Results for 'connection weights in neural systems'

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  1. Connectionist value units: Some concerns.John A. Barnden - 1986 - Behavioral and Brain Sciences 9 (1):92-93.
    This paper is a commentary on the target article by Dana H. Ballard, “Cortical connections and parallel processing: Structure and function”, in the same issue of the journal, pp. 67–120. -/- I raise some issues about the connectionist or neural-network implementation of information and information processing. Issues include the sharing of information by different parts of a connectionist/neural network, the copying of complex information from one place to another in a network, the possibility of connection weights (...)
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  2.  37
    On bifurcations and chaos in random neural networks.B. Doyon, B. Cessac, M. Quoy & M. Samuelides - 1994 - Acta Biotheoretica 42 (2-3):215-225.
    Chaos in nervous system is a fascinating but controversial field of investigation. To approach the role of chaos in the real brain, we theoretically and numerically investigate the occurrence of chaos inartificial neural networks. Most of the time, recurrent networks (with feedbacks) are fully connected. This architecture being not biologically plausible, the occurrence of chaos is studied here for a randomly diluted architecture. By normalizing the variance of synaptic weights, we produce a bifurcation parameter, dependent on this variance (...)
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  3.  81
    Integrated Deep Neural Networks-Based Complex System for Urban Water Management.Xu Gao, Wenru Zeng, Yu Shen, Zhiwei Guo, Jinhui Yang, Xuhong Cheng, Qiaozhi Hua & Keping Yu - 2020 - Complexity 2020:1-12.
    Although the management and planning of water resources are extremely significant to human development, the complexity of implementation is unimaginable. To achieve this, the high-precision water consumption prediction is actually the key component of urban water optimization management system. Water consumption is usually affected by many factors, such as weather, economy, and water prices. If these impact factors are directly combined to predict water consumption, the weight of each perspective on the water consumption will be ignored, which will be greatly (...)
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  4.  42
    Understanding the Emergence of Modularity in Neural Systems.John A. Bullinaria - 2007 - Cognitive Science 31 (4):673-695.
    Modularity in the human brain remains a controversial issue, with disagreement over the nature of the modules that exist, and why, when, and how they emerge. It is a natural assumption that modularity offers some form of computational advantage, and hence evolution by natural selection has translated those advantages into the kind of modular neural structures familiar to cognitive scientists. However, simulations of the evolution of simplified neural systems have shown that, in many cases, it is actually (...)
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  5. Content and cluster analysis: Assessing representational similarity in neural systems.Aarre Laakso & Garrison Cottrell - 2000 - Philosophical Psychology 13 (1):47-76.
    If connectionism is to be an adequate theory of mind, we must have a theory of representation for neural networks that allows for individual differences in weighting and architecture while preserving sameness, or at least similarity, of content. In this paper we propose a procedure for measuring sameness of content of neural representations. We argue that the correct way to compare neural representations is through analysis of the distances between neural activations, and we present a method (...)
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  6.  17
    Performance Analysis of Wireless Location and Velocity Tracking of Digital Broadcast Signals Based on Extended Kalman Filter Algorithm.Yukai Hao & Xin Qiu - 2021 - Complexity 2021:1-10.
    In order to improve the accuracy and reliability of wireless location in NLOS environment, a wireless location algorithm based on artificial neural network is proposed for NLOS positioning error caused by non-line-of-sight propagation, such as occlusion and signal reflection. The mapping relationship between TOA and TDOA measurement data and coordinates is established. The connection weights of neural network are estimated as the state variables of nonlinear dynamic system. The multilayer perceptron network is trained by the real-time (...)
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  7.  16
    Analysis and Simulation of the Early Warning Model for Human Resource Management Risk Based on the BP Neural Network.Xue Yan, Xiangwu Deng & Shouheng Sun - 2020 - Complexity 2020:1-11.
    Human resource management risks are due to the failure of employer organization to use relevant human resources reasonably and can result in tangible or intangible waste of human resources and even risks; therefore, constructing a practical early warning model of human resource management risk is extremely important for early risk prediction. The back propagation neural network is an information analysis and processing system formed by using the error back propagation algorithm to simulate the neural function and structure of (...)
