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I have question what is complexity of this algorithm

public class smax{

   public static void main(String[]args){

      int b[]=new int[11];
      int a[]=new int[]{4,9,2,6,8,7,5};

      for (int i=0;i<b.length;i++){
         b[i]=0;
      }

      int m=0;
      while (m<b.length) {
         int k=a[0];
         for (int i=0;i<a.length;i++) {
            if (a[i]> k && b[a[i]]!=1) {
               b[a[i]]=1;
            }
         }
         m++;
      }

      for (int i=0;i<a.length;i++){
         if (b[a[i]]!=1){
            b[a[i]]=1;
         }
      }

      for (int j=0;j<b.length;j++){
         if (b[j]==1){
            System.out.println(j);
         }
      }
//result=2 4 5 6 7 8 9
    }
}

?

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1  
Looks like some code is missing –  Itay Karo May 26 '10 at 5:47
1  
homework? ....... –  Mitch Wheat May 26 '10 at 5:49
1  
Complexity is infinite when it is incorrect/incomplete and unreadable all at the same time. –  JUST MY correct OPINION May 26 '10 at 5:49
1  
Agreed with Itay. Would you mind updating your code and putting it into code-tags? –  Jan Kuboschek May 26 '10 at 5:53
1  
Don't feed this young man, but teach him how to fish. –  wilhelmtell May 26 '10 at 6:02
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3 Answers

up vote 2 down vote accepted

Looks like homework so the best answer would not only be the final answer but also one you could learn from.

Let n = a.Lengh, m = b.Length

for (int i=0;i<b.length;i++){
     b[i]=0;
  }

makes one pass on b's elements so it would contribute m steps.

for (int i=0;i<a.length;i++){
     if (b[a[i]]!=1){
        b[a[i]]=1;
     }
  }

makes one pass on a's elements so it would contribute n steps.

for (int j=0;j<b.length;j++){
     if (b[j]==1){
        System.out.println(j);
     }
  }

makes one pass on b's elements so it would contribute m steps.

so far we have 2m+n

int m=0;
  while (m<b.length) {
     int k=a[0];
     for (int i=0;i<a.length;i++) {
        if (a[i]> k && b[a[i]]!=1) {
           b[a[i]]=1;
        }
     }
     m++;
  }

for every element of b there is a pass on all a's elements which contribute mn steps.

the sum of all steps is 2m+n+mn which in the asymptotic notation is O(mn).

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