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I got this homework. And have solved it in following way. I need your comments whether it is a good approach or I need to use any other data sturcture to solve it in better way.

    public string ReturnCommon(string firstString, string scndString)
    {
        StringBuilder newStb = new StringBuilder();
        if (firstString != null && scndString != null)
        {
            foreach (char ichar in firstString)
            {
                if (!newStb.ToString().Contains(ichar) && scndString.Contains(ichar))
                    newStb.Append(ichar);
            }
        }
        return newStb.ToString();
    }
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6  
+1 for supplying your own answer as part of a homework question. –  ChrisW Jan 15 '10 at 10:15
    
+1 for changing the solution, but surely you can't name the variable char and have the data type as char too? –  Anurag Jan 15 '10 at 10:17
    
don't use abbreviations. secondString instead of scndStrng –  serhio Jan 15 '10 at 10:18
    
could somebody give an example using LINQ? –  serhio Jan 15 '10 at 10:35
    
The problem is ill-posed. Suppose the two input strings were 'happy' and 'Ypres'. Should you output 'py' or 'ppy'? –  Colonel Panic Jul 13 '13 at 23:32
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8 Answers

up vote 7 down vote accepted

That's fine for a first approach, but you can make a few improvements, and there's a small error.

  • If b contains a character in a that's already in c, you'll repeat it.
  • To avoid repeats, you might consider using a Set to store the characters, since a Set won't have repeats.
  • Assembling strings with += concatenation is usually inefficient; consider using a StringBuilder or an analogous string-assembly class.
  • Your variable names aren't very descriptive.
  • If a or b are empty, you don't have to do any work at all! Just return an empty string.

You can think about some more sophisticated improvements, too, by imagining how your algorithm scales if you started to use huge strings. For example, one approach might be that if one string is much longer than the other, you can sort the longer one and remove duplicates. Then you can do a binary search on the characters of the shorter string very quickly.

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I have updated my code as per your comments...thak u so much –  Pritam Karmakar Jan 15 '10 at 10:30
1  
an example in LINQ could be also interesting! –  serhio Jan 15 '10 at 10:36
    
hi, to upgrade your performance, you can even check the smallest string and loop through his chars. that way you'll save the number of loops. –  user29964 Jan 15 '10 at 10:36
    
To scale for huge strings, using a hashset or an array lookup is better IMO. –  ChrisW Jan 15 '10 at 10:44
    
HashSet, not Set - don't get Java on us :P –  Chris S Jan 15 '10 at 10:48
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For an alternative solution, you can view the strings as enumerables and use Intersect() like this:

    public static string Common(string first, string second)
    {
        return new string((first.Intersect(second)).ToArray());
    }
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1  
+1. It never occurred to me you could use a string directly as an enumerable like so without calling .ToCharArray() –  Winston Smith Jan 15 '10 at 11:13
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To improve on John Feminella's last suggestion, quicker than a binary search (for any sufficiently long string) would be a lookup in a hashset; or a lookup in a 256-element array of booleans, if those are ASCII or UTF8 characters instead of UTF16 characters.

  • Instantiate an empty hashset, or an empty array of booleans; name this variable found.
  • For each char in the first string, either add the char to the hashset (but beware of duplicate characters in the first string), or set the corresponding element in the found array to true; this will take linear O(n) time.
  • For each char in the second string, test whether the char exists in the hashset or whether the corresponding element in the 'found' array is true: if found then add the character to the return string, and also remove the character from the hashset or the clear the boolean element in the array, so that it won't be found again (to beware of duplicate characters in the second string); this will take linear O(n) time.
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Seems fine. You could do a pair of optimizations depending on the language you are using:

  • you can collect the letters of b into some ordered structure (to make the search for it faster), and if it doesn't repeat... better (a set).
  • you can use some kind of StrignBuilder (if it's Java or .Net) to not recreate a string with each concatenation inside the loop

Anyway this are optimizations that are good for large, large strings... so, I don't know if their apropiate to your use, or to the intended homework.

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and check repetition in the result, so you can check if (!c.Contains(d) && b.Contains(d)... –  helios Jan 15 '10 at 10:15
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Depends on how long are the input strings, what is the letter and how output should look (duplicates) there are a few other approaches.

For example:

If letters are just [A-Z] characters and each letter should appear only once in output string you can build separate string (or table of chars) 'ABC...XZ' (let's call it letters) and run for each loop over letters and check both input strings against each letter from letters.

This gives 26 loop iterations and no more then 52 calls of Contains() method for each input strings -- no matter how long input strings are.

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However each Contains call may still be expensive, because you're invoking it on a lengthy string value. –  ChrisW Jan 15 '10 at 12:40
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Using LINQ:

a.ToCharArray().Intersect<char>(b.ToCharArray())

However this is case sensitive.

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Looks OK to me, but for god sakes man - use some descriptive variable names!!

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Updated variable name...Thanks –  Pritam Karmakar Jan 15 '10 at 10:16
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FYI: Here is the C/C++ code:

/* Q: Write a function f(a, b) which takes two character string arguments
      and returns a string containing only the characters found in both
      strings in the order of a. */

#include <iostream>
#include <string>
#include <cstring>
#include <map>
using namespace std;

/* A: Unclear: repeated chars in string a? */
string CommonChars(const char* a, const char* b)
{
    string result("");

    if (!a || !b || !*a || !*b)
        return result;

    map<char, bool> hash;
    int len1 = strlen(a), len2 = strlen(b);

    for (int i = 0; i < len2; ++i)
        hash[b[i]] = true;

    for (int i = 0; i < len1; ++i)
    {
        map<char, bool>::iterator it = hash.find(a[i]);
        if (it != hash.end() && it->second)
        {
            result += a[i];
            hash[a[i]] = false; // OR:  hash.erase(it);
        }
    }

    return result;
}

int main()
{
    cout << CommonChars("abcdefgbx", "gcfcba") << endl;

    return 0;
}
/* Output:
abcfg
 */
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