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I'm just working through the Go tour, and I'm confused about pointers and interfaces. Why doesn't this Go code compile?

package main

type Interface interface {}

type Struct struct {}

func main() {
    var ps *Struct
    var pi *Interface
    pi = ps

    _, _ = pi, ps
}

i.e. if Struct is an Interface, why wouldn't a *Struct be a *Interface?

The error message I get is:

prog.go:10: cannot use ps (type *Struct) as type *Interface in assignment:
        *Interface is pointer to interface, not interface
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1  
See also stackoverflow.com/q/20874798/260805 – Ztyx Jan 2 '14 at 7:48
up vote 75 down vote accepted

When you have a struct implementing an interface, a pointer to that struct implements automatically that interface too. That's why you never have *SomeInterface in the prototype of functions, as this wouldn't add anything to SomeInterface, and you don't need such a type in variable declaration (see this related question).

An interface value isn't the value of the concrete struct (as it has a variable size, this wouldn't be possible), but it's a kind of pointer (to be more precise a pointer to the struct and a pointer to the type). Russ Cox describes it exactly here :

Interface values are represented as a two-word pair giving a pointer to information about the type stored in the interface and a pointer to the associated data.

enter image description here

This is why Interface, and not *Interface is the correct type to hold a pointer to a struct implementing Interface.

So you must simply use

var pi Interface
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3  
OK, I think that makes sense to me. I'm just wondering why (in that case), it's not simply a compile time error to say var pi *Interface. – Simon Nickerson Nov 22 '12 at 11:34
    
I went into more details to explain it. See edit. I suggest the reading of the Russ Cox's article I link to. – Denys Séguret Nov 22 '12 at 11:41
    
@SimonNickerson: pointers to different types are not interchangeable. If they were, you could use the interface pointer to overwrite the thing pointed to with any value of any type that implements the interface, which is obviously not good – newacct Nov 23 '12 at 0:18
1  
This just helped me make sense of pointers in a way I was never able to do in C or C++ ... thank you so much for this elegant and simple explanation :-) – mindplay.dk Dec 27 '13 at 14:52
2  
That's a very useful Go rule-of-thumb: you never have *SomeInterface – charneykaye Oct 12 '15 at 4:04

This is perhaps what you meant:

package main

type Interface interface{}

type Struct struct{}

func main() {
        var ps *Struct
        var pi *Interface
        pi = new(Interface)
        *pi = ps

        _, _ = pi, ps
}

Compiles OK. See also here.

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