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When should I explicitly write this->member in a method of a class?

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9  
I'm sure this is a dupe, but it is of course unsearchable. Not for the first time, I wish the this pointer was called self! –  anon Jun 14 '09 at 18:11
2  
Not only that, I wish it were a reference. –  rlbond Jun 14 '09 at 18:25
1  
Same. :| Here is why, by the way: research.att.com/~bs/bs_faq2.html#this –  GManNickG Jun 14 '09 at 18:26
    
Yup, duplicate. See questions 146989, 577243. SO Search tip: you can also search for strings you expect in the answer. In this case I used "template name lookup" –  MSalters Jun 15 '09 at 7:54
7  
This method obviously doesn't work if the person doesn't know the answer. –  ASk Jun 15 '09 at 16:10
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12 Answers

up vote 37 down vote accepted

Usually, you do not have to, this-> is implied.

Sometimes, there is a name ambiguity, where it can be used to disambiguate class members and local variables. However, here is a completely different case where this-> is explicitly required.

Consider the following code:

template<class T>
struct A {
   int i;
};

template<class T>
struct B : A<T> {

    int foo() {
        return this->i;
    }

};

int main() {
    B<int> b;
    b.foo();
}

If you omit this->, the compiler does not know how to treat i, since it may or may not exist in all instantiations of A. In order to tell it that i is indeed a member of A<T>, for any T, the this-> prefix is required.

Note: it is possible to still omit this-> prefix by using:

template<class T>
struct B : A<T> {

    using A<T>::i; // explicitly refer to a variable in the base class

    int foo() {
        return i; // i is now known to exist
    }

};
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1  
I'm glad someone pointed this one out. –  Michael Burr Jun 14 '09 at 18:31
3  
Nice use of using declaration :) –  Faisal Vali Jun 14 '09 at 18:42
    
This is a particularly nasty case. I've been bitten by it before. –  Jason Baker Jun 14 '09 at 19:53
1  
This might be a silly question, but I don't understand why i might not exist in A. Could I get an example? –  Cam Jackson Dec 19 '13 at 1:08
    
@CamJackson I tried the code on visual studio. the results are the same no matter "this->" existed or not. Any idea? –  Peng Zhang Jan 12 at 10:57
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If you declare a local variable in a method with the same name as an existing member, you will have to use this->var to access the class member instead of the local variable.

#include <iostream>
using namespace std;
class A
{
    public:
        int a;

        void f() {
            a = 4;
            int a = 5;
            cout << a << endl;
            cout << this->a << endl;
        }
};

int main()
{
    A a;
    a.f();
}

prints:

5
4

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+1 for the scope clarification corner case –  DarkSquid Jun 14 '09 at 18:12
    
I would better use cout << A::a << endl; instead. ``this" is unimportant in this case. –  siddhant3s Jun 15 '09 at 0:15
    
I would rather just avoid the name clash with conventions like "m_a" or "a_". –  Tom Jun 15 '09 at 5:28
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There are several reasons why you might need to use this pointer explicitly.

  • When you want to pass a reference to your object to some function.
  • When there is a locally declared object with the same name as the member object.
  • When you're trying to access members of dependent base classes.
  • Some people prefer the notation to visually disambiguate member accesses in their code.
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  1. Where a member variable would be hidden by a local variable
  2. If you just want to make it explictly clear that you are calling an instance method/variable


Some coding standards use approach (2) as they claim it makes the code easier to read.

Example:
Assume MyClass has a member variable called 'count'

void MyClass::DoSomeStuff(void)
{
   int count = 0;

   .....
   count++;
   this->count = count;
}
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Although I usually don't particular like it, I've seen others use this-> simply to get help from intellisense!

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You need to use this to disambiguate between a parameters/local variables and member variables.

class Foo
{
protected:
  int myX;

public:
  Foo(int myX)
  {
    this->myX = myX; 
  }
};
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You only have to use this-> if you have a symbol with the same name in two potential namespaces. Take for example:

class A {
public:
   void setMyVar(int);
   void doStuff();

private:
   int myVar;
}

void A::setMyVar(int myVar)
{
  this->myVar = myVar;  // <- Interesting point in the code
}

void A::doStuff()
{
  int myVar = ::calculateSomething();
  this->myVar = myVar; // <- Interesting point in the code
}

At the interesting points in the code, referring to myVar will refer to the local (parameter or variable) myVar. In order to access the class member also called myVar, you need to explicitly use "this->".

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One other case is when invoking operators. E.g. instead of

bool Type::operator!=(const Type& rhs)
{
    return !operator==(rhs);
}

you can say

bool Type::operator!=(const Type& rhs)
{
    return !(*this == rhs);
}

Which might be more readable. Another example is the copy-and-swap:

Type& Type::operator=(const Type& rhs)
{
    Type temp(rhs);
    temp.swap(*this);
}

I don't know why it's not written swap(temp) but this seems to be common.