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  8. Neural systems underlying episodic memory: insights from animal research.John P. Aggleton & John M. Pearce - 2002 - In Alan Baddeley, John Aggleton & Martin Conway (eds.), Episodic Memory: New Directions in Research : Originating from a Discussion Meeting of the Royal Society. Oxford University Press.
    Two strategies used to uncover neural systems for episodic-like memory in animals are discussed: (i) an attribute of episodic memory (what? when? where?) is examined in order to reveal the neuronal interactions supporting that component of memory; and (ii) the connections of a structure thought to be central to episodic memory in humans are studied at a level of detail not feasible in humans. By focusing on spatial memory (where?) and the hippocampus, it has proved possible to bring (...)
     
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  9.  30
    Axonal wiring in neural development: Target‐independent mechanisms help to establish precision and complexity.Milan Petrovic & Dietmar Schmucker - 2015 - Bioessays 37 (9):996-1004.
    The connectivity patterns of many neural circuits are highly ordered and often impressively complex. The intricate order and complexity of neuronal wiring remain not only a challenge for questions related to circuit functions but also for our understanding of how they develop with such an apparent precision. The chemotropic guidance of the growing axon by target‐derived cues represents a central paradigm for how neurons get connected with the correct target cells. However, many studies reveal a remarkable variety of important (...)
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  10.  11
    (1 other version)Heuristic modeling of reflection in reflexive games.Г. М Маркова & С. И Барцев - 2023 - Philosophical Problems of IT and Cyberspace (PhilIT&C) 2:61-79.
    The functioning of a subject in a changing environment is most effective from the point of view of survival if the subject can form, maintain and use internal representations of the external world for decision-making. These representations are also called reflection in a broad sense. Using it, one can win in reflexive games since an internal representation of the enemy allows predicting their future moves. The goal is to assess the reflexive potential of heuristic model objects – artificial neural (...)
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  11.  85
    Pre-Determinant Cognition in Neural Networks.Marcus Verhaegh - 2009 - Communication and Cognition. Monographies 42 (3-4):133-153.
    Using Kantian starting points, we develop a notion of ‘pre-determinant intentionality,’ which refers to the intentionality of judgments that support objective truth-claims. We show how the weight-selections of neural networks can be taken to involve this form of intentionality. We argue that viewing weight selection or ‘internodal and meta-internodal selection’ as involving pre-determinant intentionality allows us to better conceptualize the coordination of computational systems. In particular, it allows us to better conceptualize the coordination of computational activity concerned with (...)
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  12.  9
    Connectionism, Dynamical Cognition, and Non-Classical Compositional Representation.Terry Horgan - 2012 - In Markus Werning, Wolfram Hinzen & Edouard Machery (eds.), The Oxford Handbook of Compositionality. Oxford University Press.
    This article addresses the issue of compositionality of mental representations from the perspective of a foundational framework for cognitive science. The dynamical cognition framework is inspired partially by connectionism and partially by the persistence of the problem of relevance within classical computational cognitive science. It treats cognition in terms of the mathematics of dynamical systems: total occurrent cognitive states are mathematically/structurally realized as points in a high-dimensional dynamical system, and these mathematical points are physically realized by total-activation states of (...)
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  13.  12
    Heuristic modeling of reflection in reflexive games.G. M. Markova & S. I. Bartsev - forthcoming - Philosophical Problems of IT and Cyberspace (PhilIT&C).
    The functioning of a subject in a changing environment is most effective from the point of view of survival if the subject can form, maintain and use internal representations of the external world for decision-making. These representations are also called reflection in a broad sense. Using it, one can win in reflexive games since an internal representation of the enemy allows predicting their future moves. The goal is to assess the reflexive potential of heuristic model objects – artificial neural (...)
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  14.  46
    Word versus task representation in neural networks.Thomas Elbert, Christian Dobell, Alessandro Angrilli, Luciano Stegagno & Brigitte Rockstroh - 1999 - Behavioral and Brain Sciences 22 (2):286-287.
    The Hebbian view of word representation is challenged by findings of task (level of processing)-dependent, event-related potential patterns that do not support the notion of a fixed set of neurons representing a given word. With cross-language phonological reliability encoding more asymmetrical left hemisphere activity is evoked than with word comprehension. This suggests a dynamical view of the brain as a self-organizing, connectivity-adjusting system.
