86

I found some strange exception:

java.lang.ClassCastException: java.lang.Integer 
 cannot be cast to java.lang.String

How it can be possible? Each object can be casted to String, doesn't it?

The code is:

String myString = (String) myIntegerObject;

Thanks.

  • 11
    "Each object can be casted to String" -- This is wrong. Rather, every object has a toString() method that will convert it to a String. As several answers point out, that is what you should use. (For some objects, toString() doesn't return a very useful string, but for Integer, it probably does exactly what you want.) – Ted Hopp Jan 23 '12 at 14:53
  • 1
    ""+myIntegerObject also works :) – Salman Abbas Apr 15 '14 at 2:48
  • In my case, this error was reported in fault... I was using Integer.toString(IntegerObject) and it gave me this error, but it's happy with IntegerObject.toString()... And yes, that really is an Integer, and I really did get this error... – Andrew Mar 7 at 19:43
  • Scratch that, only String.valueOf() actually works... – Andrew Mar 7 at 19:50

11 Answers 11

138

Why this is not possible:

Because String and Integer are not in the same Object hierarchy.

      Object
     /      \
    /        \
String     Integer

The casting which you are trying, works only if they are in the same hierarchy, e.g.

      Object
     /
    /
   A
  /
 /
B

In this case, (A) objB or (Object) objB or (Object) objA will work.

Hence as others have mentioned already, to convert an integer to string use:

String.valueOf(integer), or Integer.toString(integer) for primitive,

or

Integer.toString() for the object.

  • What about (A) objA, (B) objB and (B) objA? – su-ex Dec 17 '16 at 22:21
  • @su-ex (B) objA won't work. (A) objA and (B) objB will work. – Bhushan Dec 18 '16 at 8:16
  • Sorry, you're right, this gives a ClassCastException. The other two are quite useless but will work of course. – su-ex Dec 18 '16 at 17:10
45

No, Integer and String are different types. To convert an integer to string use: String.valueOf(integer), or Integer.toString(integer) for primitive, or Integer.toString() for the object.

  • 1
    @Ted Hopp - which one? If it is a primitive use the first two, if it is the Integer object use the third one. – Petar Minchev Jan 23 '12 at 14:50
  • Oops. I didn't see that last phrase of your answer. I'm deleting my comment and upvoting this answer. – Ted Hopp Jan 23 '12 at 14:59
  • 1
    Similar (but not duplicate) issue: an 'int' cannot be cast to a String because an 'int' is not an object, much less in the String hierarchy. – Kelly S. French Jan 23 '12 at 15:03
20

For int types use:

int myInteger = 1;
String myString = Integer.toString(myInteger);

For Integer types use:

Integer myIntegerObject = new Integer(1);
String myString = myIntegerObject.toString();
  • This forces an unnecessary unboxing operation. – Ted Hopp Jan 23 '12 at 14:49
  • @Ted Hopp see my edits to clarify when to use each type of toString() method – DRiFTy Jan 23 '12 at 15:05
  • I think that last line should be String myString = myIntegerObject.toString(); – Ted Hopp Jan 23 '12 at 16:19
  • Haha oops, yep! Thank you! – DRiFTy Jan 23 '12 at 16:31
  • 1
    Much improved. +1 – Ted Hopp Jan 23 '12 at 16:38
6

No. Every object can be casted to an java.lang.Object, not a String. If you want a string representation of whatever object, you have to invoke the toString() method; this is not the same as casting the object to a String.

5

You can't cast explicitly anything to a String that isn't a String. You should use either:

"" + myInt;

or:

Integer.toString(myInt);

or:

String.valueOf(myInt);

I prefer the second form, but I think it's personal choice.

Edit OK, here's why I prefer the second form. The first form, when compiled, could instantiate a StringBuffer (in Java 1.4) or a StringBuilder in 1.5; one more thing to be garbage collected. The compiler doesn't optimise this as far as I could tell. The second form also has an analogue, Integer.toString(myInt, radix) that lets you specify whether you want hex, octal, etc. If you want to be consistent in your code (purely aesthetically, I guess) the second form can be used in more places.

Edit 2 I assumed you meant that your integer was an int and not an Integer. If it's already an Integer, just use toString() on it and be done.

  • OP is starting with an Integer object. It's much more efficient to just do myIntegerObject.toString(). – Ted Hopp Jan 23 '12 at 16:21
4

You should call myIntegerObject.toString() if you want the string representation.

4

Objects can be converted to a string using the toString() method:

String myString = myIntegerObject.toString();

There is no such rule about casting. For casting to work, the object must actually be of the type you're casting to.

2

Casting is different than converting in Java, to use informal terminology.

Casting an object means that object already is what you're casting it to, and you're just telling the compiler about it. For instance, if I have a Foo reference that I know is a FooSubclass instance, then (FooSubclass)Foo tells the compiler, "don't change the instance, just know that it's actually a FooSubclass.

On the other hand, an Integer is not a String, although (as you point out) there are methods for getting a String that represents an Integer. Since no no instance of Integer can ever be a String, you can't cast Integer to String.

1

In your case don't need casting, you need call toString().

Integer i = 33;
String s = i.toString();
//or
s = String.valueOf(i);
//or
s = "" + i;

Casting. How does it work?

Given:

class A {}
class B extends A {}

(A)
  |
(B)

B b = new B(); //no cast
A a = b;  //upcast with no explicit cast
a = (A)b; //upcast with an explicit cast
b = (B)a; //downcast

A and B in the same inheritance tree and we can this:

a = new A();
b = (B)a;  // again downcast. Compiles but fails later, at runtime: java.lang.ClassCastException

The compiler must allow things that might possibly work at runtime. However, if the compiler knows with 100% that the cast couldn't possibly work, compilation will fail.
Given:

class A {}
class B1 extends A {}
class B2 extends A {}

        (A)
      /       \
(B1)       (B2)

B1 b1 = new B1();
B2 b2 = (B2)b1; // B1 can't ever be a B2

Error: Inconvertible types B1 and B2. The compiler knows with 100% that the cast couldn't possibly work. But you can cheat the compiler:

B2 b2 = (B2)(A)b1;

but anyway at runtime:

Exception in thread "main" java.lang.ClassCastException: B1 cannot be cast to B2

in your case:

          (Object)
            /       \
(Integer)       (String)

Integer i = 33;
//String s = (String)i; - compiler error
String s = (String)(Object)i;

at runtime: Exception in thread "main" java.lang.ClassCastException: java.lang.Integer cannot be cast to java.lang.String

0

Use String.valueOf(integer).

It returns a string representation of integer.

  • As Petar says above, that should be String.valueOf(integer) – Urs Reupke Jan 23 '12 at 14:47
  • @UrsReupke: thanks, actually when i was trying to add the link i re-wrote it wrong. – RanRag Jan 23 '12 at 14:50
0

Use .toString instead like below:

String myString = myIntegerObject.toString();

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