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This Power BI project provides a comprehensive analysis of sales and profit data, aiming to offer actionable insights for business decision-making. The dashboard includes key performance indicators (KPIs) such as total sales, total profit, total quantity sold, and average delivery days. It also presents the sum of sales by category and sub-category

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hrishabht5/Supermarket-sales-Analysis

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Power BI Dashboard: Sales and Profit Analysis This Power BI project provides a comprehensive analysis of sales and profit data, aiming to offer actionable insights for business decision-making. The dashboard includes key performance indicators (KPIs) such as total sales, total profit, total quantity sold, and average delivery days. It also presents the sum of sales by category and sub-category, as well as the sum of sales and profit by year and month.

Features:

Total Sales: Monitor overall sales performance to assess revenue trends over time. Total Profit: Evaluate profit margins to understand the financial health of the business. Total Quantity Sold: Analyze product demand by tracking the total quantity sold. Average Delivery Days: Measure delivery efficiency by calculating the average delivery time. Sales by Category and Sub-category: Explore sales distribution across different product categories and sub-categories. Sales and Profit by Year and Month: Identify seasonal trends and performance variations by examining sales and profit data over time. Forecasting: Utilize forecasting techniques to predict future sales trends, providing valuable insights for planning and resource allocation.

How to Use:

Data Preparation: Import your sales and profit data into Power BI. Data Modeling: Create relationships between relevant tables and define measures for KPIs. Dashboard Creation: Design a visually appealing dashboard layout with interactive visualizations. Interactivity: Use slicers, filters, and drill-down capabilities to explore data at different levels of detail. Insight Generation: Analyze the dashboard to identify trends, patterns, and outliers that can inform strategic decisions. Sharing: Share the dashboard with stakeholders to facilitate data-driven discussions and decision-making.

Future Enhancements:

Advanced Forecasting Models: Implement advanced forecasting models to improve the accuracy of future sales predictions. Customer Segmentation: Incorporate customer segmentation analysis to identify high-value customer segments and tailor marketing strategies accordingly. Inventory Management: Integrate inventory data to optimize stock levels and minimize stockouts or overstock situations.

Contribution:

Contributions to this Power BI project are welcome! If you have suggestions for enhancements, bug fixes, or new features, please feel free to submit a pull request.

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This Power BI project provides a comprehensive analysis of sales and profit data, aiming to offer actionable insights for business decision-making. The dashboard includes key performance indicators (KPIs) such as total sales, total profit, total quantity sold, and average delivery days. It also presents the sum of sales by category and sub-category

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