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| """Geometry renderer — ``geometry_world_v1`` → four assets (``docs/02`` §9.4, P6). | |
| Lays out a constraint graph deterministically. Free points are variables in | |
| ``[0,1]^2``; each supported predicate becomes a residual function; a fixed | |
| 16-seed ``scipy.optimize.least_squares`` run finds a realization. The renderer | |
| keeps the solution only when the max normalized residual is ``< 1e-6`` and every | |
| pair of distinct points is separated by ``> 0.02``; among the survivors it picks | |
| the one with the canonical-smallest rounded coordinate tuple (§9.4 steps 3–4). | |
| Unsupported predicates, an infeasible layout (no survivor), and degenerate / | |
| ambiguous drawings (a single-vertex angle with a stated measure, a segment | |
| referencing an unknown point) are **rejected** via :class:`RenderError` — P6 | |
| never silently coerces an unrenderable world into assets and never re-derives a | |
| geometry theorem to "fix" one (§9.4: "renderer는 geometry theorem을 새로 추론해 | |
| world를 수정하지 않는다"). | |
| REDACT_SOLID_V1 (§10.1): a hidden point is not drawn as data — a fixed, | |
| content-independent solid patch is painted at its would-be location, owned by no | |
| node. A hidden segment/angle is simply omitted from the canvas and the node map | |
| (a content-independent patch is well-defined for a point token, not for a line). | |
| No raster is ever edited or inpainted. | |
| """ | |
| from __future__ import annotations | |
| import hashlib | |
| from typing import Any, cast | |
| from ..dsl.ast import parse_number | |
| from ..sources.base import World | |
| from ..sources.world_ops import hidden_nodes | |
| from .base import ( | |
| DrawCommand, | |
| GlyphRecord, | |
| RenderedAssets, | |
| RendererFamily, | |
| RendererKind, | |
| RenderError, | |
| _Layout, | |
| build_render_manifest, | |
| build_text_manifest, | |
| font_sha256, | |
| paint_text, | |
| rasterize, | |
| validate_rendered_assets, | |
| ) | |
| _NAME = "geometry_renderer" | |
| _VERSION = "1" | |
| _KIND: RendererKind = "geometry" | |
| # §9.4 acceptance thresholds. | |
| _MAX_RESIDUAL = 1e-6 | |
| _MIN_SEPARATION = 0.02 | |
| _SEEDS = 16 | |
| _ROUND = 6 # coordinate rounding for the canonical selection tuple | |
| # Predicates this renderer can turn into placement residuals. Anything else is | |
| # rejected (§9.4 step 6) rather than silently dropped or guessed. | |
| _SUPPORTED_PREDICATES = frozenset( | |
| {"IsMidpointOf", "MeasureOf", "Equals", "Parallel", "Perpendicular"} | |
| ) | |
| # Marginal padding so drawn geometry is not flush against the canvas edge. | |
| _MARGIN = 0.12 | |
| class GeometryRenderer: | |
| """Deterministic renderer for ``geometry_world_v1``.""" | |
| name = _NAME | |
| version = _VERSION | |
| kind = _KIND | |
| def render( | |
| self, | |
| world: World, | |
| *, | |
| renderer_id: str, | |
| seed: int, | |
| width: int, | |
| height: int, | |
| family: RendererFamily | None = None, | |
| ) -> RenderedAssets: | |
| if world.get("world_schema") != "geometry_world_v1": | |
| raise RenderError( | |
| f"geometry renderer expects geometry_world_v1, got {world.get('world_schema')!r}" | |
| ) | |
| family = family or _GEO_TRAIN_FAMILY | |
| if family.kind != self.kind: | |
| raise RenderError( | |
| f"renderer family {family.name!r} has kind {family.kind!r}, expected {self.kind!r}" | |
| ) | |
| if renderer_id != family.name: | |
