#1135 : Magic Box

#1135 : Magic Box
时间限制:10000ms
单点时限:1000ms
内存限制:256MB
描述

The circus clown Sunny has a magic box. When the circus is performing, Sunny puts some
balls into the box one by one. The balls are in three colors: red(R), yellow(Y) and
blue(B). Let Cr, Cy, Cb denote the numbers of red, yellow, blue balls in the box. 
Whenever the differences among Cr, Cy, Cb happen to be x, y, z, all balls in the box 
vanish. Given x, y, z and the sequence in which Sunny put the balls, you are to find
what is the maximum number of balls in the box ever.


For example, let's assume x=1, y=2, z=3 and the sequence is RRYBRBRYBRY. After Sunny puts 
the first 7 balls, RRYBRBR, into the box, Cr, Cy, Cb are 4, 1, 2 respectively. The 
differences are exactly 1, 2, 3. (|Cr-Cy|=3, |Cy-Cb|=1, |Cb-Cr|=2) Then all the 7 balls 
vanish. Finally there are 4 balls in the box, after Sunny puts the remaining balls. So the 
box contains 7 balls at most, after Sunny puts the first 7 balls and before they vanish.

输入

Line 1: x y z

Line 2: the sequence consisting of only three characters 'R', 'Y' and 'B'.

For 30% data, the length of the sequence is no more than 200.

For 100% data, the length of the sequence is no more than 20,000, 0 <= x, y, z <= 20.

输出

The maximum number of balls in the box ever.

提示

Another Sample

样例输入

1 2 3
RRYBRBRYBRY

样例输出

7

C语言：

//cr，cy，cb三个差值等于x，y，z即可，无需考虑顺序
#include<stdio.h>
#include<stdlib.h>
#include<string.h>
#include<math.h>
int yxh(const void *p1,const void *p2)
{
	return *(int *)p1-*(int *)p2;
}
int main()
{
	int cr,cy,cb,a[3],b[3],i,max;
	char s[20001];
	scanf("%d%d%d",&a[0],&a[1],&a[2]);
	scanf("%s",&s);
	qsort(a,3,sizeof(int),yxh);//快排
	for(i=cr=cy=cb=max=0; s[i]!='\0'; i++)
	{
		if(s[i]=='R')
		{
			cr++;
		}
		else if(s[i]=='Y')
		{
			cy++;
		}
		else if(s[i]=='B')
		{
			cb++;
		}
		b[0]=abs(cr-cy);
		b[1]=abs(cr-cb);
		b[2]=abs(cy-cb);
		qsort(b,3,sizeof(int),yxh);//快排
		if(a[0]==b[0]&&a[1]==b[1]&&a[2]==b[2])
		{
			if(max<cr+cy+cb)
			{
				max=cr+cy+cb;
			}
			cr=cy=cb=0;
		}
	}
	if(max<cr+cy+cb)
	{
		max=cr+cy+cb;
	}
	printf("%d",max);
}