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I was trying to replicate a bug by using the same instance of SimpleDateFormat across multiple threads. However I got stuck with another problem and did not find any answers to it.

This simple code block replicates the issues I am seeing.

DateFormat d1 = new SimpleDateFormat("ddMMyyyy");
DateFormat d2 = new SimpleDateFormat("ddMMyyyy");
DateFormat d3 = new SimpleDateFormat("ddMMyy");
System.out.println("d1 = " + d1);
System.out.println("d2 = " + d2);
System.out.println("d3 = " + d3);

The results of this operations under java 7 (1.7_0_21) is as follows

d1 = java.text.SimpleDateFormat@c5bfbc60
d2 = java.text.SimpleDateFormat@c5bfbc60
d3 = java.text.SimpleDateFormat@b049fd40

As you can see that although I am creating new objects for d1 and d2 they end up being the same reference. d3 ends up being a new instance as pattern is different.

Does java compile/runtime do this optimization? Any pointers will be helpful

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2  
Are they actually the same instance (with ==)? –  assylias May 24 '13 at 9:58
2  
And to answer the last question: no, a new in Java will always result in a new object (unless it results in an exception). The JVM is not allowed to optimize that away. –  Joachim Sauer May 24 '13 at 10:34

3 Answers 3

up vote 14 down vote accepted

SimpleDateFormat nor DateFormat (SimpleDateFormat superclass) nor Format (DateFormat superclass) have a toString() implemented, so the toString() from the Object class is actually executed, whose code is :

public String toString() {
    return getClass().getName() + "@" + Integer.toHexString(hashCode());
}

Now, SimpleDateFormat hashCode is generated:

public int hashCode()
{
    return pattern.hashCode();
    // just enough fields for a reasonable distribution
}

Which means that if you create numerous SimpleDateFormat instances with the same pattern, like in your case, they will have the same hashCode and hence toString() will return the same for these instances.

Moreover, as it has been spotted by rixmath, SimpleDateFormat instances with the same pattern will also be equal.

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I think you did not get his question. He is asking why are the both references(d1,d2) pointing to the same SimpleDateFormat object. Take a look at its hashcode. It is same. –  Ankur Shanbhag May 24 '13 at 9:57
    
@Ankur although same hashcode does not imply same instance. –  assylias May 24 '13 at 10:00
    
Right, but that's not the question. He's puzzled why two variables point to the same object when one would expect differently. docs.oracle.com/javase/6/docs/api/java/lang/… –  Karl Kildén May 24 '13 at 10:02
    
Thanks. I should have digged a bit more before asking this. They indeed are separate references. (Just debugged this code and found it.) –  rixmath May 24 '13 at 10:03
    
@assylias Really, I guess I always thought so. –  Karl Kildén May 24 '13 at 10:03

SimpleDateFormat actually implements hashCode by returning the hashcode of the pattern.

You can verify that there are actually distinct objects by using System.identityHashCode():

System.out.println("d1 = " + d1 + " / " + System.identityHashCode(d1));
System.out.println("d2 = " + d2 + " / " + System.identityHashCode(d2));
System.out.println("d3 = " + d3 + " / " + System.identityHashCode(d3));

This will print 3 different values.

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1  
The identity hash code of two distinct objects may also be the same. The == operator should be used instead to verify that two objects are distinct ones. –  SpaceTrucker May 24 '13 at 11:40
    
@SpaceTrucker: that's right, it may be the same, but it's very unlikely. –  Joachim Sauer May 24 '13 at 11:43

They are different instances, try this

    DateFormat d1 = new SimpleDateFormat("ddMMyyyy");
    DateFormat d2 = new SimpleDateFormat("ddMMyyyy");
    System.out.println(d1 == d2);

it prints

false

as for the same java.text.SimpleDateFormat@c5bfbc60, they are based on class name and hashCode. According to Object.hashCode API it does not necessarily return distinct values for distinct objects

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