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How can I cast an Object to an int in java?

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1  
What kind of Object? –  NullUserException Sep 7 '10 at 18:17
5  
What do you really want to do? If the Object isn't an Integer, I'm not sure what your are expecting from your cast. –  unholysampler Sep 7 '10 at 18:19
2  
first check with instanceof keyword . if true then cast it. –  Dead Programmer Sep 8 '10 at 11:04

15 Answers 15

up vote 149 down vote accepted

If you're sure that this object is an Integer :

int i = (Integer) object;

Or, starting from Java 7, you can equivalently write:

int i = (int) object;

Beware, it can throw a ClassCastException if your object isn't an Integer and a NullPointerException if your object is null.

This way you assume that your Object is an Integer (the wrapped int) and you unbox it into an int.

int is a primitive so it can't be stored as an Object, the only way is to have an int considered/boxed as an Integer then stored as an Object.


If your object is a String, then you can use the Integer.valueOf() method to convert it into a simple int :

int i = Integer.valueOf((String) object);

It can throw a NumberFormatException if your object isn't really a String with an integer as content.


Resources :

On the same topic :

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Are you sure about the NullPointerException? I thought that a null Object would just yield a null Integer.... –  Etienne de Martel Sep 7 '10 at 18:23
4  
The NullPointerException will occur during the unboxing of Integer into int –  Colin Hebert Sep 7 '10 at 18:24
    
Ah, yeah, my brain ignored the left part of the assignment... –  Etienne de Martel Sep 7 '10 at 18:27
    
Downvoter, any explanation ? –  Colin Hebert Sep 7 '10 at 19:05
1  
@Steve Kuo, Yep, exactly what I'm saying. That's why I didn't use the "cast" word. –  Colin Hebert Sep 7 '10 at 19:06

Assuming the object is an Integer object, then you can do this:

int i = ((Integer) obj).intValue();

If the object isn't an Integer object, then you have to detect the type and convert it based on its type.

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If obj is null it will throw a NullPointerException. –  Colin Hebert Sep 7 '10 at 18:25
    
and a ClassCastException if it's not an Integer object. –  Erick Robertson Sep 7 '10 at 18:27
    
No need to invoke intValue for autoboxing will invoke it for you. –  OscarRyz Sep 7 '10 at 18:35
1  
intValue is much clearer especially considering the beginner confusion between int being interchangeable with Integer. –  Steve Kuo Sep 7 '10 at 19:18
@Deprecated
public static int toInt(Object obj)
{
    if (obj instanceof String)
    {
         return Integer.parseInt((String) obj);
    } else if (obj instanceof Integer)
    {
         return ((Integer) obj).intValue();
    } else
    {
         String toString = obj.toString();
         if (toString.matches("-?\d+"))
         {
              return Integer.parseInt(toString);
         }
         throw new IllegalArgumentException("This Object doesn't represent an int");
    }
}

As you can see, this isn't a very efficient way of doing it. You simply have to be sure of what kind of object you have. Then convert it to an int the right way.

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Isn't it @Deprecated (e in stead of a)? :) Nice method though, makes no assumptions on the type of the object. –  extraneon Sep 8 '10 at 7:25
    
@extraneon: Yes, indeed, I will fix it. –  Martijn Courteaux Sep 8 '10 at 10:56
    
By the way, your regex doesn't take radix hex or oct into account. ToInt is a smart method. Bettere to try and catch NumberFormatExcepytion. –  extraneon Sep 8 '10 at 16:43

You have to cast it to an Integer (int's wrapper class). You can then use Integer's intValue() method to obtain the inner int.

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Answer:

int i = ( Integer ) yourObject;

If, your object is an integer already, it will run smoothly. ie:

Object yourObject = 1;
//  cast here

or

Object yourObject = new Integer(1);
//  cast here

etc.

If your object is anything else, you would need to convert it ( if possible ) to an int first:

String s = "1";
Object yourObject = Integer.parseInt(s);
//  cast here

Or

String s = "1";
Object yourObject = Integer.valueOf( s );
//  cast here
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You can't. An int is not an Object.

Integer is an object though, but I doubt that's what you mean.