| raise RenderError(f"renderer_id {renderer_id!r} does not match family {family.name!r}") | |
| layout = _build_layout(world, family, seed, renderer_id) | |
| rgba_png, node_map_png, counts = rasterize(layout, width=width, height=height, seed=seed) | |
| manifest = build_render_manifest( | |
| renderer_id=renderer_id, | |
| renderer_name=self.name, | |
| renderer_version=self.version, | |
| family=family, | |
| world=world, | |
| seed=seed, | |
| width=width, | |
| height=height, | |
| rgba_png=rgba_png, | |
| node_map_png=node_map_png, | |
| visible_node_ids=layout.visible_node_ids, | |
| owner_ids=layout.owner_ids, | |
| node_pixel_counts=counts, | |
| glyph_count=len(layout.glyphs), | |
| ) | |
| text_manifest = build_text_manifest(layout.glyphs, world=world) | |
| assets = RenderedAssets( | |
| rgba_png=rgba_png, | |
| node_map_png=node_map_png, | |
| render_manifest=manifest, | |
| text_manifest=text_manifest, | |
| ) | |
| validate_rendered_assets(assets) | |
| return assets | |
| # --- entity / point model --------------------------------------------------- | |
| def _point_label(entity_id: str) -> str | None: | |
| """``point:A`` → ``"A"``; non-point entities → ``None``.""" | |
| if entity_id.startswith("point:"): | |
| return entity_id.split(":", 1)[1] | |
| return None | |
| def _segment_endpoints(entity_id: str) -> tuple[str, str] | None: | |
| """``segment:A_B`` → ``("A", "B")``; non-segment → ``None``.""" | |
| if entity_id.startswith("segment:"): | |
| body = entity_id.split(":", 1)[1] | |
| parts = body.split("_") | |
| if len(parts) == 2 and parts[0] and parts[1]: | |
| return parts[0], parts[1] | |
| return None | |
| def _angle_points(entity_id: str) -> tuple[str, str, str] | None: | |
| """``angle:A_B_C`` → ``("A","B","C")`` (vertex B); single-vertex → ``None``.""" | |
| if entity_id.startswith("angle:"): | |
| body = entity_id.split(":", 1)[1] | |
| parts = body.split("_") | |
| if len(parts) == 3 and all(parts): | |
| return parts[0], parts[1], parts[2] | |
| return None | |
| def _collect_points(world: World) -> list[str]: | |
| """Sorted labels of every free point (declared or referenced by a segment/angle).""" | |
| labels: set[str] = set() | |
| for e in world.get("entities", []) or []: | |
| eid = str(e.get("id", "")) | |
| lab = _point_label(eid) | |
| if lab is not None: | |
| labels.add(lab) | |
| ends = _segment_endpoints(eid) | |
| if ends is not None: | |
| labels.update(ends) | |
| ang = _angle_points(eid) | |
| if ang is not None: | |
| labels.update(ang) | |
| return sorted(labels) | |
| # --- constraint → residual -------------------------------------------------- | |
| # | |
| # Each residual function takes the flat coordinate vector ``xy`` (length 2N for N | |
| # point labels in sorted order) and returns a 1-D array of residuals. Point | |
| # label → index lookup is closed over per constraint. | |
| def _residuals(world: World, index: dict[str, int]) -> list[Any]: | |
| import numpy as np | |
| def pt(xy: np.ndarray, label: str) -> np.ndarray: | |
| i = index[label] | |
| return np.array([xy[2 * i], xy[2 * i + 1]], dtype=float) | |
| residuals: list[Any] = [] | |
| for c in world.get("constraints", []) or []: | |
| pred = str(c.get("predicate", "")) | |
| args = [str(a) for a in (c.get("args") or [])] | |
| if pred not in _SUPPORTED_PREDICATES: | |
| raise RenderError(f"unsupported geometry predicate: {pred!r}") | |
| if pred == "IsMidpointOf": | |
