本文探讨如何通过简化算法解决高中物理问题,并介绍一种计算机程序实现方式,以解决功率、电压和电流类型的问题,同时涉及输入解析和输出格式化。
| Artificial Intelligence? |
Physics teachers in high school often think that problems given as text are more demanding than pure computations. After all, the pupils have to read and understand the problem first!
So they don't state a problem like ``U=10V, I=5A, P=?" but rather like ``You have an electrical circuit that contains a battery with a voltage of U=10V and a light-bulb. There's an electrical current of I=5A through the bulb. Which power is generated in the bulb?".
However, half of the pupils just don't pay attention to the text anyway. They just extract from the text what is given: U=10V, I=5A. Then they think: ``Which formulae do I know? Ah yes, P=U*I. Therefore P=10V*5A=500W. Finished."
OK, this doesn't always work, so these pupils are usually not the top scorers in physics tests. But at least this simple algorithm is usually good enough to pass the class. (Sad but true.)
Today we will check if a computer can pass a high school physics test. We will concentrate on the P-U-I type problems first. That means, problems in which two of power, voltage and current are given and the third is wanted.
Your job is to write a program that reads such a text problem and solves it according to the simple algorithm given above.
Input
The first line of the input file will contain the number of test cases.
Each test case will consist of one line containing exactly two data fields and some additional arbitrary words. A data field will be of the formI=xA, U=xV or P=xW, where x is a real number.
Directly before the unit (A, V or W) one of the prefixes m (milli), k (kilo) and M (Mega) may also occur. To summarize it: Data fields adhere to the following grammar:
DataField ::= Concept '=' RealNumber [Prefix] Unit Concept ::= 'P' | 'U' | 'I' Prefix ::= 'm' | 'k' | 'M' Unit ::= 'W' | 'V' | 'A'
Additional assertions:
- The equal sign (`=') will never occur in an other context than within a data field.
- There is no whitespace (tabs,blanks) inside a data field.
- Either P and U, P and I, or U and I will be given.
Output
For each test case, print three lines:
- a line saying ``Problem #k" where k is the number of the test case
- a line giving the solution (voltage, power or current, dependent on what was given), written without a prefix and with two decimal places as shown in the sample output
- a blank line
Sample Input
3 If the voltage is U=200V and the current is I=4.5A, which power is generated? A light-bulb yields P=100W and the voltage is U=220V. Compute the current, please. bla bla bla lightning strike I=2A bla bla bla P=2.5MW bla bla voltage?
Sample Output
Problem #1 P=900.00W Problem #2 I=0.45A Problem #3 U=1250000.00V
这个是我第一遍写的:一是错的,因为题目要求我们要同一行输入,像我这样做,输入就不合理。二是后来看了其他人的做法后,改进了输入。三是后面看到感觉更简单的做法。
一:
#include <stdio.h>
#include <string.h>
#include<cctype>
int main () {
int len, n, term;
double I, U, P;
char s1[100], s2[100], s3[100];
scanf("%d", &n);
getchar();
while (n--) {
term = 1;
gets(s1);
len = strlen(s1);
if (s1[len - 2] == 'U')
scanf("%lf", &U);
if (s1[len - 2] == 'I')
scanf("%lf", &I);
if (s1[len - 2] == 'P')
scanf("%lf", &P);
getchar();
gets(s2);
if (s1[len - 2] == 'U')
scanf("%lf", &U);
if (s1[len - 2] == 'I')
scanf("%lf", &I);
if (s1[len - 2] == 'P')
scanf("%lf", &P);
getchar();
gets(s3);
printf("Problem #%d\n", term);
if (P == 0)
printf("P=%.2lfW\n", U * I);
if (U == 0)
printf("U=%.2lfV\n", P / I);
if (I == 0)
printf("I=%.2lfA\n", P / U);
printf("\n");
term++;
}
return 0;
}
二:
#include <stdio.h>
