simplify amounts code, make tests pass
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@ -68,7 +68,6 @@ module Hledger.Data.Amount (
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isNegativeMixedAmount,
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isZeroMixedAmount,
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isReallyZeroMixedAmountCost,
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sumMixedAmountsPreservingHighestPrecision,
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-- ** rendering
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showMixedAmount,
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showMixedAmountDebug,
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@ -79,10 +78,10 @@ module Hledger.Data.Amount (
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-- * misc.
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tests_Hledger_Data_Amount
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) where
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import Data.Char (isDigit)
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import Data.List
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import Data.Map (findWithDefault)
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import Data.Ord
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import Test.HUnit
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import Text.Printf
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import qualified Data.Map as Map
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@ -92,47 +91,38 @@ import Hledger.Data.Commodity
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import Hledger.Utils
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instance Show Amount where show = showAmount
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instance Show MixedAmount where show = showMixedAmount
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deriving instance Show HistoricalPrice
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-------------------------------------------------------------------------------
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-- Amount
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instance Show Amount where show = showAmount
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instance Num Amount where
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abs (Amount c q p) = Amount c (abs q) p
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signum (Amount c q p) = Amount c (signum q) p
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fromInteger i = Amount (comm "") (fromInteger i) Nothing
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negate a@Amount{quantity=q} = a{quantity=(-q)}
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(+) = similarAmountsOp (+)
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(-) = similarAmountsOp (-)
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(*) = similarAmountsOp (*)
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instance Num MixedAmount where
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fromInteger i = Mixed [Amount (comm "") (fromInteger i) Nothing]
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negate (Mixed as) = Mixed $ map negateAmountPreservingPrice as
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where negateAmountPreservingPrice a = (-a){price=price a}
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(+) (Mixed as) (Mixed bs) = normaliseMixedAmount $ Mixed $ as ++ bs
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-- (+) (Mixed as) (Mixed bs) = normaliseMixedAmountPreservingHighestPrecision $ Mixed $ as ++ bs
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(*) = error' "programming error, mixed amounts do not support multiplication"
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abs = error' "programming error, mixed amounts do not support abs"
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signum = error' "programming error, mixed amounts do not support signum"
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-- | The empty simple amount.
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nullamt :: Amount
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nullamt = Amount unknown 0 Nothing
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-- | Apply a binary arithmetic operator to two amounts, after converting
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-- the first to the commodity (and display precision) of the second in a
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-- simplistic way. This should be used only for two amounts in the same
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-- commodity, since the conversion rate is assumed to be 1.
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-- NB preserving the second commodity is preferred since sum and other
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-- folds start with the no-commodity zero amount.
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-- | Apply a binary arithmetic operator to two amounts, ignoring and
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-- discarding any assigned prices, and converting the first to the
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-- commodity of the second in a simplistic way (1-1 exchange rate).
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-- The highest precision of either amount is preserved in the result.
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similarAmountsOp :: (Double -> Double -> Double) -> Amount -> Amount -> Amount
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similarAmountsOp op a (Amount bc bq _) =
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Amount bc (quantity (convertAmountToSimilarCommodity bc a) `op` bq) Nothing
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similarAmountsOp op a@(Amount Commodity{precision=ap} _ _) (Amount bc@Commodity{precision=bp} bq _) =
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Amount bc{precision=max ap bp} (quantity (convertAmountToCommodity bc a) `op` bq) Nothing
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-- | Convert an amount to the specified commodity, assuming an exchange rate of 1.
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convertAmountToSimilarCommodity :: Commodity -> Amount -> Amount
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convertAmountToSimilarCommodity c (Amount _ q _) = Amount c q Nothing
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-- -- | Convert a mixed amount to the specified commodity, assuming an exchange rate of 1.
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-- convertMixedAmountToSimilarCommodity :: Commodity -> MixedAmount -> Amount
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-- convertMixedAmountToSimilarCommodity c (Mixed as) = Amount c total Nothing
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-- where
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-- total = sum $ map (quantity . convertAmountToSimilarCommodity c) as
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-- | Convert an amount to the specified commodity, ignoring and discarding
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-- any assigned prices and assuming an exchange rate of 1.
