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|
{-# LANGUAGE DisambiguateRecordFields #-}
{-# LANGUAGE NamedFieldPuns #-}
{-# LANGUAGE OverloadedRecordDot #-}
-- |
-- - Module : Game
-- - Description : runs game
-- - Copyright : 2025 Andromeda
-- - License : BSD 3-clause
-- - Maintainer : Matrix @Andromeda:tchncs.de
-- - Stability : Experimental
module Main
( main,
)
where
import Control.Lens ((^.))
import Data.IORef (newIORef)
import GHC.Float (double2Float)
import Game.Internal
import Game.Internal.Types
import Graphics.Rendering.OpenGL (($=))
import qualified Graphics.Rendering.OpenGL as GL
import qualified Graphics.UI.GLFW as GLFW
import Linear (V3 (..), V4 (..), (*^), _w, _xyz, _y)
import qualified Linear as L
-- | Main function runs game
main :: IO ()
main = do
_ <- GLFW.init
GLFW.defaultWindowHints
-- OpenGL core >=3.3
GLFW.windowHint $ GLFW.WindowHint'ContextVersionMajor 3
GLFW.windowHint $ GLFW.WindowHint'ContextVersionMinor 3
GLFW.windowHint $ GLFW.WindowHint'OpenGLProfile GLFW.OpenGLProfile'Core
-- MSAA
GLFW.windowHint $ GLFW.WindowHint'Samples $ Just 8
-- alpha
-- create window
monitor <- GLFW.getPrimaryMonitor
Just window <- GLFW.createWindow 256 256 "hs-game" monitor Nothing
GLFW.makeContextCurrent $ Just window
-- add callbacks
GLFW.setWindowCloseCallback window $ Just shutdownWindow
GLFW.setWindowSizeCallback window $ Just resizeWindow
GLFW.setKeyCallback window $ Just (keyPressed Nothing)
GLFW.setCursorInputMode window GLFW.CursorInputMode'Hidden
GLFW.setCursorPosCallback window $ Just (cursorPosHandler Nothing)
(object, program) <-
initResources $
concat
( [hCube]
++ [map (\v -> (V4 a 0 0 a) + (rotate4 0 1 (a * g90 / 24) v)) hCube | a <- take 1000 [0, 2 ..]]
++ [map (\v -> (V4 a 2 0 a) + (rotate4 0 2 (a * g90 / 24) v)) hCube | a <- take 1000 [0, 2 ..]]
++ [map (\v -> (V4 a 4 0 a) + (rotate4 0 3 (a * g90 / 24) v)) hCube | a <- take 1000 [0, 2 ..]]
++ [map (\v -> (V4 a (-2) 0 a) + (rotate4 1 0 (a * g90 / 24) v)) hCube | a <- take 1000 [0, 2 ..]]
++ [map (\v -> (V4 a (-4) 0 a) + (rotate4 2 0 (a * g90 / 24) v)) hCube | a <- take 1000 [0, 2 ..]]
++ [map (\v -> (V4 a (-6) 0 a) + (rotate4 3 0 (a * g90 / 24) v)) hCube | a <- take 1000 [0, 2 ..]]