| # args: [point:D, segment:A_B] — D == midpoint of AB. | |
| if len(args) != 2: | |
| raise RenderError(f"IsMidpointOf needs 2 args, got {args!r}") | |
| d = _require_point(args[0], index=index) | |
| ends = _segment_endpoints(args[1]) | |
| if ends is None: | |
| raise RenderError(f"IsMidpointOf target is not a segment: {args[1]!r}") | |
| a, b = ends | |
| a = _require_point(a, index=index) | |
| b = _require_point(b, index=index) | |
| def r_mid(xy: np.ndarray, a: str = a, b: str = b, d: str = d) -> np.ndarray: | |
| mid = 0.5 * (pt(xy, a) + pt(xy, b)) | |
| return cast(np.ndarray, pt(xy, d) - mid) | |
| residuals.append(r_mid) | |
| elif pred == "MeasureOf": | |
| # args: [angle:A_B_C, deg] — angle at vertex B between BA and BC == deg. | |
| if len(args) != 2: | |
| raise RenderError(f"MeasureOf needs 2 args, got {args!r}") | |
| ang = _angle_points(args[0]) | |
| if ang is None: | |
| raise RenderError( | |
| f"MeasureOf needs a 3-point angle (vertex ambiguous): {args[0]!r}" | |
| ) | |
| a, b, c = ang | |
| _require_point(a, index=index) | |
| _require_point(b, index=index) | |
| _require_point(c, index=index) | |
| target = float(parse_number(args[1])) | |
| def r_ang( | |
| xy: np.ndarray, a: str = a, b: str = b, c: str = c, target: float = target | |
| ) -> np.ndarray: | |
| v1 = pt(xy, a) - pt(xy, b) | |
| v2 = pt(xy, c) - pt(xy, b) | |
| n1 = float(np.hypot(*v1)) | |
| n2 = float(np.hypot(*v2)) | |
| if n1 == 0.0 or n2 == 0.0: | |
| return np.array([180.0], dtype=float) | |
| cos_t = float(np.dot(v1, v2) / (n1 * n2)) | |
| cos_t = max(-1.0, min(1.0, cos_t)) | |
| measured = float(np.degrees(np.arccos(cos_t))) | |
| return np.array([measured - target], dtype=float) | |
| residuals.append(r_ang) | |
| elif pred == "Equals": | |
| # Numeric equality between two literals, or equal-length of two | |
| # segments. Bare entity equality (no numeric) is not placeable. | |
| if len(args) != 2: | |
| raise RenderError(f"Equals needs 2 args, got {args!r}") | |
| if _looks_numeric(args[0]) and _looks_numeric(args[1]): | |
| # Pure numeric fact — no placement residual (already satisfied or | |
| # a feasibility concern, not a renderer concern). | |
| continue | |
| s1 = _segment_endpoints(args[0]) | |
| s2 = _segment_endpoints(args[1]) | |
| if s1 is not None and s2 is not None: | |
| a, b = s1 | |
| c, d = s2 | |
| for lbl in (a, b, c, d): | |
| _require_point(lbl, index=index) | |
| def r_eq_len( | |
| xy: np.ndarray, a: str = a, b: str = b, c: str = c, d: str = d | |
| ) -> np.ndarray: | |
| l1 = float(np.hypot(*(pt(xy, a) - pt(xy, b)))) | |
| l2 = float(np.hypot(*(pt(xy, c) - pt(xy, d)))) | |
| return np.array([l1 - l2], dtype=float) | |
| residuals.append(r_eq_len) | |
| else: | |
| raise RenderError(f"Equals is not a placeable fact: {args!r}") | |
| elif pred in ("Parallel", "Perpendicular"): | |
| if len(args) != 2: | |
| raise RenderError(f"{pred} needs 2 args, got {args!r}") | |
| s1 = _segment_endpoints(args[0]) | |
| s2 = _segment_endpoints(args[1]) | |
| if s1 is None or s2 is None: | |
| raise RenderError(f"{pred} operands must be segments: {args!r}") | |
| a, b = s1 | |
| c, d = s2 | |
| for lbl in (a, b, c, d): | |
| _require_point(lbl, index=index) | |
| want_perp = pred == "Perpendicular" | |
| def r_dir( | |
| xy: np.ndarray, | |
| a: str = a, | |
| b: str = b, | |
| c: str = c, | |
| d: str = d, | |
| want_perp: bool = want_perp, | |
| ) -> np.ndarray: | |
| v1 = pt(xy, a) - pt(xy, b) | |
| v2 = pt(xy, c) - pt(xy, d) | |