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convertAmountToCommodity :: Commodity -> Amount -> Amount
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convertAmountToCommodity c (Amount _ q _) = Amount c q Nothing
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-- | Convert an amount to the commodity of its assigned price, if any. Notes:
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-- - price amounts must be MixedAmounts with exactly one component Amount (or there will be a runtime error)
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@ -145,6 +135,24 @@ costOfAmount a@(Amount _ q price) =
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Just (TotalPrice (Mixed [Amount pc pq Nothing])) -> Amount pc (pq*signum q) Nothing
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_ -> error' "costOfAmount: Malformed price encountered, programmer error"
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-- | Divide an amount's quantity by a constant.
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divideAmount :: Amount -> Double -> Amount
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divideAmount a@Amount{quantity=q} d = a{quantity=q/d}
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-- | Is this amount negative ? The price is ignored.
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isNegativeAmount :: Amount -> Bool
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isNegativeAmount Amount{quantity=q} = q < 0
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-- | Does this amount appear to be zero when displayed with its given precision ?
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isZeroAmount :: Amount -> Bool
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isZeroAmount = null . filter (`elem` "123456789") . showAmountWithoutPriceOrCommodity
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-- | Is this amount "really" zero, regardless of the display precision ?
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-- Since we are using floating point, for now just test to some high precision.
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isReallyZeroAmount :: Amount -> Bool
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isReallyZeroAmount = null . filter (`elem` "123456789") . printf ("%."++show zeroprecision++"f") . quantity
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where zeroprecision = 8
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-- | Get the string representation of an amount, based on its commodity's
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-- display settings except using the specified precision.
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showAmountWithPrecision :: Int -> Amount -> String
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@ -154,7 +162,6 @@ showAmountWithPrecision p = showAmount . setAmountPrecision p
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setAmountPrecision :: Int -> Amount -> Amount
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setAmountPrecision p a@Amount{commodity=c} = a{commodity=c{precision=p}}
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-- XXX refactor
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-- | Get the unambiguous string representation of an amount, for debugging.
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showAmountDebug :: Amount -> String
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showAmountDebug (Amount c q pri) = printf "Amount {commodity = %s, quantity = %s, price = %s}"
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@ -177,7 +184,8 @@ showPriceDebug (UnitPrice pa) = " @ " ++ showMixedAmountDebug pa
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showPriceDebug (TotalPrice pa) = " @@ " ++ showMixedAmountDebug pa
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-- | Get the string representation of an amount, based on its commodity's
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-- display settings. Amounts which look like zero are rendered without sign or commodity.
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-- display settings. Amounts whose string representation would mean zero
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-- are rendered as just "0".
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showAmount :: Amount -> String
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showAmount (Amount (Commodity {symbol="AUTO"}) _ _) = "" -- can appear in an error message
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showAmount a@(Amount (Commodity {symbol=sym,side=side,spaced=spaced}) _ pri) =
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@ -204,18 +212,6 @@ showamountquantity (Amount (Commodity {decimalpoint=d,precision=p,separator=s,se
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| p == maxprecision = chopdotzero $ printf "%f" q
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| otherwise = printf ("%."++show p++"f") q
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chopdotzero str = reverse $ case reverse str of
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'0':'.':s -> s
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s -> s
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-- | For rendering: a special precision value which means show all available digits.
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maxprecision :: Int
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maxprecision = 999998
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-- | For rendering: a special precision value which forces display of a decimal point.
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maxprecisionwithpoint :: Int
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maxprecisionwithpoint = 999999
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-- | Replace a number string's decimal point with the specified character,
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-- and add the specified digit group separators.
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punctuatenumber :: Char -> Char -> [Int] -> String -> String
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@ -234,35 +230,89 @@ punctuatenumber dec sep grps str = sign ++ reverse (addseps sep (extend grps) (r
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| otherwise = let (s,rest) = splitAt g str
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in s ++ [sep] ++ addseps sep gs rest
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-- | Add thousands-separating commas to a decimal number string
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punctuatethousands :: String -> String
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punctuatethousands s =
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sign ++ addcommas int ++ frac
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chopdotzero str = reverse $ case reverse str of
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'0':'.':s -> s
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s -> s
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-- | For rendering: a special precision value which means show all available digits.
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maxprecision :: Int
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maxprecision = 999998
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-- | For rendering: a special precision value which forces display of a decimal point.
