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assume I have two strings a="a-b-c" and another one is b="a-b". I want to check if string a contains every alphabet of string b. any help?

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closed as not a real question by NullPoiиteя, undefined, dystroy, mcpDESIGNS, Ricardo Alvaro Lohmann Jan 2 '13 at 16:01

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1  
Could you post what code you have? –  Josh Jan 2 '13 at 15:18
4  
With "every alphabet" you mean "every character"? Do the characters have to occur in the same order? –  Felix Kling Jan 2 '13 at 15:18
    
Just iterate over b characters and test if they're present in a (using indexOf) –  dystroy Jan 2 '13 at 15:19
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4 Answers

up vote 0 down vote accepted

I am assuming that there are several ways and orders you could potentially get both Strings represented; that said, the most straight forward way would be to check for each char in String b if it is indeed contained in String a. For that purpose, you could easily call indexOf(currentCharFromStringB) on String a.

I hope the following example helps you to see my idea:

"Blue Whale".indexOf("Blue") != -1; // true
"Blue Whale".indexOf("Bloe") != -1; // false

Some pseudo code would be:

for each char in b
     for each char in a
        is a in b?

Now, it's up to you, dealing how you want to extract or represent each character of String B.

I hope this helps.

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An efficient solution will be to read the two strings into two sets of characters. After doing so, "every character in b in in a" if and only if b is a subset of a. It can be optimized to use only one set (for b) - see pseudo code.

The complexity of this approach is O(|a|+|b|) on average using hash table, or O(log(min{|a|,|b|})*(|a|+|b|)) worst case using tree based. It is much better comparing to a naive solution which will get you O(|a|*|b|) if you search each and every character.

Pseudo code:

setB <- empty set
for each element e in b:
  setB.add(e)
for each element e in a:
  setB.remove(e) //assuming doing nothing if doesn't exist
return setB.isEmpty()

The idea of the optimization is to load the elements (chars) of b into a set, and then iterate a while removing elements from the set if encountered.
Once you are done iterating a, if (and only if) there is a character in b that is not in a - it will remain in the set and the algorithm will return false

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function func(a,b) {
    var alphabet = b.split("-");    
    for (var i=0; i < alphabet.length; i++) {
      if (a.indexOf(alphabet[i]) == -1)
          return false;
    }   
    return true;
}

func("a-b-c", "a-b");
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1  
Note that it is a very inefficient solution (comparing to the alternatives), and runs in O(|a|*|b|). –  amit Jan 2 '13 at 15:24
1  
@amit Greater O complexity doesn't mean it's slower, especially for short strings as in the question. Building the sets comes with a cost too. –  dystroy Jan 2 '13 at 15:26
    
@dystroy: No, for short strings not, but I'd bet that for any n>10 it will. –  amit Jan 2 '13 at 15:27
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you can use the following code:

var b = "a-b";
var a = "a-b-c";
var firstArray = b.split("-");
var secArray = a.split("-");
var length = firstArray.lenght;
for(var i =0; i<length; i++)
{
  if(secArray.indexOf(firstArray[i]) != -1)
    continue; //or do something
  else
    break; // or return false.
}
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