任务一
实验代码
button.hpp
1 #pragma once
2
3 #include <iostream>
4 #include <string>
5
6 using std::string;
7 using std::cout;
8
9 // 按钮类
10 class Button {
11 public:
12 Button(const string &text);
13 string get_label() const;
14 void click();
15
16 private:
17 string label;
18 };
19
20 Button::Button(const string &text): label{text} {
21 }
22
23 inline string Button::get_label() const {
24 return label;
25 }
26
27 void Button::click() {
28 cout << "Button '" << label << "' clicked\n";
29 }
View Code
window,hpp
1 #pragma once
2 #include "button.hpp"
3 #include <vector>
4 #include <iostream>
5
6 using std::vector;
7 using std::cout;
8 using std::endl;
9
10 // 窗口类
11 class Window{
12 public:
13 Window(const string &win_title);
14 void display() const;
15 void close();
16 void add_button(const string &label);
17
18 private:
19 string title;
20 vector<Button> buttons;
21 };
22
23 Window::Window(const string &win_title): title{win_title} {
24 buttons.push_back(Button("close"));
25 }
26
27 inline void Window::display() const {
28 string s(40, '*');
29
30 cout << s << endl;
31 cout << "window title: " << title << endl;
32 cout << "It has " << buttons.size() << " buttons: " << endl;
33 for(const auto &i: buttons)
34 cout << i.get_label() << " button" << endl;
35 cout << s << endl;
36 }
37
38 void Window::close() {
39 cout << "close window '" << title << "'" << endl;
40 buttons.at(0).click();
41 }
42
43 void Window::add_button(const string &label) {
44 buttons.push_back(Button(label));
45 }
View Code
task1.cpp
1 #include "window.hpp"
2 #include <iostream>
3
4 using std::cout;
5 using std::cin;
6
7 void test() {
8 Window w1("new window");
9 w1.add_button("maximize");
10 w1.display();
11 w1.close();
12 }
13
14 int main() {
15 cout << "用组合类模拟简单GUI:\n";
16 test();
17 }
View Code
结果截图
问题1:这个模拟简单GUI的示例代码中,自定义了几个类?使用到了标准库的哪几个类?,哪些
类和类之间存在组合关系?
答:定义了两个类:Button和Window,使用了标准库string和vector,
问题2:在自定义类Button和Window中,有些成员函数定义时加了const, 有些设置成了inline。如
果你是类的设计者,目前那些没有加const或没有设置成inline的,适合添加const,适合设置成
inline吗?陈述你的答案和理由。
答:不适合,这些函数的功能为输出,结构简单运行时间短,对原对象不会进行修改,所以不需要添加和设置。
问题3:类Window的定义中,有这样一行代码,其功能是?
答:一个由四十个*组成的字符串s
任务二:
实验代码
1 #include <iostream>
2 #include <vector>
3
4 using namespace std;
5
6 void output1(const vector<int> &v) {
7 for(auto &i: v)
8 cout << i << ", ";
9 cout << "\b\b \n";
10 }
11
12 void output2(const vector<vector<int>> v) {
13 for(auto &i: v) {
14 for(auto &j: i)
15 cout << j << ", ";
16 cout << "\b\b \n";
17 }
18 }
19
20 void test1() {
21 vector<int> v1(5, 42);
22 const vector<int> v2(v1);
23
24 v1.at(0) = -999;
25 cout << "v1: "; output1(v1);
26 cout << "v2: "; output1(v2);
27 cout << "v1.at(0) = " << v1.at(0) << endl;
28 cout << "v2.at(0) = " << v2.at(0) << endl;
29 }
30
31 void test2() {
32 vector<vector<int>> v1{{1, 2, 3}, {4, 5, 6, 7}};
33 const vector<vector<int>> v2(v1);
34
35 v1.at(0).push_back(-999);
36 cout << "v1: \n"; output2(v1);
37 cout << "v2: \n"; output2(v2);
38
39 vector<int> t1 = v1.at(0);
40 cout << t1.at(t1.size()-1) << endl;
41
42 const vector<int> t2 = v2.at(0);
43 cout << t2.at(t2.size()-1) << endl;
44 }
45
46 int main() {
47 cout << "测试1:\n";
48 test1();
49
50 cout << "\n测试2:\n";
51 test2();
52 }
View Code
结果截图
问题1:测试1模块中,这三行代码的功能分别是?
