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In C++, how does one find the type of a variable?

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11  
Start by asking yourself: "Why do I need this?". –  cnicutar Jul 3 '12 at 12:28
2  
Possible duplicate of stackoverflow.com/questions/81870/print-variable-type-in-c –  theharshest Jul 3 '12 at 12:29
    
cout << typeid(variable).name() << endl; –  SRN Jul 3 '12 at 12:30
    
Use the search or google :) stackoverflow.com/questions/81870/print-variable-type-in-c Theharshest is fast :D –  Kariboo Jul 3 '12 at 12:32

5 Answers 5

up vote 14 down vote accepted

You can use the typeid operator:

#include <typeinfo>
...
cout << typeid(variable).name() << endl;
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I have int a = 5; and typeid(a).name() and it returns i... –  0x499602D2 Jul 3 '12 at 12:38
2  
@David - So i means integer on your compiler. The names returned are not specified by the standard. –  Bo Persson Jul 3 '12 at 12:59

if you have a variable

int k;

// You can get its type using

cout<<typeid(k).name()<<endl;

see following thread on SO,

Similar question

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Usually, wanting to find the type of a variable in C++ is the wrong question. It tends to be something you carry along from procedural languages like for instance C or Pascal.

If you want to code different behaviours depending on type, try to learn about e.g. function overloading and object inheritance. This won't make immediate sense on your first day of C++, but keep at it.

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Thanks. I'm coming from JavaScript and so that's why I was curious. –  0x499602D2 Jul 3 '12 at 12:36

The main difference between C++ and Javascript is that C++ is a static-typed language, wile javascript is dynamic.

In dynamic typed languages a variable can contain whatever thing, and its type is given by the value it holds, moment by moment. In static typed languages the type of a variable is declared, and cannot change.

There can be dynamic dispatch and object composition and subtyping (inheritance and virtual functions) as well as static-dispatch and supertyping (via template CRTP), but in any case the type of the variable must be known to the compiler.

If you are in the position to don't know what it is or could be, it is because you designed something as the language has a dynamic type-system.

If that's the case you had better to re-think your design, since it is going into a land not natural for the language you are using (most like going in a motorway with a caterpillar, or in the water with a car)

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#include <typeinfo>

...
string s = typeid(YourClass).name()
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