AcWing 793. 高精度乘法
题目描述
给定两个非负整数(不含前导 00) A 和 B,请你计算 A×B 的值。
输入格式
共两行,第一行包含整数 A,第二行包含整数 B。
输出格式
共一行,包含 A×B 的值。
数据范围
1≤A 的长度≤100000,
0≤B≤100000
输入样例:
2
3
输出样例:
6
思路
将 B 看成一个整体再相乘,不要一位一位的乘!注意结果的前导 0!
C++
#include <iostream>
#include <string>using namespace std;void reverse(string &s) {size_t n = s.length();for (int i = 0; i < n / 2; ++i) {swap(s[i], s[n - i - 1]);}
}string mul(string &a, int b) {reverse(a);int carry = 0;string result;for (size_t i = 0; i < a.size() || carry; ++i) {if (i < a.size()) carry += (a[i] - '0') * b;result.push_back(carry % 10 + '0');carry /= 10;}reverse(result);if (result[0] == '0') return "0";return result;
}int main() {string a;int b;cin >> a >> b;cout << mul(a, b);return 0;
}
#include <iostream>
#include <vector>using namespace std;vector<int> mul(vector<int> &A, int b)
{vector<int> C;int t = 0;for (int i = 0; i < A.size() || t; i ++ ){if (i < A.size()) t += A[i] * b;C.push_back(t % 10);t /= 10;}while (C.size() > 1 && C.back() == 0) C.pop_back();return C;
}int main()
{string a;int b;cin >> a >> b;vector<int> A;for (int i = a.size() - 1; i >= 0; i -- ) A.push_back(a[i] - '0');auto C = mul(A, b);for (int i = C.size() - 1; i >= 0; i -- ) printf("%d", C[i]);return 0;
}
Go
package mainimport ("fmt""strings"
)func reverse(s string) string {r := []rune(s)l := len(r)for i := 0; i < l/2; i++ {r[i], r[l-i-1] = r[l-i-1], r[i]}return string(r)
}func mul(a string, b int) string {a = reverse(a)carry := 0var result strings.Builderfor i := 0; i < len(a) || carry > 0; i++ {if i < len(a) {carry += int(a[i]-'0') * b}result.WriteByte(uint8(carry%10) + '0')carry /= 10}resStr := reverse(result.String())if resStr[0] == '0' {return "0"}return resStr
}func main() {var a stringvar b intfmt.Scanln(&a)fmt.Scanln(&b)fmt.Println(mul(a, b))
}
模板
// C = A * b, A >= 0, b >= 0
vector<int> mul(vector<int> &A, int b)
{vector<int> C;int t = 0;for (int i = 0; i < A.size() || t; i ++ ){if (i < A.size()) t += A[i] * b;C.push_back(t % 10);t /= 10;}while (C.size() > 1 && C.back() == 0) C.pop_back();return C;
}
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