| Estimation of Distribution Algorithms (EDAs) are a set of algorithms in the Evolutionary Computation (EC) field characterized by the use of explicit probability distributions in optimization. Contrarily to other EC techniques such as the broadly known Genetic Algorithms (GAs) in EDAs, the crossover and mutation operators are substituted by the sampling of a distribution previously learnt from the selected individuals. EDAs have experienced a high development that has transformed them into an established discipline within the EC field.
This book attracts the interest of new researchers in the EC field as well as in other optimization disciplines, and that it becomes a reference for all of us working on this topic. The twelve chapters of this book can be divided into those that endeavor to set a sound theoretical basis for EDAs, those that broaden the methodology of EDAs and finally those that have an applied objective.
Entropy is a measure of the uncertainty of a random variable, whereas mutual information measures the reduction of the entropy due to another variable. These are fundamental quantities of information theory, the building blocks of a field that overlaps with probability theory, statistical physics, algorithmic complexity theory and communication theory, among others disciplines.
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Adobe Premiere Pro BibleThe Adobe Premiere Pro Bible is for multimedia producers, Web designers, graphic designers, artists, filmmakers, and camcorder users—anyone interested in using his or her computer to create desktop video productions or to output desktop video to videotape, DVDs, or the Web. As you read through the Adobe Premiere Pro Bible, you’ll soon... | | Computer Animation, Third Edition: Algorithms and Techniques
Driven by demand from the entertainment industry for better and more realistic animation, technology continues to evolve and improve. The algorithms and techniques behind this technology are the foundation of this comprehensive book, which is written to teach you the fundamentals of animation programming.
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