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Is there a difference in C++ between copy initialization and direct initialization?

I just started to learn C++.

To initialize a variable with a value, I came across

int a = 0;

and

int a(0);

This confuses me a lot. May I know which is the best way?

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marked as duplicate by BЈовић, Kos, utnapistim, Kyle, Jean Hominal Dec 6 '12 at 12:18

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

9  
For an built in data type like int both are same. For an custom class they might mean different. –  Alok Save Dec 6 '12 at 7:46
1  
I won't mention "int a {0}" then to avoid adding to the confusion :) –  jcoder Dec 6 '12 at 9:47
    
@J99 So is int a{0} similar to defining an integer object array of size 1 and assigning it a value of 0? –  Kent Pawar Dec 6 '12 at 10:14
    
No, it's the new c++11 way to initialize anything. It's just the same as "int a(0)" in this case. –  jcoder Dec 6 '12 at 10:19

7 Answers 7

up vote 47 down vote accepted

int a = 0; and int a(0); make no difference in the machine generated code. They are the same.

Following is the assembly code generated in Visual Studio

int a = 10;   // mov dword ptr [a],0Ah  
int b(10);    // mov dword ptr [b],0Ah  
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9  
I love the example shown in assembly code. –  Psycho Donut Dec 6 '12 at 7:58
18  
However, just because the generated code is the same, it does not mean that the language features are the same. Trying to learn the language by Black Box methods, as in "running the programs" and/or "inspecting the assembly" usually leads to massive misconceptions. –  AndreyT Dec 6 '12 at 8:15
    
@SeeJay what machine code does char c = 10; generate? I'm curious whether char and int are the same... –  Luchian Grigore Dec 6 '12 at 8:21
1  
@LuchianGrigore I've just tested it's move byte ptr [c], 0Ah In case of 8 bits it's byte, 16 bit => word, 32 bit => dword, 64 bit => qword. –  SeeJay Dec 6 '12 at 8:26
1  
For a more in detail explanation see stackoverflow.com/questions/1051379/… –  Micha Wiedenmann Dec 6 '12 at 11:31

They're both the same, so there really is no one "best way".

I personally use

int a = 0;

because I find it more clear and it's more widely used in practice.

This applies to your code, where the type is int. For class-types, the first is copy-initialization, whereas the other is direct-initialization, so in that case it would make a difference.

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2  
For class types B b(a); and B b = a; actually are same and both use copy constructor to initialize. So there's no different. B b; b=a; use assign operator and then you have completely other case. –  Dainius Dec 6 '12 at 8:35
3  
@Dainius nope, they are not. –  Luchian Grigore Dec 6 '12 at 8:37
2  
@Dainius see stackoverflow.com/questions/11222076/… –  Luchian Grigore Dec 6 '12 at 8:38
    
@LuchianGrigore: You are beast in C++. You answers are very clear and to the point. Thanks for all the good work you are doing. –  Rasmi Ranjan Nayak Dec 6 '12 at 8:39
    
#include <iostream> class A { public: A() {}; }; class B { public: B() { std::cout << "B ctr\n"; } B(const A&) { std::cout << "B ctr with a\n"; } B& operator = (const A&) { std::cout << "B operator = with A\n"; return *this; } }; int main(void) { A a; B b1(a); B b2 = a; return 0; } // output is B ctr with a for both calls, how it's not same? –  Dainius Dec 6 '12 at 9:50

There's no "best" way. For scalar types (like int in your example) both forms have exactly the same effect.

The int a(0) syntax for non-class types was introduced to support uniform direct-initialization syntax for class and non-class types, which is very useful in type-independent (template) code.

In non-template code the int a(0) is not needed. It is completely up to you whether you want to use the int a(0) syntax, or prefer to stick to more traditional int a = 0 syntax. Both do the same thing. The latter is more readable, in my opinion.

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From a practical point of view: I would only use int a = 0;.

The int a(0) may be allowed but never used in practice in itself.


I think it should not bother you on your level, but let us go further.

Let's say that a is a class, not an int.

class Demo{
public:
  Demo(){}; 
  Demo(int){};
};
Demo a;
Demo b(a);   
Demo c = a;  // clearly expressing copy-init

In this example both b(a) and c=a do the same, and I would discourage you using the fist solution. My reason is, that is looks similar to c(2) which is a construction from arguments.

There are only two valid uses of this bracket-style initialization:

  • initialization lists (Demo(int i):data(i){} if Demo has an int data member data),
  • new's: Demo *p=new Demo(a); // copy constructing a pointer
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It’s that simple. (Well, almost — there are a few things you can’t name your variables, which we’ll talk about in the next section)

You can also assign values to your variables upon declaration. When we assign values to a variable using the assignment operator (equals sign), it’s called an explicit assignment:

int a= 5; // explicit assignment

You can also assign values to variables using an implicit assignment:

int a(5); // implicit assignment

Even though implicit assignments look a lot like function calls, the compiler keeps track of which names are variables and which are functions so that they can be resolved properly.

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12  
It is not called assignment. Assignment is a reserved term in C++ terminology with a strictly defined and very specific meaning. Referring to initialization as "assignment" will only create unnecessary confusion. The proper terms for this two forms of initialization syntax are direct-initialization and copy-initialization. –  AndreyT Dec 6 '12 at 7:48
    
class A { public: A(int) {} }; class B { public: B(const A&) {}}; B b1(10); B b2 = 20; // compiles and run. If need explicit then it should be said in declaration like explicit A(int) {} –  Dainius Dec 6 '12 at 8:40

The difference is that () initialization is when you explicitly want it to take one parameter only, e.g:

You can:
int a = 44 + 2;
but you can't:
int a(44) + 2;

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7  
but you can do: int a(44+2); So that's not a significant difference. –  mousomer Dec 6 '12 at 8:35

In textbooks and literature, one is direct initialization and the other is copy initialization. But, in terms of machine code, there is no difference.

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Yup; the difference gets significant when constructors are involved –  Kos Dec 6 '12 at 11:50

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