Given a struct that looks like

type foo struct {
 i *int
}

if I want to set i to 1, I must

throwAway := 1
instance := foo { i: &throwAway }

Is there any way to do this in a single line without having to give my new i value it's own name (in this case throwaway)?

up vote 8 down vote accepted

As pointed in the mailing list, you can just do this:

func intPtr(i int) *int {
    return &i
}

and then

instance := foo { i: intPtr(1) }

if you have to do it often. intPtr gets inlined (see go build -gcflags '-m' output), so it should have next to no performance penalty.

  • You can also do instance := foo{ i: new(int) }; foo.i = 1; if you don't want to write a separate function. – fuz Apr 8 '15 at 17:38
  • That's not right @FUZxxl, you can't assign 1 as a type int to *int. You end up back in the same situation as the OP. – Pero P. Apr 8 '15 at 18:17
  • 2
    Sorry, try instance := foo{i : new(int) }; *foo.i = 1; – fuz Apr 8 '15 at 18:31
  • @fuz I get this: type ‘foo’ has no method ‘i’ – exebook Mar 3 '17 at 18:15
  • @exebook Please ask a new question for that if you can't solve it yourself. – fuz Mar 3 '17 at 21:09

No this is not possible to do in one line.

  • 1
    Gross. Any thoughts as to why not? Is it just too difficult to implement to remove an occasionally noisy line? – MushinNoShin Apr 8 '15 at 16:54
  • 4
    @MushinNoShin: a pointer is the address of some thing, so you need that thing. – maerics Apr 8 '15 at 16:57
  • 1
    @maerics: that was already understood, this was asking if there's any convenient ways to automatically do the memory allocation in the background and keep the unnecessary noise out of my code. See the accepted answer. – MushinNoShin Apr 8 '15 at 17:26
  • 1
    Pointers to ints are not that common and pointers to literal ints are very uncommon, so why bother with syntactical sugar? – Volker Apr 8 '15 at 20:17
  • @Volker you should take a look at aws-sdk-golang, they've got pointers to literal ints for days. – Civilian May 4 '15 at 22:19

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