Computational Learning Theory

E822917

Computational Learning Theory is a branch of computer science and mathematics that studies the design and analysis of algorithms that can learn patterns or functions from data, often using formal models of learning and complexity.

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Predicate Object
instanceOf academic discipline
area of theoretical computer science
subfield of computer science
subfield of machine learning
aimsTo characterize when efficient learning is possible
provide guarantees on generalization error
understand tradeoffs between data, computation, and accuracy
emergedIn 1980s
fieldOfStudy active learning
agnostic learning
boosting theory
computational complexity of learning
formal models of learning
generalization theory
learning algorithms
learning in the presence of noise
online learning
sample complexity
statistical learning theory
hasInfluentialConference ALT
COLT
NeurIPS
hasInfluentialJournal Journal of Machine Learning Research
linked to: JMLR

Machine Learning journal
linked to: Machine Learning
hasInfluentialResearcher Leslie Valiant
Nick Littlestone
Noga Alon
Robert Schapire
Shai Ben-David
Vladimir Vapnik
Yoav Freund
hasKeyConcept No Free Lunch theorem
Occam’s razor in learning
PAC learning
Rademacher complexity
VC dimension
compression schemes for learning
concept class
empirical risk minimization
hypothesis class
margin bounds
mistake bounds
online regret bounds
risk minimization
sample complexity bounds
structural risk minimization
uniform convergence
hasKeyModel PAC model
agnostic PAC model
distribution-free learning model
mistake-bound model
online learning model
query learning model
statistical query model
hasKeyProblem learnability of Boolean functions
learnability of linear separators
learnability of neural networks
learning DNF formulas
learning decision trees
learning under distributional assumptions
learning with membership queries
relatedTo artificial intelligence
machine learning
statistics
theoretical computer science
studies analysis of learning algorithms
design of learning algorithms
learnability of function classes
limits of efficient learning
tradeoff between data and computation in learning
usesConcept combinatorics
complexity theory
information theory
optimization
probability theory
statistics

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Referenced by (3)

Full triples — surface form annotated when it differs from this entity's canonical label.

Theoretical Computer Science hasSubfield Computational Learning Theory
Probably Approximately Correct learning field computational learning theory
linked to: Computational Learning Theory
Vladimir Vapnik knownFor Vapnik–Chervonenkis theory
linked to: Computational Learning Theory