Massively Parallel, Optical, and Neural Computing in the United States

Massively Parallel, Optical, and Neural Computing in the United States
Author: Gilbert Kalb
Publisher: IOS Press
Total Pages: 220
Release: 1992
Genre: Computers
ISBN: 9789051990973

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A survey of products and research projects in the field of highly parallel, optical and neural computers in the USA. It covers operating systems, language projects and market analysis, as well as optical computing devices and optical connections of electronic parts.

Massively Parallel, Optical, and Neural Computing in Japan

Massively Parallel, Optical, and Neural Computing in Japan
Author: Ulrich Wattenberg
Publisher: IOS Press
Total Pages: 176
Release: 1992
Genre: Computers
ISBN: 9789051990980

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A survey of products and research projects in the field of highly parallel, optical and neural computers in Japan. The research activities are listed by type of organization, eg universities and public research organizations, and by industry.

Heterogeneity in Statistical Genetics

Heterogeneity in Statistical Genetics
Author: Derek Gordon
Publisher: Springer Nature
Total Pages: 366
Release: 2020-12-16
Genre: Medical
ISBN: 3030611213

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Heterogeneity, or mixtures, are ubiquitous in genetics. Even for data as simple as mono-genic diseases, populations are a mixture of affected and unaffected individuals. Still, most statistical genetic association analyses, designed to map genes for diseases and other genetic traits, ignore this phenomenon. In this book, we document methods that incorporate heterogeneity into the design and analysis of genetic and genomic association data. Among the key qualities of our developed statistics is that they include mixture parameters as part of the statistic, a unique component for tests of association. A critical feature of this work is the inclusion of at least one heterogeneity parameter when performing statistical power and sample size calculations for tests of genetic association. We anticipate that this book will be useful to researchers who want to estimate heterogeneity in their data, develop or apply genetic association statistics where heterogeneity exists, and accurately evaluate statistical power and sample size for genetic association through the application of robust experimental design.

U.S. Industrial Outlook

U.S. Industrial Outlook
Author:
Publisher:
Total Pages: 656
Release: 1993
Genre: Industrial statistics
ISBN:

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Presents industry reviews including a section of "trends and forecasts," complete with tables and graphs for industry analysis.

Parallel Processing for Artificial Intelligence 1

Parallel Processing for Artificial Intelligence 1
Author: L.N. Kanal
Publisher: Elsevier
Total Pages: 445
Release: 2014-06-28
Genre: Computers
ISBN: 1483295745

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Parallel processing for AI problems is of great current interest because of its potential for alleviating the computational demands of AI procedures. The articles in this book consider parallel processing for problems in several areas of artificial intelligence: image processing, knowledge representation in semantic networks, production rules, mechanization of logic, constraint satisfaction, parsing of natural language, data filtering and data mining. The publication is divided into six sections. The first addresses parallel computing for processing and understanding images. The second discusses parallel processing for semantic networks, which are widely used means for representing knowledge - methods which enable efficient and flexible processing of semantic networks are expected to have high utility for building large-scale knowledge-based systems. The third section explores the automatic parallel execution of production systems, which are used extensively in building rule-based expert systems - systems containing large numbers of rules are slow to execute and can significantly benefit from automatic parallel execution. The exploitation of parallelism for the mechanization of logic is dealt with in the fourth section. While sequential control aspects pose problems for the parallelization of production systems, logic has a purely declarative interpretation which does not demand a particular evaluation strategy. In this area, therefore, very large search spaces provide significant potential for parallelism. In particular, this is true for automated theorem proving. The fifth section considers the problem of constraint satisfaction, which is a useful abstraction of a number of important problems in AI and other fields of computer science. It also discusses the technique of consistent labeling as a preprocessing step in the constraint satisfaction problem. Section VI consists of two articles, each on a different, important topic. The first discusses parallel formulation for the Tree Adjoining Grammar (TAG), which is a powerful formalism for describing natural languages. The second examines the suitability of a parallel programming paradigm called Linda, for solving problems in artificial intelligence. Each of the areas discussed in the book holds many open problems, but it is believed that parallel processing will form a key ingredient in achieving at least partial solutions. It is hoped that the contributions, sourced from experts around the world, will inspire readers to take on these challenging areas of inquiry.

Massively Parallel Artificial Intelligence

Massively Parallel Artificial Intelligence
Author: Hiroaki Kitano
Publisher:
Total Pages: 450
Release: 1994
Genre: Computers
ISBN:

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The increased sophistication and availability of massively parallel supercomputers has had two major impacts on research in artificial intelligence, both of which are addressed in this collection of exciting new AI theories and experiments. Massively parallel computers have been used to push forward research in traditional AI topics such as vision, search, and speech. More important, these machines allow AI to expand in exciting new ways by taking advantage of research in neuroscience and developing new models and paradigms, among them associate memory, neural networks, genetic algorithms, artificial life, society-of-mind models, and subsumption architectures.A number of chapters show that massively parallel computing enables AI researchers to handle significantly larger amounts of data in real time, which changes the way that AI systems can be built, which in turn makes memory-based reasoning and neural-network-based vision systems become practical. Other chapters present the contrasting view that massively parallel computing provides a platform to model and build intelligent systems by simulating the (massively parallel) processes that occur in nature.

Brain-Like and Massively-Parallel Computers

Brain-Like and Massively-Parallel Computers
Author: Branko Soucek
Publisher: Wiley-Interscience
Total Pages: 488
Release: 1988-06-23
Genre: Computers
ISBN:

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This book is designed to serve as a textbook/reference in psychological/intelligent/neural/knowledge engineering and its related technologies.