Temperature
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 650 Accepted Submission(s): 208
Problem Description
Many people like summer as summer has a lot of advantages, but on the other hand, sometimes summer is also boring. As a student, Tom has complained with summer for many days. Because when having lunch, Tom has a habit of drinking soup. But the temperature of the soup is too high, so Tom need wait for a long time to drink. One day, Tom bought a bowl of soup again, he measured the temperature of the environment is ua and the temperature of the soup is u0, after t1 minutes, he measured the soup again and the temperature is u1, but he did not want to measure the temperature all the time until he could drink it. Now Tom asks you for help. Could you help Tom calculate what the temperature of the soup is after t2 minutes and how long he need to wait for until the temperature of the soup becomes u2 according to the data which he had measured? You could assume that the temperature of the environment is invariable.
Input
The first line of the input contains a single integer T (1 <= T <= 10), the number of test cases. Then T cases follow.
The first line of each case contains 5 integers, ua(0<ua<100), u0(ua<=u0<=100), u1(ua<=u1<=u0), t1(t1>0), n(1<=n<=10), indicating the temperature of the environment ua, the original temperature of the soup u0 and the later temperature of the soup u1 after t1 minutes, n indicates that there are n options in the following. Each line of the n lines contains two integers, p and s, p is the kind of the option and can only be 0 or 1. If p is 0, you should calculate the time Tom need to wait for until the temperature of the soup becomes s(ua<=s<=u0)(it is guaranteed that temperature s is reachable), or you should calculate the temperature of the soup after s(0<s<=100) minutes from original time t=0.
The first line of each case contains 5 integers, ua(0<ua<100), u0(ua<=u0<=100), u1(ua<=u1<=u0), t1(t1>0), n(1<=n<=10), indicating the temperature of the environment ua, the original temperature of the soup u0 and the later temperature of the soup u1 after t1 minutes, n indicates that there are n options in the following. Each line of the n lines contains two integers, p and s, p is the kind of the option and can only be 0 or 1. If p is 0, you should calculate the time Tom need to wait for until the temperature of the soup becomes s(ua<=s<=u0)(it is guaranteed that temperature s is reachable), or you should calculate the temperature of the soup after s(0<s<=100) minutes from original time t=0.
Output
For the x-th test case, first print “Case x:” on a single line.
Then for each option, print a line containing the answer round to two decimal numbers. Print a blank line after each test case.
Then for each option, print a line containing the answer round to two decimal numbers. Print a blank line after each test case.
Sample Input
1
24 100 90 10 2
0 80
1 20
Sample Output
Case 1:
21.65
81.32
View Code
Hint
According to Newton’s law of cooling, in a certain temperature range, the rate of change of an object’s
temperature is proportional to the temperature difference of the object’s temperature and the environment temperature.这么水的积分,竟然不会做,唉。。。。。。。。。
1 #include <iostream> 2 #include <stdio.h> 3 #include <string.h> 4 #include <math.h> 5 #include <algorithm> 6 #define eps1 0.000000001 7 using namespace std; 8 int main() 9 { 10 double ua,u0,u1,t1,c,k,y; 11 int n,i,t,x,cas=1; 12 scanf("%d",&t); 13 while(t--) 14 { 15 printf("Case %d:\n",cas++); 16 cin>>ua>>u0>>u1>>t1>>n; 17 c=log(u0-ua); 18 k=(log(u1-ua)-c)/t1; 19 for(i=0;i<n;i++) 20 { 21 cin>>x>>y; 22 if(x) 23 { 24 if(ua==u0) 25 printf("%.2lf\n",ua); 26 else 27 printf("%.2lf\n",ua+exp(k*y+c)); 28 } 29 else 30 { 31 if(ua==u0) 32 printf("%.2lf\n",0.0); 33 else 34 printf("%.2lf\n",(log(y-ua)-c)/k); 35 } 36 } 37 cout<<endl; 38 } 39 }
