Results for 'neural applications'

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  1.  54
    The application of neural network algorithm and embedded system in computer distance teach system.Qin Qiu - 2022 - Journal of Intelligent Systems 31 (1):148-158.
    The computer distance teaching system teaches through the network, and there is no entrance threshold. Any student who is willing to study can log in to the network computer distance teaching system for study at any free time. Neural network has a strong self-learning ability and is an important part of artificial intelligence research. Based on this study, a neural network-embedded architecture based on shared memory and bus structure is proposed. By looking for an alternative method of exp (...)
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  2.  62
    A neural cognitive model of argumentation with application to legal inference and decision making.Artur S. D'Avila Garcez, Dov M. Gabbay & Luis C. Lamb - 2014 - Journal of Applied Logic 12 (2):109-127.
    Formal models of argumentation have been investigated in several areas, from multi-agent systems and artificial intelligence (AI) to decision making, philosophy and law. In artificial intelligence, logic-based models have been the standard for the representation of argumentative reasoning. More recently, the standard logic-based models have been shown equivalent to standard connectionist models. This has created a new line of research where (i) neural networks can be used as a parallel computational model for argumentation and (ii) neural networks can (...)
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  3.  21
    Neural Learning Control of Flexible Joint Manipulator with Predefined Tracking Performance and Application to Baxter Robot.Min Wang, Huiping Ye & Zhiguang Chen - 2017 - Complexity:1-14.
    This paper focuses on neural learning from adaptive neural control for a class of flexible joint manipulator under the output tracking constraint. To facilitate the design, a new transformed function is introduced to convert the constrained tracking error into unconstrained error variable. Then, a novel adaptive neural dynamic surface control scheme is proposed by combining the neural universal approximation. The proposed control scheme not only decreases the dimension of neural inputs but also reduces the number (...)
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  4.  11
    The Application of Feed - Forward Neural Network Architecture for Improving Energy Efficiency.Delia Balacian, Denisa Maria Melian & Stelian Stancu - 2023 - Postmodern Openings 14 (2):1-17.
    The energy sector contributes approximately two-thirds of global greenhouse gas emissions. In this context, the sector must adapt to new supply and demand networks for all future energy sources. The ongoing transformation in the European energy field is driven by the ambition of the European Union to reach the climate objectives set for 2030. The main actions are increasing renewable energy production, adapting transition fuels like natural gas to reduce emissions, improving energy efficiency across all economic sectors, prioritizing building, transportation, (...)
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  5.  15
    Application of Federal Kalman Filter with Neural Networks in the Velocity and Attitude Matching of Transfer Alignment.Lijun Song, Zhongxing Duan, Bo He & Zhe Li - 2018 - Complexity 2018:1-7.
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  6.  25
    Neural Network for Complex Systems: Theory and Applications.Chenguang Yang, Jing Na, Guang Li, Yanan Li & Junpei Zhong - 2018 - Complexity 2018:1-2.
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  7.  2
    The application of artificial neural networks to forecast financial time series.D. González-Cortés, E. Onieva, I. Pastor & J. Wu - forthcoming - Logic Journal of the IGPL.
    The amount of information that is produced on a daily basis in the financial markets is vast and complex; consequently, the development of systems that simplify decision-making is an essential endeavor. In this article, several intelligent systems are proposed and tested to predict the closing price of the IBEX 35 index using more than ten years of historical data and five distinct architectures for neural networks. A multi-layer perceptron was the first step, followed by a simple recurrent neural (...)
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  8.  7
    Application and Evolution for Neural Network and Signal Processing in Large-Scale Systems.Dongbao Jia, Cunhua Li, Qun Liu, Qin Yu, Xiangsheng Meng, Zhaoman Zhong, Xinxin Ban & Nizhuan Wang - 2021 - Complexity 2021:1-7.
