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I'm currently writing a program to calculate arctangent using a Taylor Series sum. The centre part of the code is the following:

for(int i=0;i<n;i++)
{
    firstval=sum; //sum=0
    sum=sum+sumterm(x,i);   //calculate the sum
    if(fabs(sum-firstval)<delta) //delta=10e-6
    {
        s=i;
    }
    else s=0;
}

How I think this code is working: 'sum' is initialised to 0, meaning that 'firstval' is as well. The program then calculates the Taylor series value for a particular value of i, and adds it on to the sum. Then, as 'sum' and 'firstval' are different, the magnitude of their difference can be calculated - as the loop proceeds, firstval is the previous value of the sum, and then in the loop, sum becomes its next term. Then when the difference between them is sufficiently small, and the condition is matched, the value of i for which that has happened is saved to an integer s, which is otherwise 0.

However, the program currently only produces 0, or says that the sum has only converged at n-1. I've spent quite a while playing around with different configurations of the code and can't work out why it's doing what it is. I'm still a newbie to this programming thing, so any help is welcome. Sorry if this post is unclear, I know that I haven't included the rest of the program, but I've had a quite long and tiring day. Thanks :)

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Note that 10e-6 is 1.0E-5. You might want to use break; after setting s = i; so you don't go round the loop again. As it is, you get to i == n-1, and the delta is small enough that you set s = i; again and that's why you see what you see. –  Jonathan Leffler Feb 8 at 22:41
    
You presumably want to end the loop if your if condition is true, so you should put a break after the s=i. –  ooga Feb 8 at 22:41
    
This now works, thank you! –  user2591837 Feb 8 at 23:09

1 Answer 1

You may want to use a while loop instead. The condition to exit the while loop could be:

while (fabs(sum-firstval)>delta)

Otherwise, other suggestions (using a break after variable s has been assigned value of i) work too.

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