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Any way to cast java.lang.Double to java.lang.Integer?

It throws an exception

"java.lang.ClassCastException: java.lang.Double incompatible with java.lang.Integer"

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10 Answers 10

up vote 117 down vote accepted

A Double is not an Integer, so the cast won't work. Note the difference between the Double class and the double primitive. Also note that a Double is a Number, so it has the method intValue, when you can use to get an primitive int.

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1  
Ok not to cast. I need to get Integer object from Double, not 13.22222 but 13, for example. –  4lex1v Feb 1 '12 at 19:57
26  
just call intValue() then. –  hvgotcodes Feb 1 '12 at 19:58
1  
Don't forget to handle nulls. –  pimlottc Mar 27 at 20:01
1  
Note that this merely returns the integer part of the Double, so for 13.666667 or even 13.9, you'll get 13, not 14. If you want the nearest integer, refer to my answer: stackoverflow.com/a/24816336/1450294 –  Michael Scheper Jul 18 at 2:18

Double doubleValue; //double with D not small d.

if you want to round number easily you can use

int intValue = doubleValue.intValue();

This will round automatically the doubleValue but the result it's an integer. Hope it solve other problems.

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I think it's impossible to understand the other answers without covering the pitfalls and reasoning behind it.

You cannot directly cast an Integer directly to a Double object. Also Double and Integer are immutable objects so you cannot modify them in any way. However each numeric class has a primitive alternative (Double vs double, Integer vs int, ...).

So the strategy should be:

  1. Convert the Double object to a primitive double. (= "unboxing")
  2. Convert the primitive double to a primitive int. (= "casting")
  3. Convert the primitive integer back to an Integer object. (= "boxing")

In Java:

// starting point
Double myDouble = Double.valueOf(10.0);

// step 1: unboxing
double dbl = myDouble.intValue();

// step 2: casting
int intgr = (int) dbl;

// step 3: boxing
Integer val = Integer.valueOf(intgr);

Actually there is a shortcut. You can unbox immediately from a Double straight to a primitive int. That way, you can skip step 2 entirely.

Double myDouble = Double.valueOf(10.0);
Integer val = Integer.valueOf(myDouble.intValue()); // the simple way

However, there are a lot of things that are not covered in the code above. The code-above is not null-safe.

Double myDouble = null;
Integer val = Integer.valueOf(myDouble.intValue()); // will throw a NullPointerException

// a null-safe solution:
Integer val = (myDouble == null)? null : Integer.valueOf(myDouble.intValue());

Now it works fine for most values. However Integers have a very small range (min/max value) compared to a Double. On top of that, Doubles can also hold "special values", that Integers cannot:

  • 1/0 = +infinity
  • -1/0 = -infinity
  • 0/0 = undefined (NaN)

So, depending on the application, you may want to add some filtering to avoid nasty Exceptions.

Then, the next shortcoming is the rounding strategy. By default Java will always round down. Rounding down makes perfect sense in all programming languages. Basically Java is just throwing away some of the bytes. In financial applications you will surely want to use economical rounding (e.g.: round(0.5) = 1 and round(0.4) = 0).

// null-safe and with better rounding
long rounded = (myDouble == null)? 0L: Math.round(myDouble.doubleValue());
Integer val = Integer.valueOf(rounded);

You could be tempted to use auto-(un)boxing in this, but I wouldn't. If you're already stuck now, then the next things will not be that obvious neither. If you don't understand the inner workings of auto-(un)boxing then please don't use it.

Integer val1 = 10; // works
Integer val2 = 10.0; // doesn't work

Double val3 = 10; // doesn't work
Double val4 = 10.0; // works

Double val5 = null; 
double val6 = val5; // doesn't work

I guess the following shouldn't be a surprise. But if it is, then you may want to read some article about casting in Java.

double val7 = (double) 10; // works
Double val8 = (Double) Integer.valueOf(10); // doesn't work
Integer val9 = (Integer) 9; // pure nonsense

Also, don't be tempted to use new Integer() constructor (as some other answers propose). The valueOf() methods are better because they use caching. It's a good habit to use these methods, because from time to time they will save you some memory.

long rounded = (myDouble == null)? 0L: Math.round(myDouble.doubleValue());
Integer val = new Integer(rounded); // waste of memory
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Indeed, the simplest way is to use intValue(). However, this merely returns the integer part; it does not do any rounding. If you want the Integer nearest to the Double value, you'll need to do this:

Integer integer = Integer.valueOf((int) Math.round(double)));

And don't forget the null case:

Integer integer = double == null ? null : Integer.valueOf((int) Math.round(double)));

Math.round() handles odd duck cases, like infinity and NaN, with relative grace.

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Double d = 100.00;
Integer i = d.intValue();

One should also add that it works with autoboxing

Otherwise, you get an int (prmitive) and then can get Integer from there

Integer i = new Integer(d.intValue());
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Don't use new Integer(int), instead use Integer.valueOf(int) , which has a cache for small integers, such as this one. –  bvdb Oct 27 at 11:52

I see three possibilities. The first two cut off the digits, the last one rounds to the nearest Integer.

double d = 9.5;
int i = (int)d;
//i = 9

Double D = 9.5;
int i = Integer.valueOf(D.intValue());
//i = 9

double d = 9.5;
Long L = Math.round(d);
int i = Integer.valueOf(L.intValue());
//i = 10
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You need to explicitly get the int value using method intValue() like this:

Double d = 5.25;
Integer i = d.intValue(); // i becomes 5

Or

double d = 5.25;
int i = (int) d;
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5  
Thank you. Very clear. The accepted answer, for me, feels like scolding for asking a silly question. But your answer is very generous. –  Buddhika Ariyaratne Jul 3 at 7:39
    
What happens when the double value is outside of the integer range? (like 2^33) –  nikdeapen Oct 3 at 1:52
    
Any double value > 2^31 - 1 (Integer.MAX_VALUE) will overflow. –  anubhava Oct 3 at 4:41
double a = 13.34;
int b = (int) a;

System.out.println(b); //prints 13
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The question was specifically about the wrapper classes. This answer is about primitives. –  Michael Scheper Sep 25 at 19:56

Like this:

Double foo = 123.456;
Integer bar = foo.intValue();
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Double and Integer are wrapper classes for java primitives for double and int respectively. You can cast between those, but you will lose the floating point. ie. 5.4 casted to an int will b 5. if you cast it back, it will be 5.0.

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