实验4
源代码
task.4
#include <stdio.h>
#define N 10
typedef struct {
char isbn[20]; // isbn号
char name[80]; // 书名
char author[80]; // 作者
double sales_price; // 售价
int sales_count; // 销售册数
} Book;
void output(Book x[], int n);
void sort(Book x[], int n);
double sales_amount(Book x[], int n);
int main() {
Book x[N] = {{"978-7-5327-6082-4", "门将之死", "罗纳德.伦", 42, 51},
{"978-7-308-17047-5", "自由与爱之地:入以色列记", "云也退", 49, 30},
{"978-7-5404-9344-8", "伦敦人", "克莱格·泰勒", 68, 27},
{"978-7-5447-5246-6", "软件体的生命周期", "特德·姜", 35, 90},
{"978-7-5722-5475-8", "芯片简史", "汪波", 74.9, 49},
{"978-7-5133-5750-0", "主机战争", "布莱克·J·哈里斯", 128, 42},
{"978-7-2011-4617-1", "世界尽头的咖啡馆", "约翰·史崔勒基", 22.5, 44},
{"978-7-5133-5109-6", "你好外星人", "英国未来出版集团", 118, 42},
{"978-7-1155-0509-5", "无穷的开始:世界进步的本源", "戴维·多伊奇", 37.5, 55},
{"978-7-229-14156-1", "源泉", "安·兰德", 84, 59}};
printf("图书销量排名(按销售册数):\n");
sort(x, N);
output(x, N);
printf("\n图书销售总额: %.2f\n", sales_amount(x, N));
return 0;
}
// 函数output()实现
void output(Book x[], int n) {
printf("ISBN号 书名 作者 售价 销售册数\n");
for (int i = 0; i < n; i++) {
printf("%-19s%-30s%-30s%-10.1f%-10d\n", x[i].isbn, x[i].name, x[i].author, x[i].sales_price, x[i].sales_count);
}
}
// 函数sort()实现: 按销售册数降序排序
void sort(Book x[], int n) {
int i, j;
Book temp;
for (i = 0; i < n - 1; i++) {
for (j = 0; j < n - 1 - i; j++) {
if (x[j].sales_count < x[j + 1].sales_count) {
temp = x[j];
x[j] = x[j + 1];
x[j + 1] = temp;
}
}
}
}
// 函数sales_amount()实现: 计算总销售额
double sales_amount(Book x[], int n) {
double total = 0;
for (int i = 0; i < n; i++) {
total += x[i].sales_price * x[i].sales_count;
}
return total;
}
实验结果截图
![image]()
实验5
源代码
task.5
#include <stdio.h>
typedef struct {
int year;
int month;
int day;
} Date;
// 函数声明
void input(Date *pd);
int day_of_year(Date d);
int compare_dates(Date d1, Date d2);
void test1() {
Date d;
int i;
printf("输入日期:(以形如2025-12-19这样的形式输入)\n");
for (i = 0; i < 3; ++i) {
input(&d);
printf("%d-%02d-%02d是这一年中第%d天\n\n", d.year, d.month, d.day, day_of_year(d));
}
}
void test2() {
int i;
Date Alice_birth, Bob_birth;
int ans;
printf("输入Alice和Bob出生日期:(以形如2025-12-19这样的形式输入)\n");
for (i = 0; i < 3; ++i) {
input(&Alice_birth);
input(&Bob_birth);
ans = compare_dates(Alice_birth, Bob_birth);
if (ans == 0)
printf("Alice和Bob一样大\n\n");
else if (ans == -1)
printf("Alice比Bob大\n\n");
else
printf("Alice比Bob小\n\n");
}
}
int main() {
printf("测试1:输入日期,打印输出这是一年中第多少天\n");
test1();
printf("\n测试2:两个人年龄大小关系\n");
test2();
return 0;
}
// 补足函数input实现
void input(Date *pd) {
scanf("%d-%d-%d", &pd->year, &pd->month, &pd->day);
}
// 补足函数day_of_year实现
int day_of_year(Date d) {
int days[13] = {0, 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31};
int i, total = 0;
// 判断闰年
if ((d.year % 4 == 0 && d.year % 100 != 0) || d.year % 400 == 0) {
days[2] = 29;
}
for (i = 1; i < d.month; ++i) {
total += days[i];
}
total += d.day;
return total;
}
// 补足函数compare_dates实现
// 如果d1在d2之前(d1更老/更大),返回-1
// 如果d1在d2之后(d1更年轻/更小),返回1
int compare_dates(Date d1, Date d2) {
if (d1.year < d2.year) return -1;
