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| # M5 Demand Forecasting Artifacts | |
| ## What the models predict | |
| The models predict weekly demand (sales) for 28-day horizons (d_1942 through d_1969) for 30,490 M5 series. | |
| ## Exact input contract | |
| - Features must be computed as-of origin day d_1913 using only data with day index <= D | |
| - Categorical features must be encoded using categorical_maps.json with .map() | |
| - Feature order must match feature_schema.json feature_names element by element | |
| - All float columns must be float32; no float64 or object columns permitted | |
| - Target encoding (dept_id, store_id, item_id) is computed only on data before the origin (leakage-safe) | |
| ## Files required together | |
| Boosters alone are insufficient. Required files: | |
| - artifacts/feature_schema.json | |
| - artifacts/categorical_maps.json | |
| - artifacts/training_config.json | |
| - data/processed/m5_melted.parquet | |
| ## Known limitation | |
| Predictions valid only for recorded forecast origin unless history is supplied | |
| ## Recorded local WRMSSE per fold | |
| - Fold A: 148.327863 | |
| - Fold B: 121.276794 | |
| - Fold C: 167.073294 | |
| - Mean: 145.559317 | |
| ## Copy-pasteable load instructions | |
| ```python | |
| import lightgbm as lgb | |
| import pandas as pd | |
| models = {} | |
| for f in os.listdir('artifacts/models/'): | |
| model = lgb.Booster(model_file='artifacts/models/' + f) | |
| models[f] = model | |
| with open('artifacts/training_config.json') as f: | |
| config = json.load(f) | |
| with open('artifacts/feature_schema.json') as f: | |
| schema = json.load(f) | |
| with open('artifacts/categorical_maps.json') as f: | |
| cat_maps = json.load(f) | |
| df = pd.read_parquet('data/processed/m5_melted.parquet') | |
| ``` | |