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Pattern Recognition, Richard O. Duda

By: Material type: TextTextPublication details: NewDelhi Wiley 2021Edition: 2edDescription: 467p:I10ISBN:
  • 9789354244391
DDC classification:
  • 006.312 DUD
Contents:
INTRODUCTION TO PATTERN RECOGNITION BAYESIAN DECISION THEORY MAXIMUM-LIKELIHOOD AND BAYESIAN PARAMETER ESTIMATION NONPARAMETRIC TECHNIQUES LINEAR DISCRIMINANT FUNCTIONS ARTIFICIAL NEURAL NETWORKS NONMETRIC METHODS ALGORITHM-INDEPENDENT MACHINE LEARNING UNSUPERVISED LEARNING AND CLUSTERING
Summary: Pattern Recognition is a classic reference in the field which has been an invaluable resource preferred by students, academics, researchers, and other interested readers for more than four decades. Starting with the introductory concepts of pattern classification, the book lays the theoretical foundations of Bayesian decision theory and then focuses on key topics such as parameter estimation, discriminant analysis, neural networks, and nonmetric methods. It finally covers machine learning, unsupervised learning, and different clustering techniques. The book incorporates a host of pedagogical features, including worked examples, extensive graphics, expanded exercises, and computer project topics
List(s) this item appears in: New Arrivals December 2021
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Holdings
Item type Current library Collection Call number Status Date due Barcode
Reference Reference IIITDM Kurnool Reference Reference 006.312 DUD (Browse shelf(Opens below)) Not For Loan 0004026
Books Books IIITDM Kurnool General Stacks Non-fiction 006.312 DUD (Browse shelf(Opens below)) Available 0004027
Books Books IIITDM Kurnool General Stacks Non-fiction 006.312 DUD (Browse shelf(Opens below)) Available 0004028
Books Books IIITDM Kurnool General Stacks Non-fiction 006.312 DUD (Browse shelf(Opens below)) Available 0004029
Books Books IIITDM Kurnool General Stacks Non-fiction 006.312 DUD (Browse shelf(Opens below)) Available 0004030

INTRODUCTION TO PATTERN RECOGNITION BAYESIAN DECISION THEORY MAXIMUM-LIKELIHOOD AND BAYESIAN PARAMETER ESTIMATION NONPARAMETRIC TECHNIQUES LINEAR DISCRIMINANT FUNCTIONS ARTIFICIAL NEURAL NETWORKS NONMETRIC METHODS ALGORITHM-INDEPENDENT MACHINE LEARNING UNSUPERVISED LEARNING AND CLUSTERING

Pattern Recognition is a classic reference in the field which has been an invaluable resource preferred by students, academics, researchers, and other interested readers for more than four decades. Starting with the introductory concepts of pattern classification, the book lays the theoretical foundations of Bayesian decision theory and then focuses on key topics such as parameter estimation, discriminant analysis, neural networks, and nonmetric methods. It finally covers machine learning, unsupervised learning, and different clustering techniques. The book incorporates a host of pedagogical features, including worked examples, extensive graphics, expanded exercises, and computer project topics

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