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Advanced AI and ML - Module 4 ch8

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This document outlines an advanced-level academic course focused on modern Artificial Intelligence and Machine Learning techniques, bridging strong theoretical foundations with hands-on implementation. The course is structured to move beyond classical ML and into state-of-the-art deep learning paradigms, emphasizing both conceptual clarity and real-world applicability. Key focus areas include advanced supervised and unsupervised learning, neural networks and deep learning architectures, and probabilistic and optimization-based models. The syllabus also highlights contemporary topics such as representation learning, generative models, reinforcement learning concepts, and model evaluation strategies, ensuring alignment with current industry and research trends. From a delivery standpoint, the course balances mathematical intuition, algorithmic understanding, and practical experimentation, often supported by programming tools and frameworks. Assessment components are designed to test not just rote learning but analytical thinking, model design, and problem-solving skills. Overall, this course is positioned as a capstone-style AI/ML offering, aimed at preparing students for research, advanced projects, and industry-grade AI development, while building the strategic depth required to work on complex, data-driven systems.

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Instance Based Learning

[Read Ch. 8]
 -Nearest Neighbor
k


 Locally weighted regression
 Radial basis functions
 Case-based reasoning
 Lazy and eager learning




199 lecture slides for textbook Machine Learning, c Tom M. Mitchell, McGraw Hill, 1997

, Instance-Based Learning

Key idea: just store all training examples h ( )i x i ; f xi


Nearest neighbor:
 Given query instance , rst locate nearest
xq

training example , then estimate
xn
^( )
f xq ( ) f xn


k-Nearest neighbor:
 Given , take vote among its nearest nbrs (if
xq k

discrete-valued target function)
 take mean of values of nearest nbrs (if
f k

real-valued)
P ( )
^( )
k
i=1
f xi
f xq
k




200 lecture slides for textbook Machine Learning, c Tom M. Mitchell, McGraw Hill, 1997

, When To Consider Nearest Neighbor


 Instances map to points in < n




 Less than 20 attributes per instance
 Lots of training data
Advantages:
 Training is very fast
 Learn complex target functions
 Don't lose information
Disadvantages:
 Slow at query time
 Easily fooled by irrelevant attributes




201 lecture slides for textbook Machine Learning, c Tom M. Mitchell, McGraw Hill, 1997

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