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I am trying to make a really simple string class with a copy constructor, the problem that i am having is that i am trying to send a data type/object as a constant but whenever i try to assign it to the same non-constant data, the compiler complains.

I don't get why would compiler complain, i am just trying to copy the data, i am not modify it.

Header

class MyString{
private:
    char* thestring;
    MyString* ms;
public:
    MyString();
    MyString(const char* str);
    MyString(const MyString& str);
    ~MyString();
    MyString& operator=(const char* str);
};

CPP

MyString::MyString(){
    thestring = '\0';
}

MyString::MyString(const MyString& str){
    ms = str;
}

MyString& MyString::operator=(const char* str){
    MyString* temp = new MyString();
    temp->thestring = str; 
    return temp;
}

MyString::MyString(const char* str){
}

MyString::~MyString(){
}

here are the erros:

no suitable conversion function from "const MyString" to "MyString *" exists 9

a value of type "const char *" cannot be assigned to an entity of type "char *" 14

a reference of type "MyString &" (not const-qualified) cannot be initialized with a value of type "MyString *" 15

'MyString::operator=' : must return a value 16

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3 Answers 3

up vote 2 down vote accepted

First, you do not need ms member in your class: it serves no purpose, and it is used only in your (incorrect) copy constructor. Remove ms, and rewrite the code as follows:

MyString::MyString(const MyString& str) {
    thestring = strdup(str.thestring);
}

Note that now your code violates the rule of three: once you add a copy constructor, you also need a matching assignment operator and a destructor:

MyString& MyString::operator=(const MyString& str) {
    if (this != &str) {
        free(thestring);
        thestring = strdup(str.thestring);
    }
    return *this;
}

MyString::~MyString() {
    free(thestring);
}

Finally, I would rewrite your default constructor like this:

MyString::MyString()
:   thestring(0) {
}

Essentially, this is not different, but an initialization list is more canonical.

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+1. Small note: for op assignment, i think we should check for self-assignment if (this != &str) –  lolando Nov 29 '13 at 3:04
    
@lolando Thanks, this is now fixed. –  dasblinkenlight Nov 29 '13 at 3:10
    
Why would the operator take a MyString argument, when i assign a value with quotations it will be receiving a constant char. –  Daniel Sega Nov 29 '13 at 3:35
1  
@DanielSega That assignment operator you need in addition to the one you have - it's part of the rule of three referenced in the answer. You also need your operator that assigns const char * - it should have a similar implementation to the one in the answer. Finally, you should also consider adding a constructor that takes a const char*. –  dasblinkenlight Nov 29 '13 at 3:38

Line 9: ms is a MyString*, but str is just a const MyString& (ie, not a pointer).

Line 14: You cannot assign a const char* value to a char*, as this would potentially allow you to change it:

void foo(const char* dont_change_this) {
  char* s = dont_change_this;
  s[0] = '!';  // you changed it!
}

Line 15: Once again, a simple pointer mis-match. The return type of op= is MyString&, but temp has type MyString*.

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Ok, i see it now. But how is MyString* any different from a MyString& since both contains a address? –  Daniel Sega Nov 29 '13 at 3:53
1  
@DanielSega MyString* and MyString& are completely different -- the latter is a reference type. You are likely getting confused over the use of & as both the unary address-of operator and to denote reference types -- these are different and mostly unrelated uses of &. –  alecb Nov 29 '13 at 3:56

But you're not just trying to copy the data, you're trying to strip it of its constness. In other words, you're attempting to assign a non-const pointer with a const pointer. This would give you the ability to potentially change the value of what you intended to be "const".

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