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I need to write a method that accepts two ints as arguments, a min and a max. On the first line i need to print all numbers in that range (inclusive). On the next line I start with min+1, print all numbers up to max, and then go back to the front of the range and print min. Next line I start with min+2, and so on until I have repeated this starting with each number in the range.Very hard to explain, here's two examples: Say I pass 1 and 5 as the min and max arguments. I want the method to print this:

12345
23451
34512
45123
51234

Or if 3 and 9 were passed, I would expect this:

3456789
4567893
5678934
6789345
7893456
8934567
9345678

I've tried all kinds of things, I'm sure there is an easy way to do this that I am not realizing. I'm supposed to do this without arrays or arrayLists. I think I have a good base to work with, but I just can't figure out where to go from here. My base code prints this:

12345
2345
345
45
5

And this:

3456789
456789
56789
6789
789
89
9

I'm stumped. Here's my code:

public void printSquare(int min, int max){
   for (int i=min; i<=max; i++){
      for (int j=i; j<=max; j++){
         System.out.print(j);         
      }
   System.out.println();   
   }
}
share|improve this question
    
Sounds like this could be recursive. –  Falmarri Dec 12 '10 at 23:30
    
It's not homework it's from some java sample questions on a website that I've been reading.. I'm not in school, I'm just learning java for myself =) I'm going to think about Peter and Raskolnikov's answers, and see if I can come to the conclusion myself. –  Bots Dec 13 '10 at 0:32

8 Answers 8

This is a very simple implementation. Hope this helps!

   int n = max-min+1;
   for (int i=0 ; i<n; i++){
    for (int j=0; j<n; j++)
     cout<<min + (i+j)%n;
      cout<<"\n";
   }

Output:

min = 3 | max = 9 

    3456789
    4567893
    5678934
    6789345
    7893456
    8934567
    9345678
share|improve this answer

Here's the code..

 for i = 0 to max-min
 for j = 0 to max-min
 print min + (i+j)%n
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You should think about how many values you want on each row, and then determine what those values should be. Its hard to make it any clearer without giving you the solution.

Let us know how you go.

share|improve this answer
    
To be more precise: how do we determine what the values are, in terms of the value of the loop counter at that point? –  Karl Knechtel Dec 13 '10 at 0:15
    
It a very simple expression so I had thought you might be able to work it out. However if you can't you can look at @taxman's solution. –  Peter Lawrey Dec 13 '10 at 10:03

Peter is right, and IMO is answering a homework question in the right manner. You know how many elements you want on each line, so you need an outer loop that gives you that many elements, this will stop you from getting the cascading behavior you're seeing now.

At that point you need to think about your inner loop(s), and you'll probably find this easiest using the modulus operator (%). This will allow you to iterate without ever going over your target.

You should be able to figure it out from there, and you're much better off figuring out the algorithm yourself than copying it from someone else, at least at this level of development. Good Luck!

share|improve this answer

Think about a way to print the missing numbers. The answer is below, if you cannot come up with it you can check it.


This should also print the missing parts:

public void printSquare(int min, int max){  
   for (int i=min; i<=max; i++){  
      for (int j=i; j<=max; j++){  
         System.out.print(j);         
      }  
      for (int k=0; k<i-min; k++){  
         System.out.print(min+k);         
      }  
      System.out.println(); 
   }  
}
share|improve this answer
    
could you reformat to make readable? –  Milhous Dec 12 '10 at 23:37

I didn't run this one but it might work:

public void printSquare(int min, int max){

   int dif = max - min;
   for (int i=min; i<=max; i++){

      for (int j=i; j <= i+dif ; j++){
         int temp = j;
         if ( temp > max ) temp = temp  - max;
         System.out.print(temp);         
      }

   System.out.println();   
   }

}
share|improve this answer

try and just shift an array like so:

   static void Main(string[] args)
    {
        // this will work equally well with numbers letters or other types of characters
        int[] nums = new int[] { 1, 2, 3, 4, 5, 6, 7, 8, 9 };
        String a = "hello";
        for (int i = 0; i < nums.Length; i++)
        {
            int j = 5;
            int num = i;
            while (j-- > 0)
            {
                if (num >= nums.Length)
                {
                    num = 0;
                }

                // shift the loop
                Console.Write(nums[num++]);
            }
            Console.WriteLine();
        }
    }
share|improve this answer
public class Test1{
    public void printSquare(int min, int max){
        for (int i=min; i<=max; i++){
            for (int j=i; j<=max; j++){
                System.out.print(j);       
            }
            for(int k= min; k<i; k++){
                System.out.print(k);     
            }
            //System.out.print(i-1);
            System.out.println();   
        }
    }
    public static void main(String[] args){
        Test1 t = new Test1();
        t.printSquare(1,5);
    }
}
share|improve this answer
    
try to add an explanation for your answer. –  Unni Kris Oct 26 '12 at 8:48

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