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At: http://www.learncpp.com/cpp-tutorial/82-classes-and-class-members/

There is the following program (I made some small modifications):

#include <iostream>

class Employee
{
public:
    char m_strName[25];
    int m_id;
    double m_wage;

    //set the employee information
    void setInfo(char *strName,int id,double wage)
    {
        strncpy(m_strName,strName,25);
        m_id=id;
        m_wage=wage;
    }

    //print employee information to the screen
    void print()
    {
        std::cout<<"Name: "<<m_strName<<"id: "<<m_id<<"wage: $"<<wage<<std::endl;
    }
};

int main()
{
    //declare employee
    Employee abder;
    abder.setInfo("Abder-Rahman",123,400);
    abder.print();
    return 0;
}

When I try to compile it, I get the following:

alt text

And, why is a pointer used here? void setInfo(char *strName,int id,double wage)

Thanks.

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Why no indentation? –  Sam Miller Jan 22 '11 at 14:22

6 Answers 6

up vote 1 down vote accepted

1.

strncpy(m_strName,strName,25);

You need to #include <cstring> (where strncpy is declared).

2.

std::cout<<"Name: "<<m_strName<<"id: "<<m_id<<"wage: $"<<wage<<std::endl;

should be

std::cout<<"Name: "<<m_strName<<"id: "<<m_id<<"wage: $"<<m_wage<<std::endl;

3.

void setInfo(char *strName,int id,double wage)

can be set to

void setInfo(const char *strName,int id,double wage)

to get rid of the g++ 4.x.x warning.

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Thanks for your reply. You are right, but, why this warning? And, why did we have to insert "const" to gt rid of it? Thanks. –  Simplicity Jan 22 '11 at 20:16
    
With abder.setInfo("Abder-Rahman",123,400);, you're passing in a constant string, but you declared void setInfo(char *strName,int id,double wage) as char *, which indicates to the compiler that you may wish to modify strName. The compiler can see that you can't do that, so it is trying to be helpful. Listen to warnings; they almost always help you write more robust code. –  Sdaz MacSkibbons Jan 23 '11 at 1:23

You'll have to include the header that declares the strncpy function. So add

#include <cstring> 

at the beginning.

And the member name is m_wage but you've used it as wage in your print member function.

Change

std::cout<<"Name: "<<m_strName<<"id: "<<m_id<<"wage: $"<<wage<<std::endl;

to

std::cout<<"Name: "<<m_strName<<"id: "<<m_id<<"wage: $"<<m_wage<<std::endl;
                                                         ^^^^^^
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Add

#include <string.h>

And change wage to m_wage on line 19.

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Please don’t mix C++ and C headers. –  Konrad Rudolph Jan 22 '11 at 14:51

You need :

#include <string>
#include <iostream>
#include <string.h>
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2  
Please don’t mix C++ and C headers. –  Konrad Rudolph Jan 22 '11 at 14:52

Regarding the last warning/error message - the first parameter of the setInfo() member function should be declared as const char*. Plain char* represents pointer to a mutable character array, which string literal "Abder-Rahman" isn't.

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The error is because strncpy is declared in the cstring header file.

A pointer is used because you are working with C strings, which are char arrays. Arrays in C are used through pointers. And strncpy takes two pointers to char(char arrays) to do the copy process.

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"Please don’t mix C++ and C headers." – Konrad Rudolph :) –  Andy T Jan 22 '11 at 15:54
    
thanks for your reply. When you say:"Arrays in C are used through pointers", how then are arrays used in C+=? Thanks. –  Simplicity Jan 22 '11 at 20:21
    
@SWEngineer It applies the same to c++, i wanted to emphasize the difference with other languages. –  SanSS Jan 22 '11 at 21:46

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