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Consider the following code:

let fnOption = Some (fun () -> ())
fnOption = None

It gives the following error:

init.fsx(2,1): error FS0001: The type '(unit -> unit)' does not support the 'equality' constraint because it is a function type

Why is that? Did I overlook something?

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Functions are first class values in FP but they are special types of values in the sense that they are used to produce other values based on the parameters u pass to them, hence it doesn't make sense to compare 2 functions and as a consequence there is no equality operator defined for functions –  Ankur Jul 16 '11 at 10:49

2 Answers 2

up vote 2 down vote accepted

If you really wanted to check for equality (and not to assign the value), then you can use Option.isNone fnOption. If you really do want to assign, look as kvb's answer.

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That is true. I did not notice this function. So does that mean that F# tries to do a structural equality? But then again it could immediately see that Some XXX <> None and did not even have to check what is inside. –  Oldrich Svec Jul 15 '11 at 18:30
3  
The error is during compile-time, not run-time. F# compiler tries to compile the code, but fails, because The type '(unit -> unit)' does not support the 'equality' constraint. On dynamic languages (without pre-compilation type checks), it might have worked with structural equality. –  Ramon Snir Jul 15 '11 at 18:54
    
Now I understand. Thanks for clarification –  Oldrich Svec Jul 15 '11 at 18:58

It's unclear what you're trying to do. As it stands, the second line is an equality test, not an assignment. If what you intended to do was assign a new value to fnOption, then you need to make it mutable:

let mutable fnOption = Some(fun () -> ())
fnOption <- None

If you are really trying to test equality, then the error you are seeing is the expected result, because functions aren't comparable.

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The functions are not comparable but options are, right? I can do: let a = Some 4; a = None –  Oldrich Svec Jul 15 '11 at 18:19
    
can he use Some id instead of Some (fun () -> ())? –  Alex Jul 15 '11 at 20:48
2  
@Alex - no, values of function types are not comparable, so neither are options containing functions (regardless of what the actual values are). Even (None : (unit -> unit) option) = None will not compile because the compiler doesn't "look inside" the option value; the determination of whether the values can be compared is made solely based on their types. –  kvb Jul 16 '11 at 0:18

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