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I'm working on implementing this algorithm:

The Algorithm

Which should return Pi. (3.14159265358997...)

However, it is returning: 3465.083806164093990270538663167216844483674020103009669083093329738829995996594112113602427583738613083176438797806351846300982902722428833574050222861187694471396267405291545817609533108750954365354212195605941387622559085119176400306480675261092997442439408294603789105964390454395204651576460276909255907631487405486520824235883248771043874827661539987701699416841018021446826499678827570121235368306872576254306598229009326889717753996718734392718618075165049466487288359942244801903168934714614170309678757603506011866944372461588147498677098427847851318712433009748103294948229140898154267231085846307054977253156699130772999134183988575084372414985869913173854223041950981761979896495643515026760478550671129162390748164871541140497789062760779768626522387243316931878193393452785548737047784121894435472579674449705114248061506094340065691136629320777648629750105245428304278166365832749864653836658443868224823787898586712833767298344565051523963802742101107695594850821360398938016854610915

Here is my code:

package picalculator;

import java.math.BigDecimal;
import java.math.BigInteger;
import java.math.MathContext;
import java.text.DateFormat;
import java.text.SimpleDateFormat;
import java.util.Date;


/**
 *
 * @author ThomasSatterthwaite
 */

public class PiCalculator {

static int odd=1;

public static void main(String[] args) {
    System.out.println("Please wait while I calculate pi...");
    calculatePi();
    System.out.println("I have successfully calculated pi.");
}
public static void calculatePi() {
    BigInteger firstFactorial;
    BigInteger secondFactorial;
    BigInteger firstMultiplication;
    BigInteger firstExponent;
    BigInteger secondExponent;
    int firstNumber = 1103;
    BigInteger firstAddition;
    BigDecimal currentPi = BigDecimal.ONE;
    BigDecimal pi = BigDecimal.ONE;
    BigDecimal one = BigDecimal.ONE;
    int secondNumber = 2;
    double thirdNumber = Math.sqrt(2.0);
    int fourthNumber = 9801;
    BigDecimal prefix = BigDecimal.ONE;
    DateFormat dateFormat = new SimpleDateFormat("MM/dd/yyyy HH:mm:ss");

    for(int i=1;i<1000;i++){
        firstFactorial = factorial(4*i);
        secondFactorial = factorial(i);
        firstMultiplication = BigInteger.valueOf(26390*i);
        firstExponent = exponent(secondFactorial, 4);
        secondExponent = exponent(BigInteger.valueOf(396),4*i);
        firstAddition = BigInteger.valueOf(firstNumber).add(firstMultiplication);
        currentPi = currentPi.add(new BigDecimal(firstFactorial.multiply(firstAddition)).divide(new BigDecimal(firstExponent.multiply(secondExponent)), new MathContext(10000)));
        Date date=new Date();
        System.out.println("Interation: " + i + " at " + dateFormat.format(date));
    }

    prefix =new BigDecimal(secondNumber*thirdNumber);
    prefix = prefix.divide(new BigDecimal(fourthNumber), new MathContext(1000));

    currentPi = currentPi.multiply(prefix, new MathContext(1000));

    pi = one.divide(currentPi, new MathContext(1000));

    System.out.println("Pi is: " + pi);

    return;
}
public static BigInteger factorial(int a) {

    BigInteger result=new BigInteger("1");
    BigInteger smallResult = new BigInteger("1");
    long x=a;
    if (x==1) return smallResult;
    while(x>1)
    {
        result= result.multiply(BigInteger.valueOf(x));

       x--;
    }
    return result;
}
public static BigInteger exponent(BigInteger a, int b) {
    BigInteger answer=new BigInteger("1");

    for(int i=0;i<b;i++) {
        answer = answer.multiply(a);
    }

    return answer;
}

}

Is anyone able to spot a problem with what I am doing? Thanks so much in advance!

share|improve this question
    
You're gonna need to do better than Math.sqrt(2.0);... – Mysticial Mar 20 '12 at 18:59
2  
@Ramhound I suppose the OP wants more than just double precision. – Mysticial Mar 20 '12 at 19:05
1  
@Ramhound This series converges extremely quickly. So 1000 terms is more than enough for 1000 digits. – Mysticial Mar 20 '12 at 19:13
2  
@Ramhound Most homework involves doing things that have already been done, unless you are a phD candidate. – rob Mar 20 '12 at 19:26
1  
Then as @Mysticial said, you need to get the value of sqrt(2) with more precision. Try computing it your self for more fun :) – sch Mar 21 '12 at 0:00
up vote 2 down vote accepted

You should start your loop with i = 0. and with currentPi = 0.

// ...
BigDecimal currentPi = BigDecimal.ZERO;
// ...
for(int i = 0; i < 1000; i++) {
    // ...
}
// ...

This gives:

3.1415926535897930237...

share|improve this answer
    
It works very well, thank you so much!!!!! – Toby Mar 20 '12 at 23:52
    
While it is marginally accurate, no matter what number I put in for the iterations I get the same result, I've tried 1, 10, 100, 1000 and 2000 but they all give the identical result. Is this to be expected, or have I messed up a portion of the code? – Toby Mar 21 '12 at 1:37
    
No, they don't give don't give the same result, so check again. But, this series converges quickly, so you already get more than 50 correct decimals for just 10 iterations. For 1 iteration, you have about 7 correct decimals. – sch Mar 21 '12 at 11:24
    
No matter what I put in for the amount of iterations, I get 15 correct decimal places of pi. Could this be a problem with my IDE (Netbeans)? – Toby Mar 21 '12 at 22:04

You aren't handling the first partial sum correctly. You start your loop with i=1 with the initial partial sum currentPi=1, when you should start with i=0 and currentPi=0.

(This would have worked if the first partial sum (when k=0) is equal to 1, but it's in fact equal to 1103.)

share|improve this answer
    
It works now, thank you very, very much! – Toby Mar 20 '12 at 22:42
    
@Toby You should also pay attention to how many of the digits are actually correct. Since you using Math.sqrt(2.0);, I bet that only the first 16 digits or so are correct. Also, if this answer solves your problem, you should accept it by clicking on the green checkmark. Same applies with your previous questions. – Mysticial Mar 20 '12 at 23:06
    
Oh, I didn't realize that you could do that, thank you! – Toby Mar 21 '12 at 2:37

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