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maxprecisionwithpoint :: Int
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maxprecisionwithpoint = 999999
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-- | Replace an amount's commodity with the canonicalised version from
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-- the provided commodity map.
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canonicaliseAmountCommodity :: Maybe (Map.Map String Commodity) -> Amount -> Amount
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canonicaliseAmountCommodity Nothing = id
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canonicaliseAmountCommodity (Just canonicalcommoditymap) = fixamount
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where
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(sign,num) = break isDigit s
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(int,frac) = break (=='.') num
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addcommas = reverse . concat . intersperse "," . triples . reverse
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triples [] = []
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triples l = take 3 l : triples (drop 3 l)
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-- like journalCanonicaliseAmounts
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fixamount a@Amount{commodity=c} = a{commodity=fixcommodity c}
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fixcommodity c@Commodity{symbol=s} = findWithDefault c s canonicalcommoditymap
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-- | Does this amount appear to be zero when displayed with its given precision ?
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isZeroAmount :: Amount -> Bool
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isZeroAmount = null . filter (`elem` "123456789") . showAmountWithoutPriceOrCommodity
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-------------------------------------------------------------------------------
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-- MixedAmount
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-- | Is this amount "really" zero, regardless of the display precision ?
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-- Since we are using floating point, for now just test to some high precision.
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isReallyZeroAmount :: Amount -> Bool
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isReallyZeroAmount = null . filter (`elem` "123456789") . printf ("%."++show zeroprecision++"f") . quantity
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where zeroprecision = 8
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instance Show MixedAmount where show = showMixedAmount
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-- | Is this amount negative ? The price is ignored.
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isNegativeAmount :: Amount -> Bool
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isNegativeAmount Amount{quantity=q} = q < 0
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instance Num MixedAmount where
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fromInteger i = Mixed [Amount (comm "") (fromInteger i) Nothing]
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negate (Mixed as) = Mixed $ map negate as
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(+) (Mixed as) (Mixed bs) = normaliseMixedAmount $ Mixed $ as ++ bs
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(*) = error' "programming error, mixed amounts do not support multiplication"
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abs = error' "programming error, mixed amounts do not support abs"
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signum = error' "programming error, mixed amounts do not support signum"
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-- | The empty mixed amount.
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nullmixedamt :: MixedAmount
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nullmixedamt = Mixed []
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-- | A temporary value for parsed transactions which had no amount specified.
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missingamt :: MixedAmount
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missingamt = Mixed [Amount unknown{symbol="AUTO"} 0 Nothing]
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-- | Simplify a mixed amount by removing redundancy in its component amounts,
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-- as follows:
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--
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-- 1. combine amounts which have the same commodity, discarding all but the first's price.
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--
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-- 2. remove zero amounts
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--
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-- 3. if there are no amounts at all, add a single zero amount
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normaliseMixedAmount :: MixedAmount -> MixedAmount
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normaliseMixedAmount (Mixed as) = Mixed as''
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where
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as'' = if null nonzeros then [nullamt] else nonzeros
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(_,nonzeros) = partition (\a -> isReallyZeroAmount a && Mixed [a] /= missingamt) as'
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as' = map sumAmountsDiscardingAllButFirstPrice $ group $ sort as
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sort = sortBy (\a1 a2 -> compare (sym a1) (sym a2))
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group = groupBy (\a1 a2 -> sym a1 == sym a2)
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sym = symbol . commodity
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sumAmountsDiscardingAllButFirstPrice [] = nullamt
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sumAmountsDiscardingAllButFirstPrice as = (sum as){price=price $ head as}
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-- | Get a mixed amount's component amounts.
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amounts :: MixedAmount -> [Amount]
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amounts (Mixed as) = as
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-- | Convert a mixed amount's component amounts to the commodity of their
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-- assigned price, if any.
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costOfMixedAmount :: MixedAmount -> MixedAmount
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costOfMixedAmount (Mixed as) = Mixed $ map costOfAmount as
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-- | Divide a mixed amount's quantities by a constant.
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divideMixedAmount :: MixedAmount -> Double -> MixedAmount
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divideMixedAmount (Mixed as) d = Mixed $ map (flip divideAmount d) as
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-- | Is this mixed amount negative, if it can be normalised to a single commodity ?