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  15.  22
    Neural Networks Based Adaptive Consensus for a Class of Fractional-Order Uncertain Nonlinear Multiagent Systems.Jing Bai & Yongguang Yu - 2018 - Complexity 2018:1-10.
    Due to the excellent approximation ability, the neural networks based control method is used to achieve adaptive consensus of the fractional-order uncertain nonlinear multiagent systems with external disturbance. The unknown nonlinear term and the external disturbance term in the systems are compensated by using the radial basis function neural networks method, a corresponding fractional-order adaption law is designed to approach the ideal neural network weight matrix of the unknown nonlinear terms, and a control law is (...)
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  16.  18
    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, (...)
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  17.  26
    Neural Basis and Motor Imagery Intervention Methodology Based on Neuroimaging Studies in Children With Developmental Coordination Disorders: A Review.Keisuke Irie, Amiri Matsumoto, Shuo Zhao, Toshihiro Kato & Nan Liang - 2021 - Frontiers in Human Neuroscience 15.
    Although the neural bases of the brain associated with movement disorders in children with developmental coordination disorder are becoming clearer, the information is not sufficient because of the lack of extensive brain function research. Therefore, it is controversial about effective intervention methods focusing on brain function. One of the rehabilitation techniques for movement disorders involves intervention using motor imagery. MI is often used for movement disorders, but most studies involve adults and healthy children, and the MI method for children (...)
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  18.  18
    Assessment of Cognitive Behavioral Characteristics in Intelligent Systems with Predictive Ability and Computing Power.Oleg V. Kubryak, Sergey V. Kovalchuk & Nadezhda G. Bagdasaryan - 2023 - Philosophies 8 (5):75.
    The article proposes a universal dual-axis intelligent systems assessment scale. The scale considers the properties of intelligent systems within the environmental context, which develops over time. In contrast to the frequent consideration of the “mind” of artificial intelligent systems on a scale from “weak” to “strong”, we highlight the modulating influences of anticipatory ability on their “brute force”. In addition, the complexity, the ”weight“ of the cognitive task and the ability to critically assess it beforehand determine the (...)
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  19.  29
    How Do Artificial Neural Networks Classify Musical Triads? A Case Study in Eluding Bonini's Paradox.Arturo Perez, Helen L. Ma, Stephanie Zawaduk & Michael R. W. Dawson - 2023 - Cognitive Science 47 (1):e13233.
    How might artificial neural networks (ANNs) inform cognitive science? Often cognitive scientists use ANNs but do not examine their internal structures. In this paper, we use ANNs to explore how cognition might represent musical properties. We train ANNs to classify musical chords, and we interpret network structure to determine what representations ANNs discover and use. We find connection weights between input units and hidden units can be described using Fourier phase spaces, a representation studied in musical set (...)
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  20.  14
    An efficient recurrent neural network with ensemble classifier-based weighted model for disease prediction.Ramesh Kumar Krishnamoorthy & Tamilselvi Kesavan - 2022 - Journal of Intelligent Systems 31 (1):979-991.
    Day-to-day lives are affected globally by the epidemic coronavirus 2019. With an increasing number of positive cases, India has now become a highly affected country. Chronic diseases affect individuals with no time identification and impose a huge disease burden on society. In this article, an Efficient Recurrent Neural Network with Ensemble Classifier is built using VGG-16 and Alexnet with weighted model to predict disease and its level. The dataset is partitioned randomly into small subsets by utilizing mean-based splitting method. (...)
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  21.  15
    Investigating Neural Sensorimotor Mechanisms Underlying Flight Expertise in Pilots: Preliminary Data From an EEG Study.Mariateresa Sestito, Assaf Harel, Jeff Nador & John Flach - 2018 - Frontiers in Human Neuroscience 12:417478.
    Over the last decade, the efforts toward unraveling the complex interplay between the brain, body, and environment have set a promising line of research that utilizes neuroscience to study human performance in natural work contexts such as aviation. Thus, a relatively new discipline called neuroergonomics is holding the promise of studying the neural mechanisms underlying human performance in pursuit of both theoretical and practical insights. In this work, we utilized a neuroergonomic approach by combining insights from ecological psychology and (...)
