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i want to print this pattern like right angled triangle

0   
909   
89098   
7890987    
678909876   
56789098765   
4567890987654   
345678909876543   
23456789098765432   
1234567890987654321 

I wrote the following code

#include <stdio.h>
#include <conio.h>

void main()
{
    clrscr();
    int i,j,x,z,k,f=1;

    for ( i=10;i>=1;i--,f++)
    {
        for(j=1;j<=f;j++,k--)
        {
            k=i;

            if(k!=10)
            {
                printf("%d",k);
            }

            if(k==10)
            {
                printf("0");
            }

        }

        for(x=1;x<f;x++,z--)
        {
            z=9;
            printf("%d",z);
        }

        printf("%d/n");
    }

    getch();
}

what is wrong with this code? when i check manually it seems correct but when compiled gives different pattern

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1  
What output are you getting? (is it a long sequence of 9 by any chance?) –  Hasturkun Jul 1 '13 at 11:03
    
@Hasturkun 0864/n999864/n88899864 and goes on ...(i just wrote few lines of output) –  Vignesh Vicky Jul 1 '13 at 11:11
    
The first issue is printf("%d/n"); - this needs to be printf("\n"); –  Andreas Jul 1 '13 at 11:12
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7 Answers

up vote 8 down vote accepted

Fairly simple: use two loops, one for counting up and one for counting down. Print literal "0" between the two.

#include <stdio.h>

int main()
{
    for (int i = 0; i < 10; i++) {
        for (int j = 10 - i; j < 10; j++)
            printf("%d", j);

        printf("0");

        for (int j = 9; j >= 10 - i; j--)
            printf("%d", j);

        printf("\n");
    }

    return 0;
}
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1  
@meaning-matters Your argument is invalid. - also, have you read the "like this" part of the question? (You are probably confusing right trinagles with equilateral triangles. Yup, maths is hard, English is even harder...) –  user529758 Jul 1 '13 at 11:20
    
@VigneshVicky No, it doesn't, it generates the exact output you want. Link –  user529758 Jul 1 '13 at 11:21
2  
@meaning-matters A 'right angled triangle' is a triangle with a 90* corner and as far as I can see the code from carbonic acid seems to do that. –  nonsensickle Jul 1 '13 at 11:22
1  
@H2CO3 Carbonic Acid, your answer is correct as far as the question allows. Vote up. –  nonsensickle Jul 1 '13 at 11:25
    
@nonsensical Yes, thanks. –  user529758 Jul 1 '13 at 11:25
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Like H2CO3's, but since we're only printing single digits why not use putchar():

#include <stdio.h>
#include <stdlib.h>

int main(void)
{
  int i, j;

  for(i = 0; i < 10; ++i)
  {
    // Left half.
    for(j = 0; j < i; ++j)
      putchar('9' - i + j + 1);
    // Center zero.
    putchar('0');
    // Right half.
    for(j = 0; j < i; ++j)
      putchar('9' - i + j + 1);
    putchar('\n');
  }
  return EXIT_SUCCESS;
}
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Because I was not using a large enough part of my brain :) +1. –  user529758 Jul 1 '13 at 11:25
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Modified Code: Check your errors:

# include<stdio.h>
# include<conio.h>

int main()
{
// clrscr();
 int i,j,x,z,k,f=1;

 for ( i=10;i>=1;i--,f++)
 {
     k=i;                    // K=i should be outside of loop.
     for(j=1;j<=f;j++,k++)
     {

         if(k!=10)
         {
             printf("%d",k);
         }

         if(k==10)
         {
        printf("0");
         }
}
     z=9;                    //z=9 should be outside loop.
     for(x=1;x<f;x++,z--)
     {
         printf("%d",z);
     }

printf("\n");

}
//getch();
return 0;
}

You are defining k=i inside the for loop(loop which has j) so every time k gets value of i and thus it always get value of i and prints that value and your another condition(if(k==10)) will never be true because every time k takes value of i and i is less than 10 after first iteration of loop and z=9 inside loop so every time loop is executed it is taking value z=9 so it is printing wrong value.

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Here's a C# version:

static void DrawNumberTriangle()
{
    for (int line = 10; line >=1; line--)
    {
        for (int number = line; number < 10; number++)
        {
            System.Console.Write(number);
        }
        System.Console.Write("0");
        for (int number = 9; number > line - 1; number--)
        {
            System.Console.Write(number);
        }

        System.Console.WriteLine();
    }
}

I'd suggest renaming your i,j,x,z,k,f variables to ones that have meaning like the one's I used. This helps making your code easier to follow.

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Rather than output the mid 0 using printf, why not print it using the loops itself. The following short and simple code can be used:

int main()
{
    int m = 10, n, p;
    while(m >= 1)
    {
        for(n = m; n <= 10; n++)
            printf("%d", n % 10);
        for(p = n - 2; p >= m; p--)
            printf("%d", p );
        printf("\n");
        m--;
    }
    return 1;
}
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For high throughput (though of questionable merit in terms of clarity):

#include <stdio.h>

int main() {
    char const digits[] = "1234567890";
    char const rdigits[] = "9876543210";

    for (int i = 0; i < 30; ++i) {
        int k = i % 10;
        fputs(digits + 9 - k, stdout);
        for (int j = 9; j < i; j += 10) fputs(digits, stdout);
        for (int j = 9; j < i; j += 10) fputs(rdigits, stdout);
        fwrite(rdigits, 1, k, stdout);
        fputs("\n", stdout);
    }
}
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#include <stdio.h>

void print(int i){
    if(i == 10){
        putchar('0');
        return ;
    } else {
        printf("%d", i);
        print(i+1);
        printf("%d", i);
    }
}

int main(void){
    int i;
    for(i = 10; i>0; --i){
        print(i);
        putchar('\n');
    }
    return 0;
}
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