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It's confusing because it "copies" anyway when I update it, but from what I understand it's just copying pointers most the time, not making some kind of deep copy. Does it make some kind of full copy if I spawn? What if I never modify it?

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show some simple code to show what u r talking about. We need to see what u mean by modifying –  Muzaaya Joshua Aug 8 '12 at 21:54
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The answer is usually "Unfortunately, yes, it is copied." But you can use other mechanisms such as (D)ETS tables to avoid the copy. –  Diego Sevilla Aug 8 '12 at 22:56

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Yes, when you spawn you need to copy every term that is passed to the spawned function to the heap of the new process.

When you are updating a list or dict, any unchanged elements are not copied because the pointers to these are in the same heap and can be used for the new term. Consider the following example:

A = [1,2,3],
B = [0|A].

In this case for the B term you just need to assign memory in the heap for one cons cell whose first element is the term 0 and the second element is a pointer to the first cons cell of the A list. The A list is in the same heap.

When you spawn, the new process has its own heap, so all the data it uses must be copied there.

If the spawned process is not going to access all the elements in the large data structure, it makes sense to either extract the relevant data before spawning, or using ETS tables (when you pass an ETS table only the table reference is passed but you need to copy in or out any element that you change or access).

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