{-# LANGUAGE RecordWildCards #-}

module Network.HTTP2.Priority.PSQ (
    Key
  , Weight
  , Deficit
  , Precedence(..)
  , newPrecedence
  , PriorityQueue(..)
  , Heap
  , empty
  , isEmpty
  , enqueue
  , dequeue
  , delete
  ) where

import Data.Array (Array, listArray, (!))
import Data.IntPSQ (IntPSQ)
import qualified Data.IntPSQ as P

----------------------------------------------------------------

type Key = Int
type Weight = Int
type Deficit = Word -- Deficit can be overflowed

-- | Internal representation of priority in priority queues.
--   The precedence of a dequeued entry should be specified
--   to enqueue when the entry is enqueued again.
data Precedence = Precedence {
    Precedence -> Word
deficit    :: Deficit
  , Precedence -> Int
weight     :: Weight
  -- stream dependency, used by the upper layer
  , Precedence -> Int
dependency :: Key
  } deriving Int -> Precedence -> ShowS
[Precedence] -> ShowS
Precedence -> String
forall a.
(Int -> a -> ShowS) -> (a -> String) -> ([a] -> ShowS) -> Show a
showList :: [Precedence] -> ShowS
$cshowList :: [Precedence] -> ShowS
show :: Precedence -> String
$cshow :: Precedence -> String
showsPrec :: Int -> Precedence -> ShowS
$cshowsPrec :: Int -> Precedence -> ShowS
Show

-- | For test only
newPrecedence :: Weight -> Precedence
newPrecedence :: Int -> Precedence
newPrecedence Int
w = Word -> Int -> Int -> Precedence
Precedence Word
0 Int
w Int
0

instance Eq Precedence where
  Precedence Word
d1 Int
_ Int
_ == :: Precedence -> Precedence -> Bool
== Precedence Word
d2 Int
_ Int
_ = Word
d1 forall a. Eq a => a -> a -> Bool
== Word
d2

instance Ord Precedence where
  -- This is correct even if one of them is overflowed
  Precedence Word
d1 Int
_ Int
_ < :: Precedence -> Precedence -> Bool
<  Precedence Word
d2 Int
_ Int
_ = Word
d1 forall a. Eq a => a -> a -> Bool
/= Word
d2 Bool -> Bool -> Bool
&& Word
d2 forall a. Num a => a -> a -> a
- Word
d1 forall a. Ord a => a -> a -> Bool
<= Word
deficitStepsW
  Precedence Word
d1 Int
_ Int
_ <= :: Precedence -> Precedence -> Bool
<= Precedence Word
d2 Int
_ Int
_ = Word
d2 forall a. Num a => a -> a -> a
- Word
d1 forall a. Ord a => a -> a -> Bool
<= Word
deficitStepsW

type Heap a = IntPSQ Precedence a

data PriorityQueue a = PriorityQueue {
    forall a. PriorityQueue a -> Word
baseDeficit :: Deficit
  , forall a. PriorityQueue a -> Heap a
queue :: Heap a
  }

----------------------------------------------------------------

deficitSteps :: Int
deficitSteps :: Int
deficitSteps = Int
65536

deficitStepsW :: Word
deficitStepsW :: Word
deficitStepsW = forall a b. (Integral a, Num b) => a -> b
fromIntegral Int
deficitSteps

deficitList :: [Deficit]
deficitList :: [Word]
deficitList = forall a b. (a -> b) -> [a] -> [b]
map forall {a} {b}. (RealFrac a, Integral b) => a -> b
calc [Double]
idxs
  where
    idxs :: [Double]
idxs = [Double
1..Double
256] :: [Double]
    calc :: a -> b
calc a
w = forall a b. (RealFrac a, Integral b) => a -> b
round (forall a b. (Integral a, Num b) => a -> b
fromIntegral Int
deficitSteps forall a. Fractional a => a -> a -> a
/ a
w)

deficitTable :: Array Int Deficit
deficitTable :: Array Int Word
deficitTable = forall i e. Ix i => (i, i) -> [e] -> Array i e
listArray (Int
1,Int
256) [Word]
deficitList

weightToDeficit :: Weight -> Deficit
weightToDeficit :: Int -> Word
weightToDeficit Int
w = Array Int Word
deficitTable forall i e. Ix i => Array i e -> i -> e
! Int
w