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isNegativeMixedAmount :: MixedAmount -> Maybe Bool
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isNegativeMixedAmount m = case as of [a] -> Just $ isNegativeAmount a
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_ -> Nothing
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where as = amounts $ normaliseMixedAmount m
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-- | Does this mixed amount appear to be zero when displayed with its given precision ?
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isZeroMixedAmount :: MixedAmount -> Bool
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isZeroMixedAmount = all isZeroAmount . amounts . normaliseMixedAmount
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@ -271,22 +321,20 @@ isZeroMixedAmount = all isZeroAmount . amounts . normaliseMixedAmount
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isReallyZeroMixedAmount :: MixedAmount -> Bool
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isReallyZeroMixedAmount = all isReallyZeroAmount . amounts . normaliseMixedAmount
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-- | Is this mixed amount negative, if it can be normalised to a single commodity ?
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isNegativeMixedAmount :: MixedAmount -> Maybe Bool
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isNegativeMixedAmount m = case as of [a] -> Just $ isNegativeAmount a
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_ -> Nothing
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where
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as = amounts $ normaliseMixedAmount m
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-- | Is this mixed amount "really" zero, after converting to cost
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-- commodities where possible ?
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isReallyZeroMixedAmountCost :: MixedAmount -> Bool
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isReallyZeroMixedAmountCost = isReallyZeroMixedAmount . costOfMixedAmount
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-- -- | MixedAmount derives Eq in Types.hs, but that doesn't know that we
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-- -- want $0 = EUR0 = 0. Yet we don't want to drag all this code in there.
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-- -- When zero equality is important, use this, for now; should be used
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-- -- everywhere.
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-- -- | Convert a mixed amount to the specified commodity, assuming an exchange rate of 1.
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-- convertMixedAmountToCommodity :: Commodity -> MixedAmount -> Amount
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-- convertMixedAmountToCommodity c (Mixed as) = Amount c total Nothing
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-- where
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-- total = sum $ map (quantity . convertAmountToCommodity c) as
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-- -- | MixedAmount derived Eq instance in Types.hs doesn't know that we
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-- -- want $0 = EUR0 = 0. Yet we don't want to drag all this code over there.
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-- -- For now, use this when cross-commodity zero equality is important.
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-- mixedAmountEquals :: MixedAmount -> MixedAmount -> Bool
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-- mixedAmountEquals a b = amounts a' == amounts b' || (isZeroMixedAmount a' && isZeroMixedAmount b')
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-- where a' = normaliseMixedAmount a
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@ -320,7 +368,8 @@ showMixedAmountDebug m = printf "Mixed [%s]" as
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showMixedAmountWithoutPrice :: MixedAmount -> String
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showMixedAmountWithoutPrice m = concat $ intersperse "\n" $ map showfixedwidth as
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where
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(Mixed as) = normaliseMixedAmountIgnoringPrice m
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(Mixed as) = normaliseMixedAmount $ stripPrices m
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stripPrices (Mixed as) = Mixed $ map stripprice as where stripprice a = a{price=Nothing}
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width = maximum $ map (length . show) as
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showfixedwidth = printf (printf "%%%ds" width) . showAmountWithoutPrice
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@ -338,132 +387,17 @@ showMixedAmountOrZeroWithoutPrice a
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| isZeroMixedAmount a = "0"
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| otherwise = showMixedAmountWithoutPrice a
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-- | Simplify a mixed amount by removing redundancy in its component amounts, as follows:
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--
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-- 1. combine amounts which have the same commodity, discarding all but the first's price.
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--
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-- 2. remove zero amounts
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--
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-- 3. if there are no amounts at all, add a single zero amount
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normaliseMixedAmount :: MixedAmount -> MixedAmount
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normaliseMixedAmount (Mixed as) = Mixed as''
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where
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as'' = if null nonzeros then [nullamt] else nonzeros
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(_,nonzeros) = partition (\a -> isReallyZeroAmount a && Mixed [a] /= missingamt) as'
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as' = map sumSamePricedAmountsPreservingPrice $ group $ sort as
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sort = sortBy (\a1 a2 -> compare (sym a1) (sym a2))
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group = groupBy (\a1 a2 -> sym a1 == sym a2)
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sym = symbol . commodity
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-- | Replace a mixed amount's commodity with the canonicalised version from
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-- the provided commodity map.
