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So lets say you are given two strings, with hidden values and you want to know if there is a possibility of them being the same, so for example you have the word 'jupiter', now lets say '^' represents hidden values, for example: 'jupiter' could equal = 'j^^^t^r , but not 'j^^^' becuase thats only 4 characters, or '^a^^^^' because the second character isint a in 'jupiter'. I have no idea how to start the program, thanks again guys!

also, new to python, thanks guys!

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closed as not a real question by Piotr Gwiazda, Marcos Placona, Kris, Richard, Wolfwyrd Oct 19 '12 at 10:41

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

4  
What have you tried? This is quite simple logically and would take only a few minutes to do out on paper before trying to tackle it straight in code. –  sean Oct 19 '12 at 4:38
    
Your 'hidden values' string is basically a regex with '^' instead of '.'. –  Andrew Jaffe Oct 19 '12 at 4:55

4 Answers 4

I'd do it like this:

  1. Make sure the two strings have the same length. If they don't, they cannot be the same word.
  2. Iterate over one string and keep a counter variable. You can use for index, letter in enumerate(word): to simplify this.
  3. Compare letter to the letter in the same position from word2 (you can use word2[index]).
  4. If letter isn't a ^ and the two letters from the words differ, return False, because the two words cannot be the same.
  5. Once the loop ends, if you haven't returned already, return True.

Here's a cryptic one-liner, just for reference:

len(w1) == len(w2) and all(a == b or '^' in a + b for a, b in zip(w1, w2))

Or with regex:

re.match('^{}$'.format(w2.replace('^', '.')), w1)
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all(...) variant doesn't check condition 1. –  Avaris Oct 19 '12 at 5:35
    
@Avaris: Thanks! Fixed. –  Blender Oct 19 '12 at 5:38
    
The '^' is redundant for re.match –  gnibbler Oct 19 '12 at 5:45
def match(st,t):
 if len(st)!=len(t):
  return False
 for i,j in zip(t,st):
   if i!="^" and i!=j:
    return False
 return True

>>> st="jupiter"
>>> t="j^p^^e^"
>>> match(st,t)
True
>>> t="j^"
>>> match(st,t)
False
>>> t="j^pit^e"
>>>
>>> match(st,t)
False
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>>> def compare(A,B):
...     if not len(A) == len(B): return False
...     return all(a == b or a == '^' or b == '^' for a,b in zip(A,B))
... 
>>> compare('j^^^t^r','jupiter')
True 
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this should work:

def match(a,b):
    if len(a)!=len(b):
        return "strings don't match"
    else:
        for x,y in zip(a,b):
            if not(any((x=="^",y=="^")) or x==y):
                return "strings don't match"
        return "matched"

print match("jupiter","j^^^t^r")    
print match("jupiter","^a^^^^^")
print match("abc","^b^")
print match("abc","b^^")

output:

matched
strings don't match
matched
strings don't match
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