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Note this question was originally posted in 2009, before C++11 was ratified and before the meaning of the auto keyword was drastically changed. The answers provided pertain only to the C++03 meaning of auto -- that being a storage class specified -- and not the C++11 meaning of auto -- that being automatic type deduction. If you are looking for advice about when to use the C++11 auto, this question is not relevant to that question.

For the longest time I thought there was no reason to use the static keyword in C, because variables declared outside of block-scope were implicitly global. Then I discovered that declaring a variable as static within block-scope would give it permanent duration, and declaring it outside of block-scope (in program-scope) would give it file-scope (can only be accessed in that compilation unit).

So this leaves me with only one keyword that I (maybe) don't yet fully understand: The auto keyword. Is there some other meaning to it other than 'local variable?' Anything it does that isn't implicitly done for you wherever you may want to use it? How does an auto variable behave in program scope? What of a static auto variable in file-scope? Does this keyword have any purpose other than just existing for completeness?

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9 Answers 9

up vote 58 down vote accepted

auto is a storage class specifier, static, register and extern too. You can only use one of these four in a declaration.

Local variables (without static) have automatic storage duration, which means they live from the start of their definition until the end of their block. Putting auto in front of them is redundant since that is the default anyway.

I don't know of any reason to use it in C++. In old C versions that have the implicit int rule, you could use it to declare a variable

int main(void) { auto i = 1; }

To to make it valid syntax or disambiguate from an assignment expression in case i is in scope. But this doesn't work in C++ anyway (you have to specify a type). Funny enough, the C++ Standard writes:

An object declared without a storage-class-specifier at block scope or declared as a function parameter has automatic storage duration by default. [Note: hence, the auto specifier is almost always redundant and not often used; one use of auto is to distinguish a declaration-statement from an expression-statement (6.8) explicitly. —end note]

Which refers to the following scenario, which could be either a cast of a to int or the declaration of a variable a of type int having redundant parentheses around a. It is always taken to be a declaration, so auto wouldn't add anything useful here, but would for the human, instead. But then again, the human would be better off removing the redundant parentheses around a, I would say.

int(a);

With the new meaning of auto arriving with C++0x, I would discourage using it with C++03's meaning in code.

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2  
C++ compilers often used to have implicit int for return values from functions, back in the ARM days before the standard... Before the EMPIRE... –  Daniel Earwicker Jun 25 '09 at 22:21
1  
I just recognized it as my compilers way of telling me I forgot to forward-declare a function. It would tell me that my usage of a function was different from the way it was declared because of implicit int. –  Carson Myers Jun 25 '09 at 23:04
23  
The best part is that programmers used to write "auto" (four letters) to save themselves from writing "int" (three letters). –  Max Lybbert Jun 25 '09 at 23:36
21  
@Max - hey, a lot of people say "double-u-double-u-double-u" as an abbreviation of "World Wide Web". –  Daniel Earwicker Jun 26 '09 at 0:07
1  
@smichak no, "volatile" is a type qualifier. Rather than determining where to store a value, it changes the behavior of a write to and read from an object of the volatile qualified type. There can be volatile qualified stack variables (auto storage class) aswell as volatile qualified static storage duration variables (local 'static' storage class, non-local variables). Aside that, I don't know whether "register volatile" is a valid combination :) –  Johannes Schaub - litb May 13 '12 at 9:29

In C++11, auto has new meaning: it allows you to automatically deduce the type of a variable.

Why is that ever useful? Let's consider a basic example:

std::list<int> a;
// fill in a
for (auto it = a.begin(); it != a.end(); ++it) {
  // Do stuff here
}

The auto there creates an iterator of type std::list<int>::iterator.

This can make some seriously complex code much easier to read.

Another example:

int x, y;
auto f = [&]{ x += y; };
f();
f();

There, the auto deduced the type required to store a lambda expression in a variable. Wikipedia has good coverage on the subject.

