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I am reading the docs for the sort stdlib package and the sample code reads like this:

type ByAge []Person

func (a ByAge) Len() int           { return len(a) }
func (a ByAge) Swap(i, j int)      { a[i], a[j] = a[j], a[i] }
func (a ByAge) Less(i, j int) bool { return a[i].Age < a[j].Age }

As I've learnt, function that mutate a type T needs to use *T as its method receiver. In the case of Len, Swap and Less why does it work ? Or am I misunderstanding the difference between using T vs *T as method receivers ?

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A slice is a reference type. The underlying array is always passed by reference. –  FUZxxl Apr 2 at 18:17
    
So if I defined my own struct, that is a value type & would need *T for mutating methods. Ok, that is clear. –  Jacques René Mesrine Apr 2 at 18:21
    
Yes. That sounds about right. –  FUZxxl Apr 2 at 18:36
    
But wait, this 2nd example in this snippet is not mutating. –  Jacques René Mesrine Apr 2 at 18:36
1  
That second example shows where you do need a pointer. Append might need to allocate more storage, and when it does the original array is no longer valid. This can't be written back to the slice without a pointer receiver. –  JimB Apr 2 at 18:39

1 Answer 1

up vote 1 down vote accepted

Go has three reference types:

  • map
  • slice
  • channel

Every instance of these types holds a pointer to the actual data internally. This means that when you pass a value of one of these types the value is copied like every other value but the internal pointer still points to the same value.

Quick example (run on play):

func dumpFirst(s []int) {
    fmt.Printf("address of slice var: %p, address of element: %p\n", &s, &s[0])
}

s1 := []int{1, 2, 3}
s2 := s1

dumpFirst(s1)
dumpFirst(s2)

will print something like:

address of slice var: 0x1052e110, address of element: 0x1052e100
address of slice var: 0x1052e120, address of element: 0x1052e100

You can see: the address of the slice variable changes but the address of the first element in that slice remains the same.

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I would say that a pointer is also a "reference type". Also, slice is more complicated: it combines a pointer with a length and capacity, and the latter two are "by value". –  newacct Apr 3 at 22:01
    
For the sake of this question it does not matter what else the slice value that is copied contains. The point is that it holds a pointer to the actual data. Everything of a slice value is copied. The pointer, the capacity and the length. The trick is that the pointer still points to the same address. –  nemo Apr 3 at 22:10

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