Numerical Methods for Machine Learning by Mir Hossain (.ePUB)

File Size: 5 MB

Numerical Methods for Machine Learning: Optimization, Stability, and Algorithms by Mir Hossain
Requirements: .ePUB reader, 5 MB
Overview: Numerical Methods for Machine Learning: Optimization, Stability, and Algorithms bridges the gap between theoretical machine learning and the numerical computation that makes real-world AI systems work. While most ML books focus on models and architectures, this book reveals what happens underneath the equations — where floating-point precision, conditioning, optimization dynamics, and numerical stability determine whether models converge, fail, or scale successfully.

Designed for advanced students, machine learning engineers, data scientists, and quantitative developers, this practical guide explains how numerical methods shape every stage of machine learning, from gradient descent and matrix factorization to deep learning optimization and probabilistic computation.
Genre: Non-Fiction > Tech & Devices

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