| cross = float(v1[0] * v2[1] - v1[1] * v2[0]) | |
| dot = float(np.dot(v1, v2)) | |
| if want_perp: | |
| # Perpendicular ⟂ → dot product 0. | |
| return np.array([dot], dtype=float) | |
| # Parallel ∥ → cross product 0 (directions aligned). | |
| return np.array([cross], dtype=float) | |
| residuals.append(r_dir) | |
| return residuals | |
| def _require_point(entity: str, *, index: dict[str, int] | None = None) -> str: | |
| """Validate that ``entity`` names a free point; return its bare label. | |
| ``entity`` may be a point entity id (``point:D``) or a bare label (``D``). | |
| The ``index`` guard (when passed) raises :class:`RenderError` for a dangling | |
| reference; without it the label is only syntax-checked. | |
| """ | |
| label = _point_label(entity) or entity | |
| if index is not None and label not in index: | |
| raise RenderError(f"geometry references unknown point {entity!r}") | |
| return label | |
| def _looks_numeric(text: str) -> bool: | |
| try: | |
| parse_number(text) | |
| return True | |
| except (ValueError, ZeroDivisionError): | |
| return False | |
| # --- layout solver (§9.4 steps 2–4) ----------------------------------------- | |
| def _solve_layout( | |
| world: World, labels: list[str], *, seed: int, renderer_id: str | |
| ) -> dict[str, tuple[float, float]]: | |
| """Return ``{point_label: (x, y)}`` realizing the constraints, or raise.""" | |
| import numpy as np | |
| from scipy.optimize import least_squares | |
| n = len(labels) | |
| if n == 0: | |
| return {} | |
| index = {lab: i for i, lab in enumerate(labels)} | |
| res_fns = _residuals(world, index) | |
| def residuals(xy: np.ndarray) -> np.ndarray: | |
| parts = [fn(xy) for fn in res_fns] | |
| if not parts: | |
| return np.zeros(0, dtype=float) | |
| return np.concatenate(parts) | |
| def subseed(k: int) -> int: | |
| h = hashlib.sha256(f"{seed}:{renderer_id}:{k}".encode()).digest() | |
| return int.from_bytes(h[:8], "little") | |
| best: tuple[Any, np.ndarray] | None = None # (canonical_key, xy) | |
| for k in range(_SEEDS): | |
| rng = np.random.default_rng(subseed(k)) | |
| # Deterministic initial guess: a jittered grid in the inner canvas. | |
| cols = int(np.ceil(np.sqrt(max(n, 1)))) | |
| x0 = np.zeros(2 * n, dtype=float) | |
| for i in range(n): | |
| r, c = divmod(i, cols) | |
| gx = _MARGIN + (c + 0.5) * (1 - 2 * _MARGIN) / max(cols, 1) | |
| gy = _MARGIN + (r + 0.5) * (1 - 2 * _MARGIN) / max(int(np.ceil(n / cols)), 1) | |
| jitter = rng.uniform(-0.03, 0.03, size=2) | |
| x0[2 * i] = float(np.clip(gx + jitter[0], 0.05, 0.95)) | |
| x0[2 * i + 1] = float(np.clip(gy + jitter[1], 0.05, 0.95)) | |
| if res_fns: | |
| sol = least_squares( | |
| residuals, | |
| x0, | |
| bounds=([0.0] * (2 * n), [1.0] * (2 * n)), | |
| method="trf", | |
| xtol=1e-15, | |
| ftol=1e-15, | |
| gtol=1e-15, | |
| max_nfev=20000, | |
| ) | |
| cand = sol.x | |
| cost = float(np.max(np.abs(residuals(cand)))) if cand.size else 0.0 | |
| else: | |
| # No placement residuals: the jittered grid is itself a realization; | |
| # only the separation / canonical-selection gates apply. | |
| cand = x0 | |
| cost = 0.0 | |
| if cost >= _MAX_RESIDUAL: | |
| continue | |
| if not _separated(cand, n): | |
| continue | |
| key = tuple(round(float(v), _ROUND) for v in cand) | |
| if best is None or key < best[0]: | |
| best = (key, cand) | |
| if best is None: | |
| raise RenderError("geometry layout infeasible (no seed met residual/separation gates)") | |