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There's auto boxing/unboxing since Java 5. –  Bruno Sep 7 '10 at 18:19
    
@Bruno: You can't cast an Object to an int. You can cast an Object to an Integer and then assign it to an int and it will magically autounbox. But you can't cast an Object to an int. –  Jay Sep 7 '10 at 21:05
    
(continued) Personally, I think people create a lot of bad code relying on autoboxing. Like, I saw a statement the other day, "Double amount=(Double.parseDouble(stringAmount)).doubleValue();". That is, he parsed a String to get a double primitive, then executed a function against this, which forced the compiler to autobox it into a Double object, but the function was doubleValue which extracted the double primitive, which he then assigned to a Double object thus forcing an autobox. That is, he converted from primitive to object to primitive to object, 3 conversions. –  Jay Sep 7 '10 at 21:07
    
@Jay, agreed on 1st comment (sorry I wasn't clear myself). Regarding too many conversion, you're right too, but I get the impression that the JIT compiler can cope with that quite well, so it shouldn't matter that much in practice (that doesn't necessarily make it an excuse for bad code...) –  Bruno Sep 7 '10 at 22:30
1  
@Bruno The trickypart of autoboxing it that it can give you unexpected NullPointerExceptions. –  extraneon Sep 8 '10 at 7:24

If the Object was originally been instantiated as an Integer, then you can downcast it to an int using the cast operator (Subtype).

Object object = new Integer(10);
int i = (Integer) object;

Note that this only works when you're using at least Java 1.5 with autoboxing feature, otherwise you have to declare i as Integer instead and then call intValue() on it.

But if it initially wasn't created as an Integer at all, then you can't downcast like that. It would result in a ClassCastException with the original classname in the message. If the object's toString() representation as obtained by String#valueOf() denotes a syntactically valid integer number (e.g. digits only, if necessary with a minus sign in front), then you can use Integer#valueOf() or new Integer() for this.

Object object = "10";
int i = Integer.valueOf(String.valueOf(object));

See also:

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int i = (Integer) object; //Type is Integer.

int i = Integer.parseInt((String)object); //Type is String.
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Can't be done. An int is not an object, it's a primitive type. You can cast it to Integer, then get the int.

 Integer i = (Integer) o; // throws ClassCastException if o.getClass() != Integer.class

 int num = i; //Java 1.5 or higher
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This assumes that the object is an integer which it almost certainly is not. Probably want's the string solution ala Coronauts –  Bill K Sep 7 '10 at 18:20
    
And won't compile. –  Ricky Clarkson Sep 8 '10 at 6:28
    
@Ricky What part? 1.4, 1.5? –  Tom Sep 8 '10 at 12:22
    
How could it compile when you are casting an object into Object and then trying to set it to an Integer variable. –  Carlos Sep 8 '10 at 12:48
    
@Khilon. Thanks, fixed it –  Tom Sep 8 '10 at 13:12

I use a one-liner when processing data from GSON:

int i = object != null ? Double.valueOf(object.toString()).intValue() : 0;
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Its a lengthy process. Just do (int)Object instead of Double.valueOf(object.toString()).intValue(). This works only for numbers, thats what we needed. –  Sudhakar K Feb 16 at 13:03
    
@SudhakarK: (int) Object does only work if your object is a Integer. This oneliner also supports String numbers; E.G. "332". –  Jacob van Lingen Aug 8 at 7:18

If you mean cast a String to int, use Integer.valueOf("123").

You can't cast most other Objects to int though, because they wont have an int value. E.g. an XmlDocument has no int value.

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1  
Don't use Integer.valueOf("123") if all you need is a primitive instead use Integer.parseInt("123") because valueOf method causes an unnecessary unboxing. –  Kerem Baydoğan Sep 7 '10 at 18:32

I guess you're wondering why C or C++ lets you manipulate an object pointer like a number, but you can't manipulate an object reference in Java the same way.

Object references in Java aren't like pointers in C or C++... Pointers basically are integers and you can manipulate them like any other int. References are intentionally a more concrete abstraction and cannot be manipulated the way pointers can.

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int[] getAdminIDList(String tableName, String attributeName, int value) throws SQLException {
    ArrayList list = null;
    Statement statement = conn.createStatement();
    ResultSet result = statement.executeQuery("SELECT admin_id FROM " + tableName + " WHERE " + attributeName + "='" + value + "'");
    while (result.next()) {
        list.add(result.getInt(1));
    }
    statement.close();
    int id[] = new int[list.size()];
    for (int i = 0; i < id.length; i++) {
        try {
            id[i] = ((Integer) list.get(i)).intValue();
        } catch(NullPointerException ne) {
        } catch(ClassCastException ch) {}
    }
    return id;
}
// enter code here

This code shows why ArrayList is important and why we use it. Simply casting int from Object. May be its helpful.

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Please explain your answer –  Gwenc37 May 21 at 6:52

Refer This code:

public class sample 
{
  public static void main(String[] args) 
  {
    Object obj=new Object();
    int a=10,b=0;
    obj=a;
    b=(int)obj;

    System.out.println("Object="+obj+"\nB="+b);
  }
}
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first check with instanceof keyword . if true then cast it.

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