Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm new to c++ and I'm having difficulties with constructor and classes. So, here is my header file:

#pragma once
#include <string>
using namespace std;
class test
{

    private:
    string name;
    int number;

public:

    test();
    test(string i,int b);
};

This is cpp file:

#include "test.h"
#include <string>
using namespace std;


test::test(){}

test::test(string i,int b){
    this->name=i;
    this->number=b;
}

now, when I try to call

test t=new test("rrr",8);

I get:

1   IntelliSense: no suitable constructor exists to convert from "test *" to "test" 

So, whats the thing with classes having * in their name ( for instance, classes without .cpp file don't have asterix, all others do)? And what do I do wrong?

share|improve this question

6 Answers 6

up vote 8 down vote accepted

I imagine you're coming from a Java/C# background. t is not a reference type here, it's a value type. new returns a pointer to an object. So you need any of the following:

test t = test("rrr", 8);
test t("rrr", 8);
test *t = new test("rrr", 8);

If you're not yet familiar with pointers, then definitely don't use the last one! But understanding the semantics of pointers is fairly critical; I recommend reading the relevant chapter(s) in your textbook...

share|improve this answer
    
Nice, your answer is much better than mine :) +1 –  Kiril Kirov Mar 26 '13 at 13:01
    
tnx a lot. u guessed right, i did programming in java and c# so im i bit struggling with c++ :) .... –  klo Mar 26 '13 at 13:08
    
@klo If you try to program C++ like you programmed Java you will make loads of mistakes. They are not very similar at all. –  john Mar 26 '13 at 13:26

So, whats the thing with classes having "*" in their name ( for instance, classes without .cpp file dont have asterix, all others do)???

You definitely need to learn about pointers. test * and test are two completely different types in C++. Here's two variables with those types:

test t;
test* p;

Here, t has type test, and p as type test*. We describe test* as "pointer to test".

You can often think of a pointer as being the memory address of an object. So in p, since it is a pointer, we could store the memory address of t, which is a test. To get the address of an object, we use the unary & operator, like so:

test t;
test* p = &t;

Note that t is a test object. You didn't need to say new test(). This is where C++ differs from other languages that you might have used, like C# and Java. In the above C++ code, t is a test object.

However, you can create objects with new test(), so what's the difference?

test t; creates a test object with automatic storage duration. This means it is destroyed at the end of its scope (often the function is being declared within).

new test() creates a test object with dynamic storage duration. This means you have to destroy the object manually, otherwise you'll have a memory leak. This expression returns a pointer and so you can initialise a pointer object with it:

test* p = new test();

So now let's look at your problem:

test t=new test("rrr",8);

We now know that new test("rrr", 8) returns a pointer to test (a test*). However, you're trying to assign it to a test object. You simply can't do this. One of them is an address and the other is a test. Hence the compiler says "no suitable constructor exists to convert from test * to test." Makes sense now, doesn't it?

Instead, you should prefer to use automatic storage duration. Only use new if you really really need to. So just do:

test t("rrr", 8);
share|improve this answer
test t=new test("rrr",8);

must be

//  v
test* t=new test("rrr",8);

So, whats the thing with classes having "*" in their name

* is used to indicate a pointer, it's not in the name of the class. But it's a big topic, so you should do some reseach on this.

share|improve this answer

* is not part of the name, it's a modifier denoting, that the object is a pointer. A pointer is a variable holding address to some place in memory, where the actual object is stored. Some basics:

int i = 5;
int * pI = &i;

int * pI means, that you want to declare a pointer to place in memory, where an int is held. &i means, that you want to retrieve a pointer to variable. So now pI holds address in memory, where i is stored. Now you can dereference a pointer - get to value of the pointer:

int j = *pI;

Now you tell the compiler, that it should go to the address pointed to by pI and retreive its contents (since pI is a pointer to int, compiler will assume, that there's an int there).

Now, back to your example. new operator allocates memory dynamically for an object, so:

new test("rrr", 8);

results in allocating a memory for test class, calling its constructor with parameters "rrr" and 8 and returning a pointer to allocated memory. That's why you cannot assign it to test variable: new operator in this case returns a test *.

Try this code:

test * t = new test("rrr", 8);
share|improve this answer

You did not define t as a pointer:

test* t=new test("rrr",8);

Or just

test t = test("rrr",8);
share|improve this answer
T* t = new T;
//     ^^^

When new is used in this object construction, it denotes the creation of a pointer. What are doing is dynamically allocating memory which I'm sure you didn't mean to do. The Rather, typical stack allocated object construction is done simply like this:

T t;

Even if you had intended on creating a pointer and allocating the memory, you did it the wrong way. A pointer is created with the * symbol, which you lacked in your code. Secondly, when you're done using the memory you created, you must remember to delete/delete[] your code. delete[] is used on dynamically allocated arrays. So this is how it would look for your pointer:

delete t;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.