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My problem is that I want to return a common substring of two strings s1, s2. Apparently, s1 and s2 are symmetric.

string shortest_common( const string& s1, const string& s2 ) {

}

There are three possible solutions to this problem that I came up with:

  • Either make a copy of s1 and s2
  • Or swap them, which means I have to sacrifice their const-ness
  • Or worst, duplicate code!

I personally prefer the first case, since intent is to find the shortest-common string not changing s1 or s2. So my question is: Which option is ideal in this case?

Thanks,
Chan

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They're symmetrical meaning palindromic? As in, 'abba' and 'cabbac' are valid input and 'abba' would be the result? –  mkb Jan 28 '11 at 18:11
5  
Wait, shortest common string? That's not even itneresting as the answer is always "" :) –  mkb Jan 28 '11 at 18:12
    
@Matt Kane: It's a modified version, not a traditionally palindromic. It has many sub-cases that I have to handle. –  Chan Jan 28 '11 at 18:14
    
Matt is correct. You would need it to be shortest common substring with a minimum length. Anything less than 2 would give you a lot of results for any non-trivial pair of strings. –  Zac Howland Jan 28 '11 at 18:26

3 Answers 3

up vote 2 down vote accepted

I would opt to go with the signature that you've displayed. If you're finding a common substring then you don't want to have side-effects. That's not what people think of when they would call your function. I don't expect a function called "add_two_numbers" to modify one of the numbers and return a value.

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Your thought matched mine ;). I will go for this option. –  Chan Jan 28 '11 at 18:59

You could use recursion to swap the meanings of parameters without changing the objects themselves in any way.

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Ben Voigt: Thanks! –  Chan Jan 28 '11 at 18:58

I'm a bit confused as to what your actual question is, so I'll judge by the title.

Do both:

void shortest_common( string& s1, const string& s2 )
{
  // real algorithm changing s1
}

inline string shortest_common( string s1, const string& s2 )
{
  shortest_common( s1, s2 );
  return s1;
}
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@sbi: Thanks for the solution. –  Chan Jan 28 '11 at 18:59
    
@sbi: If you're just going to copy the parameter, isn't it better to use pass by value to make the copy? I thought that opens up some additional optimizations (and of course in C++0x, the "real implementation would use an rvalue-reference, and the forwarder would use std::move) –  Ben Voigt Jan 28 '11 at 19:13
    
@Ben: You're right, I keep forgetting that! –  sbi Jan 28 '11 at 19:24
    
@Ben: I'm using VC++ 2010. According to what you mentioned, is passing std::string by copy even better? –  Chan Jan 28 '11 at 23:33
    
@Chan: Usually you pass class object per const reference, unless you need a copy of the parameter within the function anyway. (See How to pass objects to functions in C++?) The reason is that the compiler might be able to elide the copying when you pass an rvalue (a temporary object) as this parameter. –  sbi Jan 29 '11 at 0:27

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