答:21:创建一个int类型的向量v1,并初始化大小为5,每个元素初始值为42。
22:创建一个int类型的向量v2,并用v1初始化,v2拷贝v1中所有元素。
24:将向量v1中第一个元素设置为-999。
问题2:测试2模块中,这三行代码的功能分别是?
答:32:创建一个二维向量v1,包含两个一维向量。
33:创建一个常量二维向量v2,并用v1初始化其内容。
35:将-999添加到二维向量v1的第一个子向量中的末尾。
问题3:测试2模块中,这四行代码的功能分别是?
答:39:将v1的第一个子向量赋值给整型一维向量t1。
40:输出向量t1最后一个元素的值。
42:创建一个int类型常量一维变量t2,并用v2的第一个子向量给他赋值。
43:输出向量t2最后一个元素的值。
问题4:根据执行结果,反向分析、推断:
① 标准库模板类vector内部封装的复制构造函数,其实现机制是深复制还是浅复制?
答:深复制。
② 模板类vector的接口at(), 是否至少需要提供一个const成员函数作为接口?
答:是。
任务三:
实验代码
vectorInt.hpp
1 #pragma once
2
3 #include <iostream>
4 #include <cassert>
5
6 using std::cout;
7 using std::endl;
8
9 // 动态int数组对象类
10 class vectorInt{
11 public:
12 vectorInt(int n);
13 vectorInt(int n, int value);
14 vectorInt(const vectorInt &vi);
15 ~vectorInt();
16
17 int& at(int index);
18 const int& at(int index) const;
19
20 vectorInt& assign(const vectorInt &v);
21 int get_size() const;
22
23 private:
24 int size;
25 int *ptr; // ptr指向包含size个int的数组
26 };
27
28 vectorInt::vectorInt(int n): size{n}, ptr{new int[size]} {
29 }
30
31 vectorInt::vectorInt(int n, int value): size{n}, ptr{new int[size]} {
32 for(auto i = 0; i < size; ++i)
33 ptr[i] = value;
34 }
35
36 vectorInt::vectorInt(const vectorInt &vi): size{vi.size}, ptr{new int[size]} {
37 for(auto i = 0; i < size; ++i)
38 ptr[i] = vi.ptr[i];
39 }
40
41 vectorInt::~vectorInt() {
42 delete [] ptr;
43 }
44
45 const int& vectorInt::at(int index) const {
46 assert(index >= 0 && index < size);
47
48 return ptr[index];
49 }
50
51 int& vectorInt::at(int index) {
52 assert(index >= 0 && index < size);
53
54 return ptr[index];
55 }
56
57 vectorInt& vectorInt::assign(const vectorInt &v) {
58 delete[] ptr; // 释放对象中ptr原来指向的资源
59
60 size = v.size;
61 ptr = new int[size];
62
63 for(int i = 0; i < size; ++i)
64 ptr[i] = v.ptr[i];
65
66 return *this;
67 }
68
69 int vectorInt::get_size() const {
70 return size;
71 }
View Code
task3.cpp
1 #include "vectorInt.hpp"
2 #include <iostream>
3
4 using std::cin;
5 using std::cout;
6
7 void output(const vectorInt &vi) {
8 for(auto i = 0; i < vi.get_size(); ++i)
9 cout << vi.at(i) << ", ";
10 cout << "\b\b \n";
11 }
12
13
14 void test1() {
15 int n;
16 cout << "Enter n: ";
17 cin >> n;
18
19 vectorInt x1(n);
20 for(auto i = 0; i < n; ++i)
21 x1.at(i) = i*i;
22 cout << "x1: "; output(x1);
23
24 vectorInt x2(n, 42);
25 vectorInt x3(x2);
26 x2.at(0) = -999;
27 cout << "x2: "; output(x2);
28 cout << "x3: "; output(x3);
29 }
30
31 void test2() {
32 const vectorInt x(5, 42);
33 vectorInt y(10, 0);
34
35 cout << "y: "; output(y);
36 y.assign(x);
37 cout << "y: "; output(y);
38
39 cout << "x.at(0) = " << x.at(0) << endl;
40 cout << "y.at(0) = " << y.at(0) << endl;
41 }
42
43 int main() {
44 cout << "测试1: \n";
45 test1();
46
47 cout << "\n测试2: \n";
48 test2();
49 }
View Code
结果截图
问题1:vectorInt类中,复制构造函数(line14)的实现,是深复制还是浅复制?