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  22. Connecting object to symbol in modeling cognition.Stevan Harnad - 1992 - In A. Clark & Ronald Lutz (eds.), Connectionism in Context. Springer Verlag. pp. 75--90.
    Connectionism and computationalism are currently vying for hegemony in cognitive modeling. At first glance the opposition seems incoherent, because connectionism is itself computational, but the form of computationalism that has been the prime candidate for encoding the "language of thought" has been symbolic computationalism (Dietrich 1990, Fodor 1975, Harnad 1990c; Newell 1980; Pylyshyn 1984), whereas connectionism is nonsymbolic (Fodor & Pylyshyn 1988, or, as some have hopefully dubbed it, "subsymbolic" Smolensky 1988). This paper will examine what is and is not (...)
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  23.  45
    Evolution and ontogeny of neural circuits.Sven O. E. Ebbesson - 1984 - Behavioral and Brain Sciences 7 (3):321-331.
    Recent studies on neural pathways in a broad spectrum of vertebrates suggest that, in addition to migration and an increase in the number of certain select neurons, a significant aspect of neural evolution is a “parcellation” (segregation-isolation) process that involves the loss of selected connections by the new aggregates. A similar process occurs during ontogenetic development. These findings suggest that in many neuronal systems axons do not invade unknown territories during evolutionary or ontogenetic development but follow in (...)
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  24.  9
    in Neural Systems.William A. Phillips - 2013 - In Gordana Dodig-Crnkovic Raffaela Giovagnoli (ed.), Computing Nature. pp. 7--61.
  25.  37
    Modularity in neural systems and localization of function.Carlo Umiltà - 2003 - In L. Nadel (ed.), Encyclopedia of Cognitive Science. Nature Publishing Group.
  26.  95
    Altered effective connectivity in the emotional network induced by immersive virtual reality rehabilitation for post-stroke depression.Jia-Jia Wu, Mou-Xiong Zheng, Xu-Yun Hua, Dong Wei, Xin Xue, Yu-Lin Li, Xiang-Xin Xing, Jie Ma, Chun-Lei Shan & Jian-Guang Xu - 2022 - Frontiers in Human Neuroscience 16.
    Post-stroke depression is a serious complication of stroke that significantly restricts rehabilitation. The use of immersive virtual reality for stroke survivors is promising. Herein, we investigated the effects of a novel immersive virtual reality training system on PSD and explored induced effective connectivity alterations in emotional networks using multivariate Granger causality analysis. Forty-four patients with PSD were equally allocated into an immersive-virtual reality group and a control group. In addition to their usual rehabilitation treatments, the participants in the immersive-virtual reality (...)
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  27.  18
    常識的判断システムにおける未知語処理方式.小島 一秀 土屋 誠司 - 2002 - Transactions of the Japanese Society for Artificial Intelligence 17:667-675.
    When we humans receive uncertain information, we interpret it properly, so we can expand the conversation, and take the proper actions. This is possible because we have “common sense” concerning the basic word concept, which is built up from long time experience storing knowledge of our language. Of the common sense we use in our every day lives we think that there are; common sense concerning quantity such as size, weight, speed, time, or place; common sense concerning sense or feeling (...)
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  28.  36
    Multiattribute Decision Making in Context: A Dynamic Neural Network Methodology.Samuel J. Leven & Daniel S. Levine - 1996 - Cognitive Science 20 (2):271-299.
    A theoretical structure for multiattribute decision making is presented, based on a dynamical system for interactions in a neural network incorporating affective and rational variables. This enables modeling of problems that elude two prevailing economic decision theories: subjective expected utility theory and prospect theory. The network is unlike some that fit economic data by choosing optimal weights or coefficients within a predetermined mathematical framework. Rather, the framework itself is based on principles used elsewhere to model many other cognitive (...)
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  29.  24
    A Stable Distributed Neural Controller for Physically Coupled Networked Discrete-Time System via Online Reinforcement Learning.Jian Sun & Jie Li - 2018 - Complexity 2018:1-15.
    The large scale, time varying, and diversification of physically coupled networked infrastructures such as power grid and transportation system lead to the complexity of their controller design, implementation, and expansion. For tackling these challenges, we suggest an online distributed reinforcement learning control algorithm with the one-layer neural network for each subsystem or called agents to adapt the variation of the networked infrastructures. Each controller includes a critic network and action network for approximating strategy utility function and desired control law, (...)
