Results for 'Behavioral modeling'

989 found
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  1.  9
    Pitfalls and promises of behavioral modeling.Judy Stamps - 1991 - Behavioral and Brain Sciences 14 (1):106-107.
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  2.  13
    Modeling the relationship between perceived service quality, tourist satisfaction, and tourists’ behavioral intentions amid COVID-19 pandemic: Evidence of yoga tourists’ perspectives.Ahmed Hassan Abdou, Shaimaa Abo Khanger Mohamed, Ayman Ahmed Farag Khalil, Azzam Ibrahem Albakhit & Ali Jukhayer Nader Alarjani - 2022 - Frontiers in Psychology 13:1003650.
    PurposeThis study aims to investigate the impact of perceived service quality on tourist satisfaction and behavioral intentions and explore the potential mediating role of tourist satisfaction in the relationship between service quality and behavioral intentions in the yoga tourism context during the COVID-19 pandemic. Further, this is to examine to what extent yoga tourist satisfaction directly affects their behavioral intentions.Design/methodology/approachBased on a review of literature, the study proposes a conceptual model to test four hypothesized relationships among the (...)
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  3.  12
    Dynamic programming, limited information and behavioral modeling.Bradley W. Dickinson - 1991 - Behavioral and Brain Sciences 14 (1):96-97.
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  4.  26
    Modeling behavioral adaptations.Colin W. Clark - 1991 - Behavioral and Brain Sciences 14 (1):85-93.
    Optimization models have often been useful in attempting to understand the adaptive significance of behavioral traits. Originally such models were applied to isolated aspects of behavior, such as foraging, mating, or parental behavior. In reality, organisms live in complex, ever-changing environments, and are simultaneously concerned with many behavioral choices and their consequences. This target article describes a dynamic modeling technique that can be used to analyze behavior in a unified way. The technique has been widely used in (...)
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  5.  96
    Modeling Corporate Citizenship and Its Relationship with Organizational Citizenship Behaviors.Chieh-Peng Lin, Nyan-Myau Lyau, Yuan-Hui Tsai, Wen-Yung Chen & Chou-Kang Chiu - 2010 - Journal of Business Ethics 95 (3):357-372.
    Citizenship, such as corporate citizenship and organizational citizenship, has been an important issue in business management for decades. This study proposes a research model from the perspectives of social identity and resource allocation, by examining the influence of corporate citizenship on organizational citizenship behaviors (OCBs). In the model, OCBs are positively influenced by perceived legal citizenship and perceived ethical citizenship, while negatively influenced by perceived discretionary citizenship. Empirical testing using a survey of personnel from 18 large firms confirms most of (...)
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  6.  84
    Modeling Corporate Citizenship and Its Relationship with Organizational Citizenship Behaviors.Chieh-Peng Lin, Nyan-Myau Lyau, Yuan-Hui Tsai, Wen-Yung Chen & Chou-Kang Chiu - 2010 - Journal of Business Ethics 95 (3):357-372.
    Citizenship, such as corporate citizenship and organizational citizenship, has been an important issue in business management for decades. This study proposes a research model from the perspectives of social identity and resource allocation, by examining the influence of corporate citizenship on organizational citizenship behaviors (OCBs). In the model, OCBs are positively influenced by perceived legal citizenship and perceived ethical citizenship, while negatively influenced by perceived discretionary citizenship. Empirical testing using a survey of personnel from 18 large firms confirms most of (...)
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  7.  44
    Modeling human behavioral traits and clarifying the construct of affiliation and its disorders.Richard A. Depue & Jeannine V. Morrone-Strupinsky - 2005 - Behavioral and Brain Sciences 28 (3):371-378.
    Commentary on our target article centers around six main topics: (1) strategies in modeling the neurobehavioral foundation of human behavioral traits; (2) clarification of the construct of affiliation; (3) developmental aspects of affiliative bonding; (4) modeling disorders of affiliative reward; (5) serotonin and affiliative behavior; and (6) neural considerations. After an initial important research update in section R1, our Response is organized around these topics in the following six sections, R2 to R7.
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  8.  2
    Modeling Evolving Behaviors in Ant Colonies.U. Galassi, G. Cabanes & D. Fresneau - 2009 - Journal of Intelligent Systems 18 (4):353-376.