    Low frequency oscillation is an important attribute of human brain activity, and the amplitude of low frequency fluctuation is an effective method to reflect the characteristics of low frequency oscillation, which has been widely used in the treatment of brain diseases and other fields. However, due to the low accuracy of the current analysis methods for low frequency signal extraction of ALFF, we propose the Fourier-based synchrosqueezing transform, which is often used in the field of signal processing to extract the (...)
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  9. Neural Networks and Statistical Learning Methods (III)-The Application of Modified Hierarchy Genetic Algorithm Based on Adaptive Niches.Wei-Min Qi, Qiao-Ling Ji & Wei-You Cai - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes In Computer Science. Springer Verlag. pp. 3930--842.
  10.  15
    Training: Neural systems and intelligence applications.Kay Stanney, Kelly Hale, Sven Fuchs, Angela Baskin & Chris Berka - 2011 - Synesis: A Journal of Science, Technology, Ethics, and Policy 2 (1):T38 - T44.
  11. Neural Optimization and Dynamic Programming-Algorithm Analysis and Application Based on Chaotic Neural Network for Cellular Channel Assignment.Xiaojin Zhu, Yanchun Chen, Hesheng Zhang & Jialin Cao - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes In Computer Science. Springer Verlag. pp. 991-996.
  12.  11
    An auto-associative neural network for sparse representations: Analysis and application to models of recognition and cued recall.Mark Chappell & Michael S. Humphreys - 1994 - Psychological Review 101 (1):103-128.
  13.  42
    The application of an artificial neural network for 2D coordinate transformation.Mamoun Ubaid Mohammed, Oday Y. M. Alhamadani & Ahmed Imad Abbas - 2022 - Journal of Intelligent Systems 31 (1):739-752.
    Clark1880, WGS1984, and ITRF08 are the reference systems used in Iraq. The ITRF08 and WGS84 represent the global reference frames. In the majority of instances, the transformation from one coordinate system to another is required. The ability of the artificial neural network to identify the connection between two coordinate systems without the need for a mathematical model is one of its most significant benefits. In this study, an ANN was employed for two-dimensional coordinate transformation from local Clark1880 to the (...)
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  14. Neural Network Applications-Face Recognition Using Probabilistic Two-Dimensional Principal Component Analysis and Its Mixture Model.Haixian Wang & Zilan Hu - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes In Computer Science. Springer Verlag. pp. 4221--337.
     
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  15.  89
    A Brief Review of Neural Networks Based Learning and Control and Their Applications for Robots.Yiming Jiang, Chenguang Yang, Jing Na, Guang Li, Yanan Li & Junpei Zhong - 2017 - Complexity:1-14.
    As an imitation of the biological nervous systems, neural networks, which have been characterized as powerful learning tools, are employed in a wide range of applications, such as control of complex nonlinear systems, optimization, system identification, and patterns recognition. This article aims to bring a brief review of the state-of-the-art NNs for the complex nonlinear systems by summarizing recent progress of NNs in both theory and practical applications. Specifically, this survey also reviews a number of NN based (...)
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  16.  42
    Ethics in the Clinical Application of Neural Implants.Cynthia S. Kubu & Paul J. Ford - 2007 - Cambridge Quarterly of Healthcare Ethics 16 (3):317-321.
    Once a neural implant has shown some efficacy during initial research trials, it begins to enter the world of clinical application. This culminates when the implant becomes approved for a particular indication. However, the ethical challenges continue as the technology is adopted as a standard of practice. Patient eligibility criteria, as documented by inclusion and exclusion criteria with any new treatment, are not always clearly quantified and defined. These vagaries can result in considerable debate regarding who should or should (...)
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  17.  33
    Application of BP Neural Network Model in Risk Evaluation of Railway Construction.Yang Changwei, Li Zonghao, Guo Xueyan, Yu Wenying, Jin Jing & Zhu Liang - 2019 - Complexity 2019:1-12.
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  18.  9
    Neural Network-Based Intelligent Computing Algorithms for Discrete-Time Optimal Control with the Application to a Cyberphysical Power System.Feng Jiang, Kai Zhang, Jinjing Hu & Shunjiang Wang - 2021 - Complexity 2021:1-10.
