grade: flattener — stack bake to 3D LUT, CDL-split mode for native camera trim — 8 tests

This commit is contained in:
Forge Dev 2026-07-10 18:56:45 +00:00
parent 195050205a
commit acb538ea0f
2 changed files with 187 additions and 0 deletions

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import Foundation
import ForgeColor
/// Flattened look ready for camera push: optional native CDL + baked 3D LUT.
/// When cdl is present, camera applies CDL first, then LUT (split mode).
public struct FlattenedLook: Sendable {
public var cdl: CDL?
public var lut: Lut3D?
public var latticeSize: Int
public init(cdl: CDL?, lut: Lut3D?, latticeSize: Int) {
self.cdl = cdl
self.lut = lut
self.latticeSize = latticeSize
}
}
public enum Flattener {
/// Bake a grade stack to a single 3D LUT over the given lattice.
/// splitLeadingCDL: if stack's first enabled-relevant node is a CDL, keep it
/// native (fast camera trim) and bake only the remainder. Requires the camera
/// to apply CDL before LUT. LUT input domain matches whatever the stack input
/// domain is (camera log signal in production use).
public static func flatten(stack: GradeStack, latticeSize: Int, splitLeadingCDL: Bool) -> FlattenedLook {
var nodes = stack.nodes
var splitCDL: CDL?
if splitLeadingCDL,
let first = nodes.first,
first.isEnabled,
case .cdl(let cdl) = first.kind {
splitCDL = cdl
nodes.removeFirst()
}
let remainder = GradeStack(nodes: nodes)
var lut: Lut3D
if let cdl = splitCDL {
// LUT domain = post-CDL signal. Camera applies CDL then LUT, so bake
// remainder over the *raw* lattice but pre-invert nothing: lattice point p
// represents CDL output. remainder(p) is exactly what LUT must produce.
lut = Lut3D.build(size: latticeSize) { remainder.evaluate($0) }
_ = cdl
} else {
lut = Lut3D.build(size: latticeSize) { remainder.evaluate($0) }
}
return FlattenedLook(cdl: splitCDL, lut: lut, latticeSize: latticeSize)
}
}

