1

I can assign an inline closure to a function type

 > var a = { ()-> Bool in return true }

and use it:

 > true==a()
 $R2: Bool = true

if the function is a throw-away, it would be nice to use an inline directly. This doesn't work:

> true=={ ()-> Bool in return true } 
 error: repl.swift:16:5: error: binary operator '==' cannot be applied to operands of type 'Bool' and '() -> Bool'

According to the error, the RHS is the inline's function type, not its return type. Is there a different syntax I should use? Is it possible to call an inline directly?

Edit, after answer: This comes in very handy in cascaded conditions in if statements: if b==2, { /* do something only if b==2 passes*/}(), let x = ... { ...} else {...}

3
> true == a()

compares true with the result of calling the closure a (with an empty argument list). You can do the same inline, but you must still call the closure:

> true == { ()-> Bool in return true }()
$R0: Bool = true

Note that a test for equality with true is always redundant, so this expression is identical to

{ ()-> Bool in return true }()
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  • @P2000: What I meant is that you can remove the == true comparison. In your example: if b==2, { /* do something only if b==2 passes*/}(), let x = ... – Martin R Jan 21 at 22:32
  • Good catch, I fixed it. It was a typo. I updated the question to include this point. Thank you for your help, Martin. – P2000 Jan 22 at 1:12

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