In this session of Machine Learning Tech Talks, Tai-Danae Bradley, Postdoc at X, the Moonshot Factory, will share a few ideas for linear algebra that appear in the context of Machine Learning. Chapters: 0:00 - Introduction 1:37 - Data Representations 15:02 - Vector Embeddings 31:52 - Dimensionality Reduction 37:11 - Conclusion Resources: Google Developer’s ML Crash Course on Collaborative Filtering → Eigenvectors and Eigenvalues” by 3Blue1Brown → Introduction to Linear Algebra” (5th ed) by Gilbert Strang → Catch more ML Tech Talks → Subscribe to TensorFlow →
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