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  9.  16
    Modeling physiological-behavioral correlations.James T. Townsend - 1979 - Behavioral and Brain Sciences 2 (2):284-284.
  10.  46
    Modeling ethical attitudes and behaviors under conditions of environmental turbulence: The case of south Africa. [REVIEW]Michael H. Morris, Amy S. Marks, Jeffrey A. Allen & Newman S. Peery - 1996 - Journal of Business Ethics 15 (10):1119 - 1130.
    This study explores the impact of environmental turbulence on relationships between personal and organizational characteristics, personal values, ethical perceptions, and behavioral intentions. A causal model is tested using data obtained from a national sample of marketing research professionals in South Africa. The findings suggest turbulent conditions lead professionals to report stronger values and ethical norms, but less ethical behavioral intentions. Implications are drawn for organizations confronting growing turbulence in their external environments. A number of suggestions are made for (...)
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  11.  25
    Universality and Modeling Limiting Behaviors.Collin Rice - 2020 - Philosophy of Science 87 (5):829-840.
    Most attempts to justify the use of idealized models to explain appeal to the accuracy of the model with respect to difference-making causes. In this article, I argue for an alternative way to just...
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  12.  57
    Retracted article: Improving case-based ethics training: How modeling behaviors and forecasting influence effectiveness.Lauren N. Harkrider, Alexandra E. MacDougall, Zhanna Bagdasarov, James F. Johnson, Michael D. Mumford, Shane Connelly & Lynn D. Devenport - 2014 - Science and Engineering Ethics 20 (1):299-299.
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  13. Modeling the Emergence of Lexicons in Homesign Systems.Russell Richie, Charles Yang & Marie Coppola - 2014 - Topics in Cognitive Science 6 (1):183-195.
    It is largely acknowledged that natural languages emerge not just from human brains but also from rich communities of interacting human brains (Senghas, ). Yet the precise role of such communities and such interaction in the emergence of core properties of language has largely gone uninvestigated in naturally emerging systems, leaving the few existing computational investigations of this issue at an artificial setting. Here, we take a step toward investigating the precise role of community structure in the emergence of linguistic (...)
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  14.  18
    ACACIA-ES: an agent-based modeling and simulation tool for investigating social behaviors in resource-limited two-dimensional environments.Elisabetta Zibetti, Simon Carrignon & Nicolas Bredeche - 2016 - Mind and Society 15 (1):83-104.
    In this paper, we describe a framework for studying social agents’ individual decision making, that takes account of the environment and social dynamics. We describe a study in which we explored the efficiency of foraging strategies within a group of individuals faced with a resource-limited environment. We investigated to what extent cooperative and non-cooperative behaviors impacted on the survival rates of a population of individuals. In the experiment presented here, we considered two different types of individuals: selfish individuals who gather (...)
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  15.  27
    Strategies for memory-based decision making: Modeling behavioral and neural signatures within a cognitive architecture.Hanna B. Fechner, Thorsten Pachur, Lael J. Schooler, Katja Mehlhorn, Ceren Battal, Kirsten G. Volz & Jelmer P. Borst - 2016 - Cognition 157 (C):77-99.
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  16.  35
    Behavioral Game Theory and Contemporary Economic Theory.Herbert Gintis - 2005 - Analyse & Kritik 27 (1):48-72.
    It is widely believed that experimental results of behavioral game theory undermine standard economic and game theory. This paper suggests that experimental results present serious theoretical modeling challenges, but do not undermine two pillars of contemporary economic theory: the rational actor model, which holds that individual choice can be modeled as maximization of an objective function subject to informational and material constraints, and the incentive compatibility requirement, which holds that macroeconomic quantities must be derived from the interaction and (...)
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  17.  9
    Modeling Structure‐Building in the Brain With CCG Parsing and Large Language Models.Miloš Stanojević, Jonathan R. Brennan, Donald Dunagan, Mark Steedman & John T. Hale - 2023 - Cognitive Science 47 (7):e13312.
