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I was doing the binary search for String and it showing output error. I do not know what I missing and I need some advice.

Here my code :

public static final int Not_Found = -1;

    public static int BS( String[][] record, String x )
{
int low = 0;
int high = record.length - 1;
int mid;

while( low <= high )
{
mid = ( low + high ) / 2;

if( record[ mid ].compareTo( x ) < 0 )
low = mid + 1;
else if( record[ mid ].compareTo( x ) > 0 )
high = mid - 1;
else
return mid;
}

return Not_Found;
    }

Its that I missing something? or I have to use other way to find it?

Here the error :

error: cannot find symbol if( record[ mid ].compareTo( x ) < 0 ) ^ symbol: method compareTo(String)

error: cannot find symbol else if( record[ mid ].compareTo( x ) > 0 ) ^ symbol: method compareTo(String)

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You can't compare a string to a string array. –  Dave Newton Apr 26 '12 at 0:21
1  
you are using "String[][] record". use "String[] record" if it is 1d record. –  Arpssss Apr 26 '12 at 0:24
    
how should I can work on 2D-array? any advice? –  user1342633 Apr 26 '12 at 0:27

2 Answers 2

Well record is a 2D-array, so record[j] will give an array as opposed to a string. Did you maybe mean to use a 1D-array instead?

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I was doing 2D-array, so how should I work on it? –  user1342633 Apr 26 '12 at 0:27
    
Well since the binary search is being done in a 'linear' fashion, maybe you could have a method that stretches a 2D-array into a 1D-array by concatenating all of the rows. Then you could search this new array with the regular binary search. Or similarly you could have a for-loop that searches every row of the 2D <code>record</code> array. –  arshajii Apr 26 '12 at 0:31
    
I will try to do that if that possible, thank for you advice, appreciate it. –  user1342633 Apr 26 '12 at 0:40

you are using "String[][]" means 2D record. So, record[j] gives corresponding jth column string array. Which can't be compared to a string. So, use "String[] record" if it is 1d record.

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So if I wish to work on 2D, I need to change difference format code? or I just need change some of them? –  user1342633 Apr 26 '12 at 0:31
    
look your code have to search for every record[ mid ][i] to compare to String. In this way you can't compare. Take example, record[0][0] = 7, record[1][0]=5, record[2][0] = 0, record[2][1] = 5. your search for 5 will give wrong result because your mid will give wrong mid. You can, do it like this, rec[0] = record[0][0], rec[0] = record[0][1] ...so on (use another temporary array for storing records). Then perform binary search and returned result position convert as record[][] row-col number. I think it will be simpler. –  Arpssss Apr 26 '12 at 0:59

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