Topology Optimization in Spatially Distributed Cellular Neural Network

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ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (8 download)

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Book Synopsis Topology Optimization in Spatially Distributed Cellular Neural Network by : Varsha Bhambhani

Download or read book Topology Optimization in Spatially Distributed Cellular Neural Network written by Varsha Bhambhani and published by . This book was released on 2012 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt: A new network topology optimization approach to cellular neural network design, as a method for realizing associative memories using sparser networks is conceptualized. This type of optimization allows recurrent neural networks to be implemented in a spatially distributed fashion, that is, with components of the network residing in different physical locations. This could find application in addressing the problem of dynamic allocation of a team of robots to a collection of spatially distributed tasks which is relevant for large scale environmental monitoring and surveillance. Spatially distributed sensing allows for greater coverage of the environment than a single large vehicle with multiple sensors would permit in many cases. In this work, we try to answer the question of how could the design process be different if the network topology was also part of the design. A sparser cellular neural network topology can be achieved without significantly degrading the performance of the network, by selectively deleting those weights from the optimized network which contribute the least to ability of the network to recall the desired patterns. This approach is particularly useful where neural links incur varying costs, such as implementation of associative memories over wireless sensor networks. The cellular neural networks interconnection topology is diluted, without significantly degrading its performance, where performance is quantified by the average recall probability of the patterns engraved into the networks associative memory. The average recall probability is a measure of performance of the designed network in presence of noise and is defined as the ratio of number of recovered memory patterns (perturbed initial condition vectors which result in same output as the stored memory vector) to the total number of perturbed initial condition vectors. Since the average recall probability cannot be assessed prior to testing, the optimization algorithm uses the networks stability parameters as a measure of quality of memorization, and optimization proceeds by selectively removing costly links that contribute the least to the magnitude of these parameters. Two different approaches to implementing the optimization of the networks topology are implemented and compared. The first one is a sequential process in which a single link is removed each time, specifically the one the removal of which incurs the least performance cost compared to all other existing high-cost links. This method ignores the possibility that a non-obvious combination of links may produce better results through the links simultaneous removal. This phenomenon has been observed in simulation studies which validated the proposed method. To validate further the optimization, but more importantly, to ensure that the overall approach does not depend on the particular method used for the combinatorial optimization we also implemented an alternative approach which is based on the randomized optimization. In this approach a random sample of a sufficient number of i.i.d possible topology is generated. In other words, each random topology in the sample has the same probability distribution as the others and all are mutually independent. An example is used to demonstrate that irrespectively of the combinatorial algorithm used, the approach yields sparser associative memories that in general trade off performance for cost, and in many cases the performance of the diluted network is on par with the original system. In our numerical tests, the two methods yield comparable results, which do not differ significantly in terms of resulting network performance. Performance is quantified in terms of the network recall probability, and in the proposed optimization algorithm approach is captured by the neural networks stability parameters. Further, we apply the ideas developed so far to control network communication in actual robots to experimentally verify our simulation results. Experimental testing has shown that spatially distributed implementations of cnn on CoroBots are indeed feasible, and that for some cases, the communication delays related to the communication between the different components of the network are not significant enough to affect the performance and stability properties of the dynamical system. It is shown that the error between simulation of the discrete-time dynamics and experimental results practically coincide, with a maximum error difference of the order of 10-4. Thus the proposed combinatorial optimization methods performed almost equally well in practice as in simulations.

Spatial Resource Allocation in Massive MIMO Communications

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Publisher : Linköping University Electronic Press
ISBN 13 : 9179299415
Total Pages : 66 pages
Book Rating : 4.1/5 (792 download)

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Book Synopsis Spatial Resource Allocation in Massive MIMO Communications by : Trinh Van Chien

