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Genetic programming theory and pract...
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Workshop on Genetic Programming, Theory and Practice (2018 :)
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Genetic programming theory and practice XVI
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Genetic programming theory and practice XVI/ edited by Wolfgang Banzhaf, Lee Spector, Leigh Sheneman.
其他題名:
Genetic programming theory and practice 16
其他作者:
Banzhaf, Wolfgang.
團體作者:
Workshop on Genetic Programming, Theory and Practice
出版者:
Cham :Springer International Publishing : : 2019.,
面頁冊數:
xxi, 234 p. :ill., digital ;24 cm.
內容註:
1 Exploring Genetic Programming Systems with MAP-Elites -- 2 The Evolutionary Buffet Method -- 3 Emergent Policy Discovery for Visual Reinforcement Learning through Tangled Program Graphs: A Tutorial -- 4 Strong Typing, Swarm Enhancement, and Deep Learning Feature Selection in the Pursuit of Symbolic Regression-Classification -- 5 Cluster Analysis of a Symbolic Regression Search Space -- 6 What else is in an evolved name? Exploring evolvable specificity with SignalGP -- Lexicase Selection Beyond Genetic Programming -- 8 Evolving developmental programs that build neural networks for solving multiple problems -- 9 The Elephant in the Room - Towards the Application of Genetic Programming to Automatic Programming -- 10 Untapped Potential of Genetic Programming: Transfer Learning and Outlier Removal -- 11 Program Search for Machine Learning Pipelines Leveraging Symbolic Planning and Reinforcement Learning.
Contained By:
Springer eBooks
標題:
Genetic programming (Computer science) - Congresses. -
電子資源:
https://doi.org/10.1007/978-3-030-04735-1
ISBN:
9783030047351
Genetic programming theory and practice XVI
Genetic programming theory and practice XVI
[electronic resource] /Genetic programming theory and practice 16edited by Wolfgang Banzhaf, Lee Spector, Leigh Sheneman. - Cham :Springer International Publishing :2019. - xxi, 234 p. :ill., digital ;24 cm. - genetic and evolutionary computation,1932-0167. - genetic and evolutionary computation..
1 Exploring Genetic Programming Systems with MAP-Elites -- 2 The Evolutionary Buffet Method -- 3 Emergent Policy Discovery for Visual Reinforcement Learning through Tangled Program Graphs: A Tutorial -- 4 Strong Typing, Swarm Enhancement, and Deep Learning Feature Selection in the Pursuit of Symbolic Regression-Classification -- 5 Cluster Analysis of a Symbolic Regression Search Space -- 6 What else is in an evolved name? Exploring evolvable specificity with SignalGP -- Lexicase Selection Beyond Genetic Programming -- 8 Evolving developmental programs that build neural networks for solving multiple problems -- 9 The Elephant in the Room - Towards the Application of Genetic Programming to Automatic Programming -- 10 Untapped Potential of Genetic Programming: Transfer Learning and Outlier Removal -- 11 Program Search for Machine Learning Pipelines Leveraging Symbolic Planning and Reinforcement Learning.
These contributions, written by the foremost international researchers and practitioners of Genetic Programming (GP), explore the synergy between theoretical and empirical results on real-world problems, producing a comprehensive view of the state of the art in GP. Topics in this volume include: evolving developmental programs for neural networks solving multiple problems, tangled program, transfer learning and outlier detection using GP, program search for machine learning pipelines in reinforcement learning, automatic programming with GP, new variants of GP, like SignalGP, variants of lexicase selection, and symbolic regression and classification techniques. The volume includes several chapters on best practices and lessons learned from hands-on experience. Readers will discover large-scale, real-world applications of GP to a variety of problem domains via in-depth presentations of the latest and most significant results.
ISBN: 9783030047351
Standard No.: 10.1007/978-3-030-04735-1doiSubjects--Topical Terms:
582167
Genetic programming (Computer science)
--Congresses.
LC Class. No.: QA76.623
Dewey Class. No.: 006.31
Genetic programming theory and practice XVI
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These contributions, written by the foremost international researchers and practitioners of Genetic Programming (GP), explore the synergy between theoretical and empirical results on real-world problems, producing a comprehensive view of the state of the art in GP. Topics in this volume include: evolving developmental programs for neural networks solving multiple problems, tangled program, transfer learning and outlier detection using GP, program search for machine learning pipelines in reinforcement learning, automatic programming with GP, new variants of GP, like SignalGP, variants of lexicase selection, and symbolic regression and classification techniques. The volume includes several chapters on best practices and lessons learned from hands-on experience. Readers will discover large-scale, real-world applications of GP to a variety of problem domains via in-depth presentations of the latest and most significant results.
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