模板只适用于正整数
大整数乘法:
an an-1 ... a1 a0和
bm bm-1 ... b1 b0相乘。
则对应结果的第k位就应该是a[i] * a[j] (i + j = k, 0 <= i,j <= k)
不考虑进位的情况下。
所以最后只要从低位往高位进位就解决了。
除法:模拟除法
加法:对应位相加,进位相加
减法:转换成大数减小数,借位相减
参考至代号4101
代码: #include <iostream> #include <fstream> #include <string> #include <cstring> #include <cstdio> #include <cstdlib> #include <algorithm> #include <climits> using namespace std; class bign { private: static const int maxn = 5000; int op[maxn]; int len;//数长 void clean() { while (len > 0 && !op[len])//去除前导0 len--; len++; } void sum(bign &a, const bign &b)//大数减小数,结果在a中 { for (int i = 0; i < a.len; i++) { a.op[i] -= b.op[i]; if (a.op[i] < 0) { a.op[i] += 10; a.op[i + 1]--; } } a.clean(); } public: bign(const string &s) { *this = s; } bign() { memset(op, 0, sizeof(op)); len = 1;//默认为0 } bign(int num) { *this = num; } bign operator = (int num) { char s[20]; sprintf(s, "%d", num); *this = s; return *this; } bign operator = (const string &s) { memset(op, 0, sizeof(op)); len = s.length(); for (int i = 0, j = len - 1; j >= 0; j--, i++) op[i] = s[j] - '0'; clean(); return *this; } bign operator + (const bign &b) { bign c = *this; int i; c.len = max(c.len, b.len);//取长度高的 for (i = 0; i < c.len; i++)//对应位相加 { c.op[i] += b.op[i]; if (c.op[i] > 9)//处理进位 { c.op[i + 1]++; c.op[i] -= 10; } } c.clean(); return c; } bign operator - (const bign &b) { if (*this < b) { bign c = b; sum(c, *this); return -c; } bign c = *this; sum(c, b); c.clean(); return c; } bign operator * (const bign &b)const { int i, j; bign c; for (i = 0; i < this->len; i++) for (j = 0; j < b.len; j++) { c.op[i + j] += this->op[i] * b.op[j]; } c.len = this->len + b.len;//长度最多为两数长度之和 for (i = 0; i < c.len; i++) { c.op[i + 1] += (c.op[i] / 10); c.op[i] %= 10; } c.clean(); return c; } bign operator / (const bign &b)//模拟除法 { int i, j; bign c = *this, a; for (i = c.len - 1; i >= 0; i--) { a = a * 10 + c.op[i]; for (j = 1; j < 10; j++)//a是b的多少倍 if (a < b * j) break; j--; a = a - b * j;//余数 c.op[i] = j;//对应位的倍数 } c.clean(); return c; } bign operator % (const bign &b) { int i, j; bign c = *this, a; for (i = c.len - 1; i >= 0; i--) { a = a * 10 + c.op[i]; for (j = 1; j < 10; j++)//a是b的多少倍 if (a < b * j) break; j--; a = a - b * j;//余数 } return a; } bign operator ^ (int n) { bign c = 1; bign d = *this; while (n) { if (n & 1) c = c * d; d = d * d; n >>= 1; } return c; } bign operator - ()//取反 { bign c = *this; c.op[len - 1] = -c.op[len - 1];//高位取反 return c; } bool operator < (const bign &b) { if (len == b.len) { for (int i = len - 1; i >= 0; i--) { if (op[i] != b.op[i]) return op[i] < b.op[i]; } } return len < b.len; } friend ostream &operator << (ostream &out, const bign &res) { for (int i = res.len - 1; i >= 0; i--) out<<res.op[i]; //out<<endl; return out; } friend istream &operator >> (istream &in, bign &res) { string s; in>>s; res = s; return in; } string to_str() { string s; for (int i = 0; i < len; i++) s += (op[i] + '0'); return s; } int length() { return len; } }; int main() { bign a(9998); bign b(11); bign c = a % b; cout<<c<<endl; return 0; }