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Is there a way to declare an argument as "optional" in the Go programming language?

Example of what I mean:

func doSomething(foo string, bar int) bool {
    //...
}

I want the parameter bar to be optional and default to 0 if nothing is passed through.

doSomething("foo")

would be the same as

doSomething("foo",0)

I'm unable to find anything about this matter in the official documentation about functions.

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its not supported as a design decision, see stackoverflow.com/questions/2032149/optional-parameters –  FigmentEngine Dec 31 '11 at 10:24

2 Answers 2

up vote 2 down vote accepted

I don't believe Go does support optional arguments to functions, though you can fake it with variadic functions. The C approach, if you don't want to do that, is to pretend the language supports currying:

func doSomethingNormally(foo string) bool {
    doSomething(foo, 0)
}
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it's pretty sad that there's no integrated support for optional arguments in Go. I solved my problem by using a variadic function. Thank you. –  thwd Dec 30 '11 at 20:05
    
Mainstream languages like C, Java, C++ don't support optional args neither, AFAICS. –  zzzz Dec 31 '11 at 10:14
    
@jnml, C++ can fake it with overloaded function prototypes. Many mainstream languages, like Python, do support default values for function parameters. That's actually what we're talking about since I think all of those (I don't know Java) and certainly most mainstream languages do support variadic functions. –  nmichaels Jan 3 '12 at 18:24

Another way to fake it is to pass a struct.

type dsArgs struct {
    foo string
    bar int
}

func doSomething(fb dsArgs) bool {
    //...
}

Then

doSomething(dsArgs{foo: "foo"})

is the same as

doSomething(dsArgs{foo: "foo", bar: 0})
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I like this approach, but what about when the default value for bar needs to be something other than zero, and likewise the default value for foo is some arbitrary string? I get a bit irritated with Go when I can't find simple ways to resolve cases like this. –  lytnus Jul 6 '13 at 13:32

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