Create canonical product layer scaffold
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137
build_canonical_layer.py
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137
build_canonical_layer.py
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import csv
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import click
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from layer_helpers import read_csv_rows, stable_id, write_csv_rows
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CANONICAL_FIELDS = [
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"canonical_product_id",
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"canonical_name",
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"product_type",
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"brand",
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"variant",
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"size_value",
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"size_unit",
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"pack_qty",
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"measure_type",
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"normalized_quantity",
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"normalized_quantity_unit",
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"notes",
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"created_at",
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"updated_at",
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]
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LINK_FIELDS = [
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"observed_product_id",
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"canonical_product_id",
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"link_method",
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"link_confidence",
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"review_status",
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"reviewed_by",
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"reviewed_at",
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"link_notes",
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]
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def to_float(value):
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try:
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return float(value)
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except (TypeError, ValueError):
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return None
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def normalized_quantity(row):
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size_value = to_float(row.get("representative_size_value"))
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pack_qty = to_float(row.get("representative_pack_qty")) or 1.0
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size_unit = row.get("representative_size_unit", "")
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measure_type = row.get("representative_measure_type", "")
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if size_value is not None and size_unit:
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return format(size_value * pack_qty, "g"), size_unit
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if row.get("representative_pack_qty") and measure_type == "count":
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return row["representative_pack_qty"], "count"
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if measure_type == "each":
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return "1", "each"
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return "", ""
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def build_canonical_layer(observed_rows):
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canonical_rows = []
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link_rows = []
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for observed_row in sorted(observed_rows, key=lambda row: row["observed_product_id"]):
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canonical_product_id = stable_id(
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"gcan", f"seed|{observed_row['observed_product_id']}"
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)
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quantity_value, quantity_unit = normalized_quantity(observed_row)
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canonical_rows.append(
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{
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"canonical_product_id": canonical_product_id,
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"canonical_name": observed_row["representative_name_norm"],
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"product_type": "",
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"brand": observed_row["representative_brand"],
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"variant": observed_row["representative_variant"],
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"size_value": observed_row["representative_size_value"],
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"size_unit": observed_row["representative_size_unit"],
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"pack_qty": observed_row["representative_pack_qty"],
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"measure_type": observed_row["representative_measure_type"],
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"normalized_quantity": quantity_value,
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"normalized_quantity_unit": quantity_unit,
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"notes": f"seeded from {observed_row['observed_product_id']}",
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"created_at": "",
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"updated_at": "",
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}
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)
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link_rows.append(
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{
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"observed_product_id": observed_row["observed_product_id"],
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"canonical_product_id": canonical_product_id,
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"link_method": "seed_observed_product",
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"link_confidence": "",
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"review_status": "",
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"reviewed_by": "",
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"reviewed_at": "",
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"link_notes": "",
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}
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)
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return canonical_rows, link_rows
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@click.command()
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@click.option(
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"--observed-csv",
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default="giant_output/products_observed.csv",
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show_default=True,
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help="Path to observed product rows.",
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)
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@click.option(
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"--canonical-csv",
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default="giant_output/products_canonical.csv",
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show_default=True,
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help="Path to canonical product output.",
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)
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@click.option(
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"--links-csv",
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default="giant_output/product_links.csv",
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show_default=True,
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help="Path to observed-to-canonical link output.",
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)
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def main(observed_csv, canonical_csv, links_csv):
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observed_rows = read_csv_rows(observed_csv)
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canonical_rows, link_rows = build_canonical_layer(observed_rows)
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write_csv_rows(canonical_csv, canonical_rows, CANONICAL_FIELDS)
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write_csv_rows(links_csv, link_rows, LINK_FIELDS)
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click.echo(
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f"wrote {len(canonical_rows)} canonical rows to {canonical_csv} and "
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f"{len(link_rows)} links to {links_csv}"
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)
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if __name__ == "__main__":
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main()
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42
tests/test_canonical_layer.py
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42
tests/test_canonical_layer.py
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@@ -0,0 +1,42 @@
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import unittest
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import build_canonical_layer
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class CanonicalLayerTests(unittest.TestCase):
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def test_build_canonical_layer_seeds_one_canonical_per_observed_product(self):
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observed_rows = [
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{
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"observed_product_id": "gobs_1",
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"representative_name_norm": "GALA APPLE",
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"representative_brand": "SB",
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"representative_variant": "",
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"representative_size_value": "5",
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"representative_size_unit": "lb",
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"representative_pack_qty": "",
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"representative_measure_type": "weight",
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},
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{
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"observed_product_id": "gobs_2",
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"representative_name_norm": "ROTINI",
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"representative_brand": "",
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"representative_variant": "",
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"representative_size_value": "16",
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"representative_size_unit": "oz",
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"representative_pack_qty": "",
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"representative_measure_type": "weight",
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},
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]
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canonicals, links = build_canonical_layer.build_canonical_layer(observed_rows)
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self.assertEqual(2, len(canonicals))
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self.assertEqual(2, len(links))
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self.assertEqual("GALA APPLE", canonicals[0]["canonical_name"])
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self.assertEqual("5", canonicals[0]["normalized_quantity"])
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self.assertEqual("lb", canonicals[0]["normalized_quantity_unit"])
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self.assertEqual("seed_observed_product", links[0]["link_method"])
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if __name__ == "__main__":
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unittest.main()
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