)
let model =
mkModel
( mkCamera
(V4 0 0 3 0) -- camPos
0 -- pitch
0 -- yaw
(V3 0 0 (-1)) -- reference vector
(V3 0 0 0) -- velocity
2 -- mouse sensitivity
16 -- strafe strength
12 -- jump strength
)
[object]
program
(mkWorldProperties 2 0.16 (V3 0 1 0))
modelRef <- newIORef model
-- add callbacks with io ref to model
GLFW.setKeyCallback window $ Just $ keyPressed $ Just modelRef
GLFW.setCursorPosCallback window $ Just $ cursorPosHandler $ Just modelRef
loop window 0 update view modelRef
--------------------------------------------------------------------------------
-- Arrays
--------------------------------------------------------------------------------
m = (0 - p)
p = 0.5
g90 = pi / 2
v3tov4 :: GL.GLfloat -> V3 GL.GLfloat -> V4 GL.GLfloat
v3tov4 w (V3 x y z) = V4 x y z w
v3tov4' :: GL.GLfloat -> V3 GL.GLfloat -> V4 GL.GLfloat
v3tov4' w (V3 x y z) = V4 x y w z
v3tov4'' :: GL.GLfloat -> V3 GL.GLfloat -> V4 GL.GLfloat
v3tov4'' w (V3 x y z) = V4 x w y z
v3tov4''' :: GL.GLfloat -> V3 GL.GLfloat -> V4 GL.GLfloat
v3tov4''' w (V3 x y z) = V4 w x y z
rotate :: V3 GL.GLfloat -> GL.GLfloat -> V3 GL.GLfloat -> V3 GL.GLfloat
rotate axis angle point = L.fromQuaternion (L.axisAngle axis angle) L.!* point
rotate4 :: Int -> Int -> GL.GLfloat -> V4 GL.GLfloat -> V4 GL.GLfloat
rotate4 i0 i1 angle (V4 x y z w) =
let coords = [x, y, z, w]
cos' = cos angle
sin' = sin angle
xi = coords !! i0
xj = coords !! i1
coords' =
[ if k == i0
then cos' * xi - sin' * xj
else
if k == i1
then sin' * xi + cos' * xj
else coords !! k
| k <- [0 .. 3]
]
in V4 (coords' !! 0) (coords' !! 1) (coords' !! 2) (coords' !! 3)
cycle3r :: V3 GL.GLfloat -> V3 GL.GLfloat
cycle3r (V3 a b c) = V3 c a b
cycle3l :: V3 GL.GLfloat -> V3 GL.GLfloat
cycle3l (V3 a b c) = V3 b c a
face :: [V3 GL.GLfloat]
face =
[ V3 m m 0,
V3 p m 0,
V3 m p 0,
V3 m p 0,
V3 p m 0,
V3 p p 0
]
-- | cube, side length 1, centered on 0 0 0
cube :: [V3 GL.GLfloat]
cube =
concatMap
( \faceSpec ->
map
(\v -> (rotate (fst faceSpec) g90 v) L.^+^ (rotate (fst faceSpec) g90 (snd faceSpec)))
face
)
[ (V3 0 0 1, V3 0 0 p),
(V3 0 1 0, V3 0 0 p),
(V3 1 0 0, V3 0 0 p),
(V3 0 0 (-1), V3 0 0 m), -- no clue
(V3 0 (-1) 0, V3 0 0 p),
(V3 (-1) 0 0, V3 0 0 p)
]
hCube :: [V4 GL.GLfloat]
hCube =
concatMap
( \(w, i0, i1) ->
map
(rotate4 i0 i1 g90 . v3tov4 w)
cube
)
[ (p, 3, 0),
(p, 0, 3),
(p, 1, 3),
(p, 2, 3),
(m, 3, 0),
(m, 0, 3),
(m, 1, 3),
(m, 2, 3)
]
--------------------------------------------------------------------------------
-- Elm-like data structures
--------------------------------------------------------------------------------
-- | update function
update :: Float -> Model -> Model
update dt model =
updateW dt $
updateVelocity dt $
updateAcceleration dt $
updateSpeed dt $
updateCameraAngle dt model
updateW :: Float -> Model -> Model
updateW dt model =
if elem GLFW.Key'R model.keys
then
model
{ camera =
model.camera
{ camPos = model.camera.camPos + (V4 0 0 0 (dt * dt * model.camera.strafeStrength))
}
}
else
if elem GLFW.Key'F model.keys
then
model
{ camera =
model.camera
{ camPos = model.camera.camPos - (V4 0 0 0 (dt * dt * model.camera.strafeStrength))
}
}
else model
updateSpeed :: Float -> Model -> Model
updateSpeed dt model =
if elem GLFW.Key'T model.keys
then
model
{ camera =
model.camera
{ jumpStrength = model.camera.jumpStrength * 1.1,
strafeStrength = model.camera.strafeStrength * 1.1
}
}
else
if elem GLFW.Key'G model.keys
then
model
{ camera =
model.camera
{ jumpStrength = model.camera.jumpStrength * 0.99,
strafeStrength = model.camera.strafeStrength * 0.99
}
}
else model
updateAcceleration :: Float -> Model -> Model
updateAcceleration dt model =
let zp =
