesn't cover all case and gives me weird output for certain specific case. I prefer to do it in for loop because there are other part of the questions that is not listed in here. One example is when there's an infinite case:

[abc, bca] -> [abc, ca, abca] -> [abc, ca, abca, abcabc] -> it will keep going.



testing = ["jimmy", "myolita"]

testing1 = ["myolita", "jimmy"]
def frags(strings):
    check = 1
    maxNum = 1
    for i in range(0,len(strings[1])):
        if strings[0].find(strings[1][:i]) > maxNum:
            check = 0
            maxNum = strings[0].find(strings[1][:i])

    if check == 0:
       toReturn = strings[0][:maxNum] + strings[1]
       strings.append(toReturn)
    else:
       toReturn = "no match"

    return toReturn



print(testing)
print(frags(testing))                            
print(testing)

print("   ")

print(testing1)
print(frags(testing1))                            
print(testing1)
share|improve this question
4  
First, whoever told you to use flag variables like this just so you could have a single return and never use break and so on is not your friend. You're right to dislike what the way you do the check and maxNum thing, but doing that is inherent in sticking to the "one return" rule (which may make sense for pre-C99 C, but definitely not for Python). –  abarnert Aug 8 '14 at 23:34
    
Also, if you've got a list with a fixed size of two elements, split it into two variables: leftstring, rightstring = strings. It's a lot easier to read leftstring.find(rightstring[:i]) than strings[0].find(strings[1][:i]). –  abarnert Aug 8 '14 at 23:37
1  
what output are you expecting, your examples don't seem to be consistent? –  Padraic Cunningham Aug 8 '14 at 23:37
    
Hi albarnet. I am new to this, so how would u use break to replace maxNum and check? –  Jimson Aug 8 '14 at 23:40
    
@Jimson: Sorry, I'm not entirely sure what they're supposed to be doing, so… that comment may not have been right. Can you explain your algorithm in human terms (pseudocode), either in general, or for your specific example input? –  abarnert Aug 8 '14 at 23:44

2 Answers 2

I think your rule goes something like this: If the first string has a suffix that's also a prefix of the second string, chop it off. Then merge the two strings.

If you search backward, starting with the whole string and working down instead of starting with a single character and working up, you don't need to keep track of anything at all, other than the current suffix you're testing. In other words:

def frags(strings):
    left, right = strings
    for i in reversed(range(len(left))):
        if right.startswith(left[-i:]):
            return left[:-i] + right
    return left+right
share|improve this answer
    
what if you were given [abbbbbbbbbb, bde]? Your function will not return abbbbbbde instead it will only return abbbbbbb bde. –  Jimson Aug 9 '14 at 4:45
    
@Jimson: What makes you think that? 1 is part of range(len(left)), and left[-1:] is b, and right.startswith('b'), so it will return left[:-1] + right. Just try it and see. –  abarnert Aug 10 '14 at 8:46

String slicing will likely make the code much simpler. Here's something to get you started:

def overlap(left, right):
    for i in reversed(range(len(left))):
            if left[-i:] == right[:i]:
                break
    return left + right[i:]

for pair in [
    ('keyboard', 'ardjimmy'),
    ('jimmy', 'myolita'),
    ('myolita', 'jimmy'),
]:
    left, right = pair
    print pair, '-->', overlap(left, right), overlap(right, left)
share|improve this answer
    
i edit my post. The input doesn't have to be 2 words only. I need to use a for loop to iterate through everything. –  Jimson Aug 8 '14 at 23:51

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