| xy = best[1] | |
| return {lab: (float(xy[2 * i]), float(xy[2 * i + 1])) for i, lab in enumerate(labels)} | |
| def _separated(xy: Any, n: int) -> bool: | |
| """Every pair of distinct points is farther apart than ``_MIN_SEPARATION``.""" | |
| import numpy as np | |
| if n < 2: | |
| return True | |
| pts = xy.reshape(n, 2) | |
| for i in range(n): | |
| for j in range(i + 1, n): | |
| if float(np.hypot(pts[i, 0] - pts[j, 0], pts[i, 1] - pts[j, 1])) <= _MIN_SEPARATION: | |
| return False | |
| return True | |
| # --- layout → draw plan ----------------------------------------------------- | |
| def _build_layout(world: World, family: RendererFamily, seed: int, renderer_id: str) -> _Layout: | |
| hidden = hidden_nodes(world) | |
| labels = _collect_points(world) | |
| coords = _solve_layout(world, labels, seed=seed, renderer_id=renderer_id) | |
| commands: list[DrawCommand] = [] | |
| glyphs: list[GlyphRecord] = [] | |
| owner_ids: list[str] = [] | |
| visible: list[str] = [] | |
| font = family.font_name | |
| def point_xy(label: str) -> tuple[float, float]: | |
| return coords[label] | |
| # Points first (markers + labels). | |
| for e in world.get("entities", []) or []: | |
| eid = str(e.get("id", "")) | |
| lab = _point_label(eid) | |
| if lab is None or lab not in coords: | |
| continue | |
| x, y = point_xy(lab) | |
| if eid in hidden: | |
| commands.append((None, _patch(x, y, family.palette.get("redact", "#000000")))) | |
| continue | |
| visible.append(eid) | |
| owner_ids.append(eid) | |
| commands.append((eid, _point_marker(x, y, family.palette.get("point", "#1f77b4")))) | |
| glyphs.append(_glyph(eid, lab, x + 0.015, y + 0.015, font)) | |
| # Segments (lines + midpoint labels). | |
| for e in world.get("entities", []) or []: | |
| eid = str(e.get("id", "")) | |
| ends = _segment_endpoints(eid) | |
| if ends is None: | |
| continue | |
| a, b = ends | |
| if a not in coords or b not in coords: | |
| raise RenderError(f"segment {eid!r} references an unplaced point") | |
| ax_, ay_ = point_xy(a) | |
| bx_, by_ = point_xy(b) | |
| if eid in hidden: | |
| continue # hidden segment omitted (no content-independent line patch) | |
| visible.append(eid) | |
| owner_ids.append(eid) | |
| commands.append((eid, _segment(ax_, ay_, bx_, by_, family.palette.get("line", "#444444")))) | |
| glyphs.append(_glyph(eid, eid.split(":", 1)[1], (ax_ + bx_) / 2, (ay_ + by_) / 2, font)) | |
| # Angles (3-point arcs + measure labels from a MeasureOf constraint). | |
| measure_of: dict[str, str] = {} | |
| for c in world.get("constraints", []) or []: | |
| if str(c.get("predicate")) == "MeasureOf": | |
| args = [str(a) for a in (c.get("args") or [])] | |
| if len(args) == 2: | |
| measure_of[args[0]] = args[1] | |
| for e in world.get("entities", []) or []: | |
| eid = str(e.get("id", "")) | |
| ang = _angle_points(eid) | |
| if ang is None: | |
| continue | |
| a, b, c = ang | |
| if a not in coords or b not in coords or c not in coords: | |
| raise RenderError(f"angle {eid!r} references an unplaced point") | |
| bx_, by_ = point_xy(b) | |
| if eid in hidden: | |
| continue | |
| visible.append(eid) | |
| owner_ids.append(eid) | |
| commands.append( | |
| ( | |
| eid, | |
| _angle_arc( | |
| point_xy(a), (bx_, by_), point_xy(c), family.palette.get("angle", "#b22222") | |
| ), | |
| ) | |
| ) | |
| text = measure_of.get(eid) | |
| if text is not None: | |
| glyphs.append(_glyph(eid, f"{text}°", bx_ + 0.02, by_ + 0.02, font)) | |
