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I'm new to the C language and am trying to do a lab tutorial that we were given at uni.

We've been asked to do the following:

Task 1. The Babylonian algorithm to compute the square root of a number n is as follows: 1. Make a guess at the answer (you can pick n/2 as your initial guess).

  1. Compute r = n / guess
  2. Set guess = (guess +r) / 2
  3. Go back to step 2 for as many iterations as necessary. The more that steps 2 and 3 are repeated, the closer guess will become to the square root of n.

Write a program that inputs an integer for n, iterates through the Babylonian algorithm five times, and outputs the answer as a double to two decimal places. Your answer will be most accurate for small values of n.

Here is what I have written:

#include <stdio.h>
#include <math.h>

int n;

main(void){
    printf("Enter a value for n: ");
    scanf("%d",&n);
    double guess = n / 2;
    for (int i = 0; i < 5; i++) {
        double r = n / guess;
        double guess = (guess + r) / 2;
    }
    printf("%d",guess);
}

Where have I gone wrong? It spits out ridiculous results; for example if I input "4" as n, the answer should be around "2", but it gives different huge results each time.

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3 Answers 3

up vote 2 down vote accepted

A few things wrong here.

First, you have scoped a second instance of guess inside the loop. Take away the double declaration on that line. So it should become:

guess = (guess + r) / 2;

Second, because guess is a double you need to use %f instead of %d in the printf call.

printf( "%f", guess );

Once you get it working, consider running the algorithm until a certain accuracy is achieved.

const double epsilon = 0.0001;
double guess = (double)n / 2.0;

while( fabs(guess * guess - (double)n) > epsilon )
{
    double r = (double)n / guess;
    guess = (guess + r) / 2.0;
}
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Thanks, this worked, both answers were on the money; how do I get it to print to 2 decimal places though? –  Kane Charles Apr 12 '13 at 2:05
    
Format specifier "%.2f". Arguable whether you need "%.2lf". I think floats are implicitly converted to double in variable argument lists. –  paddy Apr 12 '13 at 2:05
    
Thanks mate. Spot on –  Kane Charles Apr 12 '13 at 2:07
    
"%lf" is identical to "%f", the l modifier only affects integer types. float is converted to double for variadic functions so "%f" should suffice. On systems that support long double, the "%Lf" format specifier should be used (n.b. uppercase L). –  dreamlax Apr 12 '13 at 2:14

The Babylonian Algorithm seems incorrect to me, it should be like this,

   int i;
   float n,guess=1;

   printf("\nEnter the Number: ");
   scanf("%f",&n);
   for(i=0;i<PRECISION;i++)
   {
       guess=(guess+n/guess)/2;
   }
   printf("\nThe Square root of %f is %f",n,guess);

There are other possible errors also in your program,

There might be the problem of integer division,

The line double guess = n / 2;

should be double guess = (double) n / 2;

Also the printf() should be printf("%lf",guess);

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1  
It's worth pointing out that this answer addresses undesirable behaviour for input less than two, because of the division by zero: double r = n / guess;. There should probably be a check to ensure n > 0 before entering that loop, too. –  undefined behaviour Apr 12 '13 at 2:12

Another solution would be:

guess = guess / 2.0; 

This would "force" a floating-point operation.

And the variable guess is already in the scope. You can´t redeclare it (as you did inside the loop). You can only set it a new value.

And you also need to change the printf to :

printf("%f",guess);

Check this link for more info about the printf formatters:

http://www.cplusplus.com/reference/cstdio/printf/

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