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Introducing Keras Recommenders: state-of-the-art recommendation techniques at your fingertips

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Author: Google for Developers - Bewertung: 9x - Views:114

Building a recommendation system that is high-quality, high-performance, and hallucination-free can be a challenge. In this video, Yufeng Guo introduces Keras Recommenders (KerasRS), a library designed to help developers build reliable ranking and retrieval models with ease.



We’ll walk through a complete code example using the MovieLens dataset to build a Sequential Retrieval model. Using a Gated Recurrent Unit (GRU) to analyze a user's watch history, we will predict exactly which movie they are likely to watch next.



Because KerasRS is built on Keras 3, this workflow is compatible with your choice of backend: TensorFlow, JAX, or PyTorch.



In this video, you will learn:

- What Keras Recommenders is and why it’s useful.

- How to prepare sequential data (using the "snake" method) for training.

- How to build a Two-Tower architecture with a Query Tower (GRU) and Candidate Tower.

- How to use the BruteForceRetrieval layer for accurate predictions.



Resources:

Build and train a recommender system in 10 minutes using Keras and JAX → https://goo.gle/3OKxUeI

Keras Recommenders Documentation → https://goo.gle/42yNQnl

Check out the Code Example → https://goo.gle/4n2by58



Chapters:

0:00 - Introduction: LLMs vs. Keras Recommenders

0:40 - What is KerasRS?

2:09 - Installation & Setup

3:04 - Sequential Retrieval & GRU Explained

4:30 - Preparing the MovieLens Dataset

6:35 - Data Batching & Structure

7:17 - Building the Two-Tower Model

8:14 - Making Movie Predictions

8:28 - Conclusion & Next Steps





Speakers: Yufeng Guo

Products Mentioned: Google AI

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