if (d1.year > d2.year) return 1;
if (d1.month < d2.month) return -1;
if (d1.month > d2.month) return 1;
if (d1.day < d2.day) return -1;
if (d1.day > d2.day) return 1;
return 0;
}
实验结果截图
![image]()
实验6
源代码
task.6
#include <stdio.h>
#include <string.h>
enum Role {admin, student, teacher};
typedef struct {
char username[20]; // 用户名
char password[20]; // 密码
enum Role type; // 账户类型
} Account;
// 函数声明
void output(Account x[], int n);
int main() {
Account x[] = {{"A1001", "123456", student},
{"A1002", "123abcdef", student},
{"A1009", "xyz12121", student},
{"X1009", "9213071x", admin},
{"C11553", "129dfg32k", teacher},
{"X3005", "921kfmg917", student}};
int n;
n = sizeof(x) / sizeof(Account);
output(x, n);
return 0;
}
// 待补足的函数output()实现
void output(Account x[], int n) {
int i, j, len;
const char *role_name;
for (i = 0; i < n; i++) {
printf("%-26s", x[i].username);
len = strlen(x[i].password);
for (j = 0; j < len; j++) {
printf("*");
}
for (j = len; j < 30; j++) {
printf(" ");
}
switch (x[i].type) {
case admin:
role_name = "admin";
break;
case student:
role_name = "student";
break;
case teacher:
role_name = "teacher";
break;
}
printf("%s\n", role_name);
}
}
实验结果截图
![image]()
实验7
源代码
task.7
#include <stdio.h>
#include <string.h>
typedef struct {
char name[20]; // 姓名
char phone[12]; // 手机号
int vip; // 是否为紧急联系人,是取1;否则取0
} Contact;
// 函数声明
void set_vip_contact(Contact x[], int n, char name[]);
void output(Contact x[], int n);
void display(Contact x[], int n);
#define N 10
int main() {
Contact list[N] = {{"刘一", "15510846604", 0},
{"陈二", "18038747351", 0},
{"张三", "18853253914", 0},
{"李四", "13230584477", 0},
{"王五", "15547571923", 0},
{"赵六", "18856659351", 0},
{"周七", "17705843215", 0},
{"孙八", "15552933732", 0},
{"吴九", "18077702405", 0},
{"郑十", "18820725036", 0}};
int vip_cnt, i;
char name[20];
printf("显示原始通讯录信息:\n");
output(list, N);
printf("\n输入要设置的紧急联系人个数:");
scanf("%d", &vip_cnt);
printf("输入%d个紧急联系人姓名:\n", vip_cnt);
for (i = 0; i < vip_cnt; ++i) {
scanf("%s", name);
set_vip_contact(list, N, name);
}
printf("\n显示通讯录列表:(按姓名字典序升序排列,紧急联系人最先显示)\n");
display(list, N);
return 0;
}
// 补足函数set_vip_contact实现
void set_vip_contact(Contact x[], int n, char name[]) {
int i;
for (i = 0; i < n; i++) {
if (strcmp(x[i].name, name) == 0) {
x[i].vip = 1;
break;
}
}
}
// 补足函数display实现
void display(Contact x[], int n) {
int i, j;
Contact temp;
// 冒泡排序
for (i = 0; i < n - 1; i++) {
for (j = 0; j < n - 1 - i; j++) {
// 排序规则:紧急联系人(vip=1)排在普通联系人(vip=0)之前
// 若vip状态相同,按姓名升序排列
int should_swap = 0;
if (x[j].vip < x[j+1].vip) {
should_swap = 1; // 后者是VIP,前者不是,交换
} else if (x[j].vip == x[j+1].vip) {
if (strcmp(x[j].name, x[j+1].name) > 0) {
should_swap = 1; // VIP状态相同,前者名字大,交换
}
}
if (should_swap) {
temp = x[j];
x[j] = x[j + 1];
x[j + 1] = temp;
}
}
}
output(x, n);
}
void output(Contact x[], int n) {
int i;
for (i = 0; i < n; ++i) {
printf("%-10s%-15s", x[i].name, x[i].phone);
if (x[i].vip)
printf("%5s", "*");
printf("\n");
}
}
实验结果截图
![image]()
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