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I am creating my simple implementation of the String class like in the .Net framework. The only difference, it is less sugary if you know what I am mean. Anyhow, I got it everything to work except for the overloaded operators for the + operator; which end up displaying a garbage buffer. I still have not implemented exception handling nor garbage collecting. Here is the code below and the output if you are all curious.

#include <iostream>
using namespace std;
using namespace CDataTypes;
int _tmain(int argc, _TCHAR* argv[])
{
    String* str = new String();
    *str = "1 ";
    String* str2 = new String();
    *str2 = "2 ";
    String* str3 = new String();
    *str3 =  "3 ";
    String* str4 = new String("\nEnd!\n");
    cout << str->GetText() << str2->GetText() << str3->GetText() << str4->GetText() << endl;
    const char* s = *str + "H"; // Here is where it goes wrong!
    String* cat = new String();
    cout << "\n" << s << endl;
    system("pause");
    return 0;
}

Code where I think the problem lies:

    const char* String::operator+(char obj[])
    {
        std::string str = v->at(this->id);
        str += obj;
        ptr = str.c_str();
        return ptr;
    }
    const char* String::operator+(String obj)
    {
        std::string str = v->at(this->id);
        str += v->at(obj.id);
        ptr = str.c_str();
        return ptr;
    }

Here is the output:

1 2 3
End!


    ╠╠╠╠╠╠╠╠∟       ╠╠╠╠╠╠╠╠
Press any key to continue . . .

P.S I did some debugging and the variable ptr is not displaying garbage. So my question is how does it return garbage? The variable ptr is global by the way, if that info helps.

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what is v? What is at? What is this->id? –  Ilya Kogan Apr 1 '11 at 22:04
    
C tag removed –  pmg Apr 1 '11 at 22:04
    
v is a vector and this->id is the index that is used to retrieve the char* in the vector object v. –  Daniel Lopez Apr 1 '11 at 22:06
    
Because I was bored. Sorry if that was misleading. –  Daniel Lopez Apr 1 '11 at 22:07
    
So you're building a String class on top of the string class? Not sure how what you're building is any better than the well-worn c++ template class. –  Joe Apr 1 '11 at 22:11

2 Answers 2

up vote 6 down vote accepted

Your str is a local variable in your operators - as soon as you return from the operator, str is destroyed, and the pointer you return points to deleted memory (the local str variable owns the memory that c_str() returns a pointer to). If you e.g. return a std::string instead of a const char * the value in str will be copied, and you can then use it in the calling function.

That said, normally operator+ returns a new object containing the result of an addition - you should likely create a new String object and return that.

share|improve this answer
    
str is global by the way. I added that change in the description. –  Daniel Lopez Apr 1 '11 at 22:05
    
Agreed. This is a very beginner mistake to make. –  Andy Finkenstadt Apr 1 '11 at 22:06
2  
It's local - std::string str = v->at(this->id); creates a new local str variable by copying from v->at(this->id) –  Erik Apr 1 '11 at 22:07
    
@Daniel Lopes: You're mixing pointers with pointed to memory - Doesn't matter that your pointer is a global, the memory it points to is still owned by the local std::string –  Erik Apr 1 '11 at 22:09
    
Thanks I solved it by making a static copy of it and works like I charm. I supsected that was the problem in the first place but I thought making ptr global would have done the job. –  Daniel Lopez Apr 1 '11 at 22:11

Your code doesn't work due to the way you handle/save the string:

You actually never modify the string that's assigned to current instance. The way you do it would work in C# (to some extent) but not in C++.

Let's do it step-by-step:

Assume this's value (i'll just refer to it as left) is "Hello", the other string's value (obj- I'll call it right) is "World". The expected behaviour of operator + would be to append right to left and return the whole string.

std::string str = v->at(this->id);

left and right are unchanged, str now has the same value as left.

str += v->at(obj.id);

left and right are unchanged,howeverstr` now contains "HelloWorld".

Now returning the pointer to str is in theory the right thing, but as Erik mentioned already, this pointer won't be valid (it could still be valid if you're lucky, but don't assume this!).

Here's how I'd implement it:

String& String::operator+(String& other) // pass the other string by value to avoid it being copied!
{
    v->at(this->id) += v->at(other->id); // append the string using std::string's + operator
    return *this; // return this object
}
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