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canonicaliseMixedAmountCommodity :: Maybe (Map.Map String Commodity) -> MixedAmount -> MixedAmount
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canonicaliseMixedAmountCommodity canonicalcommoditymap (Mixed as) = Mixed $ map (canonicaliseAmountCommodity canonicalcommoditymap) as
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-- | Replace an amount's commodity with the canonicalised version from
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-- the provided commodity map.
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canonicaliseAmountCommodity :: Maybe (Map.Map String Commodity) -> Amount -> Amount
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canonicaliseAmountCommodity Nothing = id
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canonicaliseAmountCommodity (Just canonicalcommoditymap) = fixamount
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where
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-- like journalCanonicaliseAmounts
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fixamount a@Amount{commodity=c} = a{commodity=fixcommodity c}
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fixcommodity c@Commodity{symbol=s} = findWithDefault c s canonicalcommoditymap
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-- various sum variants..
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sumAmountsDiscardingPrice [] = nullamt
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sumAmountsDiscardingPrice as = (sum as){price=Nothing}
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sumSamePricedAmountsPreservingPrice [] = nullamt
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sumSamePricedAmountsPreservingPrice as = (sum as){price=price $ head as}
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-- | Simplify a mixed amount by combining any component amounts which have
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-- the same commodity, ignoring and discarding their unit prices if any.
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-- Also removes zero amounts, or adds a single zero amount if there are no
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-- amounts at all.
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normaliseMixedAmountIgnoringPrice :: MixedAmount -> MixedAmount
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normaliseMixedAmountIgnoringPrice (Mixed as) = Mixed as''
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where
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as'' = map sumAmountsDiscardingPrice $ group $ sort as'
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group = groupBy (same amountSymbol)
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sort = sortBy (comparing amountSymbol)
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as' | null nonzeros = [head $ zeros ++ [nullamt]]
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| otherwise = nonzeros
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where (zeros,nonzeros) = partition isZeroAmount as
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-- | Simplify a mixed amount by combining any component amounts which have
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-- the same commodity, ignoring and discarding their unit prices if any.
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-- Also removes zero amounts, or adds a single zero amount if there are no
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-- amounts at all.
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normaliseMixedAmountPreservingHighestPrecision :: MixedAmount -> MixedAmount
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normaliseMixedAmountPreservingHighestPrecision (Mixed as) = Mixed as''
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where
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as'' = map sumSamePricedAmountsPreservingPriceAndHighestPrecision $ group $ sort as'
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group = groupBy (same amountSymbolAndPrice)
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sort = sortBy (comparing amountSymbolAndPrice)
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as' | null nonzeros = [head $ zeros ++ [nullamt]]
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| otherwise = nonzeros
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(zeros,nonzeros) = partition isReallyZeroAmount as
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same f a b = f a == f b
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amountSymbol :: Amount -> String
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amountSymbol = symbol . commodity
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amountSymbolAndPrice :: Amount -> (String, Maybe Price)
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amountSymbolAndPrice a = (amountSymbol a, price a)
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-- | Add these mixed amounts, preserving prices and preserving the highest
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-- precision in each commodity.
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sumMixedAmountsPreservingHighestPrecision :: [MixedAmount] -> MixedAmount
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sumMixedAmountsPreservingHighestPrecision ms = foldl' (+~) 0 ms
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where (+~) (Mixed as) (Mixed bs) = normaliseMixedAmountPreservingHighestPrecision $ Mixed $ as ++ bs
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sumSamePricedAmountsPreservingPriceAndHighestPrecision [] = nullamt
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sumSamePricedAmountsPreservingPriceAndHighestPrecision as = (sumAmountsPreservingHighestPrecision as){price=price $ head as}
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sumAmountsPreservingHighestPrecision :: [Amount] -> Amount
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sumAmountsPreservingHighestPrecision as = foldl' (+~) 0 as
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where (+~) = amountopPreservingHighestPrecision (+)
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amountopPreservingHighestPrecision :: (Double -> Double -> Double) -> Amount -> Amount -> Amount
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amountopPreservingHighestPrecision op a@(Amount ac@Commodity{precision=ap} _ _) (Amount bc@Commodity{precision=bp} bq _) =
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Amount c q Nothing
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where
|
||||
q = quantity (convertAmountToSimilarCommodity bc a) `op` bq
|
||||
c = if ap > bp then ac else bc
|
||||
--
|
||||
|
||||
-- | Convert a mixed amount's component amounts to the commodity of their
|
||||
-- assigned price, if any.
