ludic/packages/ludic.render3d/render.ludic
Orkuncakilkaya 6525c11b3c feat(render3d): HDR10 output, and DLSS that stays still
HDR output: an HDR10 swapchain (A2B10G10R10, ST 2084 over BT.2020) when the
setting asks and the display offers it, with HDR metadata. The tonemap's HDR10
variant keeps the SDR picture up to a 200-nit paper white and rolls highlights
on to 1000 nits; the overlay's converts the interface to the same white. The
screen and LDR images go 10-bit with it; screenshots refuse while it is on.
OpenGL and the Vulkan SDR frame are unchanged. The instance asks for
VK_EXT_swapchain_colorspace. HDR metadata only where the loader has
vkSetHdrMetadataEXT: Streamline's interposer does not, and calling the thunk
crashed the game the moment the swapchain came up HDR10. PC 4K monitor: HDR10,
validation 0. R3D_HDR overrides the setting.

DLSS:
- the vertical jitter offset flips with Streamline's image (rows from the top):
  unflipped, Quality resolved the ground into concentric rings;
- preset K in every mode: the default M put Performance at 18 ms a frame at 4K
  on an RTX 3070 Ti (33 fps against 41 with DLSS off; with K, 60);
- the camera is jittered only while this frame holds a token and the last
  evaluate worked.
R3D_DLSS_PRESET, R3D_CAM_LOG (the camera and DLSS state a frame) and
R3D_NOGRAIN for measuring.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
2026-09-15 20:06:18 +03:00

274 lines
11 KiB
Text

# ============================================================================
# render.ludic — the frame. Shadow cascades, the HDR scene pass (terrain, the
# scene's objects, the sky), bloom, and the tonemapped composite to the screen.
# The scene (what the game places in the world) hooks in through scene_draw /
# scene_draw_casters, which the demo defines.
# ============================================================================
var r3d_sky_prog: int = 0
var r3d_fog_density: int = 0
var r3d_fog_scale: int = 0x3F800000 # float bits: a setting's multiplier over the density the day sets
var r3d_fog_falloff: int = 0
var r3d_fog_base: int = 0 # the height fog is measured from (float bits); 0 = y = 0
var r3d_time: int = 0
var r3d_ready: bool = false
# set before r3d_init to build the landscape from a real height map
var r3d_dem_path: string = null
var r3d_dem_min: int = 0
var r3d_dem_max: int = 0
var r3d_dem_base: int = 0
var r3d_dem_ox: int = 0
var r3d_dem_oz: int = 0
var r3d_ortho_path: string = null
var r3d_debug: bool = false
var r3d_debug_shadow: bool = false
var r3d_debug_max: bool = false
var r3d_cloud_shadow: int = 0x3F000000 # 0.5
var r3d_clip_y: int = 0xCF000000 # -2^31: no clipping
# R3D_NOPREPASS=1: light the foliage the old way, every card behind the front one included
var r3d_prepass_env: int = -1
function r3d_prepass_off() -> bool {
if r3d_prepass_env < 0 { r3d_prepass_env = 0; if Os.has_env("R3D_NOPREPASS") { r3d_prepass_env = 1 } }
return r3d_prepass_env == 1
}
function fog_bind(prog: int) -> void {
u_f(gpu_uniform(prog, "u_clip_y"), r3d_clip_y)
u_f(gpu_uniform(prog, "u_spec_scale"), F_ONE)
u_f(gpu_uniform(prog, "u_fog_density"), r3d_fog_density)
u_f(gpu_uniform(prog, "u_fog_height_falloff"), r3d_fog_falloff)
u_f(gpu_uniform(prog, "u_fog_base"), r3d_fog_base)
var cs = r3d_cloud_shadow
if Os.has_env("R3D_NOCLOUD") { cs = F_ZERO }
u_f(gpu_uniform(prog, "u_cloud_shadow"), cs)
u_f(gpu_uniform(prog, "u_time"), r3d_time)
}
# profiling switches (environment): R3D_NOSHADOW R3D_NOGI R3D_MSAA=n R3D_NOBLADES R3D_NOCARDS R3D_NOTREES R3D_NEAR=m
var r3d_test_frame: int = 0
var r3d_test_resize: int = 0
var r3d_no_shadow: bool = false
var r3d_no_trees: bool = false
var r3d_no_refl: bool = false
function r3d_env_flags() -> void {
r3d_no_shadow = Os.has_env("R3D_NOSHADOW")
r3d_no_trees = Os.has_env("R3D_NOTREES")
r3d_no_refl = Os.has_env("R3D_NOREFL")
if Os.has_env("R3D_DEBUG") { r3d_debug = true }
if Os.has_env("R3D_DBGSHADOW") { r3d_debug_shadow = true }
if Os.has_env("R3D_NOGI") { post_gi_strength = F_ZERO; post_ao_strength = F_ZERO; post_no_gi = true }
if Os.has_env("R3D_MSAA") { post_ms_samples = Text.to_int(Os.env("R3D_MSAA")) }
sc_skip_blade = Os.has_env("R3D_NOBLADES")
sc_skip_card = Os.has_env("R3D_NOCARDS")
sc_dbg_lod = Os.has_env("R3D_LODDBG")
if Os.has_env("R3D_ANISO") {
let a = Text.to_int(Os.env("R3D_ANISO"))
