Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have this homework which required to print asterick to make draw a triangle.

When drawTriangle(0);

 *

When drawTriangle(1);

  *
 **

When drawTriangle(2);

   *
  **
 * *
****

when drawTriangle(3);

       *
      **
     * *
    ****
   *   *
  **  **
 * * * *
********

when drawTriangle(4);

               *
              **
             * *
            ****
           *   *
          **  **
         * * * *
        ********
       *       *
      **      **
     * *     * *
    ****    ****
   *   *   *   *
  **  **  **  **
 * * * * * * * *
****************

when drawTriangle(5);

                               *
                              **
                             * *
                            ****
                           *   *
                          **  **
                         * * * *
                        ********
                       *       *
                      **      **
                     * *     * *
                    ****    ****
                   *   *   *   *
                  **  **  **  **
                 * * * * * * * *
                ****************
               *               *
              **              **
             * *             * *
            ****            ****
           *   *           *   *
          **  **          **  **
         * * * *         * * * *
        ********        ********
       *       *       *       *
      **      **      **      **
     * *     * *     * *     * *
    ****    ****    ****    ****
   *   *   *   *   *   *   *   *
  **  **  **  **  **  **  **  **
 * * * * * * * * * * * * * * * *
********************************

Any advice will be appreciated. Cheers.

share|improve this question
    
Could you post some code that works for drawTriangle(0)? What exactly do you need help with? –  Ishtar Oct 8 '10 at 9:40
2  
You can see the pattern, can't you? At each level copy what you've got three times leaving a gap in the top left corner. So start with a buffer that's a single line with a single star then at each level map every line L to both len(L) spaces + L and L + L and assemble. But that's an iterative operation really - I don't see the need or use for recursion, and given you're building triangles side-by-side in text I can't see any easy way to shoehorn it in either. Or is this graphics? –  Rup Oct 8 '10 at 9:42
    
@Ishtar i need the logic to do this, not the codes. –  Derek Long Oct 8 '10 at 9:54
    
@Rup this qns is under recursion and they required this to be done in recursion. Anyway, triangle 5 is made up of many some triangle 4, triangle 3 and triangle 2. Still the base line is still triangle 2 –  Derek Long Oct 8 '10 at 9:58
5  
This is called the Sierpinski triangle. –  Alexandre C. Oct 8 '10 at 11:20

6 Answers 6

up vote 2 down vote accepted

You've noticed that the height of the triangle is 2^n, I'm sure. So you know you'll need to print out that many rows. You also know you need to remember previous rows, if you're going to copy them in some way, so you know you need to have somewhere to store them - perhaps a Vector?

For a start, creating the triangle leaning over to the left instead of the right is a little easier. Adding the left padding to make it lean right is easy to do once you've got something going.

Start with a single row containing "*": print it, and store that string.

Then do this 'n' times:

  • Make the row's you've already got 'square' but adding spaces to their ends until they are all equal length
  • For each already existing row ( I mean, not including the new ones we're making below):
    • print it, twice
    • store what you just printed as a new row

That's it. Just add spaces to the left of everything you print out to make it lean over to the right.

(You might notice, once you've done this, that you can do the first step above inside the for loop below it. When you 'make the rows square' you're actually just figuring out a number of spaces to add to each row. By just adding that many spaces between two copies of your current row, in the printout and in the new row that you store, you save printing out [and storing] any unnecessary spaces.)

Here are a couple of helpful string padding functions. padRight will lengthen a string to be n characters wide by adding spaces to the right. padLeft, you guessed it, will add spaces to the left:

  public static String padRight(String s, int n) {
     return String.format("%1$-" + n + "s", s);
  }

  public static String padLeft(String s, int n) {
    return String.format("%1$#" + n + "s", s);
  }

One last opportunity for bonus points: you actually don't need to store the last half of the rows you print out.

share|improve this answer
    
seems logical, will try this out too. –  Derek Long Oct 8 '10 at 12:30
    
..but don't use Vector –  Qwerky Oct 8 '10 at 12:41
    
@Qwerky: Vector is appropriate. Otherwise, you may as well go the whole hog and just use arrays of chars and no Strings. –  sje397 Oct 8 '10 at 14:18
    
    
@Qwerky: fair point - I didn't know that. Cheers. –  sje397 Oct 8 '10 at 15:02

An OO design with object recursion is as follows;

public class Triangle
{
  int n;
  int size;
  char[][] data;

  public Triangle(int n)
  {
    this.n = n;
    this.size = (int)Math.pow(n,2);
    this.data = new char[size][size];
    fillInData();
  }

  void fillInData()
  {
    if (n == 0)
    {
      //stop case
      data[0][0] = '*';
    }
    else
    {
      //create a triangle with n-1
      //fill in the top left quadrant of data[][] with spaces
      //fill in the other 3 quadrants of data[][] with data[][] from the n-1 triangle
    }
  }
}

I'm sure you can figure out how to print the Triangle;

share|improve this answer
    
thank you, i will try this out. –  Derek Long Oct 8 '10 at 12:23

A triangle of level x is build by either:

  • One asterix if x = 0 (stop condition)
  • Or by placing two triangles of level x-1 next to each other, and one on top of the right one

The tricky part involves the printing part. A hint here is that the width/height of a triangle of level x is 2^x...

share|improve this answer
    
My answer follows this pattern :) –  st0le Oct 31 '10 at 4:52

Just for fun; here's your problem in Haskell. Might not help you, but I want to share!

import System

dupl t = zipWith (++) t t

pad n row = (replicate ((2 ^ n) - (length row)) ' ') ++ row

createTriangle 0 = ["*"]
createTriangle n = (map (pad n) prec) ++ (dupl prec)
  where prec = createTriangle $ n - 1

drawTriangle = putStr . unlines . createTriangle

main = getArgs >>= drawTriangle . read . (!! 0)

Run with runhaskell thisstuff.hs [number]

share|improve this answer

Here's a pretty python script...not much pythonic. :(

def triangle(n):
   if n == 0:
      return "*"
   else:
      small = triangle(n-1)
      lines = small.split("\n")
      top = ""
      for line in lines:
         top += len(lines[0])*" " + line + "\n"
      bot = '\n'.join([2*line for line in lines])
      return top + bot


for i in range(5):
   print(triangle(i))

Here's the output

*
 *
**
   *
  **
 * *
****
       *
      **
     * *
    ****
   *   *
  **  **
 * * * *
********
               *
              **
             * *
            ****
           *   *
          **  **
         * * * *
        ********
       *       *
      **      **
     * *     * *
    ****    ****
   *   *   *   *
  **  **  **  **
 * * * * * * * *
****************
share|improve this answer
import java.util.*;

public class Triangle {

    public void drawTriangle(int scale){
     scale = 1 << scale;
     StringBuilder line = new StringBuilder();
     char t = 0;

     for (int i = 0; i <= scale; i++){
           line.append(" ");
     }
     line.setCharAt(scale, '*');

     for(int i = 0; i < scale; i++){
           System.out.println(line);

     for(int j = scale-i; j <= scale; j++){
                 t = line.charAt(j)==line.charAt(j-1) ? ' ':'*';
                 line.setCharAt(j-1,t);
           }

     }

}

    public static void main(String args[]){
        Triangle t = new Triangle();
        t.drawTriangle(5);
    }
}

This few lines of code is sufficent to achieve that.

share|improve this answer
    
Its not recursive. :-/ –  st0le Oct 31 '10 at 4:47

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.