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Is it possible?, (there is a >>magic function) to simplify this:

insertTransaction :: Day -> Int -> Int -> MyReaderT Bool
insertTransaction day amount price = ....

logTransaction :: Int -> Int -> MyReaderT Bool
logTransaction amount price = do
  day <- currentDay 
  insertTransaction day amount price

To this:

logTransaction :: Int -> Int -> MyReaderT Bool
logTransaction = currentDay `>>magic` insertTransaction

I think there should be one operator like >>magic but I can't found it. Nor <*> neither <$>.

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2 Answers 2

up vote 6 down vote accepted

This isn't really possible without typeclass trickery, because you're trying to "lift" a function with an arbitrary number of arguments — which is, of course, not really a well-defined concept in Haskell, due to currying.

The best you're likely to get in standard, readable Haskell is this:

logTransaction :: Int -> Int -> MyReaderT Bool
logTransaction amount price = join $ insertTransaction
    <$> currentDay
    <*> pure amount
    <*> pure price

I think this is probably fine — the proposed operator seems quite difficult to read to me, since it's hard to tell how many arguments are being processed or where they're going.

With the Strathclyde Haskell Enhancement preprocessor, logTransaction could be written as follows, using idiom brackets:

logTransaction :: Int -> Int -> MyReaderT Bool
logTransaction amount price = (| insertTransaction currentDay ~amount ~price @ |)

Finally, it is technically possible to write logTransaction in a point-free style, but I wouldn't recommend it:

logTransaction :: Int -> Int -> MyReaderT Bool
logTransaction = ((currentDay >>=) .) . flip . flip insertTransaction
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If you wrote insertTransaction in the first place, it might make sense to refactor it to

insertTransaction :: Int -> Int -> Day -> MyReaderT Bool
insertTransaction amount price day = ....

Then you could say

logTransaction :: Int -> Int -> MyReaderT Bool
logTransaction amount price = currentDay >>= insertTransaction amount price
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