tex_anisotropy = 1.0
if a >= 2 { tex_anisotropy = 2.0 }
if a >= 4 { tex_anisotropy = 4.0 }
if a >= 8 { tex_anisotropy = 8.0 }
if a >= 16 { tex_anisotropy = 16.0 }
}
}
# Start the renderer in one call: the window, then every load step in order. A game that shows
# a loading screen calls r3d_open, draws its screen, and runs r3d_load_step itself between frames.
function r3d_init(w: int, h: int, title: string) -> bool {
if not r3d_open(w, h, title) { return false }
for i in 0 .. r3d_load_count() { if not r3d_load_step(i) { return false } }
return true
}
# the window and the graphics backend; nothing is baked yet, but a frame can be presented
function r3d_open(w: int, h: int, title: string) -> bool {
r3d_env_flags()
gpu_select()
if not gpu_open(w, h, title) { print("r3d: no OpenGL context"); return false }
if Os.has_env("R3D_NOVSYNC") { gpu_vsync(0) }
var renderer: string = gpu_renderer_name()
print(`r3d: {gl_w}x{gl_h} on {renderer}`)
prof_init()
cam_init(fr(gl_w, gl_h))
return true
}
# The load, as steps a loading screen can show between: 0 the sky and its image-based light,
# 1 - 4 the terrain (the height field and normals, its sun shadow, its materials, its patches and
# programs), 5 the shadow maps and the screen targets, 6 the scattered cover and the actors, 7 the
# grass and the sky pass. The order is r3d_init's.
function r3d_load_count() -> int { return 4 + TERRAIN_INIT_STEPS }
function r3d_load_step(i: int) -> bool {
let t = i - 1
if i == 0 {
if not sky_load(r3d_assets + "/hdri/kloofendal_48d_partly_cloudy_puresky_4k.hdr") { return false }
daylight_init()
} else if t >= 0 and t < TERRAIN_INIT_STEPS {
if t == 0 {
if r3d_dem_path != null { terrain_use_dem(r3d_dem_path, r3d_dem_min, r3d_dem_max, r3d_dem_base, r3d_dem_ox, r3d_dem_oz) }
if r3d_ortho_path != null { terrain_use_ortho(r3d_ortho_path) }
}
terrain_init_step(t)
} else if i == 1 + TERRAIN_INIT_STEPS {
shadow_init()
post_init(gl_w, gl_h)
} else if i == 2 + TERRAIN_INIT_STEPS {
scatter_init()
actor_init()
} else if i == 3 + TERRAIN_INIT_STEPS {
grass_init()
r3d_sky_prog = r3d_program("fullscreen.vert", "sky.frag", "")
r3d_fog_density = fl(0.00014)
r3d_fog_falloff = fl(0.002)
r3d_ready = true
gpu_check("r3d init")
}
return true
}
function r3d_draw_sky() -> void {
gpu_depth_func(GL_LEQUAL)
gpu_depth_write(false)
gpu_cull(false)
let p = r3d_sky_prog
gpu_use_program(p)
r3d_bind_2d(p, "u_sky", 0, sky_tex)
sky_bind_rot(p)
sky_bind_lighting(p)
u_mat4(gpu_uniform(p, "u_inv_vp"), cam_inv_vp)
u_f(gpu_uniform(p, "u_sky_gain"), fl(0.95))
u_f(gpu_uniform(p, "u_sky_sat"), fl(1.35))
u_f(gpu_uniform(p, "u_time"), r3d_time)
mesh_draw(sky_fullscreen)
gpu_depth_write(true)
gpu_depth_func(GL_LESS)
}
# The end of the game's frame, whichever backend draws it: a screenshot first if one is wanted,
# then the present. A game calls these rather than Gl.swap / Gl.screenshot.
function r3d_screenshot(path: string) -> bool { return gpu_screenshot(path) }
function r3d_present() -> void { gpu_present() }
# the drawable changed size: the camera's aspect and every screen-sized target follow
function r3d_resize() -> void {
cam_aspect = fr(gl_w, gl_h)
cam_update()
post_free()
post_init(gl_w, gl_h)
if water_refl != null { target_free(water_refl); water_refl = null }
print(`r3d: resized to {gl_w}x{gl_h}`)
}
var r3d_cam_log: int = -1
function r3d_frame(time: int) -> void {
gpu_glcheck_after("the time between frames")
outline_frame()