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There are few cases where using this must be used, and there are others where using the this pointer is one way to solve a problem.

1) Alternatives Available: To resolve ambiguity between local variables and class members, as illustrated by @ASk.

2) No Alternative: To return a pointer or reference to this from a member function. This is frequently done (and should be done) when overloading operator+, operator-, operator=, etc:

class Foo
{
  Foo& operator=(const Foo& rhs)
  {
    return * this;
  }
};

Doing this permits an idiom known as "method chaining", where you perform several operations on an object in one line of code. Such as:

Student st;
st.SetAge (21).SetGender (male).SetClass ("C++ 101");

Some consider this consise, others consider it an abomination. Count me in the latter group.

3) No Alternative: To resolve names in dependant types. This comes up when using templates, as in this example:

#include <iostream>


template <typename Val>
class ValHolder
{
private:
  Val mVal;
public:
  ValHolder (const Val& val)
  :
    mVal (val)
  {
  }
  Val& GetVal() { return mVal; }
};

template <typename Val>
class ValProcessor
:
  public ValHolder <Val>
{
public:
  ValProcessor (const Val& val)
  :
    ValHolder <Val> (val)
  {
  }

  Val ComputeValue()
  {
//    int ret = 2 * GetVal();  // ERROR:  No member 'GetVal'
    int ret = 4 * this->GetVal();  // OK -- this tells compiler to examine dependant type (ValHolder)
    return ret;
  }
};

int main()
{
  ValProcessor <int> proc (42);
  const int val = proc.ComputeValue();
  std::cout << val << "\n";
}

4) Alternatives Available: As a part of coding style, to document which variables are member variables as opposed to local variables. I prefer a different naming scheme where member varibales can never have the same name as locals. Currently I'm using mName for members and name for locals.

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The other uses for this (as I thought when I read the summary and half the question... .), disregarding (bad) naming disambiguation in other answers, are if you want to cast the current object, bind it in a function object or use it with a pointer-to-member.

// casting

void Foo::bar() {
    misc_nonconst_stuff();
    const Foo* const_this = this;
    this->bar(); // calls const version
} 

void Foo::bar() const {}

// binding

void Foo::baz() {
     for_each(m_stuff.begin(), m_stuff.end(),  bind(&Foo:framboozle, this, _1));        
} 

void Foo::framboozle(StuffUnit& su) {}

std::vector<StuffUnit> m_stuff;

// ptr-to-member

void Foo::boz() {
    bez(&Foo::bar);
    bez(&Foo::baz);
} 

void Foo::bez(void (Foo::*func_ptr)()) {
    for (int i=0; i<3; ++i) {
        (this->*func_ptr)();
    }
}

Hope it helps to show other uses of this than just this->member.

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I found another interesting case of explicit usage of the "this" pointer in the Effective C++ book.

For example, say you have a const function like

  unsigned String::length() const

You don't want to calculate String's length for each call, hence you want to cache it doing something like

  unsigned String::length() const
  {
    if(!lengthInitialized)
    {
      length = strlen(data);
      lengthInitialized = 1;
    }
  }

But this won't compile - you are changing the object in a const function.

The trick to solve this requires casting this to a non-const this:

  String* const nonConstThis = (String* const) this;

Then, you'll be able to do in above

  nonConstThis->lengthInitialized = 1;
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Or you could make length mutable, or even put it in a nested struct. Casting away constness is almost never a good idea. –  Richard J. Ross III Feb 4 '13 at 18:21
    
Please don't. If the member is to be changed from const member functions, the it should be mutable. Otherwise you are making life more complicated for you an other maintainers. –  David Rodríguez - dribeas Feb 4 '13 at 18:24
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Ok, after reading the comment I think I understand the problem. I was thinking the question was whenever to access member field or method via "this" we have to use -> operator. Probably I misunderstand the question, but the answer wasn't totally incorrect, you may to use it always in order to avoid ambiguity, but in general case you need it to explicitly refer to right scope of variable of instance of the class which "this" is pointing.

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1  
This is just wrong, you don't always have to put this-> before anything. –  GManNickG Jun 14 '09 at 18:06
    
Can you explain yourself more detailed, since you've downvoted me twice on same answer? –  Artem Barger Jun 14 '09 at 18:09
    
I've seen java guys do this when writing C++...but no, "this->" is assumed when referencing members of the same class. –  DarkSquid Jun 14 '09 at 18:10
1  
This answer is just wrong. –  PaV Jun 14 '09 at 18:12
    
@DarkSquid, not the class but instance. –  Artem Barger Jun 14 '09 at 18:12
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