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I tried to do this:

(n-input number 1<=n<=100, firstly x=0.1)

enter image description here

I have to print a table with a count of summations and X-es I tried to solve that with recursion, but it's takes very long time:(

I only want to know the algorithm.

My attempt:

#include <iostream>

using namespace std;

int main()
{
  int N;

  cin >> N;

  double x = 0.1, mx2 = -x*x*2;
  int i;
  double part = 1, sum = 1;

  for (i = 2; i < N; i+=2) {
    part *= mx2/((i-1)*i);
    sum += part;
    cout<<"sum= "<<sum<<endl;
  }

  return 0;
}

Is that right?

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@BartKiers:OK, I added it.. –  Lu Vue Nov 18 '11 at 7:01

1 Answer 1

up vote 2 down vote accepted

For calculating x^2n note that in previous step you have x^2(n-1) so just required to multiply it with x^2.

Also for calculating (2n)!, in previous step you had (2(n-1))! so just need to multiply it by (2n-1)*2n.

In fact just one extra variable helps you, which holds the value of x^2n / (2n)! in each step, to just multiply it to appropriated value in next step.

Edit: Your current code problem is in this line:

cout<<"sum= "<<sum<<endl;

cause cout is very time consuming job, and in each iteration of for loop you want do it. Instead of that, if is required to have such a cout, create char stream and insert the value of your sum into this, and at last just with one cout show all results.

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