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Titlebook: Genetic Programming Theory and Practice XI; Rick Riolo,Jason H. Moore,Mark Kotanchek Book 2014 Springer Science+Business Media New York 20

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發(fā)表于 2025-3-21 18:45:12 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Genetic Programming Theory and Practice XI
編輯Rick Riolo,Jason H. Moore,Mark Kotanchek
視頻videohttp://file.papertrans.cn/383/382606/382606.mp4
概述Describes cutting-edge work on genetic programming (GP) theory, applications of GP and how theory can be used to guide application of GP.Demonstrates large-scale applications of GP to a variety of pro
叢書名稱Genetic and Evolutionary Computation
圖書封面Titlebook: Genetic Programming Theory and Practice XI;  Rick Riolo,Jason H. Moore,Mark Kotanchek Book 2014 Springer Science+Business Media New York 20
描述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: evolutionary constraints, relaxation of selection mechanisms, diversity preservation strategies, flexing fitness evaluation, evolution in dynamic environments, multi-objective and multi-modal selection, foundations of evolvability, evolvable and adaptive evolutionary operators, foundation of injecting expert knowledge in evolutionary search, analysis of problem difficulty and required GP algorithm complexity, foundations in running GP on the cloud – communication, cooperation, flexible implementation, and ensemble methods. Additional focal points for GP symbolic regression are: (1) The need to guarantee convergence to solutions in the function discovery mode; (2) Issues on model validation; (3)The need for model analysis workflows for insight generation based on generated GP solutions – model exploration, visualization, variable selection, dimensionality analysis; (4) Issues in combining di
出版日期Book 2014
關(guān)鍵詞Artificial evolution; Evolution of models; Feature selection; Genetic programming; Genetic programming a
版次1
doihttps://doi.org/10.1007/978-1-4939-0375-7
isbn_softcover978-1-4939-5563-3
isbn_ebook978-1-4939-0375-7Series ISSN 1932-0167 Series E-ISSN 1932-0175
issn_series 1932-0167
copyrightSpringer Science+Business Media New York 2014
The information of publication is updating

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,Exploring , in a Computational Evolution System for the Genome-Wide Genetic Analysis of Alzheimer’sth simulated and real data. The goal of the present study was to introduce a measure of . into the modeling process. Here, we define interestingness as a measure of non-additive gene-gene interactions. That is, we are more interested in those CES models that include attributes that exhibit synergist
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Optimizing a Cloud Contract Portfolio Using Genetic Programming-Based Load Models,orld data. The predicted future load is subsequently used by a resource manager to optimize the amount of IaaS servers a consumer should allocate at a cloud provider, and the optimal tariff plans (from a cost perspective) for that allocation. Our results illustrate the benefits of load forecasting f
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Maintenance of a Long Running Distributed Genetic Programming System for Solving Problems Requiring, deployment, operation and update of an instance of such a large, distributed and long running system. Moreover, we outline how ECStar is designed to allow manual guidance and re-alignment of its evolutionary search trajectory.
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Explaining Unemployment Rates with Symbolic Regression,mple R.”. We conclude that the two packages tested, Eureqa and ARC, can produce models that go beyond the power of traditional stepwise regression. ARC, in particular, is able to replicate the format of published economic research because ARC contains a high level Regression Query Language (RQL). Th
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Uniform Linear Transformation with Repair and Alternation in Genetic Programming,and structures. ULTRA treats hierarchical programs as linear sequences and includes a repair step to ensure that syntax constraints are satisfied after variation. We show that on the drug bioavailability and Pagie-1 benchmark problems ULTRA produces significant improvements both in problem-solving p
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Evaluation of Parameter Contribution to Neural Network Size and Fitness in ATHENA for Genetic Analys of multiple GENN parameters and data noise levels on model detection and network structure. We concluded that the models produced by GENN were greatly affected by algorithm parameters and data noise levels. We also produced complex, multi-layer networks that were not produced in the previous study
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Book 2014arantee convergence to solutions in the function discovery mode; (2) Issues on model validation; (3)The need for model analysis workflows for insight generation based on generated GP solutions – model exploration, visualization, variable selection, dimensionality analysis; (4) Issues in combining di
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