Results for 'Cognitive modeling'

989 found
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  1.  54
    Cognitive modelling of human temporal reasoning.Alice G. B. ter Meulen - 2003 - Behavioral and Brain Sciences 26 (5):623-624.
    Modelling human reasoning characterizes the fundamental human cognitive capacity to describe our past experience and use it to form expectations as well as plan and direct our future actions. Natural language semantics analyzes dynamic forms of reasoning in which the real-time order determines the temporal relations between the described events, when reported with telic simple past-tense clauses. It provides models of human reasoning that could supplement ACT-R models.
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  2.  15
    An interdisciplinary approach to cognitive modelling: a framework based on philosophy and modern science.P. Ghose - 2024 - New York, NY: Routledge. Edited by Sudip Patra.
    An Interdisciplinary Approach to Cognitive Modelling presents a new approach to cognition that challenges long-held views. It systematically develops a broad-based framework to model cognition, which is mathematically equivalent to the emerging 'quantum-like modelling' of the human mind. The book argues that a satisfactory physical and philosophical basis of such an approach is missing, a particular issue being the application of quantization to the mind for which there is no empirical evidence as yet. In response to this issue, the (...)
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  3. Cognitive Modelling and Interpretation Applied on the Interpretation of Philosophical Texts in History of Philosophy. Mythology or Historiography?F. Vandamme - 1988 - Philosophica 41:89-93.
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  4. Cognitive modelling of second language acquisition.Maria Dakowska - 1997 - Communication and Cognition. Monographies 30 (1-2):29-54.
     
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  5. Cognitive Modelling and Conceptual Spaces.Antonio Lieto - 2021 - Airbus Invited Talks on Cognitive Modelling.
    I will present the rationale followed for the conceptualization and the following development the Dual PECCS system that relies on the cognitively grounded heterogeneous proxytypes representational hypothesis. Such hypothesis allows integrating exemplars and prototype theories of categorization and has provided useful insights in the context of cognitive modelling for what concerns the typicality effects in categorization. As argued in [Chella et al., 2017] [Lieto et al., 2018b] [Lieto et al., 2018a] a pivotal role in this respect is played by (...)
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  6.  36
    Cognitive Modelling and Interpretation Applied on the Interpretation of Philosophical Texts.Fernand Vandamme - 1988 - Philosophica 41.
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  7.  82
    Transformative Experiences, Cognitive Modelling and Affective Forecasting.Marvin Https://Orcidorg Mathony & Michael Https://Orcidorg Messerli - 2024 - Erkenntnis 89 (1):65-87.
    In the last seven years, philosophers have discussed the topic of transformative experiences. In this paper, we contribute to a crucial issue that is currently under-researched: transformative experiences' influence on cognitive modelling. We argue that cognitive modelling can be operationalized as affective forecasting, and we compare transformative and non-transformative experiences with respect to the ability of affective forecasting. Our finding is that decision-makers’ performance in cognitively modelling transformative experiences does not systematically differ from decision-makers’ performance in cognitively modelling (...)
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  8.  12
    A systematic methodology for cognitive modelling.R. Cooper, J. Fox, J. Farringdon & T. Shallice - 1996 - Artificial Intelligence 85 (1-2):3-44.
  9.  63
    Cognitive Modeling at ICCM: State of the Art and Future Directions.Niels A. Taatgen, Marieke K. Vugt, Jelmer P. Borst & Katja Mehlhorn - 2016 - Topics in Cognitive Science 8 (1):259-263.
    The goal of cognitive modeling is to build faithful simulations of human cognition. One of the challenges is that multiple models can often explain the same phenomena. Another challenge is that models are often very hard to understand, explore, and reuse by others. We discuss some of the solutions that were discussed during the 2015 International Conference on Cognitive Modeling.
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  10.  20
    Modelling Excessive Internet Use:s Revision of R. Davis's Cognitive-Behavioural Model of Pathological Internet Use.Katarzyna Kaliszewska-Czeremska - 2011 - Polish Psychological Bulletin 42 (3):129-139.
    Modelling Excessive Internet Use:s Revision of R. Davis's Cognitive-Behavioural Model of Pathological Internet Use This article proposes a new model of excessive Internet use. The point of departure for the present study was the Cognitive-Behavioural Model of Pathological Internet Use developed by R. Davis. The original model was modified so as to improve its explanatory power. Data were collected from 405 participants aged from 18 to 55 in various Polish towns and cities. The following instruments were administered to (...)
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  11.  35
    Editors’ Introduction: Cognitive Modeling at ICCM: Advancing the State of the Art.William G. Kennedy, Marieke K. Vugt & Adrian P. Banks - 2018 - Topics in Cognitive Science 10 (1):140-143.
    Cognitive modeling is the effort to understand the mind by implementing theories of the mind in computer code, producing measures comparable to human behavior and mental activity. The community of cognitive modelers has traditionally met twice every 3 years at the International Conference on Cognitive Modeling. In this special issue of topiCS, we present the best papers from the ICCM meeting. These best papers represent advances in the state of the art in cognitive (...). Since ICCM was for the first time also held jointly with the Society for Mathematical Psychology, we use this preface to also reflect on the similarities and differences between mathematical psychology and cognitive modeling. (shrink)
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  12. Connectionist modelling in cognitive sciences.V. Kvasnicka - 2003 - Filozofia 58 (1):35-43.
    The purpose of the paper is to present basic principles of connectionism and its position within contemporary cognitive science. Connectionist paradigm postulates thinking as a parallel processing of non-structured information by simple calculations performed by neurons that are deeply mutually interconnected. The basic numerical tools of connectionism are represented by so-called artificial neural networks, which are immediately applicable to the study of many cognitive functions at different levels of complexity and sophistication. Connectionism has brought with it a number (...)
     
