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- """Pure-logic tests for the mid-print tray-split math (#1793).
- The helper lives in ``backend/app/utils/tray_split.py`` and is exercised
- by both inventory backends (``usage_tracker`` and ``spoolman_tracking``).
- These tests pin the algorithm so a change in one caller can't silently
- break the other — cross-inventory parity is a HARD RULE for this project.
- """
- from __future__ import annotations
- from backend.app.utils.tray_split import compute_tray_split_grams
- class TestComputeTraySplitGrams:
- """Segment-attribution algorithm — gcode preferred, linear fallback, equal split."""
- def test_empty_tray_changes_returns_empty(self):
- assert (
- compute_tray_split_grams(
- tray_changes=[],
- total_weight=100.0,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=200,
- last_layer_num=200,
- )
- == []
- )
- def test_single_segment_charges_everything_to_that_tray(self):
- segments = compute_tray_split_grams(
- tray_changes=[(0, 0)],
- total_weight=72.56,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=100,
- last_layer_num=100,
- )
- assert segments == [(0, 0, 72.56)]
- def test_two_segments_linear_split_by_layer_ratio(self):
- # Runout at layer 37 of 100 total; no gcode available → linear.
- # Segment 0 (tray 0, layers 0-37) = 100 * 37/100 = 37g
- # Segment 1 (tray 1, layers 37-end) = 100 - 37 = 63g (remainder)
- segments = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 37)],
- total_weight=100.0,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=100,
- last_layer_num=100,
- )
- assert segments == [(0, 0, 37.0), (1, 1, 63.0)]
- def test_two_segments_gcode_preferred_over_linear(self):
- # layer_usage stores mm of filament extruded per (layer, filament_id).
- # Values are cumulative-per-key inside get_cumulative_usage_at_layer.
- # 20 layers, filament_id=0 (slot_id=1 → filament_id 0):
- # layer 10 → 100mm cumulative
- # layer 20 → 300mm cumulative
- # tray change at layer 10 → seg 0 spans layers 0-10 (mm 0 → 100),
- # seg 1 spans layers 10-end.
- # mm_to_grams(100, 1.75, 1.24) ≈ 0.298g; last segment absorbs the rest.
- layer_usage = {
- 5: {0: 50.0},
- 10: {0: 100.0},
- 15: {0: 200.0},
- 20: {0: 300.0},
- }
- segments = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 10)],
- total_weight=1.0, # sentinel — we assert the seg1 remainder
- slot_id=1,
- layer_usage=layer_usage,
- density=1.24,
- diameter=1.75,
- total_layers=20,
- last_layer_num=20,
- )
- # Seg 0 charged from gcode delta (mm 0 → 100).
- # Seg 1 gets total_weight - seg0 as remainder.
- assert segments[0][0] == 0
- assert segments[0][1] == 0 # tray 0
- assert segments[0][2] > 0 # non-zero gcode contribution
- assert segments[1][0] == 1
- assert segments[1][1] == 1 # tray 1
- # Sum equals the input total by construction (last segment absorbs).
- assert round(segments[0][2] + segments[1][2], 6) == 1.0
- def test_three_segments_last_absorbs_rounding_drift(self):
- # 100g over three segments at layers 30 and 60 of 90; linear fallback.
- # Seg 0: 100 * 30/90 = 33.3333...
- # Seg 1: 100 * 30/90 = 33.3333...
- # Seg 2: remainder = 100 - 66.6666... = 33.3333... — exact by construction
- segments = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 30), (2, 60)],
- total_weight=100.0,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=90,
- last_layer_num=90,
- )
- assert len(segments) == 3
- assert round(sum(g for _, _, g in segments), 6) == 100.0
- assert segments[0][1] == 0
- assert segments[1][1] == 1
- assert segments[2][1] == 2
- def test_no_layer_info_at_all_falls_to_equal_split(self):
- # Denominator 0 → last-resort equal-split; last segment absorbs remainder.
- segments = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 50)],
- total_weight=90.0,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=0,
- last_layer_num=0,
- )
- # 90g / 2 = 45g each; sum still 90 by remainder mechanic.
- assert segments == [(0, 0, 45.0), (1, 1, 45.0)]
- def test_last_layer_num_used_when_total_layers_zero(self):
- # P1S firmware-reset scenario: total_layers=0 at completion, but the
- # captured last_layer_num survives. Should give the same linear split
- # as if total_layers had held its value (#1771 cascade).
- segments_captured = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 30)],
- total_weight=100.0,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=0,
- last_layer_num=100,
- )
- segments_normal = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 30)],
- total_weight=100.0,
- slot_id=1,
- layer_usage=None,
- density=1.24,
- diameter=1.75,
- total_layers=100,
- last_layer_num=100,
- )
- assert segments_captured == segments_normal
- def test_slot_id_maps_to_zero_based_filament_id_in_gcode(self):
- # slot_id 2 → filament_id 1 in layer_usage. If we mistakenly used
- # slot_id as-is, we'd read filament_id 2 which is absent → 0mm delta
- # → seg 0 gets 0, seg 1 (remainder) gets the whole total. Guard
- # against that regression.
- layer_usage = {
- 5: {0: 0.0, 1: 40.0},
- 10: {0: 0.0, 1: 80.0},
- 20: {0: 0.0, 1: 160.0},
- }
- segments = compute_tray_split_grams(
- tray_changes=[(0, 0), (1, 10)],
- total_weight=1.0,
- slot_id=2,
- layer_usage=layer_usage,
- density=1.24,
- diameter=1.75,
- total_layers=20,
- last_layer_num=20,
- )
- # Seg 0 gcode delta on filament_id=1 is non-zero → not 0g.
- assert segments[0][2] > 0
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