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I'm trying this at the moment, but I haven't quite got the method signature worked out... anyone? messages is a field of seq[string]

let messageString = List.reduce(messages, fun (m1, m2) -> m1 + m2 + Environment.NewLine)
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5 Answers

up vote 8 down vote accepted

Not exactly what you're looking for, but

let strings = [| "one"; "two"; "three" |]
let r = System.String.Concat(strings)
printfn "%s" r

You can do

let strings = [ "one"; "two"; "three" ]
let r = strings |> List.reduce (+) 
printfn "%s" r

or

let strings = [ "one"; "two"; "three" ]
let r = strings |> List.fold (fun r s -> r + s + "\n") ""
printfn "%s" r
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I went for the fold option. Not the most concise but I'm trying different things to get the hang of the language... thanks –  mwjackson Nov 22 '09 at 15:56
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> String.concat " " ["Juliet"; "is"; "awesome!"];;
val it : string = "Juliet is awesome!"
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System.String.Join(Environment.NewLine, List.to_array messages)

or using your fold (note that it's much more inefficient)

List.reduce (fun a b -> a ^ Environment.NewLine ^ b) messages
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I'm sure a StringBuilder would be faster than a concatenation algorithm. –  codebliss Nov 22 '09 at 15:48
    
Yes, that's why I called the 2nd solution inefficient - relying on String.Join/concat using a StringBuilder internally. –  Dario Nov 22 '09 at 16:00
    
@Dario, what is the purpose of using ^ and Env.NewLine instead of + and "\n" ? –  Stringer Nov 22 '09 at 17:02
    
Isn't ^ the operator for string concatenation? I used Env.Newline because it was used in the question. –  Dario Nov 22 '09 at 17:19
1  
I don't know OCaml but I consider it as a bad practice to use (+) for non-arithmetic purpose. –  Dario Nov 22 '09 at 17:42
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I'd use String.concat unless you need to do fancier formatting and then I'd use StringBuilder.

(StringBuilder(), [ "one"; "two"; "three" ])
||> Seq.fold (fun sb str -> sb.AppendFormat("{0}\n", str))
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just one more comment,

when you are doing with string, you'd better use standard string functions.

The following code is for EulerProject problem 40.

let problem40 =
    let str = {1..1000000} |> Seq.map string |> String.concat ""
    let l = [str.[0];str.[9];str.[99];str.[999];str.[9999];str.[99999];str.[999999];]
    l |> List.map (fun x-> (int x) - (int '0')) |> List.fold (*) 1

if the second line of above program uses fold instead of concat, it would be extremely slow because each iteration of fold creates a new long string.

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