    To model behavioral and neural correlates of language comprehension in naturalistic environments, researchers have turned to broad‐coverage tools from natural‐language processing and machine learning. Where syntactic structure is explicitly modeled, prior work has relied predominantly on context‐free grammars (CFGs), yet such formalisms are not sufficiently expressive for human languages. Combinatory categorial grammars (CCGs) are sufficiently expressive directly compositional models of grammar with flexible constituency that affords incremental interpretation. In this work, we evaluate whether a more expressive CCG provides a (...)
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  18.  69
    Manfred D. Laubichler and Gerd B. Müller : Modeling Biology: Structures, Behaviors, Evolution : The MIT Press, Cambridge , 2007, 396 pp, US $50, ISBN 978-0-262-12291-7.Brett Calcott - 2009 - Acta Biotheoretica 57 (3):383-387.
  19.  21
    Modeling Reference Production as the Probabilistic Combination of Multiple Perspectives.Mindaugas Mozuraitis, Suzanne Stevenson & Daphna Heller - 2018 - Cognitive Science 42 (S4):974-1008.
    While speakers have been shown to adapt to the knowledge state of their addressee in choosing referring expressions, they often also show some egocentric tendencies. The current paper aims to provide an explanation for this “mixed” behavior by presenting a model that derives such patterns from the probabilistic combination of both the speaker's and the addressee's perspectives. To test our model, we conducted a language production experiment, in which participants had to refer to objects in a context that also included (...)
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  20.  27
    Modeling intentional agency: a neo-Gricean framework.Matti Sarkia - 2021 - Synthese 199 (3-4):7003-7030.
    This paper analyzes three contrasting strategies for modeling intentional agency in contemporary analytic philosophy of mind and action, and draws parallels between them and similar strategies of scientific model-construction. Gricean modeling involves identifying primitive building blocks of intentional agency, and building up from such building blocks to prototypically agential behaviors. Analogical modeling is based on picking out an exemplary type of intentional agency, which is used as a model for other agential types. Theoretical modeling involves reasoning (...)
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  21.  13
    Modeling law search as prediction.Faraz Dadgostari, Mauricio Guim, Peter A. Beling, Michael A. Livermore & Daniel N. Rockmore - 2020 - Artificial Intelligence and Law 29 (1):3-34.
    Law search is fundamental to legal reasoning and its articulation is an important challenge and open problem in the ongoing efforts to investigate legal reasoning as a formal process. This Article formulates a mathematical model that frames the behavioral and cognitive framework of law search as a sequential decision process. The model has two components: first, a model of the legal corpus as a search space and second, a model of the search process that is compatible with that environment. (...)
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  22.  68
    Integrative Modeling and the Role of Neural Constraints.Daniel A. Weiskopf - 2016 - Philosophy of Science 83 (5):647-685.
    Neuroscience constrains psychology, but stating these constraints with precision is not simple. Here I consider whether mechanistic analysis provides a useful way to integrate models of cognitive and neural structure. Recent evidence suggests that cognitive systems map onto overlapping, distributed networks of brain regions. These highly entangled networks often depart from stereotypical mechanistic behaviors. While this casts doubt on the prospects for classical mechanistic integration of psychology and neuroscience, I argue that it does not impugn a realistic interpretation of either (...)
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  23.  43
    Multiscale Modeling of Gene–Behavior Associations in an Artificial Neural Network Model of Cognitive Development.Michael S. C. Thomas, Neil A. Forrester & Angelica Ronald - 2016 - Cognitive Science 40 (1):51-99.
    In the multidisciplinary field of developmental cognitive neuroscience, statistical associations between levels of description play an increasingly important role. One example of such associations is the observation of correlations between relatively common gene variants and individual differences in behavior. It is perhaps surprising that such associations can be detected despite the remoteness of these levels of description, and the fact that behavior is the outcome of an extended developmental process involving interaction of the whole organism with a variable environment. Given (...)
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  24.  59
    Modeling a paranoid mind.Kenneth Mark Colby - 1981 - Behavioral and Brain Sciences 4 (4):515-534.
  25.  6
    Modeling separate processing pathways for spatial and object vision.Bruce Bridgeman - 1989 - Behavioral and Brain Sciences 12 (3):398-398.
  26.  3
    Modeling the Waves of Covid-19.Ivan Cherednik - 2021 - Acta Biotheoretica 70 (1):1-36.