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  30.  55
    A neural plasticity perspective on the schizophrenic condition.Yossi Guterman - 2007 - Consciousness and Cognition 16 (2):400-420.
    Imbalanced plasticity of neural networks in the brain is proposed to underlie deficits in the integration of efferent and afferent processes in schizophrenia. These deficits affect the priming of the behavior implementing systems by prior knowledge, and thus impair both controlled regulation and automatic activation of mental and motor processes. The sense of self as a distinct entity can consequently be undermined. In predominantly reality-distorting patients, hypo-plasticity of neural connectivity may cause the emergence of highly focused but (...)
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  31. Evolving Concepts of 'Hierarchy' in Systems Neuroscience.Philipp Haueis & Daniel Burnston - 2020 - In Fabrizio Calzavarini & Marco Viola (eds.), Neural Mechanisms: New Challenges in the Philosophy of Neuroscience. Springer.
    The notion of “hierarchy” is one of the most commonly posited organizational principles in systems neuroscience. To this date, however, it has received little philosophical analysis. This is unfortunate, because the general concept of hierarchy ranges over two approaches with distinct empirical commitments, and whose conceptual relations remain unclear. We call the first approach the “representational hierarchy” view, which posits that an anatomical hierarchy of feed-forward, feed-back, and lateral connections underlies a signal processing hierarchy of input-output relations. Because the (...)
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  32.  14
    Entrepreneurship education-infiltrated computer-aided instruction system for college Music Majors using convolutional neural network.Hong Cao - 2022 - Frontiers in Psychology 13.
    The purpose is to improve the teaching and learning efficiency of college Innovation and Entrepreneurship Education. Firstly, from the perspective of aesthetic education, this work designs the teacher and student sides of the Computer-aided Instruction system. Secondly, the CAI model is implemented based on the weight sharing and local perception of the Convolutional Neural Network. Finally, the performance of the CNN-based CAI model is tested. Meanwhile, it analyses students’ IEE experience under the proposed CAI model through a case study (...)
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  33.  28
    Are human gestures in the present time a mere vestige of a former sign language? Probably not.Pierre Feyereisen - 2003 - Behavioral and Brain Sciences 26 (2):220-221.
    Right-hand preference for conversational gestures does not imply close connections between the neural systems controlling manual and vocal communication. Use of speech and gestures may dissociate in some cases of focal brain damages. Furthermore, there are limits in the ability to combine spoken words and concurrent hand movements. These findings suggest that discourse production depends on multiple components which probably have different evolutionary origins.
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  34.  63
    Quantum information in neural systems.Danko D. Georgiev - 2021 - Symmetry 13 (5):773.
    Identifying the physiological processes in the central nervous system that underlie our conscious experiences has been at the forefront of cognitive neuroscience. While the principles of classical physics were long found to be unaccommodating for a causally effective consciousness, the inherent indeterminism of quantum physics, together with its characteristic dichotomy between quantum states and quantum observables, provides a fertile ground for the physical modeling of consciousness. Here, we utilize the Schrödinger equation, together with the Planck-Einstein relation between energy and frequency, (...)
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  35.  18
    Theta Oscillations and Source Connectivity During Complex Audiovisual Object Encoding in Working Memory.Yuanjun Xie, Yanyan Li, Haidan Duan, Xiliang Xu, Wenmo Zhang & Peng Fang - 2021 - Frontiers in Human Neuroscience 15:614950.
    Working memory is a limited capacity memory system that involves the short-term storage and processing of information. Neuroscientific studies of working memory have mostly focused on the essential roles of neural oscillations during item encoding from single sensory modalities (e.g., visual and auditory). However, the characteristics of neural oscillations during multisensory encoding in working memory are rarely studied. Our study investigated the oscillation characteristics of neural signals in scalp electrodes and mapped functional brain connectivity while participants encoded (...)
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  36.  81
    Active Sleep Promotes Functional Connectivity in Developing Sensorimotor Networks.Carlos Del Rio-Bermudez & Mark S. Blumberg - 2018 - Bioessays 40 (4):1700234.
