好吧,我需要一些见识。
我正在上C++类,正在从事第二个项目。我正在尝试创建一个选项列表,使您可以将电子邮件存储在字符串 vector 中。
现在,在花时间帮助我并查看代码之前,我想指出我的问题。我在文件“HughesProject2-1.cpp”中创建了一个对象:
HughesEmail myhughesEmail();
当我使用此对象运行displayList()时,问题就在此之后:
myHughesEmail.displayList();
Visual 2010不断告诉我“错误:表达式必须具有类类型”
现在,我以本书为引用,他们以相同的方式创建了一个对象,并在此后以相同的方式使用了它。我对自己的错误感到困惑,因为我的文件与使用对象的基本知识和正在执行的操作完全不同。我知道我还有其他错误,因为这是不完整的,而且我仍在学习中,我需要知道在制造对象后最有可能导致我使用该对象的原因。提前致谢。
我有三个文件:
HughesEmail.cpp
// Classes for HughesProject2-1.cpp and HughesEmail.h
// Includes
#include <string>
#include <iostream>
#include <vector>
#include <iomanip>
#include "HughesEmail.h"
// Namespaces
using namespace std;
// Initializing Constructor
HughesEmail::HughesEmail()
{
vector< string > emailStorage( 100 );
emailMinimumLength = 9;
exitOption = 1;
emailOption = 1;
}
void HughesEmail::displayList()
{
// Check if exit is set, if not run.
if ( exitOption == 1 )
{
// Email list options
cout << "Choose from the list of options: \n"
"1 - Store an email address.\n"
"2 - Search an email address.\n"
"3 - List all email adresses.\n"
"4 - Delete an email address.\n"
"0 - Exit.\n" << endl;
while ( emailOption != 0 )
{
// Get user input for email list option
cout << "Option? : ";
cin >> option;
switch ( option )
{
case '0':
// set exitOption to 0
exitOption = 0;
emailOption = 0;
break;
case '1':
//Input email name
cout << "Please input email to be stored: " << endl;
cin >> emailName;
// run storeEmail
storeEmail( emailName );
break;
case '2':
// run searchEmail
break;
case '3':
// run listEmail
break;
case '4':
// run deleteEmail
break;
//Ignore
case '\n':
case '\t':
case ' ':
break;
default:
cout << "\nPlease choose a valid option." << endl;
break;
} // end switch
} // end while
} else {
exitOption = 0;
} // end else
}
void HughesEmail::storeEmail( string emailName )
{
// Initialize counter
int i;
i = 0;
// Check if input emailName meets emailMinimumLength
if( emailName.length() >= emailMinimumLength )
{
// if email in vector slot i is less than minimum length, then override with new email.
if ( emailStorage[ i ].length() < emailMinimumLength )
{
emailStorage[ i ] = emailName;
} else {
i++;
} // end else
} else {
cout << "Email does not meet the minimum length of: " << emailMinimumLength << " characters." << endl;
} // end else
}
休斯电子邮件
// In this project: HughesProject2.h
// Class header file.
//Includes
#include <string>
#include <iostream>
#include <vector>
//Namespaces
using namespace std;
class HughesEmail
{
public:
HughesEmail();
void displayList();
void storeEmail( string );
string searchEmail( string );
string listEmail();
void deleteEmail();
private:
vector< string > emailStorage;
int emailMinimumLength;
int emailOption;
int exitOption;
char option;
string emailName;
};
休斯Project2-1.cpp
// In this project: HughesProject2-1.cpp
// Class creation to store email adresses. Adding, deleting, searching and listing email addresses.
// Includes
#include <string>
#include <iostream>
#include <vector>
#include "HughesEmail.h"
// Namespaces
using namespace std;
int main()
{
//Create HughesEmail Object
HughesEmail myHughesEmail();
myHughesEmail.displayList();
}
最佳答案
您遇到了一种最令人烦恼的解析方法。
HughesEmail myHughesEmail();
该行不会在堆栈上构造新的
HughesEmail对象。相反,它声明一个返回HughesEmail并且不采取任何措施的函数。您应该删除空括号。