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I am currently writing a program that estimates Pi values using three different formulas pictured here: http://i.imgur.com/LkSdzXm.png .

This is my program so far:

#include<iostream>
#include<cmath>
#include<iomanip>
using namespace std;
int main()
{
  double leibniz = 0.0; // pi value calculated from Leibniz
  double counter = 0.0; // starting value
  double eulerall = 0.0; // pi value calculated from Euler (all integers)
  double eulerodd = 0.0; // value calculated from Euler (odds)

  int terms;
  bool negatives = false;

  cin >> terms;
  cout << fixed << setprecision(12); // set digits after decimal to 12                   \

  while(terms > counter){
    leibniz = 4*(pow(-1, counter)) / (2*counter+1) + leibniz;
    counter++;
    eulerall = sqrt(6/pow(counter+1,2)) + eulerall;
    counter++;
    eulerodd = (sqrt(32)*pow(-1, counter)) / (2*counter + 1) + eulerodd;
    counter++;

    cout << terms << " " << leibniz << " " << eulerall << " " << eulerodd <<endl;
  }

  if (terms < 0){
    if(!negatives)
    negatives=true;
    cout << "There were " << negatives << " negative values read" << endl;
  }
  return 0;
}

The sample input file that I am using is: 1 6 -5 100 -1000000 0

And the sample output for this input file is:

1 4.000000000000 2.449489742783 3.174802103936
6 2.976046176046 2.991376494748 3.141291949057
100 3.131592903559 3.132076531809 3.141592586052

When I run my program all I get as an output is:

1 4.000000000000 1.224744871392 1.131370849898.

So as you can see my first problem is that the second and third of my equations are wrong and I can't figure out why. My second problem is that the program only reads the first input value and stops there. I was hoping you guys could help me figure this out. Help is greatly appreciated.

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4 Answers 4

You have three problems:

First, you do not implement the Euler formulae correctly.

π2/6 = 1/12 + 1/22 + 1/32 + ...

eulerall = sqrt(6/pow(counter+1,2)) + eulerall;

The square root of the sum is not the sum of the square roots.

π3/32 = 1/13 + 1/33 + 1/53 + ...

eulerodd = (sqrt(32)*pow(-1, counter)) / (2*counter + 1) + eulerodd;

This is just... wrong.

Second, you increment counter three times in the loop, instead of once:

while(terms > counter){
...
counter++;
...
counter++;
...
counter++;
...
}

Third, and most fundamental, you didn't follow the basic rule of software development: start small and simple, add complexity as little at a time, test at every step, and never add to code that doesn't work.

share|improve this answer
    
Hello, Beta. Sorry for the late reply, I've been in a few lectures. I took out the extra counter++ and fixed the euler all equation. The third one is still giving me problems, but I should be able to figure it out. However, I have a problem in the way that my program accepts the inputs. It will only take the first value in the file and stop there. Also instead of outputting the estimation for PI for the given term only, it will list all estimations from 1 to the given term. For example, if the term was 6, it will list all estimations from 1-6, but I just want the estimation for 6. –  user3409117 Mar 25 at 19:02
    
# TERMS LEIBINZ EULER-ALL EULER-ODD 6 4.000000000000 2.449489742783 1.000000000000 # TERMS LEIBINZ EULER-ALL EULER-ODD 6 2.666666666667 2.738612787526 1.000000000000 # TERMS LEIBINZ EULER-ALL EULER-ODD 6 3.466666666667 2.857738033247 1.000000000000 # TERMS LEIBINZ EULER-ALL EULER-ODD 6 2.895238095238 2.922612986125 1.000000000000 –  user3409117 Mar 25 at 19:05
    
# TERMS LEIBINZ EULER-ALL EULER-ODD 6 3.339682539683 2.963387701039 1.000000000000 # TERMS LEIBINZ EULER-ALL EULER-ODD 6 2.976046176046 2.991376494748 1.000000000000 Here's an example of what I was talking about. Sorry for all the questions, but I've been stuck on this for awhile. –  user3409117 Mar 25 at 19:05
    
@user3409117: Put the output command after the loop, not in it, and it will give you what you want. As for file I/O, I can't diagnose the problem without seeing the code, but if you do a Google search for "C++ file input" you'll see plenty of examples. –  Beta Mar 25 at 20:10

my first problem is that the second and third of my equations are wrong and I can't figure out why

Use counter++ just once. Apart from this Leibniz looks fine. Eulerall is not correct, you should sum all factors and then do sqrt and multiplication at the end:

eulerall = 1/pow(counter+1,2) + eulerall;
// do sqrt and multiplication at the end to get Pi

The similar thing with eulerodd: you should sum all factors and then do sqrt and multiplication at the end.

My second problem is that the program only reads the first input value and stops there.

In fact this is your first problem. This is because you are incrementing counter multiple times:

while(terms > counter){
leibniz = 4*(pow(-1, counter)) / (2*counter+1) + leibniz;
counter++;  // <<  increment
^^^^^^^^^^
eulerall = sqrt(6/pow(counter+1,2)) + eulerall;
counter++;  // <<  increment
^^^^^^^^^^
eulerodd = (sqrt(32)*pow(-1, counter)) / (2*counter + 1) + eulerodd;
counter++;  // <<  increment
^^^^^^^^^^
cout << terms << " " << leibniz << " " << eulerall << " " << eulerodd <<endl;
}

You should increment counter just once.

share|improve this answer

You're using the same counter and incrementing it after each calculation. So each technique is only accounting for every third term. You should increment counter only once, at the end of the loop.

Also note that it is generally bad form to use a floating-point value as a loop counter. It only takes on integer values in your program, so you can just make it an int. Nothing else needs to change; the math will run the same because the int will promote to a double when you combine the two in math operations.

share|improve this answer
    #include<iostream>
#include<conio.h>
#include<cmath>
using namespace std;
char* main()
{
    while(1)
    {
        int Precision;
        float answer = 0;
        cout<<"Enter your desired precision to find pi number : ";
        cin>>Precision;
        for(int i = 1;i <= Precision;++i)
        {
            int sign = (pow((-1),static_cast<float>(i + 1)));
            answer += sign * 4 * ( 1 / float( 2 * i - 1));
        }
            cout<<"Your answer is equal to : "<<answer<<endl;
        _getch();
        _flushall();
        system("cls");
    }
    return "That is f...";
}
share|improve this answer
    
Explain you code, please. –  Narkha Mar 25 at 15:49
    
this code first your desired precision then calculate the pi number. here precision means that how many times we do sum the numbers to find the pi number. –  Media Depp Apr 19 at 8:34

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