----------------------------------------------------------------

empty :: PriorityQueue a
empty :: forall a. PriorityQueue a
empty = forall a. Word -> Heap a -> PriorityQueue a
PriorityQueue Word
0 forall p v. IntPSQ p v
P.empty

isEmpty :: PriorityQueue a -> Bool
isEmpty :: forall a. PriorityQueue a -> Bool
isEmpty PriorityQueue{Word
Heap a
queue :: Heap a
baseDeficit :: Word
queue :: forall a. PriorityQueue a -> Heap a
baseDeficit :: forall a. PriorityQueue a -> Word
..} = forall p v. IntPSQ p v -> Bool
P.null Heap a
queue

enqueue :: Key -> Precedence -> a -> PriorityQueue a -> PriorityQueue a
enqueue :: forall a.
Int -> Precedence -> a -> PriorityQueue a -> PriorityQueue a
enqueue Int
k p :: Precedence
p@Precedence{Int
Word
dependency :: Int
weight :: Int
deficit :: Word
dependency :: Precedence -> Int
weight :: Precedence -> Int
deficit :: Precedence -> Word
..} a
v PriorityQueue{Word
Heap a
queue :: Heap a
baseDeficit :: Word
queue :: forall a. PriorityQueue a -> Heap a
baseDeficit :: forall a. PriorityQueue a -> Word
..} =
    forall a. Word -> Heap a -> PriorityQueue a
PriorityQueue Word
baseDeficit Heap a
queue'
  where
    d :: Word
d = Int -> Word
weightToDeficit Int
weight
    b :: Word
b = if Word
deficit forall a. Eq a => a -> a -> Bool
== Word
0 then Word
baseDeficit else Word
deficit
    deficit' :: Word
deficit' = forall a. Ord a => a -> a -> a
max (Word
b forall a. Num a => a -> a -> a
+ Word
d) Word
baseDeficit
    p' :: Precedence
p' = Precedence
p { deficit :: Word
deficit = Word
deficit' }
    queue' :: Heap a
queue' = forall p v. Ord p => Int -> p -> v -> IntPSQ p v -> IntPSQ p v
P.insert Int
k Precedence
p' a
v Heap a
queue

dequeue :: PriorityQueue a -> Maybe (Key, Precedence, a, PriorityQueue a)
dequeue :: forall a.
PriorityQueue a -> Maybe (Int, Precedence, a, PriorityQueue a)
dequeue PriorityQueue{Word
Heap a
queue :: Heap a
baseDeficit :: Word
queue :: forall a. PriorityQueue a -> Heap a
baseDeficit :: forall a. PriorityQueue a -> Word
..} = case forall p v. Ord p => IntPSQ p v -> Maybe (Int, p, v, IntPSQ p v)
P.minView Heap a
queue of
    Maybe (Int, Precedence, a, Heap a)
Nothing                -> forall a. Maybe a
Nothing
    Just (Int
k, Precedence
p, a
v, Heap a
queue') -> let base :: Word
base = Precedence -> Word
deficit Precedence
p
                              in forall a. a -> Maybe a
Just (Int
k, Precedence
p, a
v, forall a. Word -> Heap a -> PriorityQueue a
PriorityQueue Word
base Heap a
queue')

delete :: Key -> PriorityQueue a -> (Maybe a, PriorityQueue a)
delete :: forall a. Int -> PriorityQueue a -> (Maybe a, PriorityQueue a)
delete Int
k q :: PriorityQueue a
q@PriorityQueue{Word
Heap a
queue :: Heap a
baseDeficit :: Word
queue :: forall a. PriorityQueue a -> Heap a
baseDeficit :: forall a. PriorityQueue a -> Word
..} = case forall p v b.
Ord p =>
(Maybe (p, v) -> (b, Maybe (p, v)))
-> Int -> IntPSQ p v -> (b, IntPSQ p v)
P.alter forall {a} {a} {a}. Maybe (a, a) -> (Maybe a, Maybe a)
f Int
k Heap a
queue of
    (mv :: Maybe a
mv@(Just a
_), Heap a
queue') -> case forall p v. Ord p => IntPSQ p v -> Maybe (Int, p, v, IntPSQ p v)
P.minView Heap a
queue of
        Maybe (Int, Precedence, a, Heap a)
Nothing          -> forall a. HasCallStack => String -> a
error String
"delete"
        Just (Int
k',Precedence
p',a
_,Heap a
_)
          | Int
k' forall a. Eq a => a -> a -> Bool
== Int
k      -> (Maybe a
mv, forall a. Word -> Heap a -> PriorityQueue a
PriorityQueue (Precedence -> Word
deficit Precedence
p') Heap a
queue')
          | Bool
otherwise    -> (Maybe a
mv, forall a. Word -> Heap a -> PriorityQueue a
PriorityQueue Word
baseDeficit Heap a
queue')
    (Maybe a
Nothing, Heap a
_)         -> (forall a. Maybe a
Nothing, PriorityQueue a
q)
  where
    f :: Maybe (a, a) -> (Maybe a, Maybe a)
f Maybe (a, a)
Nothing      = (forall a. Maybe a
Nothing, forall a. Maybe a
Nothing)
    f (Just (a
_,a
v)) = (forall a. a -> Maybe a
Just a
v,  forall a. Maybe a
Nothing)