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 have seen code which use vector,

vector<int>s;
s.push_back(11);
s.push_back(22);
s.push_back(33);
s.push_back(55);
for (vector<int>::iterator it = s.begin(); it!=s.end(); it++) {
    cout << *it << endl;
}

It is same as

for (auto it = s.begin(); it != s.end(); it++) {
    cout << *it << endl;
}

How safe is in this case the use of the auto keyword? And what about if type of vector is float? string?

share|improve this question
add comment

4 Answers 4

up vote 19 down vote accepted

The auto keyword is simply asking the compiler to deduce the type of the variable from the initialization.

Even a pre-C++0x compiler knows what the type of an (initialization) expression is, and more often than not, you can see that type in error messages.

#include <vector>
#include <iostream>
using namespace std;

int main()
{
    vector<int>s;
    s.push_back(11);
    s.push_back(22);
    s.push_back(33);
    s.push_back(55);
    for (int it=s.begin();it!=s.end();it++){
        cout<<*it<<endl;
    }
}

Line 12: error: cannot convert '__gnu_debug::_Safe_iterator<__gnu_cxx::__normal_iterator<int*, __gnu_norm::vector<int, std::allocator<int> > >, __gnu_debug_def::vector<int, std::allocator<int> > >' to 'int' in initialization

The auto keyword simply allows you to take advantage of this knowledge - if you (compiler) know the right type, just choose for me!

share|improve this answer
    
i am using visual c++ 2010 so my compiler has not any problem with auto keyword –  dato datuashvili Aug 8 '10 at 12:51
    
Nice explanation. +1 –  jalf Aug 8 '10 at 13:08
    
I especially that like that auto is a heluvalot shorter than the actual type. –  deft_code Sep 28 '10 at 15:53
    
For STL work, auto has grown on me. It's very helpful when you want, for example, to test the return value of an STL function, and that return is a pair, or something obscure. Anyone know the compiler flag on GCC needed to turn on its support for auto? –  user2548100 Dec 19 '13 at 0:23
add comment

The auto keyword gets the type from the expression on the right of =. Therefore it will work with any type, the only requirement is to initialize the auto variable when declaring it so that the compiler can deduce the type.

Examples:

auto a = 0.0f;  // a is float
auto b = std::vector<int>();  // b is std::vector<int>()

MyType foo()  { return MyType(); }

auto c = foo();  // c is MyType
share|improve this answer
5  
Though technically correct. I hope this becomes bad practice. If everybody just declares all their variables auto it will become hard for humans to read and understand (and we head down the road to untyped languages). The use of auto should be reserved for situations where we don't actually care about the type as long as it behaves in a manor that we want (for example iterators, we don't actually care what iterator we get as long as we can use it like an iterator). –  Loki Astari Aug 8 '10 at 18:48
    
@Martin: No kidding, the first time I saw a block of auto variables I thought "please die fast." Like you said, it should be used in those sort of "gimme a variable, whatever type it is" situations, not that "declare a variable, and deduce it's type from it's initializer hehehehe!" trying to be tricky crap. –  GManNickG Aug 10 '10 at 17:59
    
@sverkerw: No. I mean it is hard for humans to read. What is the type of c? Do I need to know. How does it affect my interpretation of the rest of the code. –  Loki Astari Aug 25 '10 at 19:25
add comment

auto keyword is intended to use in such situation, it is absolutely safe. But unfortunately it available only in C++0x so you will have portability issues with it.

share|improve this answer
add comment

It's additional information, and isn't an answer. But since I don't have enought reputation to comment, I only can to write here:

In C++11 you can write:

for (auto& it : s) {
    cout << it << endl;
}

instead of

for (auto it = s.begin(); it != s.end(); it++) {
    cout << *it << endl;
}

It has the same meaning.

share|improve this answer
add comment

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.