答:深复制。
问题2:vectorInt类中,这两个at()接口,如果返回值类型改成int而非int&(相应地,实现部分也
同步修改),测试代码还能正确运行吗?如果把line18返回值类型前面的const掉,针对这个测试
代码,是否有潜在安全隐患?尝试分析说明。
答:不能。有安全隐患,无法在at函数中修改类的数据。
问题3:vectorInt类中,assign()接口,返回值类型可以改成vectorInt吗?你的结论,及,原因分
析。
答:不可以,因为不用指针形式难以追踪正在运行的这一步this变量。
任务四
matrix.hpp
1 #pragma once
2
3 #include <iostream>
4 #include <cassert>
5
6 using std::cout;
7 using std::endl;
8
9 // 类Matrix的声明
10 class Matrix {
11 public:
12 Matrix(int n, int m); // 构造函数,构造一个n*m的矩阵, 初始值为value
13 Matrix(int n); // 构造函数,构造一个n*n的矩阵, 初始值为value
14 Matrix(const Matrix &x); // 复制构造函数, 使用已有的矩阵X构造
15 ~Matrix();
16
17 void set(const double *pvalue); // 用pvalue指向的连续内存块数据按行为矩阵赋值
18 void clear(); // 把矩阵对象的值置0
19
20 const double& at(int i, int j) const; // 返回矩阵对象索引(i,j)的元素const引用
21 double& at(int i, int j); // 返回矩阵对象索引(i,j)的元素引用
22
23 int get_lines() const; // 返回矩阵对象行数
24 int get_cols() const; // 返回矩阵对象列数
25
26 void display() const; // 按行显示矩阵对象元素值
27
28 private:
29 int lines; // 矩阵对象内元素行数
30 int cols; // 矩阵对象内元素列数
31 double *ptr;
32 };
33
34 // 类Matrix的实现:待补足
35 Matrix::Matrix(int n,int m) : lines(n), cols(m) {
36 ptr=new double[n*m];
37 }
38
39 Matrix::Matrix(int n) : lines(n),cols(n) {
40 ptr=new double[n*n];
41 }
42
43 Matrix::Matrix(const Matrix &x) :lines(x.lines),cols(x.cols){
44 ptr=new double[lines*cols];
45 for(int i=0;i<lines*cols;i++)
46 ptr[i]=x.ptr[i];
47 }
48
49 Matrix::~Matrix() {
50 delete[] ptr;
51 }
52
53 void Matrix::set(const double *pvalue) {
54 for(int i=0;i<lines*cols;i++)
55 ptr[i]=pvalue[i];
56 }
57
58 void Matrix::clear() {
59 for(int i=0;i<lines*cols;i++)
60 ptr[i]=0;
61 }
62
63 const double& Matrix::at(int i,int j) const {
64 return ptr[i*cols+j];
65 }
66
67 double& Matrix::at(int i,int j) {
68 return ptr[i*cols+j];
69 }
70
71 int Matrix::get_lines() const {
72 return lines;
73 }
74
75 int Matrix::get_cols() const {
76 return cols;
77 }
78
79 void Matrix::display() const{
80 for(int i=0;i<lines;i++)
81 {
82 for(int j=0;j<cols;j++)
83 cout<<ptr[i*cols+j]<<" ";
84 cout<<endl;
85 }
86 }
View Code
task4.cpp
1 #include "matrix.hpp"
2 #include <iostream>
3 #include <cassert>
4
5 using std::cin;
6 using std::cout;
7 using std::endl;
8
9
10 const int N = 1000;
11
12 // 输出矩阵对象索引为index所在行的所有元素
13 void output(const Matrix &m, int index) {
14 assert(index >= 0 && index < m.get_lines());
15
16 for(auto j = 0; j < m.get_cols(); ++j)
17 cout << m.at(index, j) << ", ";
18 cout << "\b\b \n";
19 }
20
21
22 void test1() {
23 double x[1000] = {1, 2, 3, 4, 5, 6, 7, 8, 9};
24
25 int n, m;
26 cout << "Enter n and m: ";
27 cin >> n >> m;
28
29 Matrix m1(n, m); // 创建矩阵对象m1, 大小n×m
30 m1.set(x); // 用一维数组x的值按行为矩阵m1赋值
31
32 Matrix m2(m, n); // 创建矩阵对象m1, 大小m×n
33 m2.set(x); // 用一维数组x的值按行为矩阵m1赋值
34
35 Matrix m3(2); // 创建一个2×2矩阵对象
36 m3.set(x); // 用一维数组x的值按行为矩阵m4赋值
37
38 cout << "矩阵对象m1: \n"; m1.display(); cout << endl;
39 cout << "矩阵对象m2: \n"; m2.display(); cout << endl;
40 cout << "矩阵对象m3: \n"; m3.display(); cout << endl;
41 }
42
43 void test2() {
44 Matrix m1(2, 3);
45 m1.clear();
46
47 const Matrix m2(m1);
48 m1.at(0, 0) = -999;
49
50 cout << "m1.at(0, 0) = " << m1.at(0, 0) << endl;
51 cout << "m2.at(0, 0) = " << m2.at(0, 0) << endl;
52 cout << "矩阵对象m1第0行: "; output(m1, 0);
53 cout << "矩阵对象m2第0行: "; output(m2, 0);
54 }
55
56 int main() {
57 cout << "测试1: \n";
58 test1();
59
60 cout << "测试2: \n";
61 test2();
62 }