Download or read book Spatial Resource Allocation in Massive MIMO Communications written by Trinh Van Chien and published by Linköping University Electronic Press. This book was released on 2019-12-09 with total page 66 pages. Available in PDF, EPUB and Kindle. Book excerpt: Massive MIMO (multiple-input multiple-output) is considered as an heir of the multi-user MIMO technology and it has gained lots of attention from both academia and industry since the last decade. By equipping base stations (BSs) with hundreds of antennas in a compact array or a distributed manner, this new technology can provide very large multiplexing gains by serving many users on the same time-frequency resources and thereby bring significant improvements in spectral efficiency (SE) and energy efficiency (EE) over the current wireless networks. The transmit power, pilot training, and spatial transmission resources need to be allocated properly to the users to achieve the highest possible performance. This is called resource allocation and can be formulated as design utility optimization problems. If the resource allocation in Massive MIMO is optimized, the technology can handle the exponential growth in both wireless data traffic and number of wireless devices, which cannot be done by the current cellular network technology. In this thesis, we focus on the five different resource allocation aspects in Massive MIMO communications: The first part of the thesis studies if power control and advanced coordinated multipoint (CoMP) techniques are able to bring substantial gains to multi-cell Massive MIMO systems compared to the systems without using CoMP. More specifically, we consider a network topology with no cell boundary where the BSs can collaborate to serve the users in the considered coverage area. We focus on a downlink (DL) scenario in which each BS transmits different data signals to each user. This scenario does not require phase synchronization between BSs and therefore has the same backhaul requirements as conventional Massive MIMO systems, where each user is preassigned to only one BS. The scenario where all BSs are phase synchronized to send the same data is also included for comparison. We solve a total transmit power minimization problem in order to observe how much power Massive MIMO BSs consume to provide the requested quality of service (QoS) of each user. A max-min fairness optimization is also solved to provide every user with the same maximum QoS regardless of the propagation conditions. The second part of the thesis considers a joint pilot design and uplink (UL) power control problem in multi-cell Massive MIMO. The main motivation for this work is that the pilot assignment and pilot power allocation is momentous in Massive MIMO since the BSs are supposed to construct linear detection and precoding vectors from the channel estimates. Pilot contamination between pilot-sharing users leads to more interference during data transmission. The pilot design is more difficult if the pilot signals are reused frequently in space, as in Massive MIMO, which leads to greater pilot contamination effects. Related works have only studied either the pilot assignment or the pilot power control, but not the joint optimization. Furthermore, the pilot assignment is usually formulated as a combinatorial problem leading to prohibitive computational complexity. Therefore, in the second part of this thesis, a new pilot design is proposed to overcome such challenges by treating the pilot signals as continuous optimization variables. We use those pilot signals to solve different max-min fairness optimization problems with either ideal hardware or hardware impairments. The third part of this thesis studies a two-layer decoding method that mitigates inter-cell interference in multi-cell Massive MIMO systems. In layer one, each BS estimates the channels to intra-cell users and uses the estimates for local decoding within the cell. This is followed by a second decoding layer where the BSs cooperate to mitigate inter-cell interference. An UL achievable SE expression is computed for arbitrary two-layer decoding schemes, while a closed form expression is obtained for correlated Rayleigh fading channels, maximum-ratio combining (MRC), and largescale fading decoding (LSFD) in the second layer. We formulate a sum SE maximization problem with both the data power and LSFD vectors as optimization variables. Since the problem is non-convex, we develop an algorithm based on the weighted minimum mean square error (MMSE) approach to obtain a stationary point with low computational complexity. Motivated by recent successes of deep learning in predicting the solution to an optimization problem with low runtime, the fourth part of this thesis investigates the use of deep learning for power control optimization in Massive MIMO. We formulate the joint data and pilot power optimization for maximum sum SE in multi-cell Massive MIMO systems, which is a non-convex problem. We propose a new optimization algorithm, inspired by the weighted MMSE approach, to obtain a stationary point in polynomial time. We then use this algorithm together with deep learning to train a convolutional neural network to perform the joint data and pilot power control in sub-millisecond runtime. The solution is suitable for online optimization. Finally, the fifth part of this thesis considers a large-scale distributed antenna system that serves the users by coherent joint transmission called Cell-free Massive MIMO. For a given user set, only a subset of the access points (APs) is likely needed to satisfy the users' performance demands. To find a flexible and energy-efficient implementation, we minimize the total power consumption at the APs in the DL, considering both the hardware consumed and transmit powers, where APs can be turned off to reduce the former part. Even though this is a nonconvex optimization problem, a globally optimal solution is obtained by solving a mixed-integer second-order cone program (SOCP). We also propose low-complexity algorithms that exploit group-sparsity or received power strength in the problem formulation.

