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Genetic Programming Theory and Practice IV

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Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

19.11.2010

Abbildungen

XVI, 338 p. 200 illus.

Herausgeber

Rick Riolo + weitere

Verlag

Springer Us

Seitenzahl

338

Maße (L/B/H)

23,5/15,5/2 cm

Gewicht

540 g

Sprache

Englisch

ISBN

978-1-4419-4123-7

Beschreibung

Rezension

From the reviews:



"Every cutting-edge researcher, in every computational discipline, working on any real-world application, should make it a point to keep abreast of the ongoing progress of genetic programming theory and practice, which is currently available in this book. … a great win-win synergy opportunity here for less-cutting-edge researchers to try these maturing tools on more intuitive data masses; they should be more able to appreciate the results, and the genetic programming cryptography community might then learn something new about how to interpret post-scientific results." (Chaim Scheff, ACM Computing Reviews, Vol. 49 (8), August, 2008)

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

19.11.2010

Abbildungen

XVI, 338 p. 200 illus.

Herausgeber

Verlag

Springer Us

Seitenzahl

338

Maße (L/B/H)

23,5/15,5/2 cm

Gewicht

540 g

Sprache

Englisch

ISBN

978-1-4419-4123-7

Herstelleradresse

Springer-Verlag KG
Sachsenplatz 4-6
1201 Wien
AT

Email: ProductSafety@springernature.com

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  • Produktbild: Genetic Programming Theory and Practice IV
  • Produktbild: Genetic Programming Theory and Practice IV
  • Genetic Programming: Theory and Practice.- Genome-Wide Genetic Analysis Using Genetic Programming: The Critical Need for Expert Knowledge.- Lifting the Curse of Dimensionality.- Genetic Programming for Classifying Cancer Data and Controlling Humanoid Robots.- Boosting Improves Stability and Accuracy of Genetic Programming in Biological Sequence Classification.- Orthogonal Evolution of Teams: A Class of Algorithms for Evolving Teams with Inversely Correlated Errors.- Multidimensional Tags, Cooperative Populations, and Genetic Programming.- Coevolving Fitness Models for Accelerating Evolution and Reducing Evaluations.- Multi-Domain Observations Concerning the Use of Genetic Programming to Automatically Synthesize Human-Competitive Designs for Analog Circuits, Optical Lens Systems, Controllers, Antennas, Mechanical Systems, and Quantum Computing Circuits.- Robust Pareto Front Genetic Programming Parameter Selection Based on Design of Experiments and Industrial Data.- Pursuing the Pareto Paradigm: Tournaments, Algorithm Variations and Ordinal Optimization.- Applying Genetic Programming to Reservoir History Matching Problem.- Comparison of Robustness of Three Filter Design Strategies Using Genetic Programming and Bond Graphs.- Design of Posynomial Models for Mosfets: Symbolic Regression Using Genetic Algorithms.- Phase Transitions in Genetic Programming Search.- Efficient Markov Chain Model of Machine Code Program Execution and Halting.- A Re-Examination of a Real World Blood Flow Modeling Problem Using Context-Aware Crossover.- Large-Scale, Time-Constrained Symbolic Regression.- Stock Selection: An Innovative Application of Genetic Programming Methodology.