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2  
Still not sure if this is a great use of auto. Code should be easy to read, not easy to write! –  DanDan Jun 14 '12 at 21:52
33  
I dunno about you but I find this much easier to read than iterator type spam. –  Overv Jun 14 '12 at 21:58
13  
And if for some reson zou decide to change class from list<int> to some other class, you dont have to search for every iterator declaration and change it. –  Jaroslav Bucko Aug 24 '12 at 10:49
2  
@KarateSnowMachine: If you wanted the const, you would use "const auto" instead of "auto". –  darth happyface Nov 13 '13 at 16:23
3  
@darth const auto it = a.begin(); would give you a const iterator, not a const_iterator. You chould still change the element, but ++it would fail to compile. To get a const_iterator, you would use auto it = a.cbegin(); –  FredOverflow Dec 14 '13 at 9:45

The auto keyword has no purpose at the moment. You're exactly right that it just restates the default storage class of a local variable, the really useful alternative being static.

It has a brand new meaning in C++0x. That gives you some idea of just how useless it was!

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1  
oh man, is that ever useless. I like the new meaning though. It makes some code a lot less verbose and redundant. –  Carson Myers Jun 25 '09 at 22:17
    
Yes, having used the equivalent in C# it will probably make a huge difference. More so in C++ if you're using expression templates where the types are so complex that they were never intended to be written out by hand. –  Daniel Earwicker Jun 25 '09 at 22:22

GCC has a special use of auto for nested functions - see here.

If you have nested function that you want to call before its definition, you need to declare it with auto.

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this is a great, albeit compiler-dependent, implementation of auto. Thanks for the research :) –  Carson Myers Jun 29 '09 at 7:19

"auto" supposedly tells the compiler to decide for itself where to put the variable (memory or register). Its analog is "register", which supposedly tells the compiler to try to keep it in a register. Modern compilers ignore both, so you should too.

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1  
Not exactly - if you declare it with "register", compilers don't let you use the address-of operator (&foo) on the variable because, well, it doesn't exist anywhere in memory (and thus has no address). –  Tim Čas Dec 12 '11 at 10:57

I use this keyword to explicitly document when it is critical for function, that the variable be placed on the stack, for stack-based processors. This function can be required when modifying the stack prior to returning from a function (or interrupt service routine). In this case I declare:

auto unsigned int auiStack[1];   //variable must be on stack

And then I access outside the variable:

#define OFFSET_TO_RETURN_ADDRESS 8     //depends on compiler operation and current automatics
auiStack[OFFSET_TO_RETURN_ADDRESS] = alternate_return_address;

So the auto keyword helps document the intent.

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In old compiler, auto was one way to declare a local variable at all. You can't declare local variables in old compilers like Turbo C without the auto keyword or some such.

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According to Stroustrup, in "The C Programming Language" (4th Edition, covering C 11), the use of 'auto' has the following major reasons (section 2.2.2) (Stroustrup words are quoted):

1)

The definition is in a large scope where we want to make the type clearly visible to readers of our code.

With 'auto' and its necessary initializer we can know the variable's type in a glance!

2)

We want to be explicit about variable's range or precision (e.g., double rather than float)

In my opinion a case that fits here, is something like this:

   double square(double d)
    {
        return d*d; 
    }

    int square(int d)
    {
        return d*d; 
    }

    auto a1 = square(3);

    cout << a1 << endl;

    a1 = square(3.3);

    cout << a1 << endl;

3)

Using 'auto' we avoid redundancy and writing long type names.

Imagine some long type name from a templatized iterator:

(code from section 6.3.6.1)

template<class T> void f1(vector<T>& arg) {
    for (typename vector<T>::iterator p = arg.begin(); p != arg.end();   p)
        *p = 7;

    for (auto p = arg.begin(); p != arg.end();   p)
        *p = 7;
}
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2  
A C++11 answer to a C++03 question –  T.E.D. Jan 15 at 19:25

The new meaning of the auto keyword in C++0x is described very nicely by Microsoft's Stephan T. Lavavej in a freely viewable/downloadable video lecture on STL found at MSDN's Channel 9 site here.

The lecture is worth viewing in its entirety, but the part about the auto keyword is at about the 29th minute mark (approximately).

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Nice, thanks. I wonder why it's still called C++0x though. –  Carson Myers Nov 19 '10 at 18:32
    
Previous standards were named C++98 and C++03, and I guess they were targeting the next standard to be finished before 2010, hence the 0x suffix, which of course no longer makes sense. –  Sabuncu Nov 19 '10 at 20:53

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