#include
#include
int main()
{
double a,b,c,d,e,f,pi,sum;
a=0;
b=1;
f=0;
sum=0;
while(b<500000)
{
a=2a+1;
b=2b+1;
c=1/a;
d=1/b;
f=c-d;
sum=sum+f;
a++;
b++;
}
pi=4/sum;
printf("pi=%.8f",pi);
return 0;
} 怎么有错误?
#include
int main()
{
double a, pi,sum = 0;
int sign = 1;
int i = 0;
//利用公式 pi = 4 * (1 - 1/3 + 1/5 -......................)求解
while (i < 50000000)
{
a = sign * 1.0 / (2 * i + 1);
sum = sum + a;
sign = -sign;
i++;
}
pi = sum * 4;
printf("pi=%.8f", pi);
getchar();
return 0;
}
这道编程题目很经典,利用了迭代的思想,迭代就是不断用变量的旧值递推新值的过程,分为精确迭代和近似迭代,顺便给你发个链接,挺有意思的,希望对你有所帮助。
http://zuoye.baidu.com/question/e5174e65ddb260d13fc6e00f2e01ecd3.html
http://wenku.baidu.com/link?url=QGVYNOvgtJ6up2fpe5zkioDlulEHla5q6ZPbQ2ykdVhljFaMKFErYF9WSpj4f_BfUTcxVYCjWDzf2wRikWFya-EbzKglq6zEpEtAIausF8W
#include <stdio.h>
int main()
{
double a, b, c, d, e, f, pi, sum;
a = 1;
b = 3;
f = 0;
sum = 0;
while (b < 50000000)/*每次循环做一个1/(2*n-1)-1/(2*n+1),但是公式里的2n-1并不一定表现在程序里的2n-1*/
{
c = 1 / a;
d = 1 / b;
f = c - d;
sum = sum + f;
a += 4;
b += 4;
}
pi = sum * 4;/*你的公式都错了。是pi/4=1-1/3+1/5-1/7...*/
printf("pi=%.8f", pi);
getchar();
return 0;
}