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I have code like this:

this.elements = elements;

Where elements is a List. Is the list copied or is it just pointer copy and both will represent the same list?

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5 Answers 5

up vote 13 down vote accepted

It's another reference and both represent the same list. In java the notion of pointer is hidden to the programmer. It's the JVM only that deals with the pointers.

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Both this.elements and elements are just identifiers for the same list, it won't be copied

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Both will represent the same list, all objects in Java are references and are passed as such so modifying an object modifies via the reference.

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As others have said, it will only copy the reference. If you wish to copy the actual list, you will have to call the clone() method:

this.elements = elements.clone();

Note: whether this has the desired effect or not still depends on what the objects in the list are, as they themselves may be references to mutable objects.

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It's essentially a "pointer copy." The proper nomenclature in Java is reference, not pointer. An essential distinction is that the value of a Java reference is not a memory address, it points directly to an object in the JVM heap.

If you want a copy you have several options, but arguably the best is:

this.elements = ImmutableList.copyOf(elements);

This technique uses Google Guava to create a list that cannot be changed. If you want a list that you can modify, do this instead:

this.elements = Lists.newArrayList(elements);

There's also the "built-in" clone() method, but that has a few pitfalls to watch out for (Effective Java, 2nd ed., Item 10).

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