Analysis and Modelling of Spatial Environmental Data

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Publisher : EPFL Press
ISBN 13 : 9780824759810
Total Pages : 312 pages
Book Rating : 4.7/5 (598 download)

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Book Synopsis Analysis and Modelling of Spatial Environmental Data by : Mikhail Kanevski

Download or read book Analysis and Modelling of Spatial Environmental Data written by Mikhail Kanevski and published by EPFL Press. This book was released on 2004-03-30 with total page 312 pages. Available in PDF, EPUB and Kindle. Book excerpt: Analysis and Modelling of Spatial Environmental Data presents traditional geostatistics methods for variography and spatial predictions, approaches to conditional stochastic simulation and local probability distribution function estimation, and select aspects of Geographical Information Systems. It includes real case studies using Geostat Office software tools under MS Windows and also provides tools and methods to solve problems in prediction, characterization, optimization, and density estimation. The author describes fundamental methodological aspects of the analysis and modelling of spatially distributed data and the application by way of a specific and user-friendly software, GSO Geostat Office. Presenting complete coverage of geostatistics and machine learning algorithms, the book explores the relationships and complementary nature of both approaches and illustrates them with environmental and pollution data. The book includes introductory chapters on machine learning, artificial neural networks of different architectures, and support vector machines algorithms. Several chapters cover monitoring network analysis, artificial neural networks, support vector machines, and simulations. The book demonstrates thepromising results of the application of SVM to environmental and pollution data.

Metaheuristics for Dynamic Optimization

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Publisher : Springer
ISBN 13 : 3642306659
Total Pages : 417 pages
Book Rating : 4.6/5 (423 download)

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Book Synopsis Metaheuristics for Dynamic Optimization by : Enrique Alba

Download or read book Metaheuristics for Dynamic Optimization written by Enrique Alba and published by Springer. This book was released on 2012-08-11 with total page 417 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book is an updated effort in summarizing the trending topics and new hot research lines in solving dynamic problems using metaheuristics. An analysis of the present state in solving complex problems quickly draws a clear picture: problems that change in time, having noise and uncertainties in their definition are becoming very important. The tools to face these problems are still to be built, since existing techniques are either slow or inefficient in tracking the many global optima that those problems are presenting to the solver technique. Thus, this book is devoted to include several of the most important advances in solving dynamic problems. Metaheuristics are the more popular tools to this end, and then we can find in the book how to best use genetic algorithms, particle swarm, ant colonies, immune systems, variable neighborhood search, and many other bioinspired techniques. Also, neural network solutions are considered in this book. Both, theory and practice have been addressed in the chapters of the book. Mathematical background and methodological tools in solving this new class of problems and applications are included. From the applications point of view, not just academic benchmarks are dealt with, but also real world applications in logistics and bioinformatics are discussed here. The book then covers theory and practice, as well as discrete versus continuous dynamic optimization, in the aim of creating a fresh and comprehensive volume. This book is targeted to either beginners and experienced practitioners in dynamic optimization, since we took care of devising the chapters in a way that a wide audience could profit from its contents. We hope to offer a single source for up-to-date information in dynamic optimization, an inspiring and attractive new research domain that appeared in these last years and is here to stay.

Topology Optimization

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Publisher : Springer Science & Business Media
ISBN 13 : 3662050862
Total Pages : 381 pages
Book Rating : 4.6/5 (62 download)

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Book Synopsis Topology Optimization by : Martin Philip Bendsoe

Download or read book Topology Optimization written by Martin Philip Bendsoe and published by Springer Science & Business Media. This book was released on 2013-04-17 with total page 381 pages. Available in PDF, EPUB and Kindle. Book excerpt: The topology optimization method solves the basic enginee- ring problem of distributing a limited amount of material in a design space. The first edition of this book has become the standard text on optimal design which is concerned with the optimization of structural topology, shape and material. This edition, has been substantially revised and updated to reflect progress made in modelling and computational procedures. It also encompasses a comprehensive and unified description of the state-of-the-art of the so-called material distribution method, based on the use of mathematical programming and finite elements. Applications treated include not only structures but also materials and MEMS.

