leetcode

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题目描述

Given two numbers represented as strings, return multiplication of the numbers as a string.

Note: The numbers can be arbitrarily large and are non-negative.

class Solution {

public:

string multiply(string num1,string num2)

{

int n=num1.size();

int m=num2.size();

if(n==0||m==0)

return "";

string result="";

long long k=toi(num2);

if(k==1)

return num1;

if(k==0||toi(num1)==0)

return "0";

vector<string> rd;

int kf=0;

for(int i=m-1;i>=0;i--)

{

string s=""+string(kf++,'0');

int s2=0;

int k2=num2[i]-48;

for(int j=n-1;j>=0;j--)

{

int k1=num1[j]-48;

s+=char(((k1*k2)+s2)%10+48);

s2=((k1*k2)+s2)/10;

}

if(s2!=0)

s+=char(s2+48);

reverse(s.begin(),s.end());

rd.push_back(s);

}

for(int i=0;i<rd.size();i++)

{

result=multiply_k(rd[i], result);

}

return result;

}

long long toi(string num2)

{

long long result=0;

int n=num2.size();

int s=1;

result+=num2[n-1]-48;

for(int i=n-2;i>=0;i--)

{

s*=10;

result+=(num2[i]-48)*s;

}

return result;

}

string multiply_k(string num1, string num2)

{

int s=0;

string result="";

int n=num1.size();

int m=num2.size();

if(m==0)

return num1;

if(n==0)

return num2;

int i=n-1,j=m-1;

while(i>=0&&j>=0)

{

vector<int> k;

f(num1[i]-48,num2[j]-48,s,k);

s=k[0];

result+=char(k[1]+48);

i--;

j--;

}

while(i>=0)

{

int kf=num1[i]+s-48;

s=kf/10;

result+=char(kf%10+48);

i--;

}

while(j>=0)

{

int kf=num2[j]+s-48;

s=kf/10;

result+=char(kf%10+48);

j--;

}

if(s!=0)

result+=char(s+48);

reverse(result.begin(),result.end());

return result;

}

void f(int i,int j,int s,vector<int>&fd)

{

int result=i+j+s;

fd.push_back(result/10);

fd.push_back(result%10);

}

};

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