#include <string.h>
//#include<cctype>
int main () {
int len, n, term ,i;
double I, U, P, c;
char s[1001];
while (scanf("%d", &n) != EOF ) {
getchar();
term = 1;
while (n--) {
P = 0;
U = 0;
I = 0;
gets(s);
len = strlen(s);
//puts(s);
for (i = 0; i < len; ) {
c = 1;
if (s[i] == 'U'&& s[i + 1] == '=') {
i = i + 2;
//小数点前的数
while (s[i] >= '0' && s[i] <= '9') {
U = U * 10 + s[i] - '0';
i++;
}
if (s[i] == '.') {
//小数点后的数
i++;
while (s[i] >= '0' && s[i] <= '9') {
c = c * 0.1;
U = U + c * (s[i] - '0');
i++;
}
}
if (s[i] == 'm') {
U /= 1000;
i++;
}
else if (s[i] == 'k') {
U *= 1000;
i++;
}
else if (s[i] == 'M') {
U *= 1000000;
i++;
}
}
//printf("%.2lf", U);
c = 1;
if (s[i] == 'P'&& s[i + 1] == '=') {
i = i + 2;
//小数点前的数
while (s[i] >= '0' && s[i] <= '9') {
P = P * 10 + s[i] - '0';
i++;
}
if (s[i] == '.') {
//小数点后的数
i++;
while (s[i] >= '0' && s[i] <= '9') {
c = c * 0.1;
P = P + c * (s[i] - '0');
i++;
}
}
if (s[i] == 'm') {
P /= 1000;
i++;
}
else if (s[i] == 'k') {
P *= 1000;
i++;
}
else if (s[i] == 'M') {
P *= 1000000;
i++;
}
}
//c = 1;
if (s[i] == 'I'&& s[i + 1] == '=') {
i = i + 2;
//小数点前的数
while (s[i] >= '0' && s[i] <= '9') {
I = I * 10 + s[i] - '0';
i++;
}
if (s[i] == '.') {
//小数点后的数
i++;
while (s[i] >= '0' && s[i] <= '9') {
c = c * 0.1;
I = I + c * (s[i] - '0');
i++;
}
}
if (s[i] == 'm') {
I /= 1000;
i++;
}
else if (s[i] == 'k') {
I *= 1000;
i++;
}
else if (s[i] == 'M') {
I *= 1000000;
i++;
}
// printf("%lf",I);
}
i++;
}
printf("Problem #%d\n", term);
if (U > 0 && I >0)
printf("P=%.2lfW\n", U * I);
else if (P > 0 && I > 0)
printf("U=%.2lfV\n", P / I);
else if (P > 0 && U > 0)
printf("I=%.2lfA\n", P / U);
term++;
printf("\n");
}
}
return 0;
}
三:
想法是 先找到等号,判断一下等号前面的字符,接着输入等号后面的浮点数,在得到数字后面的单位的前缀,就是 m k M
然后再找下一个等号,进行上述操作,对于后面的字符,用 gets() 放进一个大的数组里面就可以了,没什么作用。
1 #include <iostream> 2 #include <iomanip> 3 #include <cstdlib> 4 #include <cstdio> 5 #include <cstring> 6 7 using namespace std; 8 char s[1000]; 9 10 int main(void) 11 { 12 int t, i; 13 double I, U, P; 14 15 cin >> t; 16 for (i = 1; i < t + 1; i++) 17 { 18 char c, ch, cc; 19 I = U = P = 0; 20 cout<<"Problem #"<<i<<endl; 21 getchar(); 22 while ((c = getchar())) 23 { 24 if (c == '=') 25 { 26 if (ch=='I') 27 { 28 cin >> I; 29 cc = getchar(); 30 if (cc=='m') I*=0.001; 31 else if (cc=='k') I*=1000; 32 else if (cc=='M') I*=1000000; 33 else ; 34 } 35 else if (ch=='U') 36 { 37 cin >> U; 38 cc = getchar(); 39 if (cc=='m') U*=0.001; 40 else if (cc=='k') U*=1000; 41 else if (cc=='M') U*=1000000; 42 else ; 43 } 44 else if (ch=='P') 45 { 46 cin >> P; 47 cc = getchar(); 48 if (cc=='m') P*=0.001; 49 else if (cc=='k') P*=1000; 50 else if (cc=='M') P*=1000000; 51 else ; 52 } 53 break; 54 } 55 ch = c; 56 } 57 while ((c = getchar())) 58 { 59 if (c == '=') 60 { 61 if (ch=='I') 62 { 63 cin >> I; 64 cc = getchar(); 65 if (cc=='m') I*=0.001; 66 else if (cc=='k') I*=1000; 67 else if (cc=='M') I*=1000000; 68 else ; 69 } 70 else if (ch=='U') 71 { 72 cin >> U; 73 cc = getchar(); 74 if (cc=='m') U*=0.001; 75 else if (cc=='k') U*=1000; 76 else if (cc=='M') U*=1000000; 77 else ; 78 } 79 else if (ch=='P') 80 { 81 cin >> P; 82 cc = getchar(); 83 if (cc=='m') P*=0.001; 84 else if (cc=='k') P*=1000; 85 else if (cc=='M') P*=1000000; 86 else ; 87 } 88 break; 89 } 90 ch = c; 91 } 92 gets(s); 93 cout << setprecision(2)<< fixed; 94 if (P!=0&&U!=0) cout<<"I="<<P/U<<'A'<<endl; 95 else if (P!=0&&I!=0) cout<<"U="<<P/I<<'V'<<endl; 96 else if (I!=0&&U!=0) cout<<"P="<<I*U<<'W'<<endl; 97 cout << endl; 98 } 99 100 return 0; 101 }
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