//keep it simple and stupid
#include<stdio.h>
int main(){int n=25;printf("%03d\n",n);printf("%.3f\n",n);return 0
}
025
25.000
请按任意键继续. . .
int x_2(int t) {return t*t;
}
int main() {printf("%d\n", 0x80000000);printf("%d\n", 0x7fffffff);printf("%d\n", x_2(11111));printf("%d\n", x_2(111111));printf("%d\n", x_2(1111111));printf("%d\n", x_2(11111111));/*-21474836482147483647123454321-5392475671912040369-2047269199*/system("pause");return 0;
}
int中最大 0x7fffffff 最小0x80000000(正负20亿)
考虑浮点误差。int m=floor(sqrt(n)+0.5);
%lld ->long long(linux 中)
%I64d ->long long (windows)
const int MAX = 1e9;
const long long Big = 1e18;
int main() {printf("%I32d\n", MAX);// 1000000000printf("%I64d\n", Big);//1000000000000000000system("pause");return 0;
}
1e9是浮点数,所以当有printf("%I32d\n", 1e3);//输出 0
64位大概就是18位十进制数(有符号的)。
1e-3 ->0.001
要计算只含有 加减乘 式子对数字N的模,可以在每一次结果后面取模,和最后一次计算结果一样
scanf_s返回成功读入的个数