UVa 10106 Product (高精度)
10106 - Product
Time limit: 3.000 seconds
http://uva.onlinejudge.org/index.php?option=com_onlinejudge&Itemid=8&category=97&page=show_problem&problem=1047
The Problem
The problem is to multiply two integers X, Y. (0<=X,Y<10250)
The Input
The input will consist of a set of pairs of lines. Each line in pair contains one multiplyer.
The Output
For each input pair of lines the output line should consist one integer the product.
Sample Input
12 12 2 222222222222222222222222
Sample Output
144 444444444444444444444444
完整代码:
/*0.012s*/
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
const int maxn = 505;
char numstr[maxn];
struct bign
{
int len, s[maxn];
bign()
{
memset(s, 0, sizeof(s));
len = 1;
}
bign(int num)
{
*this = num;
}
bign(const char* num)
{
*this = num;
}
bign operator = (const int num)
{
char s[maxn];
sprintf(s, "%d", num);
*this = s;
return *this;
}
bign operator = (const char* num)
{
len = strlen(num);
for (int i = 0; i < len; i++) s[i] = num[len - i - 1] & 15;
return *this;
}
///输出
const char* str() const
{
if (len)
{
for (int i = 0; i < len; i++)
numstr[i] = '0' + s[len - i - 1];
numstr[len] = '\0';
}
else strcpy(numstr, "0");
return numstr;
}
///去前导零
void clean()
{
while (len > 1 && !s[len - 1]) len--;
}
///加
bign operator + (const bign& b) const
{
bign c;
c.len = 0;
for (int i = 0, g = 0; g || i < max(len, b.len); i++)
{
int x = g;
if (i < len) x += s[i];
if (i < b.len) x += b.s[i];
c.s[c.len++] = x % 10;
g = x / 10;
}
return c;
}
///减
bign operator - (const bign& b) const
{
bign c;
c.len = 0;
for (int i = 0, g = 0; i < len; i++)
{
int x = s[i] - g;
if (i < b.len) x -= b.s[i];
if (x >= 0) g = 0;
else
{
g = 1;
x += 10;
}
c.s[c.len++] = x;
}
c.clean();
return c;
}
///乘
bign operator * (const bign& b) const
{
bign c;
c.len = len + b.len;
for (int i = 0; i < len; i++)
for (int j = 0; j < b.len; j++)
c.s[i + j] += s[i] * b.s[j];
for (int i = 0; i < c.len - 1; i++)
{
c.s[i + 1] += c.s[i] / 10;
c.s[i] %= 10;
}
c.clean();
return c;
}
///除
bign operator / (const bign &b) const
{
bign ret, cur = 0;
ret.len = len;
for (int i = len - 1; i >= 0; i--)
{
cur = cur * 10;
cur.s[0] = s[i];
while (cur >= b)
{
cur -= b;
ret.s[i]++;
}
}
ret.clean();
return ret;
}
///模、余
bign operator % (const bign &b) const
{
bign c = *this / b;
return *this - c * b;
}
bool operator < (const bign& b) const
{
if (len != b.len) return len < b.len;
for (int i = len - 1; i >= 0; i--)
if (s[i] != b.s[i]) return s[i] < b.s[i];
return false;
}
bool operator > (const bign& b) const
{
return b < *this;
}
bool operator <= (const bign& b) const
{
return !(b < *this);
}
bool operator >= (const bign &b) const
{
return !(*this < b);
}
bool operator == (const bign& b) const
{
return !(b < *this) && !(*this < b);
}
bool operator != (const bign &a) const
{
return *this > a || *this < a;
}
bign operator += (const bign &a)
{
*this = *this + a;
return *this;
}
bign operator -= (const bign &a)
{
*this = *this - a;
return *this;
}
bign operator *= (const bign &a)
{
*this = *this * a;
return *this;
}
bign operator /= (const bign &a)
{
*this = *this / a;
return *this;
}
bign operator %= (const bign &a)
{
*this = *this % a;
return *this;
}
} a, b;
int main(void)
{
char ch;
while (~(ch = getchar()))
{
ungetc(ch, stdin);
a = gets(numstr), b = gets(numstr);
puts((a * b).str());
}
return 0;
}