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The following code separates the duplicate names into 1 column and sum of numbers associated with the names into the second column.

Like :

   Nokia 21

   Blackberry 3

   Nimbus 30

from the array given in the program.


I want to know the final length of the array that contain these entries. In this case 3. How do i calculate that ?

package keylogger;
import java.util.ArrayList;
import java.util.List;

public class ArrayTester {

private static int finalLength = 0;
private static String Name[][];
private static String data[][] = { 
                               {"Nokia" , "7"},
                               {"Blackberry" ,"1"},
                               {"Nimbus","10"},
                               {"Nokia" , "7"},
                               {"Blackberry" , "1"},
                               {"Nimbus","10"},
                               {"Nokia" , "7"},
                               {"Blackberry" , "1"},
                               {"Nimbus","10"}

                          };  

public void calculator() {

    Name = new String[data.length][2];
    List<String> marked = new ArrayList<String>();
    try {
        for(int i=0;i<data.length;i++) {
            Name[i][0] = data[i][0];
            Name[i][1] = data[i][1];
            String name = data[i][0];
            if(marked.contains(name)) {

                continue;
            }
            marked.add(name);
            int k = i + 1;
            int v = k;
            for (int j = 0; j < data.length - v; j++) {
                String s = data[k][0];
                if(Name[i][0].equalsIgnoreCase(s)) {
                    Name[i][0] = s;
                    Integer z = Integer.parseInt(Name[i][1]) + Integer.parseInt(data[k][1]);
                    Name[i][1] = z.toString();
                }
                k++;
            }

        }
    }catch(Exception exc) {
        exc.printStackTrace();
    }
}

public static void main(String args[]) {
    ArrayTester o = new ArrayTester();
    o.calculator();
    for(String s[] : Name) {
        for(String x : s) {
            System.out.println(x);
        }
    }
}

}

share|improve this question
    
i don't think i understand. do you just want to check how many distinct names you have? –  piotrek May 25 '12 at 12:54
    
@piotrek yes... –  program-o-steve May 25 '12 at 12:55
    
get the length of arrylist. –  Zaz Gmy May 25 '12 at 12:56

3 Answers 3

up vote 2 down vote accepted

As usual, the "problem" is poor coding. Your entire program, properly written, can be reduced to just 3 lines of code (5 if you include defining the array and printing the output):

public static void main(String[] args) {
    String data[][] = {{"Nokia", "7"}, {"Blackberry", "1"}, {"Nimbus", "10"},
        {"Nokia", "7"}, {"Blackberry", "1"}, {"Nimbus", "10"}, {"Nokia", "7"},
        {"Blackberry", "1"}, {"Nimbus", "10"}, {"Zebra", "78"}};

    HashMap<String, Integer> totals = new HashMap<String, Integer>();
    for (String[] datum : data)
        totals.put(datum[0], new Integer(datum[1]) + (totals.containsKey(datum[0]) ? totals.get(datum[0]) : 0));
    System.out.println("There are " + totals.size() + " brands: " + totals);
}

Output:

There are 4 brands: {Nimbus=30, Zebra=78, Nokia=21, Blackberry=3}
share|improve this answer
    
what if there is another unique brand ? Suppose there is one brand named zebra 78. At the end i wanted an array that contained unique brands with the total. –  program-o-steve May 25 '12 at 13:15
    
I think it should be totals.put(datum[0], totals.containsKey(datum[0]) ? totals.get(datum[0]) + new Integer(datum[1]) : datum[1]); or totals.put(datum[0], datum[1] + totals.containsKey(datum[0]) ? totals.get(datum[0]) : 0) –  tibtof May 25 '12 at 13:16
    
@program-o-steve no problem - it still works. data edited to include extra brand - see edited answer and updated output –  Bohemian May 25 '12 at 13:18
    
doesn't belong here but what are the good sources to learn collections It has been a year i have learned java but i am not handy with collections –  program-o-steve May 25 '12 at 13:24
    
@tibtof I had a bug, and you're almost correct. I used the Integer(String) constructor, and a ternary on contains() - see edited code. And thanks for the comment :) –  Bohemian May 25 '12 at 13:25

You can't know it a priori, the size will be known just when you'll have finished splitting the strings and doing your math.

In your example in the end marked.size() will have the size you are looking for but I'd suggest you to directly use a HashMap so that you won't care about searching for existing elements in linear time and then convert it to an array.

Something like:

String[][] names = new String[map.size()];
Set<String> keys = map.keys();
int c = 0;

for (String k : keys)
{
  names[c] = new String[2];
  names[c][0] = k;
  names[c++][1] = map.get(k).toString();
}
share|improve this answer

As far as I understand it, you want to know the number of distinct names in your array without calling calculator(), right? I don't really know if that makes sense as you still have to go through every entry and compare it with a set. But you could do it with a Set:

private int getNumberOfEntries(String[][] data) {
  Set<String> names = new HashSet<String>();
  for (int i=0; i<data.length; i++) {
    names.add(data[i][1]);
  }
  return names.size();
}

Now you can just call int n = getNumberOfEntries(data);...

EDIT: Of course it makes more sense to do the sums in the same step, see Bohemians solution for that.

share|improve this answer

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