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Optimizers in Action: Advanced Techniques for Machine Learning and Computational Challenges
Shashi Tripathi (Author) · CRC Press · Paperback
Optimization quietly powers much of modern decision-making—from logistics and finance to intelligent systems and engineering design. This book offers an accessible yet rigorous journey into how optimization methods are built and applied, showing how abstract ideas translate into practical solutions that shape efficient, real-world outcomes across diverse domains.
The book develops a structured understanding of optimization methods, beginning with foundational mathematical principles and progressing toward widely used algorithms for solving constrained and unconstrained problems. It explores classical techniques such as gradient-based methods, linear and nonlinear programming, and combinatorial optimization, alongside modern perspectives on large-scale and data-driven problem solving. Special emphasis is placed on how these methods are implemented in practice, including convergence behavior, computational efficiency, and stability considerations. Through carefully chosen examples and case-based discussions, the book illustrates how optimization frameworks are applied in real-world scenarios such as scheduling, resource allocation, and decision support systems, bridging theoretical formulations with practical implementation challenges.
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