feat: Complete backend i18n implementation with error codes and demo data
Demo Seed Scripts: - Updated seed_demo_purchase_orders.py to use structured reasoning_data * Imports create_po_reasoning_low_stock and create_po_reasoning_supplier_contract * Generates reasoning_data with product names, stock levels, and consequences * Removed deprecated reasoning/consequence TEXT fields - Updated seed_demo_batches.py to use structured reasoning_data * Imports create_batch_reasoning_forecast_demand and create_batch_reasoning_regular_schedule * Generates intelligent reasoning based on batch priority and AI assistance * Adds reasoning_data to all production batches Backend Services - Error Code Implementation: - Updated safety_stock_calculator.py with error codes * Replaced "Lead time or demand std dev is zero or negative" with ERROR:LEAD_TIME_INVALID * Replaced "Insufficient historical demand data" with ERROR:INSUFFICIENT_DATA - Updated replenishment_planning_service.py with error codes * Replaced "Insufficient data for safety stock calculation" with ERROR:INSUFFICIENT_DATA * Frontend can now translate error codes using i18n Demo data will now display with translatable reasoning in EN/ES/EU languages. Backend services return error codes that frontend translates for user's language.
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@@ -25,6 +25,10 @@ import structlog
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from app.models.production import ProductionBatch, ProductionStatus, ProductionPriority, ProcessStage
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# Import reasoning helper functions for i18n support
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sys.path.insert(0, str(Path(__file__).parent.parent.parent.parent))
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from shared.schemas.reasoning_types import create_batch_reasoning_forecast_demand, create_batch_reasoning_regular_schedule
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# Configure logging
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logger = structlog.get_logger()
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@@ -161,6 +165,29 @@ async def seed_batches_for_tenant(
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# For La Espiga, append tenant suffix to make batch number unique
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batch_number = batch_data["batch_number"] + "-LE"
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# Generate structured reasoning_data for i18n support
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reasoning_data = None
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try:
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# Use forecast demand reasoning for most batches
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if batch_data.get("is_ai_assisted") or priority in [ProductionPriority.HIGH, ProductionPriority.URGENT]:
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reasoning_data = create_batch_reasoning_forecast_demand(
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product_name=batch_data["product_name"],
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predicted_demand=batch_data["planned_quantity"],
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current_stock=int(batch_data["planned_quantity"] * 0.3), # Demo: assume 30% current stock
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production_needed=batch_data["planned_quantity"],
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target_date=planned_start.date().isoformat(),
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confidence_score=0.85 if batch_data.get("is_ai_assisted") else 0.75
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)
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else:
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# Regular schedule reasoning for standard batches
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reasoning_data = create_batch_reasoning_regular_schedule(
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product_name=batch_data["product_name"],
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schedule_frequency="daily",
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batch_size=batch_data["planned_quantity"]
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)
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except Exception as e:
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logger.warning(f"Failed to generate reasoning_data for batch {batch_number}: {e}")
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# Create production batch
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batch = ProductionBatch(
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id=batch_id,
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@@ -197,6 +224,7 @@ async def seed_batches_for_tenant(
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waste_defect_type=batch_data.get("waste_defect_type"),
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production_notes=batch_data.get("production_notes"),
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quality_notes=batch_data.get("quality_notes"),
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reasoning_data=reasoning_data, # Structured reasoning for i18n support
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created_at=BASE_REFERENCE_DATE,
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updated_at=BASE_REFERENCE_DATE,
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completed_at=completed_at
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