    The challenges with modeling the spread of Covid-19 are its power-type growth during the middle stages of the waves with the exponents depending on time, and that the saturation of the waves is mainly due to the protective measures and other restriction mechanisms working in the same direction. The two-phase solution we propose for modeling the total number of detected cases of Covid-19 describes the actual curves for many its waves and in many countries almost with the accuracy (...)
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  27.  18
    Modeling How, When, and What Is Learned in a Simple Fault‐Finding Task.Frank E. Ritter & Peter A. Bibby - 2008 - Cognitive Science 32 (5):862-892.
    We have developed a process model that learns in multiple ways while finding faults in a simple control panel device. The model predicts human participants' learning through its own learning. The model's performance was systematically compared to human learning data, including the time course and specific sequence of learned behaviors. These comparisons show that the model accounts very well for measures such as problem‐solving strategy, the relative difficulty of faults, and average fault‐finding time. More important, because the model learns and (...)
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  28.  38
    Modeling Subjects’ Experience While Modeling the Experimental Design: A Mild-Neurophenomenology-Inspired Approach in the Piloting Phase.C. Baquedano & C. Fabar - 2017 - Constructivist Foundations 12 (2):166-179.
    Context: The integration of data measured in first- and third-person frameworks is a challenge that becomes more prominent as we attempt to refine the ties between the dimensions we assume to be objective and our experience itself. As a result, cognitive science has been a target for criticism from the epistemological and methodological point of view, which has resulted in the emergence of new approaches. Neurophenomenology has been proposed as a means to address these limitations. The methodological application of this (...)
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  29.  4
    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 networks (...)
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  30.  29
    Modeling multiscale patterns: active matter, minimal models, and explanatory autonomy.Collin Rice - 2022 - Synthese 200 (6):1-35.
    Both ecologists and statistical physicists use a variety of highly idealized models to study active matter and self-organizing critical phenomena. In this paper, I show how universality classes play a crucial role in justifying the application of highly idealized ‘minimal’ models to explain and understand the critical behaviors of active matter systems across a wide range of scales and scientific fields. Appealing to universality enables us to see why the same minimal models can be used to explain and understand behaviors (...)
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  31.  8
    Mechanistic modeling for the masses.Matthew A. Turner & Paul E. Smaldino - 2022 - Behavioral and Brain Sciences 45.
    The generalizability crisis is compounded, or even partially caused, by a lack of specificity in psychological theories. Expanding the use of mechanistic models among psychologists is therefore important, but faces numerous hurdles. A cultural evolutionary approach can help guide and evaluate interventions to improve modeling efforts in psychology, such as developing standards and implementing them at the institutional level.
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  32.  63
    Modeling Cultural Idea Systems: The Relationship between Theory Models and Data Models.Dwight Read - 2013 - Perspectives on Science 21 (2):157-174.
    Subjective experience is transformed into objective reality for societal members through cultural idea systems that can be represented with theory and data models. A theory model shows relationships and their logical implications that structure a cultural idea system. A data model expresses patterning found in ethnographic observations regarding the behavioral implementation of cultural idea systems. An example of this duality for modeling cultural idea systems is illustrated with Arabic proverbs that structurally link friend and enemy as concepts through (...)
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  33.  21
    Cognitive Modeling of Anticipation: Unsupervised Learning and Symbolic Modeling of Pilots' Mental Representations.Sebastian Blum, Oliver Klaproth & Nele Russwinkel - 2022 - Topics in Cognitive Science 14 (4):718-738.
    The ability to anticipate team members' actions enables joint action towards a common goal. Task knowledge and mental simulation allow for anticipating other agents' actions and for making inferences about their underlying mental representations. In human–AI teams, providing AI agents with anticipatory mechanisms can facilitate collaboration and successful execution of joint action. This paper presents a computational cognitive model demonstrating mental simulation of operators' mental models of a situation and anticipation of their behavior. The work proposes two successive steps: (1) (...)
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  34.  36
    Steel and bone: mesoscale modeling and middle-out strategies in physics and biology.Robert W. Batterman & Sara Green - 2020 - Synthese 199 (1-2):1159-1184.
