POJ2142:The Balance (歐幾裏得+不等式)
阿新 • • 發佈:2018-02-27
res rac condition Go sin tdi other indicate using Ms. Iyo Kiffa-Australis has a balance and only two kinds of weights to measure a dose of medicine. For example, to measure 200mg of aspirin using 300mg weights and 700mg weights, she can put one 700mg weight on the side of the medicine and three 300mg weights on the opposite side (Figure 1). Although she could put four 300mg weights on the medicine side and two 700mg weights on the other (Figure 2), she would not choose this solution because it is less convenient to use more weights.
You are asked to help her by calculating how many weights are required.
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The end of the input is indicated by a line containing three zeros separated by a space. It is not a dataset.
No extra characters (e.g. extra spaces) should appear in the output.
Input
The input is a sequence of datasets. A dataset is a line containing three positive integers a, b, and d separated by a space. The following relations hold: a != b, a <= 10000, b <= 10000, and d <= 50000. You may assume that it is possible to measure d mg using a combination of a mg and b mg weights. In other words, you need not consider "no solution" cases.Output
The output should be composed of lines, each corresponding to an input dataset (a, b, d). An output line should contain two nonnegative integers x and y separated by a space. They should satisfy the following three conditions.- You can measure dmg using x many amg weights and y many bmg weights.
- The total number of weights (x + y) is the smallest among those pairs of nonnegative integers satisfying the previous condition.
- The total mass of weights (ax + by) is the smallest among those pairs of nonnegative integers satisfying the previous two conditions.
No extra characters (e.g. extra spaces) should appear in the output.
Sample Input
700 300 200 500 200 300 500 200 500 275 110 330 275 110 385 648 375 4002 3 1 10000 0 0 0
Sample Output
1 3 1 1 1 0 0 3 1 1 49 74 3333 1
題意:已知兩種砝碼重a和b,現在要稱量質量為c,求用最少的砝碼或者最輕的砝碼稱出來,輸出a和b的數量X和Y。
思路:|X|+|Y|=|X0+t*b/gcd|+|Y0-t*a/gcd|,在|X|取最小或者|Y|取最小時滿足題意。
#include<cmath> #include<cstring> #include<cstdio> #include<cstdlib> #include<iostream> #include<algorithm> using namespace std; void ex_gcd(int a,int b,int &d,int &x,int &y) { if(b==0){x=1; y=0; d=a; return ;} ex_gcd(b,a%b,d,y,x); y-=a/b*x; } int main() { int a,b,c,x,y,gcd; while(~scanf("%d%d%d",&a,&b,&c)){ if(a==0&&b==0&&c==0) return 0; ex_gcd(a,b,gcd,x,y); if(c%gcd!=0) printf("no solution\n"); else{ int x1=((c/gcd*x)%(b/gcd)+(b/gcd))%(b/gcd); int y1=(c-a*x1)/b; int y2=((c/gcd*y)%(a/gcd)+(a/gcd))%(a/gcd); int x2=(c-b*y2)/a; x1=abs(x1); y1=abs(y1); x2=abs(x2); y2=abs(y2); if(x1+y1<x2+y2||x1*a+y1*b<x2*a+y2*b) printf("%d %d\n",x1,y1); else printf("%d %d\n",x2,y2); } } return 0; }
POJ2142:The Balance (歐幾裏得+不等式)