(* TODO have a currency agnostic amount_lib.ml and specialize amount.ml to Config.currency?? have safe amount arithmetic *) open Syntax type sign = | Sign_plus | Sign_minus type t = { sign: sign option; currency: string; value: Int64.t; fraction: Int32.t; } let maximum_currency_length = 11 let value_upper_bound = Int64.of_float @@ Float.pow 2. 52. let fraction_max_number_of_digits = 8 (* TODO choose to either include or exclude upper limit for all bounds need a -1 here *) let fraction_upper_bound = Int32.of_float @@ Float.pow 10. (Int.to_float fraction_max_number_of_digits) let is_letter = function 'a' .. 'z' | 'A' .. 'Z' -> true | _ -> false let is_digit = function '0' .. '9' -> true | _ -> false let check_currency s = if not @@ String.for_all is_letter s then Error "currency contains forbidden character" else let len = String.length s in if len = 0 then Error "currency is empty string" else if len > maximum_currency_length then Fmt.error "currency is more than %d characters long" maximum_currency_length else Ok () let check_value v = if Int64.unsigned_compare v value_upper_bound > 0 then Error "value is greater than 2^52" else Ok () let check_fraction v = if Int32.unsigned_compare v fraction_upper_bound > 0 then Fmt.error "fraction has more than %d digits" fraction_max_number_of_digits else Ok () let make ~sign ~currency ~value ~fraction = let* () = check_currency currency in let* () = check_value value in let* () = check_fraction fraction in let currency = String.uppercase_ascii currency in Ok { sign; currency; value; fraction } (* let config_currency = match check_currency Config.currency with | Error e -> Fmt.failwith "Invalid currency name configuration: %s@." e | Ok () -> String.uppercase_ascii Config.currency let make_config_currency ~value ~fraction = let* () = check_value value in let* () = check_fraction fraction in Ok { sign= None; currency= config_currency; value; fraction } *) open Angstrom let letters = take_while1 is_letter let digits = take_while1 is_digit let sign = choice [ char '+' *> return (Some Sign_plus); char '-' *> return (Some Sign_minus); return None; ] let value = digits >>= fun s -> match Int64.of_string_opt s with | None -> fail "not a valid int64" | Some n -> return n let fraction = digits >>= fun s -> let len = String.length s in match len <= fraction_max_number_of_digits with | false -> fail (Fmt.str "fraction has more than %d digits" fraction_max_number_of_digits) | true -> ( match Int32.of_string_opt s with | None -> fail "not a valid int32" | Some n -> let magnitude = let exp = Int.to_float (fraction_max_number_of_digits - len) in Int32.of_float @@ Float.pow 10. exp in let n = Int32.mul n magnitude in return n) let amount = lift4 (fun sign currency value fraction -> make ~sign ~currency ~value ~fraction) sign letters (char ':' *> value) (option 0_l (char '.' *> fraction)) <* end_of_input let of_string s = parse_string ~consume:Consume.All amount s |> Result.join let pp = let open Fmt in let pp_sign ppf = function | Sign_plus -> char ppf '+' | Sign_minus -> char ppf '-' in fun ppf { sign; currency; value; fraction } -> (* TODO depends on the currency's number of fraction digits *) pf ppf "%a%s:%Lu.%0*lu" (Fmt.option pp_sign) sign currency value fraction_max_number_of_digits fraction let to_string = Fmt.str "%a" pp (* - *) let jsont = Jsont.of_of_string ~kind:"Amount" of_string ~enc:to_string let currency_length = 12 let pad_currency_string s = let len = String.length s in assert (len < currency_length); let b = Bytes.make currency_length '\x00' in Bytes.blit_string s 0 b 0 len; Bytes.to_string b (* binary decoding unused? *) let make_exn value fraction currency = match make ~sign:None ~currency ~value ~fraction with | Error _ -> Fmt.failwith "Amount of binary data failure" | Ok v -> v let bin = let open Bin in record make_exn |+ field beint64 (fun t -> t.value) |+ field beint32 (fun t -> Int32.mul t.fraction 1_000_000_l) |+ field (bytes currency_length) (fun t -> pad_currency_string t.currency) |> sealr