    Adaptive dynamic programming, which belongs to the field of computational intelligence, is a powerful tool to address optimal control problems. To overcome the bottleneck of solving Hamilton–Jacobi–Bellman equations, several state-of-the-art ADP approaches are reviewed in this paper. First, two model-based offline iterative ADP methods including policy iteration and value iteration are given, and their respective advantages and shortcomings are discussed in detail. Second, the multistep heuristic dynamic programming method is introduced, which avoids the requirement of initial admissible control and achieves (...)
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  19.  53
    Estimation and application of matrix eigenvalues based on deep neural network.Zhiying Hu - 2022 - Journal of Intelligent Systems 31 (1):1246-1261.
    In today’s era of rapid development in science and technology, the development of digital technology has increasingly higher requirements for data processing functions. The matrix signal commonly used in engineering applications also puts forward higher requirements for processing speed. The eigenvalues of the matrix represent many characteristics of the matrix. Its mathematical meaning represents the expansion of the inherent vector, and its physical meaning represents the spectrum of vibration. The eigenvalue of a matrix is the focus of matrix theory. (...)
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  20. Analysis of a neural network with application to human memory modelling.M. Chappell & M. S. Humphreys - forthcoming - Journal of Experimental Psychology.
     
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  21.  1
    Research on Emotion Analysis and Psychoanalysis Application With Convolutional Neural Network and Bidirectional Long Short-Term Memory.Baitao Liu - 2022 - Frontiers in Psychology 13.
    This study mainly focuses on the emotion analysis method in the application of psychoanalysis based on sentiment recognition. The method is applied to the sentiment recognition module in the server, and the sentiment recognition function is effectively realized through the improved convolutional neural network and bidirectional long short-term memory model. First, the implementation difficulties of the C-BiL model and specific sentiment classification design are described. Then, the specific design process of the C-BiL model is introduced, and the innovation of (...)
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  22.  23
    Eigen Solution of Neural Networks and Its Application in Prediction and Analysis of Controller Parameters of Grinding Robot in Complex Environments.Shixi Tang, Jinan Gu, Keming Tang, Wei Ding & Zhengyang Shang - 2019 - Complexity 2019:1-21.
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  23.  17
    Connecting Biological Detail With Neural Computation: Application to the Cerebellar Granule–Golgi Microcircuit.Andreas Stöckel, Terrence C. Stewart & Chris Eliasmith - 2021 - Topics in Cognitive Science 13 (3):515-533.
    We present techniques for integrating low‐level neurobiological constraints into high‐level, functional cognitive models. In particular, we use these techniques to construct a model of eyeblink conditioning in the cerebellum based on temporal representations in the recurrent Granule‐Golgi microcircuit.
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  24.  57
    Cue-induced Behavioral and Neural Changes among Excessive Internet Gamers and Possible Application of Cue Exposure Therapy to Internet Gaming Disorder.Yongjun Zhang, Yamikani Ndasauka, Juan Hou, Jiawen Chen, Li Zhuang Yang, Ying Wang, Long Han, Junjie Bu, Peng Zhang, Yifeng Zhou & Xiaochu Zhang - 2016 - Frontiers in Psychology 7.
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  25.  11
    Research on Application of Big Data in Internet Financial Credit Investigation Based on Improved GA-BP Neural Network.Fei-Peng Wang - 2018 - Complexity 2018:1-16.
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  26.  30
    Distinctive features, categorical perception, and probability learning: Some applications of a neural model.James A. Anderson, Jack W. Silverstein, Stephen A. Ritz & Randall S. Jones - 1977 - Psychological Review 84 (5):413-451.
  27.  47
    Neural networks, AI, and the goals of modeling.Walter Veit & Heather Browning - 2023 - Behavioral and Brain Sciences 46:e411.
