-3
StackOfStrings s;
s = new StackOfStrings(100);

and this

StackOfStrings s = new StackOfStrings(100);
12

Short answer

Nothing.

Longer answer

1st bytecode generated for the first one [1]:

class Test {
  Test();
    Code:
       0: aload_0
       1: invokespecial #1                  // Method java/lang/Object."<init>":()V
       4: return

  public static void main(java.lang.String[]);
    Code:
       0: new           #2                  // class Test
       3: dup
       4: invokespecial #3                  // Method "<init>":()V
       7: astore_1
       8: return
}

2nd one: See [1].

| improve this answer | |
  • there is 2nd bitcode missing? Also... you wanted to add some links at [1]?? – Jordi Castilla Feb 2 '16 at 12:31
  • 1
    @JordiCastilla The second bytecode is referring to the first one - they're exactly the same. Reference: javap -c <class>. The [1] and [2] are placeholders of mine. – Maroun Feb 2 '16 at 12:32
  • 1
    @JordiCastilla He wants to say that both are the same, as they produce the same byte code. – dryairship Feb 2 '16 at 12:35
  • Got it!! Thanks!! 🙏 – Jordi Castilla Feb 2 '16 at 12:55
0

No difference in the way you are creating them. Only difference is that in the first example you are first declaring the variable s to be of type StackOfStrings. This means you have not yet decided what actual type of object you will create (could be a subtype of StackOfStrings) Try reading this: https://docs.oracle.com/javase/tutorial/java/javaOO/objectcreation.html

| improve this answer | |
0

Nothing, when you do this StackOfStrings s; you are not creating an object, just a reference. When you do this s = new StackOfStrings(100); you are linking the reference memory tho the new object that you created. So, when you this StackOfStrings s = new StackOfStrings(100); you are just doing the both things at the same time. So, why don't just do the second way? When you don't know if you are receive an object or create a new one. For instance:

Object o;
if (condition) {
  o = getSomeObject();
} else {
  o = new Object()
}
| improve this answer | |

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