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How do I multiply 10 to an Integer object and get back the Integer object?

I am looking for the neatest way of doing this.

I would probably do it this way: Get int from Integer object, multiply it with the other int and create another Integer object with this int value.

Code will be something like ...

integerObj = new Integer(integerObj.intValue() * 10);

But, I saw a code where the author is doing it this way: Get the String from the Integer object, concatenate "0" at the end and then get Integer object back by using Integer.parseInt

The code is something like this:

String s = integerObj + "0";
integerObj = Integer.parseInt(s);

Is there any merit in doing it either way?

And what would be the most efficient/neatest way in general and in this case?

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I'd also advise you to check if using Integer is REALLY needed. Joshua pointed that using primitives is MANY MANY times faster in Effective Java. So, if you can, stick with int. –  Marcio Aguiar Sep 5 '08 at 15:54
    
Using Integer is actually a design constraint. The idea is I get an Integer object and I have to update that. So, can't do away with that :) –  Jagmal Sep 5 '08 at 17:40
    
<pedantry> Updating an existing Integer object isn't going to happen without reflection voodoo. (Integer, like other primitive-wrapper types, is immutable.) The best you can reasonably do -- and what any sane example will do -- is replace it with another object. Which is good enough for most cases, but means void modifyInteger(Integer i) won't do anything worthwhile. –  cHao Apr 15 at 2:48
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6 Answers 6

up vote 22 down vote accepted

With Java 5's autoboxing, you can simply do:

    Integer a = new Integer(2); // or even just Integer a = 2;
    a *= 10;
    System.out.println(a);
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6  
Using the Integer constructor is not recommended. Use autoboxing or valueOf() instead... –  Steven Schlansker Jan 29 '10 at 8:32
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The string approach is amusing, but almost certainly a bad way to do it.

Getting the int value of an Integer, and creating a new one will be very fast, where as parseInt would be fairly expensive to call.

Overall, I'd agree with your original approach (which, as others have pointed out, can be done without so much clutter if you have autoboxing as introduced in Java 5).

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Keep away from the second approach, best bet would be the autoboxing if you're using java 1.5, anything earlier your first example would be best.

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The solution using the String method is not so good for a variety of reasons. Some are aesthetic reasons others are practical.

On a practical front more objects get created by the String version than the more normal form (as you have expressed in your first example).

On an aesthetic note, I think that the second version obscures the intent of the code and that is nearly as important as getting it to produce the result you want.

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The problem with the second way is the way Strings are handled in Java:

  • "0" is converted into a constant String object at compile time.
  • Each time this code is called, s is constructed as a new String object, and javac converts that code to String s = new StringBuilder().append(integerObj.toString()).append("0").toString() (StringBuffer for older versions). Even if you use the same integerObj, i.e.,

    String s1 = integerObj + "0"; String s2 = integerObj + "0";

    (s1 == s2) would be false, while s1.equals(s2) would be true.

  • Integer.parseInt internally calls new Integer() anyway, because Integer is immutable.

BTW, autoboxing/unboxing is internally the same as the first method.

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Integer.parseInt(...) does not have to create an Integer object, it directly works with a primitive int. –  Paŭlo Ebermann Jul 4 '11 at 13:41
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toolkit's answer above is correct and the best way, but it doesn't give a full explanation of what is happening. Assuming Java 5 or later:

Integer a = new Integer(2); // or even just Integer a = 2;
a *= 10;
System.out.println(a); // will output 20

What you need to know is that this is the exact same as doing:

Integer a = new Integer(2); // or even just Integer a = 2;
a = a.intValue() * 10;
System.out.println(a.intValue()); // will output 20

By performing the operation (in this case *=) on the object 'a', you are not changing the int value inside the 'a' object, but actually assigning a new object to 'a'. This is because 'a' gets auto-unboxed in order to perform the multiplication, and then the result of the multiplication gets auto-boxed and assigned to 'a'.

Integer is an immutable object. (All wrapper classes are immutable.)

Take for example this piece of code:

static void test() {
    Integer i = new Integer(10);
    System.out.println("StartingMemory: " + System.identityHashCode(i));
    changeInteger(i);
    System.out.println("Step1: " + i);
    changeInteger(++i);
    System.out.println("Step2: " + i.intValue());
    System.out.println("MiddleMemory: " + System.identityHashCode(i));
}

static void changeInteger(Integer i) {
    System.out.println("ChangeStartMemory: " + System.identityHashCode(i));
    System.out.println("ChangeStartValue: " + i);
    i++;
    System.out.println("ChangeEnd: " + i);
    System.out.println("ChangeEndMemory: " + System.identityHashCode(i));
}

The output will be:

StartingMemory: 1373539035
ChangeStartMemory: 1373539035
ChangeStartValue: 10
ChangeEnd: 11
ChangeEndMemory: 190331520
Step1: 10
ChangeStartMemory: 190331520
ChangeStartValue: 11
ChangeEnd: 12
ChangeEndMemory: 1298706257
Step2: 11
MiddleMemory: 190331520

You can see the memory address for 'i' is changing (your memory addresses will be different).

Now lets do a little test with reflection, add this onto the end of the test() method:

System.out.println("MiddleMemory: " + System.identityHashCode(i));
try {
    final Field f = i.getClass().getDeclaredField("value");
    f.setAccessible(true);
    f.setInt(i, 15);
    System.out.println("Step3: " + i.intValue());
    System.out.println("EndingMemory: " + System.identityHashCode(i));
} catch (final Exception e) {
    e.printStackTrace();
}

The additional output will be:

MiddleMemory: 190331520
Step2: 15
MiddleMemory: 190331520

You can see that the memory address for 'i' did not change, even though we changed its value using reflection.
(DO NOT USE REFLECTION THIS WAY IN REAL LIFE!!)

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