if not r3d_ready { return }
if gpu_resize_check() { r3d_resize() }
# R3D_RESIZE_AT=<frame>: rebuild every screen-sized buffer mid-run, as a window resize
# or a fullscreen change does. Headless has no window to resize, and this path is where
# a stale attachment or a texture freed twice shows up.
r3d_test_frame += 1
if r3d_test_resize == 0 and Os.has_env("R3D_RESIZE_AT") { r3d_test_resize = Text.to_int(Os.env("R3D_RESIZE_AT")) }
# R3D_RESIZE_AT=<n>: from frame n on, rebuild every screen-sized buffer every few
# frames at a different size, as dragging a window edge or entering fullscreen does.
if r3d_test_resize > 0 and r3d_test_frame >= r3d_test_resize and r3d_test_frame % 4 == 0 {
let step = (r3d_test_frame / 4) % 4
var w = 1920; var h = 1080
if step == 1 { w = 1440; h = 810 }
if step == 2 { w = 2560; h = 1440 }
if step == 3 { w = 1281; h = 721 }
gl_w = w; gl_h = h
r3d_resize()
}
r3d_time = time
gsl_frame_start()
# the frame's counters close here, before any of its own work: the window each of them
# covers is exactly one frame, from this point to the same point next time
prof_gen_frame()
prof_mark_start()
cam_begin_frame(post_frame, gl_w, gl_h)
# R3D_CAM_LOG=1: the camera each frame, in millimetres and thousandths of a radian - to tell a
# camera that moves while the hiker stands still from a picture that shakes on its own
if r3d_cam_log < 0 { r3d_cam_log = 0; if Os.has_env("R3D_CAM_LOG") { r3d_cam_log = 1 } }
if r3d_cam_log == 1 {
print(`cam {r3d_test_frame} pos {f_to_int(f_mul(cam_pos[0], fi(1000)))} {f_to_int(f_mul(cam_pos[1], fi(1000)))} {f_to_int(f_mul(cam_pos[2], fi(1000)))} yaw {f_to_int(f_mul(cam_yaw, fi(1000)))} pitch {f_to_int(f_mul(cam_pitch, fi(1000)))} jitter {f_to_int(f_mul(gsl_jitter_x, fi(1000000)))} {f_to_int(f_mul(gsl_jitter_y, fi(1000000)))} render {post_w}x{post_h} reset {gsl_reset} evalok {gsl_eval_ok} fresh {gsl_fresh}`)
}
# the height-field shadow rebakes as the light moves in steps (daylight), or with the sky yaw when there is no clock
if (not day_on and ter_shadow_yaw != sky_yaw) or ter_shadow_gen != day_gen {
ter_shadow_gen = day_gen
let t_bk = gl_now_us()
terrain_bake_shadow()
prof_bake_add(gl_now_us() - t_bk)
}
scatter_begin_frame()
prof_cpu_mark("shadow rebake")
stream_update_all()
prof_cpu_mark("streaming")
if not r3d_no_shadow { prof_begin("shadow"); shadow_pass(); prof_end() }
prof_cpu_mark("shadow pass")
if water_on and not r3d_no_refl and water_reflect_visible() { prof_begin("water reflection"); water_reflection_pass(); prof_end() }
prof_cpu_mark("reflection")
post_begin_scene()
# the near tree foliage lays its depth down before anything is shaded, so the terrain
# under the stands and the cards behind the front ones are rejected before lighting.
# It has to come straight after post_begin_scene: terrain_sun_prepare binds its own
# target, and depth drawn after it lands in the sun buffer, not the scene's.
if not r3d_prepass_off() {
prof_begin("foliage prepass")
gpu_color_write(false)
scatter_draw_depth()
gpu_color_write(true)
prof_end()
sc_prepass = true
}
prof_cpu_mark("foliage prepass")
prof_begin("terrain sun")
terrain_sun_prepare()
prof_end()
prof_begin("terrain")
terrain_draw()
prof_end()
prof_cpu_mark("terrain")
prof_begin("scene (vegetation)")
scene_draw()
prof_end()
sc_prepass = false
prof_cpu_mark("vegetation")
prof_begin("grass")
grass_draw()
prof_end()
prof_cpu_mark("grass")
prof_begin("sky")
r3d_draw_sky()
prof_end()
prof_begin("resolve MSAA")
post_resolve()
prof_end()
# transparent water over the resolved frame: it tests against the frame's own
# depth and reads a copy of it for the depth tint and soft shores
if water_on {
prof_begin("water surface")
post_capture_scene()
target_bind(post_hdr)
gpu_depth_test(true)
gpu_depth_func(GL_LESS)
water_draw(post_depth_copy.depth)
prof_end()
}
post_color = post_hdr.color; post_color_w = post_w; post_color_h = post_h
# DLSS super resolution: the lit frame up to the display's size, before anything reads it
if gsl_dlss_live() { prof_begin("DLSS"); post_color = gsl_dlss_eval(); prof_end() }
if not post_no_gi { prof_begin("SSAO/GI"); post_ssao_pass(); prof_end() }
if r3d_debug_max { tex_max(post_hdr.color, post_hdr.w, post_hdr.h, "hdr") }
prof_begin("bloom")
post_bloom_pass()
prof_end()
prof_begin("tonemap+exposure")
post_tonemap(post_color)
prof_end()
prof_cpu_mark("post")
prof_begin("prev-colour copy")
post_capture_prev()
prof_end()
prof_collect()
gpu_check("frame")
}