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Let's first consider the following expressions in Java.

Integer temp = new Integer(1);
System.out.println(temp.equals(1));

if(temp.equals(1))
{
     System.out.println("The if block executed.");
}

These all statements work just fine. There is no question about it. The expression temp.equals(1) is evaluated to true as expected and the only statement within the if block is executed consequently.


Now, when I change the data type from Integer to Long, the statement temp1.equals(1) is unexpectedly evaluated to false as follows.

Long temp1 = new Long(1);
System.out.println(temp1.equals(1));

if(temp1.equals(1))
{
    System.out.println("The if block executed.");
}

These are the equivalent statements to those mentioned in the preceding snippet just the data type has been changed and they behave exactly opposite.

The expression temp1.equals(1) is evaluated to false and consequently, the only statement within the if block is not executed which the reverse of the preceding statements. How?

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@Sheriff Actually, documentation says that .equals returns true only if both objects are of type long. –  mc10 Dec 29 '11 at 18:00
    
@Sheriff:) I tried if(temp1.longValue()==1) and if(temp1.equals(1l) both worked as expected. –  Lion Dec 29 '11 at 18:02
    
@Lion see my answer –  Eng.Fouad Dec 29 '11 at 18:04

9 Answers 9

up vote 19 down vote accepted

You're comparing a Long to an int. The javadoc for java.lang.Long#equals says that the equals method

Compares this object to the specified object. The result is true if and only if the argument is not null and is a Long object that contains the same long value as this object.

Instead try System.out.println(new Long(1).equals(1L)); Now that you're comparing a Long to a Long instead of a Long to an Integer, it will print true.

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Would 1L work as well? –  TheLQ Dec 29 '11 at 19:09
    
@TheLQ Are you asking whether you can do new Long(1L)? Yes, you can. 1L basically represents a long type. Since the Long constructor accepts longs, it will accept 1L as the constructor argument. –  Jack Edmonds Dec 29 '11 at 19:30

The literal value 1 is not a long, it's an int. Try the above code with this instead:

System.out.println(temp1.equals(1L));

And

if (temp1.equals(1L))

As you can see, putting an L after the literal value 1 indicates that it's a long, and then the comparisons work as expected.

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According to Javadoc's page on Long, the .equals method evaluates to true only if

  1. The argument is a Long object
  2. If (1) is true, then the Long objects must have equal values

In your scenario, 1 is an int, not a Long object, so it fails (1), and therefore, evaluates to false. If you need to test to a long, use 1L instead.

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That behaviour is consistent with autoboxing converting the 1 to an Integer which then compares equal to another Integer(1). Comparing a Long to an Integer yields false.

If you would use 1L to compare against Long it would yield true.

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You can compare Long/integer values without uting equals(). This is only needed when you are comparing strings as far as I know.

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The implementation of equals() method of class Long illustrates why:

public boolean equals(Object obj) {
    if (obj instanceof Long) {
        return value == ((Long)obj).longValue();
    }
    return false;
}
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Java is being lazy.

When you perform the following comparison java will automatically cast the int to a long (as a long can contain any value an int can contain). And the comparison is between two longs and not two ints.

int i = 1;
long l = 1L;
boolean b = i == l;

Java is able to do this because the type information about i and l is known at compile time and when performing the comparison. However, when you use the boxed version the type can be known at compile time, but not when performing the comparison. This is because the comparison has to done within an equals method, and since equals takes Object as a parameter the type information is lost. Thus Java is lazy and only checks to see if two boxed numbers are equal if they are both of instances of same Number class (eg. both Integer, or both Long, or both Double, etc...).

Turns out the only fully reliable way to compare two numbers of unknown type at runtime is to convert both to strings and both to BigDecimal and then to use the method compareTo (and not equals). Though if you know you are only ever going to get longs and ints then life is simpler as you can just do the following.

Number n0 = new Long(1L);
Number n1 = new Integer(1);
boolean equal = n0.longValue() == n1.longValue();
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The reason you can do that comparison is because of autoboxing in Java.

The actual method you are calling is this:

http://docs.oracle.com/javase/1.4.2/docs/api/java/lang/Long.html#equals(java.lang.Object)

which is comparing your Long object to some other Object, not to an actual primitive int.

What happens when you call the method is that your primitive integer(1) is being autoboxed into an Object(Integer) so then you are effectively calling:

new Long(1).equals(new Integer(1));

which is why it fails.

This is why if you call

new Long(1).equals(1L) 

this would work, because Java will autobox the 1L (primitive long, not int) into a Long object, not an Integer object.

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Long temp1 = new Long(1); System.out.println(temp1.equals(1));

if(temp1.equals(1)) { System.out.println("The if block executed."); }

in this code temp1.equals(1) is comparing a Long object to Integer object which gives the result false ,we can correct it by using 1L instead of 1 ,,,eg temp1.equals(1L), by doing this we are comparing Long object with a Long and gives result TRUE

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