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How can I check to make sure my variable is an int, array, double, etc...?

Edit: For example, how can I check that a variable is an array? Is there some function to do this?

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Take a look to the Reflection API. –  mschonaker Oct 22 '10 at 5:17

6 Answers 6

Java is a statically typed language, so the compiler does most of this checking for you. Once you declare a variable to be a certain type, the compiler will ensure that it is only ever assigned values of that type (or values that are sub-types of that type).

The examples you gave (int, array, double) these are all primitives, and there are no sub-types of them. Thus, if you declare a variable to be an int:

int x;

You can be sure it will only ever hold int values.

If you declared a variable to be a List, however, it is possible that the variable will hold sub-types of List. Examples of these include ArrayList, LinkedList, etc.

If you did have a List variable, and you needed to know if it was an ArrayList, you could do the following:

List y;
...
if (y instanceof ArrayList) { 
  ...its and ArrayList...
}

However, if you find yourself thinking you need to do that, you may want to re-think your approach. In most cases, if you follow object-oriented principals, you will not need to do this. There are, of course, exceptions to every rule, though.

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Actually quite easy to roll your own tester, by abusing Java's method overload ability. Though I'm still curious if there is an official method in the sdk.

Example:

class Typetester {
    void printType(byte x) {
        System.out.println(x + " is an byte");
    }
    void printType(int x) {
        System.out.println(x + " is an int");
    }
    void printType(float x) {
        System.out.println(x + " is an float");
    }
    void printType(double x) {
        System.out.println(x + " is an double");
    }
    void printType(char x) {
        System.out.println(x + " is an char");
    }
}

then:

Typetester t = new Typetester();
t.printType( yourVariable );
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5  
Not a good method IMO. What happens if I pass some arbitrary type that is not defined in your Typetester class - in this instance String, for example? –  Tash Pemhiwa Oct 7 '13 at 14:16
    
@TashPemhiwa then add String and Object to the choices. Creativity and problem solving are a programmers best assets. –  Kato Oct 1 '14 at 18:22

The first part of your question is meaningless. There is no circumstance in which you don't know the type of a primitive variable at compile time.

Re the second part, the only circumstance that you don't already know whether a variable is an array is if it is an Object. In which case object.getClass().isArray() will tell you.

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2  
I could have a hashmap from string to object, put an int in that hashmap, and pull it back out. Only thing I know is that it's an "object" and could have to check for what type it is. Not saying it's good, just saying it's possible. –  matty-d Nov 27 '13 at 0:26
    
@matty-d Of course, but that's not what he's asking about. –  EJP Jan 23 '14 at 5:11

You may work with Integer instead of int, Double instead of double, etc. (such classes exists for all primitive types). Then you may use the operator instanceof, like if(var instanceof Integer){...}

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1  
All we need is a valid use-case. –  EJP Oct 22 '10 at 4:57
    
Sounds like the most efficient approach . –  I.Tyger Mar 6 at 2:30

a.getClass().getName() - will give you the type of the value of the variable, but not the variable's type.

boolean b = a instanceof String - will give you whether or not it is an instance of a specificclass.

I took this information from: How know a variable type in java?

This can happen. I'm trying to parse a String into an int and I'd like to know if my Integer.parseInt(s.substring(a, b) is kicking out an int or garbage before I try to sum it up.

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This can happen. I'm trying to parse a String into an int and I'd like to know if my Integer.parseInt(s.substring(a, b) is kicking out an int or garbage before I try to sum it up.

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No. I don't have the reputation to make a comment. I did find an answer and posted it separately after I found more information. –  Glen Pierce Feb 16 at 15:45
1  
You should copy the contents of this answer into the other one and then delete this one. –  Frank N. Stein Feb 16 at 16:00

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