    Mesoscale modeling is often considered merely as a practical strategy used when information on lower-scale details is lacking, or when there is a need to make models cognitively or computationally tractable. Without dismissing the importance of practical constraints for modeling choices, we argue that mesoscale models should not just be considered as abbreviations or placeholders for more “complete” models. Because many systems exhibit different behaviors at various spatial and temporal scales, bottom-up approaches are almost always doomed to fail. (...)
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  35.  13
    Modeling movement variability in space and time.Dagmar Sternad & Karl M. Newell - 1997 - Behavioral and Brain Sciences 20 (2):322-322.
    Plamondon & Alimi propose a universal account of trajectory formation and speed/accuracy trade-off in rapid movements but fail, because: (1) the kinematic model ignores the more fundamental dynamics of movement generation, and (2) it does not capture the essential space-time constraints of movement accuracy. Hence, the modeling lacks a biologically and behaviorally principled foundation and is driven by pragmatic function fitting.
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  36.  35
    Supervisor Role Modeling, Ethics-Related Organizational Policies, and Employee Ethical Intention: The Moderating Impact of Moral Ideology.Pablo Ruiz-Palomino & Ricardo Martinez-Cañas - 2011 - Journal of Business Ethics 102 (4):653-668.
    The moral ideology of banking and insurance employees in Spain was examined along with supervisor role modeling and ethics-related policies and procedures for their association with ethical behavioral intent. In addition to main effects, we found evidence supporting that the person–situation interactionist perspective in supervisor role modeling had a stronger positive relationship with ethical intention among employees with relativist moral ideology. Also as hypothesized, formal ethical polices and procedures were positively related to ethical intention among those with (...)
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  37.  3
    Causal Modeling and the Statistical Analysis of Causation.Gurol Irzik - 1986 - PSA Proceedings of the Biennial Meeting of the Philosophy of Science Association 1986 (1):12-23.
    Recent studies on probabilistic causation and statistical explanation (Cartwright 1979; Salmon 1984), I believe, have opened up the possibility of a genuine unification between philosophical approaches and causal modeling (CM) in the social, behavioral and biological sciences (Wright 1934; Blalock 1964; Asher 1976). This unification rests on the statistical tools employed, the principle of common cause, the irreducibility of causation to probability or statistics, and the idea of causal process as a suitable framework for understanding causal relationships. The (...)
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  38.  6
    Natural complexity: a modeling handbook.Paul Charbonneau - 2017 - Princeton, NJ: Princeton University Press.
    This book provides a short, hands-on introduction to the science of complexity using simple computational models of natural complex systems--with models and exercises drawn from physics, chemistry, geology, and biology. By working through the models and engaging in additional computational explorations suggested at the end of each chapter, readers very quickly develop an understanding of how complex structures and behaviors can emerge in natural phenomena as diverse as avalanches, forest fires, earthquakes, chemical reactions, animal flocks, and epidemic diseases. Natural Complexity (...)
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  39.  20
    Modeling temporal and spatial differences.Gregory R. Lockhead - 1988 - Behavioral and Brain Sciences 11 (2):302-303.
  40. On levels of cognitive modeling.Ron Sun, Andrew Coward & Michael J. Zenzen - 2005 - Philosophical Psychology 18 (5):613-637.
    The article first addresses the importance of cognitive modeling, in terms of its value to cognitive science (as well as other social and behavioral sciences). In particular, it emphasizes the use of cognitive architectures in this undertaking. Based on this approach, the article addresses, in detail, the idea of a multi-level approach that ranges from social to neural levels. In physical sciences, a rigorous set of theories is a hierarchy of descriptions/explanations, in which causal relationships among entities at (...)
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  41.  5
    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 networks (...)
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  42.  28
    Quantum modeling of common sense.Hamid R. Noori & Rainer Spanagel - 2013 - Behavioral and Brain Sciences 36 (3):302-302.
    Quantum theory is a powerful framework for probabilistic modeling of cognition. Strong empirical evidence suggests the context- and order-dependent representation of human judgment and decision-making processes, which falls beyond the scope of classical Bayesian probability theories. However, considering behavior as the output of underlying neurobiological processes, a fundamental question remains unanswered: Is cognition a probabilistic process at all?