View Code
结果截图
任务五
user.hpp
1 #pragma once
2 #include<iostream>
3 #include<string>
4 using std::cout;
5 using std::endl;
6 using std::string;
7 using std::cin;
8
9 class User{
10 public:
11 User(string name,string password="123456",string email="");
12 void set_email();
13 void change_password();
14 void display();
15 private:
16 string name;
17 string password;
18 string email;
19 };
20
21 User::User(string name,string password,string email) :name(name),password(password), email(email) {}
22
23 void User::set_email() {
24 cout<<"Enter email address:";
25 while(true) {
26 cin>>email;
27 if(email.find('@')!=std::string::npos) {
28 cout<<"email is set successfully..."<<endl;
29 break;
30 }
31 else
32 cout<<"illegal email.Please re-enter email:";
33 }
34 }
35
36 void User::change_password() {
37 string old;
38 int i=3;
39 cout<<"Enter old password:";
40 while(i--) {
41 cin>>old;
42 if(old==password) {
43 cout<<"Enter new password:";
44 cin>>password;
45 cout<<"new password is set successfuly..."<<endl;
46 return;
47 }
48 else
49 cout<<"password input error.Please re-enter again:";
50 }
51 cout<<"password input error.Please try after a while."<<endl;
52 }
53
54 void User::display() {
55 string s(password.size(),'*');
56 cout<<"name:"<<name<<endl;
57 cout<<"pass:"<<s<<endl;
58 cout<<"email:"<<email<<endl;
59 }
View Code
task5.cpp
1 #include "user.hpp"
2 #include <iostream>
3 #include <vector>
4 #include <string>
5
6 using std::cin;
7 using std::cout;
8 using std::endl;
9 using std::vector;
10 using std::string;
11
12 void test() {
13 vector<User> user_lst;
14
15 User u1("Alice", "2024113", "[email protected]");
16 user_lst.push_back(u1);
17 cout << endl;
18
19 User u2("Bob");
20 u2.set_email();
21 u2.change_password();
22 user_lst.push_back(u2);
23 cout << endl;
24
25 User u3("Hellen");
26 u3.set_email();
27 u3.change_password();
28 user_lst.push_back(u3);
29 cout << endl;
30
31 cout << "There are " << user_lst.size() << " users. they are: " << endl;
32 for(auto &i: user_lst) {
33 i.display();
34 cout << endl;
35 }
36 }
37
38 int main() {
39 test();
40 }
View Code
结果截图
任务六
date.hpp
1 #pragma once
2
3 #include<iostream>
4 #include<cstdlib>
5
6 using namespace std;
7 class Date {
8 private:
9 int year;
10 int month;
11 int day;
12 int totalDays;
13 public:
14 Date(int year, int month, int day);
15 int getYear()const {
16 return year;
17 }
18 int getMonth()const {
19 return month;
20 }
21 int getDay()const {
22 return day;
23 }
24 int getMaxDay()const;
25 bool isLeapYear()const {
26 return year % 4 == 0 && year % 100 != 0 || year % 400 == 0;
27 }
28 void show() const;
29 int distance(const Date& date)const {
30 return totalDays - date.totalDays;
31 }
32 };
33 namespace {
34 const int DAYS_BEFIRE_MONTH[] = { 0,31,59,90,120,151,181,212,243,273,304 ,334,365 };
35 }
36 Date::Date(int year, int month, int day) :year(year), month(month), day(day) {
37 if (day <= 0 || day > getMaxDay()) {
38 cout << "Invalid date: ";
39 show();
40 cout << endl;
41 exit(1);
42 }
43 int years = year - 1;
44 totalDays = years * 365 + years / 4 - years / 100 + years / 400 + DAYS_BEFIRE_MONTH[month - 1] + day;
45 if (isLeapYear() && month > 2) totalDays++;
46 }
47 int Date::getMaxDay()const {
48 if (isLeapYear() &&month == 2)
49 return 29;
50 else return DAYS_BEFIRE_MONTH[month] - DAYS_BEFIRE_MONTH[month - 1];