    Deep neural networks (DNNs) have found many useful applications in recent years. Of particular interest have been those instances where their successes imitate human cognition and many consider artificial intelligences to offer a lens for understanding human intelligence. Here, we criticize the underlying conflation between the predictive and explanatory power of DNNs by examining the goals of modeling.
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  28.  24
    Recurrent quantum neural network and its applications.Laxmidhar Behera, Indrani Kar & Avshalom C. Elitzur - 2006 - In Jack A. Tuszynski (ed.), The Emerging Physics of Consciousness. Springer Verlag. pp. 327--350.
  29.  44
    A neural network for creative serial order cognitive behavior.Steve Donaldson - 2008 - Minds and Machines 18 (1):53-91.
    If artificial neural networks are ever to form the foundation for higher level cognitive behaviors in machines or to realize their full potential as explanatory devices for human cognition, they must show signs of autonomy, multifunction operation, and intersystem integration that are absent in most existing models. This model begins to address these issues by integrating predictive learning, sequence interleaving, and sequence creation components to simulate a spectrum of higher-order cognitive behaviors which have eluded the grasp of simpler systems. (...)
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  30. Generic Intelligent Systems-Artificial Neural Networks and Connectionists Systems-An Improved OIF Elman Neural Network and Its Applications to Stock Market.Limin Wang, Yanchun Liang, Xiaohu Shi, Ming Li & Xuming Han - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes In Computer Science. Springer Verlag. pp. 21-28.
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  31.  43
    Analyzing Outcomes of Intrauterine Insemination Treatment by Application of Cluster Analysis or Kohonen Neural Networks.Anna Justyna Milewska, Dorota Jankowska, Urszula Cwalina, Teresa Więsak, Dorota Citko, Allen Morgan & Robert Milewski - 2013 - Studies in Logic, Grammar and Rhetoric 35 (1):7-25.
    Intrauterine insemination is one of many treatments provided to infertility patients. Many factors such as, but not limited to, quality of semen, the age of a woman, and reproductive hormone levels contribute to infertility. Therefore, the aim of our study is to establish a statistical probability concerning the prediction of which groups of patients have a very good or poor prognosis for pregnancy after IUI insemination. For that purpose, we compare the results of two analyses: Cluster Analysis and Kohonen (...) Networks. The k-means algorithm from the clustering methods was the best to use for selecting patients with a good prognosis but the Kohonen Neural Networks was better for selecting groups of patients with the lowest chances for pregnancy. (shrink)
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  32.  22
    Wind and Payload Disturbance Rejection Control Based on Adaptive Neural Estimators: Application on Quadrotors.Jesús Enrique Sierra & Matilde Santos - 2019 - Complexity 2019:1-20.
    In this work, a new intelligent control strategy based on neural networks is proposed to cope with some external disturbances that can affect quadrotor unmanned aerial vehicles dynamics. Specifically, the variation of the system mass during logistic tasks and the influence of the wind are considered. An adaptive neuromass estimator and an adaptive neural disturbance estimator complement the action of a set of PID controllers, stabilizing the UAV and improving the system performance. The control strategy has been extensively (...)
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  33.  2
    Neural cell adhesion molecule L1: relating disease to function.Reed A. Flickinger - 1998 - Bioessays 20 (8):668-675.
    Neural cell adhesion molecules of the immunoglobulin superfamily are important components of the network of guidance cues and receptors that govern axon growth and guidance during development. For neural cell adhesion molecule L1, the combined application of human genetics, knockout mouse technology, and cell biology is providing fundamental insight into the role of L1 in mediating neuronal differentiation. Disease-causing mutations as well as mouse models of L1 disruption can now be used to examine the relevance of L1 binding (...)
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  34.  4
    Neural Signature of Buying Decisions in Real-World Online Shopping Scenarios – An Exploratory Electroencephalography Study Series.Ninja K. Horr, Keren Han, Bijan Mousavi & Ruihong Tang - 2022 - Frontiers in Human Neuroscience 15.