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  43.  11
    Manfred D. Laubichler and Gerd B. Müller (Eds): Modeling Biology: Structures, Behaviors, Evolution (Vienna Series in Theoretical Biology): The MIT Press, Cambridge (MA), 2007, 396 pp, US $50, (Hb) ISBN 978-0-262-12291-7. [REVIEW]Brett Calcott - 2009 - Acta Biotheoretica 57 (3):383-387.
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  44. Modeling Expressing on Demonstrating.Maura Tumulty - 2011 - Journal of Philosophical Research 36:43-76.
    We can increase our understanding of expression by considering an analogy to demonstrative reference. The connections between a demonstrative phrase and its referent, in a case of fully successful communication with that phrase, are analogous to the connections between an expressible state and the behavior that expresses it. The connections in each case serve to maintain a certain status for the connected elements: as actions of persons; or as objects, events, or states significant to persons. The analogy to demonstrative reference (...)
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  45. Information-Matter Bipolarity of the Human Organism and Its Fundamental Circuits: From Philosophy to Physics/Neurosciences-Based Modeling.Florin Gaiseanu - 2020 - Philosophy Study 10 (2):107-118.
    Starting from a philosophical perspective, which states that the living structures are actually a combination between matter and information, this article presents the results on an analysis of the bipolar information-matter structure of the human organism, distinguishing three fundamental circuits for its survival, which demonstrates and supports this statement, as a base for further development of the informational model of consciousness to a general informational model of the human organism. For this, it was examined the Informational System of the Human (...)
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  46.  7
    Modeling for modeling's sake?Valerie Gray Hardcastle - 1996 - Behavioral and Brain Sciences 19 (2):299-299.
    Although this is an impressive piece of modeling work, I worry that the two models that Wright & Liley have created do not yet provide us with useful empirical information regarding brain processing.
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  47.  46
    Dynamical modeling and morphological analysis.Jean Petitot - 1998 - Behavioral and Brain Sciences 21 (5):649-649.
    After a historical sketch of the dynamical hypothesis, we stress that it is a functionalist hypothesis. We then tackle the point of a dynamical approach to constituent structures and emphasize that dynamical modeling must be coupled with morphological analysis.
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  48.  29
    Modeling a theory without a model theory, or, computational modeling “after feyerabend”.Arthur M. Jacobs & Jonathan Grainger - 1999 - Behavioral and Brain Sciences 22 (1):46-47.
    Levelt et al. attempt to “model their theory” with WEAVER ++. Modeling theories requires a model theory. The time is ripe for a methodology for building, testing, and evaluating computational models. We propose a tentative, five-step framework for tackling this problem, within which we discuss the potential strengths and weaknesses of Levelt et al.'s modeling approach.
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  49.  14
    Using Vector Autoregression Modeling to Reveal Bidirectional Relationships in Gender/Sex-Related Interactions in Mother–Infant Dyads.Elizabeth G. Eason, Nicole S. Carver, Damian G. Kelty-Stephen & Anne Fausto-Sterling - 2020 - Frontiers in Psychology 11.
    Vector autoregression (VAR) modeling allows probing bidirectional relationships in gender/sex development and may support hypothesis testing following multi-modal data collection. We show VAR in three lights: supporting a hypothesis, rejecting a hypothesis, and opening up new questions. To illustrate these capacities of VAR, we reanalyzed longitudinal data that recorded dyadic mother-infant interactions for 15 boys and 15 girls aged 3 to 11 months of age. We examined monthly counts of 15 infant behaviors and 13 maternal behaviors (Seifert et al., (...)
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  50.  8
    Modeling and Simulation of Cultural Communication Based on Evolutionary Game Theory.Wenting Chen & Bopeng in - 2021 - Complexity 2021:1-12.
    In the process of cultural dissemination, the dissemination of false information will have a negative impact on the entire environment. In this case, it is an effective method to regulate the behavior of cultural dissemination participants. Based on the community network structure and the improved classic network communication model, this paper constructs the susceptible-infected-recovered model for the grassroots communication of engineering safety culture and discusses the law of grassroots transmission of engineering safety culture. The communication process is simulated, and it (...)
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