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I am soo close to finishing my program, but I am having a small issue. The I/O is suppose to look like this:

I: fanlc2("human", "chimpanzee")
O: [4, 'h#man', '#h#m#an###']

BUT mine, does the following:

I: fanlc2("human", "chimpanzee")
O: [4, '#', '#h#']

Can someone please edit my code so I get the proper answer. I cant figure it out. Thanks:

def fanlc2(S1, S2):
    if S1 == '' or S2 == '':
        return [0, S1, S2]
    if S1[0] == S2[0]:
        temp = fanlc2(S1[1:], S2[1:])
        return [temp[0]+1, S1[0]+temp[1], S2[0]+temp[2]]
    t1 = fanlc2(S1[1:], S2)
    t2 = fanlc2(S1, S2[1:])
    if t1[0] > t2[0] or t1[0] == t2[0]:
        return [t1[0], '#'+t1[1], t2[1]]
    return [t2[0], t1[1], '#'+t2[1]]

Here are more I/O's that the program SHOULD be returning:

fanlc2("x", "y")

[0, '#', '#']

fanlc2("spam", "")

[0, '####', '']

fanlc2("spa", "m")

[0, "###", "#"]

fanlc2("cat", "car")

[2, "ca#, "ca#"]

fanlc2("cat", "lca")

[2, "ca#", "#ca"]

fanlc2("human", "chimpanzee")

[4, 'h#man', '#h#m#an###']

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closed as too localized by larsmans, Wooble, Martijn Pieters, bgporter, Jason Sturges Sep 24 '12 at 17:27

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.

3  
Please explain what you are trying to do, and the steps you think your code should be going through. At the moment we have a game of 'guess the algorithm' before we work out what's wrong. –  Phil H Sep 24 '12 at 15:08
    
You need to work this down to the lowest level first; fanlc2('n', 'an') already doesn't produce what you expect, I think. –  Martijn Pieters Sep 24 '12 at 15:14
    
The code should be taking in 2 strings and returning a list of: [LCS of string,string 1,string 2], but when it returns string 1 and string 2, it should have '#' for the letters that were not the same –  user1681664 Sep 24 '12 at 15:15
    
You really need to think about your edge cases. What should fanlc2('a', 'b') return? What should fanlc2('ab', 'b') return? What about fanlc2('b', 'ab')? The latter two are not symmetrical in your current implementation, but I suspect that they should be. –  Martijn Pieters Sep 24 '12 at 15:44

1 Answer 1

You could use the set function:

  • Find the unique letters in S1 with set(S1)
  • Find the unique letters in S2 with set(S2)
  • Find the common letters with common=set(S1)&set(S2)
  • Construct t1 by checking for each letter of S1 whether it's in common and returning the letter if True or # if False
  • Construct t2 the same way
  • You already know how many letters in common you have.

Of course, forget all that if the assignment was to use recursion.

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