    A ubiquitous feature of active sleep in mammals and birds is its relative abundance in early development. In rat pups across the first two postnatal weeks, active sleep promotes the expression of synchronized oscillatory activity within and between cortical and subcortical sensorimotor structures. Sensory feedback from self-generated myoclonic twitches – which are produced exclusively during active sleep – also triggers neural oscillations in those structures. We have proposed that one of the functions of active sleep in early infancy is (...)
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  37. Making Sense of Raw Input.Richard Evans, Matko Bošnjak, Lars Buesing, Kevin Ellis, David Pfau, Pushmeet Kohli & Marek Sergot - 2021 - Artificial Intelligence 299 (C):103521.
    How should a machine intelligence perform unsupervised structure discovery over streams of sensory input? One approach to this problem is to cast it as an apperception task [1]. Here, the task is to construct an explicit interpretable theory that both explains the sensory sequence and also satisfies a set of unity conditions, designed to ensure that the constituents of the theory are connected in a relational structure. However, the original formulation of the apperception task had one fundamental limitation: it assumed (...)
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  38.  25
    Words have a weight: Language as a source of inner grounding and flexibility in abstract concepts.Guy Dove, Laura Barca, Luca Tummolini & Anna M. Borghi - 2020 - Psychological Research 1 (Advanced Online Publication):1-17.
    The role played by language in our cognitive lives is a topic at the centre of contemporary debates in cognitive (neuro)science. In this paper we illustrate and compare two theories that offer embodied explanations of this role: the WAT (words as social tools) and the LENS (language is an embodied neuroenhancement and scaffold) theories. WAT and LENS differ from other current proposals, because they connect the impact of the neurologically realized language system on our cognition to the ways in which (...)
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  39. Nonmonotonic Inferences and Neural Networks.Reinhard Blutner - 2004 - Synthese 142 (2):143-174.
    There is a gap between two different modes of computation: the symbolic mode and the subsymbolic (neuron-like) mode. The aim of this paper is to overcome this gap by viewing symbolism as a high-level description of the properties of (a class of) neural networks. Combining methods of algebraic semantics and non-monotonic logic, the possibility of integrating both modes of viewing cognition is demonstrated. The main results are (a) that certain activities of connectionist networks can be interpreted as non-monotonic inferences, (...)
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  40.  44
    Fractal Cognitive Triad: The Theoretical Connection between Subjective Experience and Neural Oscillations.Justin M. Riddle - 2015 - Cosmos and History 11 (2):130-145.
    It has long been appreciated that the brain is oscillatory 1. Early measurements of brain electrophysiology revealed rhythmic synchronization unifying large swaths of the brain. The study of neural oscillation has enveloped cognitive neuroscience and neural systems. The traditional belief that oscillations are epiphenomenal of neuron spiking is being challenged by intracellular oscillations and the theoretical backing that oscillatory activity is fundamental to physics. Subjective experience oscillates at three particular frequency bands in a cognitive triad: perception at (...)
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  41.  36
    The Optimal Worldshift Strategy In Light Of Complex Systems Theory.Ervin Laszlo - 2013 - World Futures 69 (2):61 - 64.
    The relative importance and functional weight of local self-reliance and sustainability versus global connection and coordination is one of the most immediate and urgent problems of our time. In recent years globalization has been all the rage. It was synonymous with success and achievement. If you went global, you did something good and you were sure also to do well. Now some unintended but increasingly vexing side-effects of the globalization-trend have come to light. The opposite of globalization crops up (...)
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  42.  29
    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 (...)
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  43.  14
    Consilience of Reductionism and Complexity Theory in Language Research: Adaptive Weight Model.Chao Zhang - 2022 - Complexity 2022:1-12.
    Reductionism and complexity theory are two paradigms frequently found in language research. There exist a number of conflicts in terms of concepts and methodologies between reductionism and complexity theory, which are not conducive to creating a unified language research framework. This paper starts by discussing the adaptability of complex dynamic systems and combines cognitive processing model and artificial neural networks to construct and verify an adaptive weight model, showing that the study of reductionism is induction of high-weight elements (...)