Transpathology

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Publisher : Elsevier
ISBN 13 : 0323952240
Total Pages : 408 pages
Book Rating : 4.3/5 (239 download)

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Book Synopsis Transpathology by : Mei Tian

Download or read book Transpathology written by Mei Tian and published by Elsevier. This book was released on 2024-06-25 with total page 408 pages. Available in PDF, EPUB and Kindle. Book excerpt: Transpathology: Molecular Imaging-Based Pathology is a multidisciplinary reference on molecular imaging and pathology. The book is intended for professionals in the fields of molecular imaging, nuclear medicine, radiology, and pathology as well as students and clinical residents. The book describes the importance of non-invasive diagnosis-based precision medicine and presents a detailed description of current transpathological approaches in different aspects essential for the future development of precision medicine. It’s molecular imaging approach to experimental research and clinical practice will drive the field forward and improve research outcomes. Introduces a new concept of molecular imaging-guided precise biopsy Links in vivo and ex vivo information at various scales by using multi-modality imaging technologies Integrates future technologies for the non-invasive cross-validation of underlying mechanisms

1998 IEEE International Conference on Evolutionary Computation Proceedings

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Publisher : Institute of Electrical & Electronics Engineers(IEEE)
ISBN 13 :
Total Pages : 872 pages
Book Rating : 4.:/5 (318 download)

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Book Synopsis 1998 IEEE International Conference on Evolutionary Computation Proceedings by : IEEE Neural Networks Council

Download or read book 1998 IEEE International Conference on Evolutionary Computation Proceedings written by IEEE Neural Networks Council and published by Institute of Electrical & Electronics Engineers(IEEE). This book was released on 1998 with total page 872 pages. Available in PDF, EPUB and Kindle. Book excerpt: This collection of papers from the ICEC conference covers a wide range of aspects of evolutionary computing. This includes principles of evolutionary computation such as adaptation and self-adaption, variation operators, representational issues, and theoretical investigations.

Modeling, Stochastic Control, Optimization, and Applications

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Publisher : Springer
ISBN 13 : 3030254984
Total Pages : 599 pages
Book Rating : 4.0/5 (32 download)

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Book Synopsis Modeling, Stochastic Control, Optimization, and Applications by : George Yin

Download or read book Modeling, Stochastic Control, Optimization, and Applications written by George Yin and published by Springer. This book was released on 2019-07-16 with total page 599 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume collects papers, based on invited talks given at the IMA workshop in Modeling, Stochastic Control, Optimization, and Related Applications, held at the Institute for Mathematics and Its Applications, University of Minnesota, during May and June, 2018. There were four week-long workshops during the conference. They are (1) stochastic control, computation methods, and applications, (2) queueing theory and networked systems, (3) ecological and biological applications, and (4) finance and economics applications. For broader impacts, researchers from different fields covering both theoretically oriented and application intensive areas were invited to participate in the conference. It brought together researchers from multi-disciplinary communities in applied mathematics, applied probability, engineering, biology, ecology, and networked science, to review, and substantially update most recent progress. As an archive, this volume presents some of the highlights of the workshops, and collect papers covering a broad range of topics.

Applications and Science of Artificial Neural Networks

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Publisher : SPIE-International Society for Optical Engineering
ISBN 13 :
Total Pages : 664 pages
Book Rating : 4.E/5 ( download)

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Book Synopsis Applications and Science of Artificial Neural Networks by : Steven K. Rogers

Download or read book Applications and Science of Artificial Neural Networks written by Steven K. Rogers and published by SPIE-International Society for Optical Engineering. This book was released on 1995 with total page 664 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Fuzzy Systems and Data Mining IX

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Publisher : IOS Press
ISBN 13 : 164368471X
Total Pages : 980 pages
Book Rating : 4.6/5 (436 download)

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Book Synopsis Fuzzy Systems and Data Mining IX by : A.J. Tallón-Ballesteros

