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How does following expression evaluated?

Student class :

public class Student
    private Integer id;
    // few fields here

    public Integer getId()
        return id;

    public void setId(Integer id)

    //setters and getters

And in some method :

    int studentId;

    // few lines here

    if(studentId==student.getId())  // **1. what about auto-unboxing here? Would it compare correctly? I am not sure.**
        //some operation here
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Don't use the wrapper classes unless you absolutely have to. –  mre Dec 13 '11 at 11:51
Yes. what you did would work. I'm not sure you asked anything else? –  Guillaume Dec 13 '11 at 11:52
+1 for not using the wrapper classes: bad potential side-effect includes unwanted (and hidden) NullPointerException thrown by your code –  Guillaume Dec 13 '11 at 11:56

6 Answers 6

up vote 3 down vote accepted

Yes, this will work it is equivalent to


as long is not null.

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Just out of curiosity, what are the rules of boxing and unboxing? I mean, why does Java decide to unbox the Integer rather than box the int ? –  bezmax Dec 13 '11 at 11:53
it's equivalent whether is null or not –  Maurice Perry Dec 13 '11 at 11:56
May be because int on the left? –  red1ynx Dec 13 '11 at 11:57
@Max - most of the time with (un)boxing there's a specific target type, e.g. the declared class of a method parameter or variable. In this particular case, see JLS 5.6.2 for "Numeric Promotions", which states that If any of the operands is of a reference type, unboxing conversion (§5.1.8) is performed. –  Andrzej Doyle Dec 13 '11 at 11:59
System.out.println(student.getId()) will print the int's toString() representation... –  aProgrammer Dec 13 '11 at 12:01

Yes this will work, but note!

If the Integer value id in Student is null, you will have a NullPointerException when evaluating

studentId == student.getId();

Note also that autoboxing will have some performance cost, so you should only use it if you have to.

Read more here:

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The comparison


will work, but will throw a NullPointerException if student is null.

As a rule autoboxing prefers primitives, i.e. it will convert an Integer to int where possible rather than the other way around. Your example shows one good reason for this, since equality for reference objects is tricky. So it is possible for:


to be true but

new Integer(studentId)==student.getId()

to be false, since whilst they have the same value they're not the same object.

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Yes it will work, as it will convert right operand to corresponding numeric type, according to java language specification:

If the operands of an equality operator are both of numeric type, or one is of numeric type and the other is convertible (§5.1.8) to numeric type, binary numeric promotion is performed on the operands (§5.6.2).

corresponding paragraph in jls

So actually any of the operands can be of numeric type for java to autounbox the other one.

And then §5.1.8 says that conversions include unboxing conversion.corresponing paragraph in jls

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As per specifications,

So when should you use autoboxing and unboxing? Use them only when there is an “impedance mismatch” between reference types and primitives, for example, when you have to put numerical values into a collection. It is not appropriate to use autoboxing and unboxing for scientific computing, or other performance-sensitive numerical code. An Integer is not a substitute for an int; autoboxing and unboxing blur the distinction between primitive types and reference types, but they do not eliminate it.

The only advisable cases to use the wrapper classes (Integer, etc.) are when you want to stick numeric values in a collection, or null is an acceptable value for your use-cases. That's it.

Side-effect include unwanted potential NullPointerException and decrease in performance.

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Yes it will work fine. But it is usually not advisable to use wrapper class until there is not other go.

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