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Consider the functions:

void foo(int a = 3)//named default parameter
void foo1(int = 3)//unnamed default parameter

I understand the need of the first function.(The value of "a" is 3 and it can be used in the program). But the 2nd function(which is not an error) has 3 initialized to nothing. How exactly do i use this value , if i can use this value...

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4  
You normally put default parameters in the declaration. Often times you'll have both a declaration and a definition. –  chris Jan 27 '13 at 6:26

2 Answers 2

In function declaration/definition, a parameter may have or have not a name, this also applies to a parameter with default value.

But to use a parameter inside a function, a name must be provided.

Normally when declare a function with default parameter

void foo1(int = 3)//unnamed default parameter

In function definition

void foo1(int a)
{
   std::cout << a << std::endl;
}

Then you can call

foo1();   // the same as call foo1(3)
foo1(2);
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Yep. Though whether this is "A Good Idea" is completely subjective. –  Lightness Races in Orbit Jan 27 '13 at 8:34

In both cases 3 is assigned to an int variable that will be determined on function definition. so in later case - void foo1(int = 3); // 3 is being assigned to an int - as at declaration variable name is not required

you can relate this to - void fun(int,int); NOTE: not from default arguments point of view but from function declaration point of view

// here we have declared two int variables and its not compulsory to give its name at function declaration time.

EDIT:

As pointed out by @chethan - void foo1(int = 3){ } is valid in function definition also, but then again whats the use of doing something that you can't use later on (inside function body). for ex:

void foo1 (int a, int =2)
{
// do something
// here you wont be able to use your second argument if you haven't gave it any name
}

so I think its pointless "Not to give argument name in function definition".

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void foo1(int = 3) is possible even in definition. –  Chethan Jan 27 '13 at 6:39

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