214 lines
4.6 KiB
Markdown
214 lines
4.6 KiB
Markdown
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---
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title: 第三次作业(答案)
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tags:
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---
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# P108-3
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写出下面各逻辑表达式的值。设`a = 3`,`b = 4`,`c = 5`。
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| # | 表达式 | 答案 |
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| :---: | :------------------------------ | :-- |
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| 1 | `a + b > c && b == c` | `0` |
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| 2 | `a || b + c && b - c` | `1` |
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| 3 | `!(a > b) && !c || 1` | `1` |
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| 4 | `!(x = a) && (y = b) && 0` | `0` |
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| 5 | `!(a + b) + c - 1 && b + c / 2` | `1` |
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# P108-6
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```C
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#include <stdio.h>
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#include <stdlib.h>
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int main()
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{
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double x, y;
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printf("This program calculates y: \n");
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printf("\n");
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printf(" y = x (x < 1)\n");
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printf(" 2x - 1 (1 <= x < 10)\n");
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printf(" 3x - 11 (x >= 10)\n");
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printf("\n");
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printf("Please input x:\n");
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printf("x = ");
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if (scanf("%lf", &x) != 1) {
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fprintf(stderr, "Invalid input!\n");
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exit(EXIT_FAILURE);
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}
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if (x < 1) {
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y = x;
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} else if (x < 10) {
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y = 2 * x - 1;
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} else {
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y = 3 * x - 11;
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}
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printf("y = %f\n", y);
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return 0;
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}
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```
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# P108-9
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```C
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#include <stdio.h>
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#include <stdlib.h>
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int main()
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{
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int n;
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printf("请输入n: \nn = ");
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if (scanf("%d", &n) != 1 || n > 99999 || n < 1) {
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fprintf(stderr, "非法输入!\n");
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exit(EXIT_FAILURE);
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}
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// 求位数
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int tmp = n;
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int digits = 5;
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for (int i = 0; i < 5; ++i) {
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if (tmp == 0) {
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digits = i;
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break;
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}
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tmp /= 10;
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}
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printf("%d有%d位\n", n, digits);
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// 输出每一位:
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tmp = n;
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int digit_1 = tmp % 10;
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tmp /= 10;
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int digit_2 = tmp % 10;
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tmp /= 10;
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int digit_3 = tmp % 10;
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tmp /= 10;
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int digit_4 = tmp % 10;
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tmp /= 10;
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int digit_5 = tmp;
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if (digits >= 1) {
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printf("它的个位是%d\n", digit_1);
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}
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if (digits >= 2) {
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printf("它的十位是%d\n", digit_2);
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}
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if (digits >= 3) {
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printf("它的百位是%d\n", digit_3);
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}
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if (digits >= 4) {
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printf("它的千位是%d\n", digit_4);
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}
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if (digits >= 5) {
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printf("它的万位是%d\n", digit_5);
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}
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// 逆向输出
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printf("逆向输出是");
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printf("%d", digit_1);
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if (digits >= 2) {
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printf("%d", digit_2);
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}
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if (digits >= 3) {
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printf("%d", digit_3);
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}
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if (digits >= 4) {
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printf("%d", digit_4);
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}
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if (digits >= 5) {
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printf("%d", digit_5);
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}
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printf("\n");
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return 0;
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}
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```
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# P108-12
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```C
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#include <stdio.h>
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#include <stdlib.h>
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int main()
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{
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double r2 = 1;
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double ax = 2, ay = 2,
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bx = -2, by = 2,
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cx = -2, cy = -2,
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dx = 2, dy = -2;
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double x, y;
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printf("请分别输入所在位置的的x、y坐标:\nx = ");
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if (scanf("%lf", &x) != 1) {
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fprintf(stderr, "非法输入!\n");
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exit(EXIT_FAILURE);
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}
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printf("y = ");
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if (scanf("%lf", &y) != 1) {
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fprintf(stderr, "非法输入!\n");
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exit(EXIT_FAILURE);
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}
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double da2 = (x - ax) * (x - ax) + (y - ay) * (y - ay),
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db2 = (x - bx) * (x - bx) + (y - by) * (y - by),
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dc2 = (x - cx) * (x - cx) + (y - cy) * (y - cy),
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dd2 = (x - dx) * (x - dx) + (y - dy) * (y - dy);
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if (da2 <= r2 || db2 <= r2 || dc2 <= r2 || dd2 <= r2) {
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printf("该点高度是10m\n");
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} else {
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printf("该点高度是0m\n");
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}
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return 0;
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}
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```
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# 解一元二次方程
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```C
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#include <stdio.h>
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#include <stdlib.h>
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#include <complex.h>
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#include <math.h>
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int main()
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{
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double a, b, c;
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printf("一元二次方程求根\n");
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printf("a x^2 + b x + c = 0\n");
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printf("请输入a、b、c:\na = ");
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if (scanf("%lf", &a) != 1 || a == 0) {
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fprintf(stderr, "非法输入!\n");
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exit(EXIT_FAILURE);
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}
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printf("b = ");
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if (scanf("%lf", &b) != 1) {
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fprintf(stderr, "非法输入!\n");
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exit(EXIT_FAILURE);
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}
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printf("c = ");
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if (scanf("%lf", &c) != 1) {
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fprintf(stderr, "非法输入!\n");
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exit(EXIT_FAILURE);
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}
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double delta = b * b - 4 * a * c;
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if (delta == 0) {
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printf("x1 = x2 = %f\n", -b / 2 / a);
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} else if (delta > 0) {
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double x1 = (-b + sqrt(delta)) / 2 / a;
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double x2 = (-b - sqrt(delta)) / 2 / a;
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printf("x1 = %f\nx2 = %f\n", x1, x2);
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} else {
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double complex x1 = (-b + csqrt(delta)) / 2 / a;
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double complex x2 = (-b - csqrt(delta)) / 2 / a;
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printf("x1 = %f %+fi\nx2 = %f %+fi\n", creal(x1), cimag(x1), creal(x2), cimag(x2));
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}
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return 0;
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}
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```
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