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I am writing a ServiceStack webservice in F# and need to limit some of the features (removing SOAP support for instance).

In C# I am using the pipe operation to assign multiple Enums (ServiceStack.ServiceHost.Feature) to the EnableFeatures property like so:

SetConfig(new EndpointHostConfig
{
    DebugMode = true, //Show StackTraces in responses in development
    EnableFeatures = Feature.Json | Feature.Xml | Feature.Html | Feature.Metadata | Feature.Jsv
});

However in F# you can't use pipe to accomplish this, and everything else I try is attempting to do function application to the enums. How do I go about assigning multiple enums in this case?

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3  
You've already got an answer, but it's worth noting this is not a pipe operator, it's 'bitwise or'. F#'s bitwise or operator, as pointed out by Craig Stuntz, is |||. –  Matthew Walton May 18 '12 at 15:56
1  
I think it's |||||||...oh wait, no, only |||. –  Daniel May 18 '12 at 16:00
1  
@botanist Good to see you here--there are some really smart F# folks hereabouts. And there's me too. –  Onorio Catenacci May 18 '12 at 16:28
2  
@Daniel For your convenience: let inline (|||||||) a b = a ||| b :-) –  Tomas Petricek May 18 '12 at 17:04
    
@TomasPetricek: :-) Thanks. Is it possible to get something like this to work: let inline flags<'T, 'U when 'T : enum<'U>> items = List.reduce (|||) items? –  Daniel May 18 '12 at 17:06

3 Answers 3

up vote 13 down vote accepted

Use a triple pipe:

EnableFeatures = Feature.Json ||| Feature.Xml ||| Feature.Html ||| Feature.Metadata ||| Feature.Jsv
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Thank you sir! I figured I was missing something simple, and indeed I was. F# Bitwise Operators –  John B Fair May 18 '12 at 17:00

If you have a bunch of them you can save a few keystrokes with reduce:

List.reduce (|||) [Feature.Json; Feature.Xml; Feature.Html; Feature.Metadata]
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You would create the value based on the construction of the underlying values:

EnabledFeatures = enum<Feature>(16); // or whatever the full flag value would be for Json + Xml + Html + Metadata, etc
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5  
You could, but that's why we have symbolic names for flags and bitwise combining operators in the first place - so we don't have to. –  Matthew Walton May 18 '12 at 15:57

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