Download or read book Fuzzy Systems and Data Mining IX written by A.J. Tallón-Ballesteros and published by IOS Press. This book was released on 2023-12-19 with total page 980 pages. Available in PDF, EPUB and Kindle. Book excerpt: Fuzzy systems and data mining are indispensible aspects of the digital technology on which we now all depend. Fuzzy logic is intrinsic to applications in the electrical, chemical and engineering industries, and also in the fields of management and environmental issues. Data mining is indispensible in dealing with big data, massive data, and scalable, parallel and distributed algorithms. This book presents the proceedings of FSDM 2023, the 9th International Conference on Fuzzy Systems and Data Mining, held from 10-13 November 2023 as a hybrid event, with some participants attending in Chongqing, China, and others online. The conference focuses on four main areas: fuzzy theory, algorithms and systems; fuzzy application; data mining; and the interdisciplinary field of fuzzy logic and data mining, and provides a forum for experts, researchers, academics and representatives from industry to share the latest advances in the field of fuzzy sets and data mining. This year, topics from two special sessions on granular-ball computing and the application of generative AI, as well as machine learning and neural networks, were also covered. A total of 363 submissions were received, and after careful review by the members of the international program committee, 110 papers were accepted for presentation at the conference and publication here, representing an acceptance rate of just over 30%. Covering a comprehensive range of current research and developments in fuzzy logic and data mining, the book will be of interest to all those working in the field of data science.

Swarm Intelligence Based Optimization

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Publisher : Springer
ISBN 13 : 3319503073
Total Pages : 132 pages
Book Rating : 4.3/5 (195 download)

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Book Synopsis Swarm Intelligence Based Optimization by : Patrick Siarry

Download or read book Swarm Intelligence Based Optimization written by Patrick Siarry and published by Springer. This book was released on 2016-11-25 with total page 132 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book constitutes the thoroughly refereed post-conference proceedings of the Second International Conference on Swarm Intelligence Based Optimization, ICSIBO 2016, held in Mulhouse, France, in June 2016. The 9 full papers presented were carefully reviewed and selected from 20 submissions. They are centered around the following topics: theoretical advances of swarm intelligence metaheuristics; combinatorial discrete, binary, constrained, multi-objective, multi-modal, dynamic, noisy, and large scale optimization; artificial immune systems, particle swarms, ant colony, bacterial forging, artificial bees, fireflies algorithm; hybridization of algorithms; parallel/distributed computing, machine learning, data mining, data clustering, decision making and multi-agent systems based on swarm intelligence principles; adaptation and applications of swarm intelligence principles to real world problems in various domains.

Advances in Artificial Life

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Publisher : Springer
ISBN 13 : 354039432X
Total Pages : 922 pages
Book Rating : 4.5/5 (43 download)

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Book Synopsis Advances in Artificial Life by : Wolfgang Banzhaf

Download or read book Advances in Artificial Life written by Wolfgang Banzhaf and published by Springer. This book was released on 2011-03-31 with total page 922 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book constitutes the refereed proceedings of the 7th European Conference on Artificial Life, ECAL 2003, held in Dortmund, Germany in September 2003. The 96 revised full papers presented were carefully reviewed and selected from more than 140 submissions. The papers are organized in topical sections on artificial chemistries, self-organization, and self-replication; artificial societies; cellular and neural systems; evolution and development; evolutionary and adaptive dynamics; languages and communication; methodologies and applications; and robotics and autonomous agents.

Urban Spatial Evolution Simulation

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Publisher : Springer Nature
ISBN 13 : 9819734819
Total Pages : 203 pages
Book Rating : 4.8/5 (197 download)

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Book Synopsis Urban Spatial Evolution Simulation by : Fangqu Niu

Download or read book Urban Spatial Evolution Simulation written by Fangqu Niu and published by Springer Nature. This book was released on with total page 203 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Cellular Learning Automata: Theory and Applications

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Publisher : Springer Nature
ISBN 13 : 3030531414
Total Pages : 377 pages
Book Rating : 4.0/5 (35 download)

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Book Synopsis Cellular Learning Automata: Theory and Applications by : Reza Vafashoar

Download or read book Cellular Learning Automata: Theory and Applications written by Reza Vafashoar and published by Springer Nature. This book was released on 2020-07-24 with total page 377 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book highlights both theoretical and applied advances in cellular learning automata (CLA), a type of hybrid computational model that has been successfully employed in various areas to solve complex problems and to model, learn, or simulate complicated patterns of behavior. Owing to CLA’s parallel and learning abilities, it has proven to be quite effective in uncertain, time-varying, decentralized, and distributed environments. The book begins with a brief introduction to various CLA models, before focusing on recently developed CLA variants. In turn, the research areas related to CLA are addressed as bibliometric network analysis perspectives. The next part of the book presents CLA-based solutions to several computer science problems in e.g. static optimization, dynamic optimization, wireless networks, mesh networks, and cloud computing. Given its scope, the book is well suited for all researchers in the fields of artificial intelligence and reinforcement learning.