    The neural underpinnings of decision-making are critical to understanding and predicting human behavior. However, findings from decision neuroscience are limited in their practical applicability due to the gap between experimental decision-making paradigms and real-world choices. The present manuscript investigates the neural markers of buying decisions in a fully natural purchase setting: participants are asked to use their favorite online shopping applications to buy common goods they are currently in need of. Their electroencephalography is recorded while they view (...)
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  35.  36
    Random simulation and confiners: Their application to neural networks.J. Demongeot, D. Benaouda, O. Nérot & C. Jézéquel - 1994 - Acta Biotheoretica 42 (2-3):203-213.
    Random simulation of complex dynamical systems is generally used in order to obtain information about their asymptotic behaviour (i.e., when time or size of the system tends towards infinity). A fortunate and welcome circumstance in most of the systems studied by physicists, biologists, and economists is the existence of an invariant measure in the state space allowing determination of the frequency with which observation of asymptotic states is possible. Regions found between contour lines of the surface density of this invariant (...)
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  36.  7
    Neural cell adhesion molecule L1: relating disease to function.Sue Kenwrick & Patrick Doherty - 1998 - Bioessays 20 (8):668-675.
    Neural cell adhesion molecules of the immunoglobulin superfamily are important components of the network of guidance cues and receptors that govern axon growth and guidance during development. For neural cell adhesion molecule L1, the combined application of human genetics, knockout mouse technology, and cell biology is providing fundamental insight into the role of L1 in mediating neuronal differentiation. Disease-causing mutations as well as mouse models of L1 disruption can now be used to examine the relevance of L1 binding (...)
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  37.  20
    Neural transplantation and recovery of cognitive function.John D. Sinden, Helen Hodges & Jeffrey A. Gray - 1995 - Behavioral and Brain Sciences 18 (1):10-35.
    Cognitive deficits were produced in rats by different methods of damaging the brain: chronic ingestion of alcohol, causing widespread damage to diffuse cholinergic and aminergic projection systems; lesions (by local injection of the excitotoxins, ibotenate, quisqualate, and AMPA) of the nuclei of origin of the forebrain cholinergic projection system (FCPS), which innervates the neocortex and hippocampal formation; transient cerebral ischaemia, producing focal damage especially in the CA1 pyramidal cells of the dorsal hippocampus; and lesions (by local injection of the neurotoxin, (...)
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  38. A theory of emotion and consciousness, and its application to understanding the neural basis of emotion.Edmund T. Rolls - 1995 - In Michael S. Gazzaniga (ed.), The Cognitive Neurosciences. MIT Press.
  39.  12
    Urban Road Infrastructure Maintenance Planning with Application of Neural Networks.Ivan Marović, Ivica Androjić, Nikša Jajac & Tomáš Hanák - 2018 - Complexity 2018:1-10.
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  40.  35
    Editorial: Music, Brain, and Rehabilitation: Emerging Therapeutic Applications and Potential Neural Mechanisms.Teppo Särkämö, Eckart Altenmüller, Antoni Rodríguez-Fornells & Isabelle Peretz - 2016 - Frontiers in Human Neuroscience 10.
  41.  4
    Neural Network Model for Predicting Student Failure in the Academic Leveling Course of Escuela Politécnica Nacional.Iván Sandoval-Palis, David Naranjo, Raquel Gilar-Corbi & Teresa Pozo-Rico - 2020 - Frontiers in Psychology 11.
    The purpose of this study is to train an artificial neural network model for predicting student failure in the academic leveling course of the Escuela Politécnica Nacional of Ecuador, based on academic and socioeconomic information. For this, 1308 higher education students participated, 69.0% of whom failed the academic leveling course; besides, 93.7% of the students self-identified as mestizo, 83.9% came from the province of Pichincha, and 92.4% belonged to general population. As a first approximation, a neural network model (...)
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  42.  35
    A Theory of Emotion, and its Application to Understanding the Neural Basis of Emotion.Edmund T. Rolls - 1990 - Cognition and Emotion 4 (3):161-190.
