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Course Outline
Introduction to Edge AI in Retail.
- Overview of Edge AI and its role in retail.
- Key benefits: low latency, real-time processing, and efficiency.
- Case studies of Edge AI applications in retail.
Smart Checkout and Automated Payment Systems.
- AI-powered cashier-less checkout technologies.
- Object recognition for automatic billing.
- Customer authentication and fraud prevention.
Inventory Management and Stock Optimisation.
- Computer vision for shelf monitoring and restocking.
- Real-time demand forecasting with AI.
- RFID and IoT integration for automated tracking.
Enhancing Customer Engagement with AI.
- Personalised recommendations using Edge AI.
- AI-powered virtual assistants in retail stores.
- Sentiment analysis and customer behaviour tracking.
Deploying and Managing Edge AI Solutions in Retail.
- Choosing the right hardware and software for Edge AI.
- Security and compliance considerations in retail AI.
- Scaling AI solutions across multiple store locations.
Future Trends and Innovations in Edge AI for Retail.
- Advancements in AI-powered autonomous stores.
- Integrating Edge AI with augmented reality (AR) for enhanced shopping experiences.
- Ethical and regulatory considerations in AI-driven retail.
Summary and Next Steps.
Requirements
- A basic understanding of AI and machine learning concepts.
- Familiarity with retail technology and automation.
- Experience with Python or AI frameworks is beneficial but not essential.
Audience
- Retail technologists.
- AI developers.
- Business analysts.
21 Hours
Testimonials (1)
That we can cover advance topic and work with real-life example