Nature-Inspired Informatics for Intelligent Applications and Knowledge Discovery: Implications in Business, Science, and Engineering

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Publisher : IGI Global
ISBN 13 : 1605667064
Total Pages : 450 pages
Book Rating : 4.6/5 (56 download)

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Book Synopsis Nature-Inspired Informatics for Intelligent Applications and Knowledge Discovery: Implications in Business, Science, and Engineering by : Chiong, Raymond

Download or read book Nature-Inspired Informatics for Intelligent Applications and Knowledge Discovery: Implications in Business, Science, and Engineering written by Chiong, Raymond and published by IGI Global. This book was released on 2009-07-31 with total page 450 pages. Available in PDF, EPUB and Kindle. Book excerpt: Recently, nature has stimulated many successful techniques, algorithms, and computational applications allowing conventionally difficult problems to be solved through novel computing systems. Nature-Inspired Informatics for Intelligent Applications and Knowledge Discovery: Implications in Business, Science, and Engineering provides the latest findings in nature-inspired algorithms and their applications for breakthroughs in a wide range of disciplinary fields. This defining reference collection contains chapters written by leading researchers and well-known academicians within the field, offering readers a valuable and enriched accumulation of knowledge.

Multiscale Structural Topology Optimization

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Publisher : Elsevier
ISBN 13 : 0081011865
Total Pages : 186 pages
Book Rating : 4.0/5 (81 download)

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Book Synopsis Multiscale Structural Topology Optimization by : Liang Xia

Download or read book Multiscale Structural Topology Optimization written by Liang Xia and published by Elsevier. This book was released on 2016-04-27 with total page 186 pages. Available in PDF, EPUB and Kindle. Book excerpt: Multiscale Structural Topology Optimization discusses the development of a multiscale design framework for topology optimization of multiscale nonlinear structures. With the intention to alleviate the heavy computational burden of the design framework, the authors present a POD-based adaptive surrogate model for the RVE solutions at the microscopic scale and make a step further towards the design of multiscale elastoviscoplastic structures. Various optimization methods for structural size, shape, and topology designs have been developed and widely employed in engineering applications. Topology optimization has been recognized as one of the most effective tools for least weight and performance design, especially in aeronautics and aerospace engineering. This book focuses on the simultaneous design of both macroscopic structure and microscopic materials. In this model, the material microstructures are optimized in response to the macroscopic solution, which results in the nonlinearity of the equilibrium problem of the interface of the two scales. The authors include a reduce database model from a set of numerical experiments in the space of effective strain. Presents the first attempts towards topology optimization design of nonlinear highly heterogeneous structures Helps with simultaneous design of the topologies of both macroscopic structure and microscopic materials Helps with development of computer codes for the designs of nonlinear structures and of materials with extreme constitutive properties Focuses on the simultaneous design of both macroscopic structure and microscopic materials Includes a reduce database model from a set of numerical experiments in the space of effective strain

IUTAM Symposium on Topological Design Optimization of Structures, Machines and Materials

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Publisher : Springer Science & Business Media
ISBN 13 : 1402047525
Total Pages : 602 pages
Book Rating : 4.4/5 (2 download)

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Book Synopsis IUTAM Symposium on Topological Design Optimization of Structures, Machines and Materials by : Martin Philip Bendsoe

Download or read book IUTAM Symposium on Topological Design Optimization of Structures, Machines and Materials written by Martin Philip Bendsoe and published by Springer Science & Business Media. This book was released on 2006-10-03 with total page 602 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume offers edited papers presented at the IUTAM-Symposium Topological design optimization of structures, machines and materials - status and perspectives, October 2005. The papers cover the application of topological design optimization to fluid-solid interaction problems, acoustics problems, and to problems in biomechanics, as well as to other multiphysics problems. Also in focus are new basic modelling paradigms, covering new geometry modelling such as level-set methods and topological derivatives.