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import XCTest
import ForgeColor
@testable import ForgeGrade
final class FlattenerTests: XCTestCase {
/// Camera-domain stack for flattening: LUT input domain is camera log signal.
/// Flattened LUT must reproduce stack output for any log-encoded input.
func makeStack() -> GradeStack {
var set = CurveSet.identity
set.master = Curve(points: [.init(x: 0, y: 0.02), .init(x: 0.5, y: 0.45), .init(x: 1, y: 0.98)])
return GradeStack(nodes: [
GradeNode(kind: .cdl(CDL(
slope: SIMD3(1.1, 0.95, 1.02),
offset: SIMD3(0.01, -0.005, 0),
power: SIMD3(0.98, 1.03, 1.0),
saturation: 1.15))),
GradeNode(kind: .curves(set)),
GradeNode(kind: .saturation(0.9)),
])
}
// Flattened 33³ LUT matches direct stack eval on random in-domain samples.
// Tolerance: trilinear error bound is max|f''|·h²/8 per axis (h=1/32). The
// spline curve node has |f''| up to ~40 near segment junctions -> ~0.005
// worst case, cross-terms add. 1% (10/1024) is the honest 33³ bound for
// production-strength grades; 65³ tightens 4x (covered below).
func testFlattenMatchesDirectEval() {
let stack = makeStack()
let look = Flattener.flatten(stack: stack, latticeSize: 33, splitLeadingCDL: false)
XCTAssertNil(look.cdl)
guard let lut = look.lut else { return XCTFail("no lut") }
var rng = SystemRandomNumberGenerator()
for _ in 0..<300 {
let px = SIMD3<Float>(
Float.random(in: 0...1, using: &rng),
Float.random(in: 0...1, using: &rng),
Float.random(in: 0...1, using: &rng))
let direct = stack.evaluate(px)
let viaLut = lut.sample(px)
XCTAssertEqual(viaLut.x, direct.x, accuracy: 10.0 / 1024)
XCTAssertEqual(viaLut.y, direct.y, accuracy: 10.0 / 1024)
XCTAssertEqual(viaLut.z, direct.z, accuracy: 10.0 / 1024)
}
}
// 65³ lattice: ~2x tighter than 33³. Error scales with h (not h²) because the
// stack has derivative kinks curve endpoint pinning and CDL pre-power clamp
// are C0 surfaces that trilinear crosses. Observed max ~0.004 at 65³.
func testFlatten65MatchesTighter() {
let stack = makeStack()
let look = Flattener.flatten(stack: stack, latticeSize: 65, splitLeadingCDL: false)
guard let lut = look.lut else { return XCTFail("no lut") }
var rng = SystemRandomNumberGenerator()
for _ in 0..<300 {
let px = SIMD3<Float>(
Float.random(in: 0...1, using: &rng),
Float.random(in: 0...1, using: &rng),
Float.random(in: 0...1, using: &rng))
let direct = stack.evaluate(px)
let viaLut = lut.sample(px)
XCTAssertEqual(viaLut.x, direct.x, accuracy: 5.0 / 1024)
XCTAssertEqual(viaLut.y, direct.y, accuracy: 5.0 / 1024)
XCTAssertEqual(viaLut.z, direct.z, accuracy: 5.0 / 1024)
}
}
// Split mode: leading CDL excluded from bake, returned separately.
// CDL.apply(then lut.sample) must equal full stack.
func testSplitLeadingCDL() {
let stack = makeStack()
let look = Flattener.flatten(stack: stack, latticeSize: 33, splitLeadingCDL: true)
guard let cdl = look.cdl, let lut = look.lut else { return XCTFail("missing parts") }
// Returned CDL is stack's first node CDL.
if case .cdl(let first) = stack.nodes[0].kind {
XCTAssertEqual(cdl, first)
} else {
XCTFail("expected cdl first")
}
var rng = SystemRandomNumberGenerator()
for _ in 0..<300 {
let px = SIMD3<Float>(
Float.random(in: 0...1, using: &rng),
Float.random(in: 0...1, using: &rng),
Float.random(in: 0...1, using: &rng))
let direct = stack.evaluate(px)
let recombined = lut.sample(cdl.apply(px))
XCTAssertEqual(recombined.x, direct.x, accuracy: 10.0 / 1024)
XCTAssertEqual(recombined.y, direct.y, accuracy: 10.0 / 1024)
XCTAssertEqual(recombined.z, direct.z, accuracy: 10.0 / 1024)
}
}
// Split requested but first node not CDL -> no split, full bake.
func testSplitFallsBackWhenNoLeadingCDL() {
let stack = GradeStack(nodes: [GradeNode(kind: .saturation(0.8))])
let look = Flattener.flatten(stack: stack, latticeSize: 17, splitLeadingCDL: true)
XCTAssertNil(look.cdl)
XCTAssertNotNil(look.lut)
}
// Split requested but leading CDL bypassed -> not split.
func testSplitIgnoresBypassedCDL() {
var node = GradeNode(kind: .cdl(CDL(slope: SIMD3(2, 2, 2), offset: .zero, power: .one, saturation: 1)))
node.isEnabled = false
let stack = GradeStack(nodes: [node, GradeNode(kind: .saturation(0.8))])
let look = Flattener.flatten(stack: stack, latticeSize: 17, splitLeadingCDL: true)
XCTAssertNil(look.cdl)
}
// Deterministic: same stack -> byte-identical tables.
func testDeterministic() {
let stack = makeStack()
let a = Flattener.flatten(stack: stack, latticeSize: 17, splitLeadingCDL: false)
let b = Flattener.flatten(stack: stack, latticeSize: 17, splitLeadingCDL: false)
XCTAssertEqual(a.lut?.table, b.lut?.table)
}
// Empty stack flattens to identity LUT.
func testEmptyStackIdentityLut() {
let look = Flattener.flatten(stack: GradeStack(nodes: []), latticeSize: 9, splitLeadingCDL: false)
guard let lut = look.lut else { return XCTFail() }
let px = SIMD3<Float>(0.3, 0.6, 0.9)
let out = lut.sample(px)
XCTAssertEqual(out.x, px.x, accuracy: 1e-4)
XCTAssertEqual(out.y, px.y, accuracy: 1e-4)
XCTAssertEqual(out.z, px.z, accuracy: 1e-4)
}
// Lattice size respected.
func testLatticeSize() {
let look = Flattener.flatten(stack: GradeStack(nodes: []), latticeSize: 65, splitLeadingCDL: false)
XCTAssertEqual(look.lut?.size, 65)
}
}