51 }
52 void Date::show()const {
53 cout << getYear() << "-" << getMonth() << "-" << getDay();
54 }
View Code
account.hpp
1 #pragma once
2
3 #include"date.hpp"
4 #include<string>
5 #include<cmath>
6 #include<iostream>
7
8 using namespace std;
9
10 class SavingsAccount {
11 private:
12 string id;
13 double balance;
14 double rate;
15 Date lastDate;
16 double accumulation;
17 static double total;
18 void record(const Date& date, double amount, const string& desc);
19 void error(const string& msg) const;
20 double accumulate(const Date& date)const {
21 return accumulation + balance * date.distance(lastDate);
22 }
23 public:
24 SavingsAccount(const Date& date, const string& id, double rate);
25 const string& getId()const {
26 return id;
27 }
28 double getBalance()const {
29 return balance;
30 }
31 double getRate()const {
32 return rate;
33 }
34 static double getTotal() {
35 return total;
36 }
37 void deposit(const Date& date, double amount, const string& desc);
38 void withdraw(const Date& date, double amount, const string& desc);
39 void settle(const Date& date);
40 void show() const;
41 };
42 double SavingsAccount::total = 0;
43 SavingsAccount::SavingsAccount(const Date& date, const string& id, double rate) :
44 id(id), balance(0), rate(rate), lastDate(date), accumulation(0) {
45 date.show();
46 cout << "\t#" << id << "created" << endl;
47 }
48 void SavingsAccount::record(const Date& date, double amount, const string& desc) {
49 accumulation = accumulate(date);
50 lastDate = date;
51 amount = floor(amount * 100 + 0.5) / 100;
52 balance += amount;
53 total += amount;
54 date.show();
55 cout << "\t#" << id << "\t" << amount << "\t" << balance << "\t" << desc << endl;
56 }
57 void SavingsAccount::error(const string& msg) const {
58 cout << "Error(#" << id << "):" << msg << endl;
59 }
60 void SavingsAccount::deposit(const Date& date, double amount, const string& desc) {
61 record(date, amount, desc);
62 }
63 void SavingsAccount::withdraw(const Date& date, double amount, const string& desc) {
64 if (amount > getBalance())
65 error("not enough money");
66 else
67 record(date, -amount, desc);
68 }
69 void SavingsAccount::settle(const Date& date) {
70 double interest = accumulate(date) * rate / date.distance(Date(date.getYear() - 1, 1, 1));
71 if (interest != 0) record( date,interest,"interest" );
72 accumulation = 0;
73 }
74 void SavingsAccount::show()const {
75 cout << id << "\tBalance: " << balance;
76 }
View Code
task6.cpp
1 #include"account.hpp"
2 #include<iostream>
3 using namespace std;
4 int main() {
5 Date date { 2008,11,1 };
6 SavingsAccount accounts[] = {
7 SavingsAccount(date,"03755217",0.015),
8 SavingsAccount(date,"02342342",0.015)
9 };
10 const int n = sizeof(accounts) / sizeof(SavingsAccount);
11 accounts[0].deposit(Date(2008, 11, 5), 5000, "salary");
12 accounts[1].deposit(Date(2008, 11, 25), 10000, "sell stock 0323");
13 accounts[0].deposit(Date(2008, 12, 5), 5500, "salary");
14 accounts[1].withdraw(Date(2008, 12, 20), 4000, "buy a laptop");
15 cout << endl;
16 for (int i = 0; i < n; i++) {
17 accounts[i].settle(Date(2009, 1, 1));
18 accounts[i].show();
19 cout << endl;
20 }
21 cout << "Total: " << SavingsAccount::getTotal() << endl;
22 return 0;
23 }
View Code
结果截图
标签:const,string,int,实验,vectorInt,include,cout From: https://www.cnblogs.com/121ywq/p/18525802