|
||||
costOfMixedAmount :: MixedAmount -> MixedAmount
|
||||
costOfMixedAmount (Mixed as) = Mixed $ map costOfAmount as
|
||||
|
||||
-- | Divide a mixed amount's quantities by a constant.
|
||||
divideMixedAmount :: MixedAmount -> Double -> MixedAmount
|
||||
divideMixedAmount (Mixed as) d = Mixed $ map (flip divideAmount d) as
|
||||
|
||||
-- | Divide an amount's quantity by a constant.
|
||||
divideAmount :: Amount -> Double -> Amount
|
||||
divideAmount a@Amount{quantity=q} d = a{quantity=q/d}
|
||||
|
||||
-- | The empty simple amount.
|
||||
nullamt :: Amount
|
||||
nullamt = Amount unknown 0 Nothing
|
||||
|
||||
-- | The empty mixed amount.
|
||||
nullmixedamt :: MixedAmount
|
||||
nullmixedamt = Mixed []
|
||||
|
||||
-- | A temporary value for parsed transactions which had no amount specified.
|
||||
missingamt :: MixedAmount
|
||||
missingamt = Mixed [Amount unknown{symbol="AUTO"} 0 Nothing]
|
||||
|
||||
-------------------------------------------------------------------------------
|
||||
-- misc
|
||||
|
||||
tests_Hledger_Data_Amount = TestList [
|
||||
|
||||
-- amounts
|
||||
-- Amount
|
||||
|
||||
"costOfAmount" ~: do
|
||||
costOfAmount (euros 1) `is` euros 1
|
||||
@ -479,7 +413,7 @@ tests_Hledger_Data_Amount = TestList [
|
||||
let a = dollars 1
|
||||
negate a `is` a{quantity=(-1)}
|
||||
let b = (dollars 1){price=Just $ UnitPrice $ Mixed [euros 2]}
|
||||
negate b `is` b{quantity=(-1)} -- XXX failing
|
||||
negate b `is` b{quantity=(-1)}
|
||||
|
||||
,"adding amounts" ~: do
|
||||
let a1 = dollars 1.23
|
||||
@ -491,15 +425,17 @@ tests_Hledger_Data_Amount = TestList [
|
||||
(a3 + a3) `is` Amount (comm "$") (-2.46) Nothing
|
||||
sum [a1,a2,a3,-a3] `is` Amount (comm "$") 0 Nothing
|
||||
-- highest precision is preserved
|
||||
(sum [Amount dollar 1.25 Nothing, Amount dollar{precision=0} (-1) Nothing, Amount dollar{precision=3} (-0.25) Nothing])
|
||||
`is` (Amount dollar{precision=3} 0 Nothing)
|
||||
let ap1 = (dollars 1){commodity=dollar{precision=1}}
|
||||
ap3 = (dollars 1){commodity=dollar{precision=3}}
|
||||
(sum [ap1,ap3]) `is` ap3{quantity=2}
|
||||
(sum [ap3,ap1]) `is` ap3{quantity=2}
|
||||
-- adding different commodities assumes conversion rate 1
|
||||
assertBool "" $ isZeroAmount (a1 - euros 1.23)
|
||||
|
||||
,"showAmount" ~: do
|
||||
showAmount (dollars 0 + pounds 0) `is` "0"
|
||||
|
||||
-- mixed amounts
|
||||
-- MixedAmount
|
||||
|
||||
,"normaliseMixedAmount" ~: do
|
||||
normaliseMixedAmount (Mixed []) `is` Mixed [nullamt]
|
||||
@ -509,14 +445,6 @@ tests_Hledger_Data_Amount = TestList [
|
||||
,Amount {commodity=dollar, quantity=(-10), price=Just (TotalPrice (Mixed [Amount {commodity=euro, quantity=7, price=Nothing}]))}
|
||||
])
|
||||
|
||||
,"normaliseMixedAmountIgnoringPrice" ~: do
|
||||
normaliseMixedAmountIgnoringPrice (Mixed []) `is` Mixed [nullamt]
|
||||
(commodity (head (amounts (normaliseMixedAmountIgnoringPrice (Mixed [Amount {commodity=dollar, quantity=10, price=Nothing}
