Prompt Stuffing vs RAG: The Next Great AI Debate
Автор: Tales from the jar side
Загружено: 2025-02-08
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Super Bowl Halftime Show: Kendrick Lamar vs. Drake Rap Beef Analysis with AI
In this episode of Tales from the Jar Side, host Ken Kousen dives into the anticipated Super Bowl halftime show featuring Kendrick Lamar and explores the infamous rap feud between Lamar and Drake. Using AI tools like GPT-4, Claude, Gemini, and Mistral within the LangChain4j framework, Ken attempts to retrieve detailed information on the beef, its escalation in 2024, and the likelihood of Lamar performing the controversial song 'Not Like Us' at the 2025 Super Bowl halftime show. He addresses challenges such as context window limits, prompt stuffing, and the application of RAG (Retrieval Augmented Generation) in analyzing large amounts of data. Join us for an insightful discussion combining AI, Java development, and one of hip-hop's biggest rivalries.
00:00 Super Bowl Halftime Show Introduction
00:40 Using AI Tools to Analyze the Feud
01:07 LangChain4j Framework Overview
01:43 Setting Up the FeudTest Class
02:08 Challenges with AI Training Data
03:15 Loading AI Models in Java
03:53 Running Initial AI Queries
06:37 Handling Context Window Limits
13:37 Using Jsoup for Text Extraction
15:21 Switching AI Models
19:02 Introduction to Retrieval Augmented Generation (RAG)
21:58 Implementing RAG with LangChain4j
24:36 Analyzing AI Model Responses
28:23 Conclusion and Final Thoughts
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