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I would like to simplify the square root of an integer algebraically, not compute it numerically, i.e. √800 should be 20√2 , not 28.2842712474619.

I cannot find any way to solve this through programming :(

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11  
Can you write down the steps a human takes? That's the first task. –  GManNickG May 8 '12 at 5:08
1  
Do you mean some Symbol system(module)? please take a look at code.google.com/p/sympy –  wuliang May 8 '12 at 5:13
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2 Answers

up vote 28 down vote accepted

Factorize the number under the root, pick out the factors that come out in pairs and leave the rest under the root.

√800 = √(2 x 2 x 2 x 2 x 5 x 2 x 5) = √(22 x 22 x 52 x 2) = (2 x 2 x 5)√2 = 20√2.

And for completeness, here some simple code:

outside_root = 1
inside_root = 800
d = 2
while (d * d <= inside_root):
  if (inside_root % (d * d) == 0): # inside_root evenly divisible by d * d
    inside_root = inside_root / (d * d)
    outside_root = outside_root * d
  else:
    d = d + 1

when the algorithm terminates, outside_root and inside_root contain the answer.

Here the run with 800:

 inside   outside   d
    800         1   2 # values at beginning of 'while (...)'
    200         2   2
     50         4   2
     50         4   3
     50         4   4
     50         4   5
      2        20   5 # d*d > 2 so algorithm terminates
     ==        ==

The answer 20√2 is here on the last row.

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cool :) a +1 for your code –  Sourav May 8 '12 at 5:51
1  
@Sourav: Just +1? Why not a green ✓? –  Johnsyweb May 8 '12 at 6:59
1  
+1 for amazingly simple code! –  Matthieu M. May 8 '12 at 10:01
    
@Johnsyweb I think if I select this as answer no one will show interest to solve this in other ways, so just waiting :) –  Sourav May 8 '12 at 12:05
1  
@Sourav If you don't know if it works correctly or not, run lots of tests on it. I don't want to review it in case it's a homework assignment. –  Antti Huima May 8 '12 at 12:23
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#include<stdio.h>
#include<conio.h>
int main()
{
int i,n,n2,last,final;
last=0,final=1;
printf("Enter number to calculate root: ");
scanf("%d",&n);
n2=n;

for(i=2;i<=n;i++)
{
if(n%i==0)
{
 if(last==i)
  {
   final=final*last;
   last=0;
  }
  else
   last=i;
n=n/i;
i--;
}
}
n=n2/(final*final);
printf("\nRoot: (%d)^2 * %d",final,n);
getch();
return 0;
}
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