Machine Learning Under a Modern Optimization Lens
Dimitris Bertsimas
Sold by BooksRun, Philadelphia, PA, U.S.A.
AbeBooks Seller since February 2, 2016
Used - Hardcover
Condition: Used - Good
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Quantity: 1 available
Add to basketSold by BooksRun, Philadelphia, PA, U.S.A.
AbeBooks Seller since February 2, 2016
Condition: Used - Good
Quantity: 1 available
Add to basketIt's a preowned item in good condition and includes all the pages. It may have some general signs of wear and tear, such as markings, highlighting, slight damage to the cover, minimal wear to the binding, etc., but they will not affect the overall reading experience.
Seller Inventory # 1733788506-11-1
Structure of the book:
Part I covers robust, sparse, nonlinear, holistic regression and extensions.
Part II contains optimal classification and regression trees.
Part III outlines prescriptive ML methods.
Part IV shows the power of optimization over randomization in design of experiments, exceptional responders, stable regression and the bootstrap.
Part V describes unsupervised methods in ML: optimal missing data imputation and interpretable clustering.
Part VI develops matrix ML methods: sparse PCA, sparse inverse covariance estimation, factor analysis, matrix and tensor completion
.
Part VII demonstrates how ML leads to interpretable optimization.
Philosophical principles of the book:
Interpretability is materially important in the real world.
Practical tractability not polynomial solvability leads to real world impact.
NP-hardness is an opportunity not an obstacle.
ML is inherently linked to optimization not probability theory.
Data represent an objective reality; models only exist in our imagination.
Optimization has a significant edge over randomization
.
The ultimate objective in the real world is prescription, not prediction.
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