| # Paint every label glyph as owned text so each entity owns its label pixels | |
| # (§9.4 step 5); the GlyphRecord still drives the text manifest. | |
| for g in glyphs: | |
| commands.append((g.node_id, paint_text(g.text, g.x0, g.y0, family.font_name))) | |
| return _Layout( | |
| commands=tuple(commands), | |
| glyphs=tuple(glyphs), | |
| owner_ids=tuple(_dedup(owner_ids)), | |
| visible_node_ids=tuple(_dedup(visible)), | |
| family=family, | |
| ) | |
| # --- draw primitives (deterministic, family-coloured) ----------------------- | |
| def _point_marker(x: float, y: float, color: str) -> Any: | |
| from matplotlib.patches import Circle | |
| def draw(ax: Any) -> None: | |
| ax.add_patch(Circle((x, y), 0.012, facecolor=color, edgecolor="black", lw=0.5)) | |
| return draw | |
| def _patch(x: float, y: float, color: str) -> Any: | |
| from matplotlib.patches import Rectangle | |
| def draw(ax: Any) -> None: | |
| ax.add_patch(Rectangle((x - 0.02, y - 0.02), 0.04, 0.04, facecolor=color, edgecolor="none")) | |
| return draw | |
| def _segment(x0: float, y0: float, x1: float, y1: float, color: str) -> Any: | |
| def draw(ax: Any) -> None: | |
| ax.plot([x0, x1], [y0, y1], color=color, lw=1.5) | |
| return draw | |
| def _angle_arc( | |
| a: tuple[float, float], b: tuple[float, float], c: tuple[float, float], color: str | |
| ) -> Any: | |
| import numpy as np | |
| def draw(ax: Any) -> None: | |
| from matplotlib.patches import Arc | |
| # Angle at vertex b between rays b→a and b→c. | |
| v1 = np.array(a) - np.array(b) | |
| v2 = np.array(c) - np.array(b) | |
| theta1 = float(np.degrees(np.arctan2(v1[1], v1[0]))) | |
| theta2 = float(np.degrees(np.arctan2(v2[1], v2[0]))) | |
| ax.add_patch( | |
| Arc( | |
| b, | |
| 0.05, | |
| 0.05, | |
| angle=0.0, | |
| theta1=min(theta1, theta2), | |
| theta2=max(theta1, theta2), | |
| color=color, | |
| lw=1.5, | |
| ) | |
| ) | |
| return draw | |
| def _glyph(node_id: str, text: str, x: float, y: float, font_name: str) -> GlyphRecord: | |
| return GlyphRecord( | |
| node_id=node_id, | |
| text=text, | |
| x0=x, | |
| y0=y, | |
| x1=x + 0.03 * len(text), | |
| y1=y + 0.03, | |
| font_sha256=font_sha256(font_name), | |
| ) | |
| def _dedup(items: list[str]) -> list[str]: | |
| seen: set[str] = set() | |
| out: list[str] = [] | |
| for it in items: | |
| if it not in seen: | |
| seen.add(it) | |
| out.append(it) | |
| return out | |
| # --- families (train vs held-out: disjoint font + palette) ------------------ | |
| _GEO_TRAIN_FAMILY = RendererFamily( | |
| name="geometry_train_v1", | |
| kind="geometry", | |
| font_name="DejaVu Sans", | |
| palette={ | |
| "background": "#FFFFFF", | |
| "point": "#1f77b4", | |
| "line": "#444444", | |
| "angle": "#b22222", | |
| "redact": "#000000", | |
| }, | |
| layout={"margin": _MARGIN, "min_separation": _MIN_SEPARATION}, | |
| ) | |
| _GEO_HELDOUT_FAMILY = RendererFamily( | |
| name="geometry_heldout_v1", | |
| kind="geometry", | |
| font_name="DejaVu Serif", | |
| palette={ | |
| "background": "#F7F7F0", | |
| "point": "#2a9d8f", | |
| "line": "#333333", | |
| "angle": "#9d4edd", | |
| "redact": "#222222", | |
| }, | |
| layout={"margin": _MARGIN, "min_separation": _MIN_SEPARATION}, | |
| ) | |
| GEOMETRY_FAMILIES: dict[str, RendererFamily] = { | |
| "geometry_train_v1": _GEO_TRAIN_FAMILY, | |
| "geometry_heldout_v1": _GEO_HELDOUT_FAMILY, | |
| } | |
| __all__ = ["GEOMETRY_FAMILIES", "GeometryRenderer"] | |