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学ぶ Challenge: Summarize Product Performance | Business Data Manipulation
Python for Business Analysts
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bookChallenge: Summarize Product Performance

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When you analyze product-level summaries, you gain a powerful lens into your business's performance. By aggregating sales data for each product, you can quickly identify which items are driving the most revenue and which ones may be underperforming. This insight enables you to make data-driven decisions, such as focusing marketing efforts on bestsellers, reconsidering inventory for slow movers, or adjusting pricing strategies. Summaries like these are foundational for business analysts aiming to optimize product portfolios and maximize profitability.

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Given a list of sales records, each represented as a dictionary with keys 'product', 'units_sold', and 'revenue', your goal is to return a summary dictionary. The summary should use product names as keys, and for each product, provide a dictionary with the total 'units_sold' and total 'revenue'.

  • Aggregate 'units_sold' and 'revenue' for each product across all records.
  • Include every unique product found in the input list.
  • Return a dictionary where each key is a product name and each value is a dictionary containing the total 'units_sold' and 'revenue'.

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