An Interactive Visualization and Data Analysis of Supermarket Store

Hiresh Yadav*
Periodicity:July - December'2024

Abstract

In the ever-evolving landscape of retail, the utilization of data-driven insights plays a pivotal role in enhancing decision-making processes. This research paper delves into the development and implementation of an interactive visualization system tailored specifically for the analysis of data within a supermarket store environment. In order to predict the sales of a business, an intelligent model was built using Linear-Regression, LASSO-regression and XG-Boost techniques which has been shown to be more effective than existing models.

Keywords

XG-boost Regression, Linear-Regression, LASSO-Regression, Random Forest, sales, prediction, Supermarket.

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