  43.  17
    Assessment of the Real Estate Market Value in the European Market by Artificial Neural Networks Application.Jasmina Ćetković, Slobodan Lakić, Marijana Lazarevska, Miloš Žarković, Saša Vujošević, Jelena Cvijović & Mladen Gogić - 2018 - Complexity 2018:1-10.
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  44. Neural-Symbolic Cognitive Reasoning.Artur D'Avila Garcez, Luis Lamb & Dov Gabbay - 2009 - New York: Springer.
    Humans are often extraordinary at performing practical reasoning. There are cases where the human computer, slow as it is, is faster than any artificial intelligence system. Are we faster because of the way we perceive knowledge as opposed to the way we represent it? -/- The authors address this question by presenting neural network models that integrate the two most fundamental phenomena of cognition: our ability to learn from experience, and our ability to reason from what has been learned. (...)
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  45.  53
    Qualia realism and neural activation patterns.William S. Robinson - 1999 - Journal of Consciousness Studies 6 (10):65-80.
    A thought experiment focuses attention on the kinds of commonalities and differences to be found in two small parts of visual cortical areas during responses to stimuli that are either identical in quality, but different in location, or identical in location and different only in the one visible property of colour. Reflection on this thought experiment leads to the view that patterns of neural activation are the best candidates for causes of qualitatively conscious events . This view faces a (...)
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  46.  3
    Neural Networks in Legal Theory.Vadim Verenich - 2024 - Studia Humana 13 (3):41-51.
    This article explores the domain of legal analysis and its methodologies, emphasising the significance of generalisation in legal systems. It discusses the process of generalisation in relation to legal concepts and the development of ideal concepts that form the foundation of law. The article examines the role of logical induction and its similarities with semantic generalisation, highlighting their importance in legal decision-making. It also critiques the formal-deductive approach in legal practice and advocates for more adaptable models, incorporating fuzzy logic, non-monotonic (...)
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  47.  58
    Pragmatism, Neural Plasticity and Mind-Body Unity.Stephen Jarosek - 2013 - Biosemiotics 6 (2):205-230.
    Recent developments in cognitive science provide compelling leads that need to be interpreted and synthesized within the context of semiotic and biosemiotic principles. To this end, we examine the impact of the mind-body unity on the sorts of choices that an organism is predisposed to making from its Umwelt. In multicellular organisms with brains, the relationship that an organism has with its Umwelt impacts on neural plasticity, the functional specialisations that develop within the brain, and its behaviour. Clinical observations, (...)
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  48. Data Preprocessing-A Novel Input Stochastic Sensitivity Definition of Radial Basis Function Neural Networks and Its Application to Feature Selection.Xi-Zhao Wang & Hui Zhang - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes In Computer Science. Springer Verlag. pp. 3971--1352.
     
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  49.  6
    Neural Networks and Intellect: Using Model Based Concepts.Leonid I. Perlovsky - 2000 - Oxford, England and New York, NY, USA: Oxford University Press USA.
    This work describes a mathematical concept of modelling field theory and its applications to a variety of problems, while offering a view of the relationships among mathematics, computational concepts in neural networks, semiotics, and concepts of mind in psychology and philosophy.
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  50.  89
    Decoding the Brain: Neural Representation and the Limits of Multivariate Pattern Analysis in Cognitive Neuroscience.J. Brendan Ritchie, David Michael Kaplan & Colin Klein - 2019 - British Journal for the Philosophy of Science 70 (2):581-607.
    Since its introduction, multivariate pattern analysis, or ‘neural decoding’, has transformed the field of cognitive neuroscience. Underlying its influence is a crucial inference, which we call the decoder’s dictum: if information can be decoded from patterns of neural activity, then this provides strong evidence about what information those patterns represent. Although the dictum is a widely held and well-motivated principle in decoding research, it has received scant philosophical attention. We critically evaluate the dictum, arguing that it is false: (...)
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