|
||||
,Amount {commodity=dollar, quantity=10, price=Just (TotalPrice (Mixed [Amount {commodity=euro, quantity=7, price=Nothing}]))}
|
||||
,Amount {commodity=dollar, quantity=(-10), price=Nothing}
|
||||
,Amount {commodity=dollar, quantity=(-10), price=Just (TotalPrice (Mixed [Amount {commodity=euro, quantity=7, price=Nothing}]))}
|
||||
]))))) `is` unknown -- XXX failing
|
||||
|
||||
,"adding mixed amounts" ~: do
|
||||
let dollar0 = dollar{precision=0}
|
||||
(sum $ map (Mixed . (\a -> [a]))
|
||||
@ -526,7 +454,9 @@ tests_Hledger_Data_Amount = TestList [
|
||||
`is` Mixed [Amount unknown 0 Nothing]
|
||||
|
||||
,"showMixedAmount" ~: do
|
||||
showMixedAmount (Mixed [Amount dollar 0 Nothing]) `is` "0"
|
||||
showMixedAmount (Mixed [dollars 1]) `is` "$1.00"
|
||||
showMixedAmount (Mixed [(dollars 1){price=Just $ UnitPrice $ Mixed [euros 2]}]) `is` "$1.00 @ €2.00"
|
||||
showMixedAmount (Mixed [dollars 0]) `is` "0"
|
||||
showMixedAmount (Mixed []) `is` "0"
|
||||
showMixedAmount missingamt `is` ""
|
||||
|
||||
@ -535,9 +465,9 @@ tests_Hledger_Data_Amount = TestList [
|
||||
showMixedAmountOrZero (Mixed []) `is` "0"
|
||||
showMixedAmountOrZero missingamt `is` ""
|
||||
|
||||
,"punctuatethousands" ~: do
|
||||
punctuatethousands "" `is` ""
|
||||
punctuatethousands "1234567.8901" `is` "1,234,567.8901"
|
||||
punctuatethousands "-100" `is` "-100"
|
||||
,"showMixedAmountWithoutPrice" ~: do
|
||||
let a = (dollars 1){price=Just $ UnitPrice $ Mixed [euros 2]}
|
||||
showMixedAmountWithoutPrice (Mixed [a]) `is` "$1.00"
|
||||
showMixedAmountWithoutPrice (Mixed [a, (-a)]) `is` "0"
|
||||
|
||||
]
|
||||
|
||||
@ -71,7 +71,7 @@ accountNamesFromPostings :: [Posting] -> [AccountName]
|
||||
accountNamesFromPostings = nub . map paccount
|
||||
|
||||
sumPostings :: [Posting] -> MixedAmount
|
||||
sumPostings = sumMixedAmountsPreservingHighestPrecision . map pamount
|
||||
sumPostings = sum . map pamount
|
||||
|
||||
postingDate :: Posting -> Day
|
||||
postingDate p = maybe nulldate tdate $ ptransaction p
|
||||
|
||||
@ -136,7 +136,7 @@ getPostings st enteredps = do
|
||||
-- force a decimal point in the output in case there's a
|
||||
-- digit group separator that would be mistaken for one
|
||||
historicalamountstr = showMixedAmountWithPrecision maxprecisionwithpoint $ pamount $ fromJust bestmatch'
|
||||
balancingamountstr = showMixedAmountWithPrecision maxprecisionwithpoint $ negate $ sumMixedAmountsPreservingHighestPrecision $ map pamount enteredrealps
|
||||
balancingamountstr = showMixedAmountWithPrecision maxprecisionwithpoint $ negate $ sum $ map pamount enteredrealps
|
||||
amountstr <- runInteractionDefault $ askFor (printf "amount %d" n) defaultamountstr validateamount
|
||||
let amount = fromparse $ runParser (someamount <|> return missingamt) ctx "" amountstr
|
||||
amount' = fromparse $ runParser (someamount <|> return missingamt) nullctx "" amountstr
|
||||
|
||||
Loading…
Reference in New Issue
Block a user