if elem GLFW.Key'S model.keys
then 1
else 0
zn =
if elem GLFW.Key'W model.keys
then 1
else 0
xp =
if elem GLFW.Key'D model.keys
then 1
else 0
xn =
if elem GLFW.Key'A model.keys
then 1
else 0
x = xp - xn
z = zp - zn
friction = V3 (1 - model.wprop.friction) 1 (1 - model.wprop.friction)
movement = L.normalize (V3 x 0 z) L.^* (dt * model.camera.strafeStrength)
movement' =
L.rotate (L.axisAngle model.wprop.up model.camera.camYaw) movement
jump =
if model.camera.hasJumped
then V3 0 (0 - model.wprop.g * model.camera.airTime) 0
else V3 0 0 0
camVel' = friction * (model.camera.camVel + movement' + jump)
aboveGround = ((model.camera.camPos ^. _xyz) + dt L.*^ camVel') ^. _y > 0
in if (elem GLFW.Key'Space model.keys) && (model.camera.hasJumped == False)
then
updateAcceleration dt $
model
{ camera =
model.camera
{ airTime = dt,
camVel =
model.camera.camVel
+ (V3 0 model.camera.jumpStrength 0),
hasJumped = True
}
}
else
if aboveGround
then
model
{ camera =
model.camera
{ airTime = model.camera.airTime + dt,
camVel = camVel',
hasJumped = aboveGround
}
}
else
model
{ camera =
model.camera
{ airTime = 0,
camVel = camVel' * (V3 1 0 1),
camPos = model.camera.camPos * (V4 1 0 1 1),
hasJumped = aboveGround
}
}
updateVelocity :: Float -> Model -> Model
updateVelocity dt model =
model
{ camera =
model.camera
{ camPos = V4 1 1 1 (model.camera.camPos ^. _w) * (L.point $ (model.camera.camPos ^. _xyz) + dt L.*^ model.camera.camVel)
}
}
updateCameraAngle :: Float -> Model -> Model
updateCameraAngle dt model =
let scaleFactor = model.camera.mouseSensitivity * dt
newPitch =
model.camera.camPitch
- scaleFactor * (double2Float $ snd model.cursorDeltaPos) -- mouse sensitivity, update pitch
newPitch' =
if newPitch > 1.56
then 1.56
else newPitch
newPitch'' =
if newPitch' < (-1.56)
then (-1.56)
else newPitch'
newYaw =
model.camera.camYaw
+ scaleFactor * (double2Float $ fst model.cursorDeltaPos)
in model
{ cursorDeltaPos = (0, 0),
camera = model.camera {camPitch = newPitch'', camYaw = newYaw}
}
-- | views the model
view :: GLFW.Window -> Model -> IO ()
view window model = do
-- fit viewport to window
(w, h) <- GLFW.getFramebufferSize window
GL.viewport $= (GL.Position 0 0, GL.Size (fromIntegral w) (fromIntegral h))
-- clear screen
GL.clearColor $= GL.Color4 1 0 1 1
GL.clear [GL.ColorBuffer, GL.DepthBuffer]
-- depth
GL.depthFunc $= Just GL.Less
-- apply transforms
let pitch = model.camera.camPitch
yaw = model.camera.camYaw
forward = V3 (cos pitch * sin yaw) (sin pitch) (cos pitch * cos yaw)
viewMatrix =
L.lookAt
(model.camera.camPos ^. _xyz)
((model.camera.camPos ^. _xyz) - forward)
model.wprop.up
projectionMatrix =
L.perspective 1.2 (fromIntegral w / fromIntegral h) 0.01 1000
viewGLMatrix <-
GL.newMatrix GL.RowMajor $ toGLMatrix viewMatrix ::
IO
(GL.GLmatrix GL.GLfloat)
-- load 3d view matrix
viewLocation <- GL.get $ GL.uniformLocation model.program "u_view"
GL.uniform viewLocation $= viewGLMatrix
projectionGLMatrix <-
GL.newMatrix GL.RowMajor $ toGLMatrix projectionMatrix ::
IO
(GL.GLmatrix GL.GLfloat)
-- load 3d projection matrix
projectionLocation <- GL.get $ GL.uniformLocation model.program "u_projection"
GL.uniform projectionLocation $= projectionGLMatrix
let camx = (\(V4 x _ _ _) -> x) model.camera.camPos
camy = (\(V4 _ y _ _) -> y) model.camera.camPos
camz = (\(V4 _ _ z _) -> z) model.camera.camPos
camw = (\(V4 _ _ _ w) -> w) model.camera.camPos
camWLocation <- GL.get $ GL.uniformLocation model.program "u_cam"
GL.uniform camWLocation $= GL.Vector4 camx camy camz camw
-- draw objects; returns IO []
_ <- drawObjects model.objects
-- swap to current buffer
GLFW.swapBuffers window
-- check for interrupts
GLFW.pollEvents
|