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  44.  41
    Hypnotic induction is followed by state-like changes in the organization of EEG functional connectivity in the theta and beta frequency bands in high-hypnotically susceptible individuals.Graham A. Jamieson & Adrian P. Burgess - 2014 - Frontiers in Human Neuroscience 8:86859.
    Altered state theories of hypnosis posit that a qualitatively distinct state of mental processing, which emerges in those with high hypnotic susceptibility following a hypnotic induction, enables the generation of anomalous experiences in response to specific hypnotic suggestions. If so then such a state should be observable as a discrete pattern of changes to functional connectivity (shared information) between brain regions following a hypnotic induction in high but not low hypnotically susceptible participants. Twenty-eight channel EEG was recorded from 12 high (...)
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  45.  31
    Adaptive Orthogonal Characteristics of Bio-Inspired Neural Networks.Naohiro Ishii, Toshinori Deguchi, Masashi Kawaguchi, Hiroshi Sasaki & Tokuro Matsuo - 2022 - Logic Journal of the IGPL 30 (4):578-598.
    In recent years, neural networks have attracted much attention in the machine learning and the deep learning technologies. Bio-inspired functions and intelligence are also expected to process efficiently and improve existing technologies. In the visual pathway, the prominent features consist of nonlinear characteristics of squaring and rectification functions observed in the retinal and visual cortex networks, respectively. Further, adaptation is an important feature to activate the biological systems, efficiently. Recently, to overcome short-comings of the deep learning techniques, orthogonality (...)
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  46. Molecules, systems, and behavior: Another view of memory consolidation.William Bechtel - 2009 - In John Bickle (ed.), The Oxford handbook of philosophy and neuroscience. New York: Oxford University Press.
    From its genesis in the 1960s, the focus of inquiry in neuroscience has been on the cellular and molecular processes underlying neural activity. In this pursuit neuroscience has been enormously successful. Like any successful scientific inquiry, initial successes have raised new questions that inspire ongoing research. While there is still much that is not known about the molecular processes in brains, a great deal of very important knowledge has been secured, especially in the last 50 years. It has also (...)
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  47.  44
    Evaluation Model of Low-Carbon Circular Economy Coupling Development in Forest Area Based on Radial Basis Neural Network.Chang Liu - 2021 - Complexity 2021:1-12.
    In this paper, we study the radial neural network algorithm for low-carbon circular economy in forest area, design a coupled development evaluation model, study its algorithmic ideas operation mode and the update formula obtained by standard algorithm, and finally optimize the RBF neural network by particle swarm algorithm. After an in-depth analysis of the particle swarm algorithm, an improved particle swarm algorithm is proposed to improve the search accuracy and capability of the algorithm by nonlinearly adjusting the inertia (...)
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    Model Predictive Control of Nonlinear System Based on GA-RBP Neural Network and Improved Gradient Descent Method.Youming Wang & Didi Qing - 2021 - Complexity 2021:1-14.
    A model predictive control method based on recursive backpropagation neural network and genetic algorithm is proposed for a class of nonlinear systems with time delays and uncertainties. In the offline modeling stage, a multistep-ahead predictor with GA-RBP neural network is designed, where GA-BP neural network is used as a one-step prediction model and GA is employed to train the initial weights and bias of the BP neural network. The incorporation of GA into RBP can (...)
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    Risk Prediction and Response Strategies in Corporate Financial Management Based on Optimized BP Neural Network.Meijia Zhai - 2021 - Complexity 2021:1-10.
    This paper mainly analyzes the theories related to the financial risk of the company and combines the principles of principal component analysis, particle swarm optimization algorithm, and artificial neural network to derive the financial risk index system of the company. To improve the accuracy of financial risk prediction, principal component analysis and particle swarm algorithm are applied to optimize the BP neural network model, the input data of the prediction model is improved, and the optimal initial weights (...)
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    Tracers in neuroscience: Causation, constraints, and connectivity.Lauren N. Ross - 2021 - Synthese 199 (1-2):4077-4095.
    This paper examines tracer techniques in neuroscience, which are used to identify neural connections in the brain and nervous system. These connections capture a type of “structural connectivity” that is expected to inform our understanding of the functional nature of these tissues. This is due to the fact that neural connectivity constrains the flow of signal propagation, which is a type of causal process in neurons. This work explores how tracers are used to identify causal information, what standards (...)
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