hdoj--5625--Clarke and chemistry(枚举)
Clarke and chemistry
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)
Total Submission(s): 173 Accepted Submission(s): 95
Problem Description
Clarke is a patient with multiple personality disorder. One day, Clarke turned into a junior student and took a chemistry exam.
But he did not get full score in this exam. He checked his test paper and found a naive mistake, he was wrong with a simple chemical equation balancer.
He was unhappy and wanted to make a program to solve problems like this.
This chemical equation balancer follow the rules:
Two valences A![]()
combined by
|A|![]()
elements and
B![]()
combined by
|B|![]()
elements.
We get a new valence C![]()
by a combination reaction and the stoichiometric coefficient of
C![]()
is
1![]()
. Please calculate the stoichiometric coefficient
a![]()
of
A![]()
and
b![]()
of
B![]()
that
aA+bB=C, a,b∈N![]()
∗![]()
![]()
.
But he did not get full score in this exam. He checked his test paper and found a naive mistake, he was wrong with a simple chemical equation balancer.
He was unhappy and wanted to make a program to solve problems like this.
This chemical equation balancer follow the rules:
Two valences A
We get a new valence C
Input
The first line contains an integer
T(1≤T≤10)![]()
, the number of test cases.
For each test case, the first line contains three integers A,B,C(1≤A,B,C≤26)![]()
, denotes
|A|,|B|,|C|![]()
respectively.
Then A+B+C![]()
lines follow, each line looks like
X c![]()
, denotes the number of element
X![]()
of
A,B,C![]()
respectively is
c![]()
. (
X![]()
is one of
26![]()
capital letters, guarantee
X![]()
of one valence only appear one time,
1≤c≤100![]()
)
For each test case, the first line contains three integers A,B,C(1≤A,B,C≤26)
Then A+B+C
Output
For each test case, if we can balance the equation, print
a![]()
and
b![]()
. If there are multiple answers, print the smallest one,
a![]()
is smallest then
b![]()
is smallest. Otherwise print NO.
Sample Input
2 2 3 5 A 2 B 2 C 3 D 3 E 3 A 4 B 4 C 9 D 9 E 9 2 2 2 A 4 B 4 A 3 B 3 A 9 B 9
Sample Output
2 3 NO Hint: The first test case, $a=2, b=3$ can make equation right. The second test case, no any answer.
Source
BestCoder Round #72 (div.2)
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
int A[27],B[27],C[27];
int main()
{
int t;
scanf("%d",&t);
while(t--)
{
int a,b,c;
scanf("%d%d%d",&a,&b,&c);
char op[2];
bool flag=true;
int d,maxx=0;
memset(B,0,sizeof(B));
memset(C,0,sizeof(C));
memset(A,0,sizeof(A));
for(int i=0;i<a;i++)
{
scanf("%s%d",op,&d);
A[op[0]-'A']=d;
}
for(int i=0;i<b;i++)
{
scanf("%s%d",op,&d);
B[op[0]-'A']=d;
}
for(int i=0;i<c;i++)
{
scanf("%s%d",op,&d);
C[op[0]-'A']=d;
// maxx=max(maxx,d/A[op[0]-'A']);
// maxx=max(maxx,d/B[op[0]-'A']);
}
int i,j,k;
int min,x,y;
for(i=1;i<=1000&&flag;i++)
for(j=1;j<=1000;j++)
{
int s;
for(s=0;s<26;s++)
{
x=i*A[s]+j*B[s];
y=C[s];
if(x==y)
continue;
else break;
}
if(s==26) flag=false;
if(!flag) break;
}
if(!flag) printf("%d %d\n",i-1,j);
else printf("NO\n");
}
return 0;
}