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  13.  13
    Towards a systematic methodology for cognitive modelling.R. Cooper, J. Fox, J. Farringdom & T. Shallice - 1996 - Artificial Intelligence 84 (1-2):355.
  14.  19
    Hypermedia Support for Information Systems Development: A Cognitive Modelling Perspective.L. A. Gardner & R. D. Macredie - 1996 - Journal of Intelligent Systems 6 (1):95-113.
  15.  36
    Cognitive modeling: Of Gedanken beasts and human beings.Dan Lloyd - 1987 - Behavioral and Brain Sciences 10 (3):442-443.
  16. Cognitive modeling of action selection learning.Diana F. Gordon & Devika Subramanian - 1996 - In Garrison W. Cottrell, Proceedings of the Eighteenth Annual Conference of The Cognitive Science Society. Lawrence Erlbaum. pp. 546--551.
     
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  17.  16
    Cognitive Modeling at ICCM : State of the Art and Future Directions.Niels A. Taatgen, Marieke K. van Vugt, Jelmer P. Borst & Katja Mehlhorn - 2016 - Topics in Cognitive Science 8 (1):259-263.
    The goal of cognitive modeling is to build faithful simulations of human cognition. One of the challenges is that multiple models can often explain the same phenomena. Another challenge is that models are often very hard to understand, explore, and reuse by others. We discuss some of the solutions that were discussed during the 2015 International Conference on Cognitive Modeling.
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  18. Cognitive Modeling and Representation of Knowledge in Ontological Engineering.Christine W. Chan - 2003 - Brain and Mind 4 (2):269-282.
    This paper describes the processes of cognitive modeling and representation of human expertise for developing an ontology and knowledge base of an expert system. An ontology is an organization and classification of knowledge. Ontological engineering in artificial intelligence has the practical goal of constructing frameworks for knowledge that allow computational systems to tackle knowledge-intensive problems and supports knowledge sharing and reuse. Ontological engineering is also a process that facilitates construction of the knowledge base of an intelligent system, which (...)
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  19.  20
    Editor's Introduction: Best of Papers From the 17th International Conference on Cognitive Modeling.Terrence C. Stewart - 2020 - Topics in Cognitive Science 12 (3):957-959.
    Cognitive modeling involves the creation of computer simulations that emulate the internal processes of the mind. This set of papers are the five best representatives of the papers presented at the 17th International Conference on Cognitive Modeling, ICCM 2019. While they represent a diversity of techniques and tasks, they all also share a striking similarity: They make strong statements about the importance of accounting for individual differences.
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  20.  86
    On levels of cognitive modeling.Ron Sun, L. 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 (...)
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  21. Computational cognitive modeling the source of power and other related issues.Ron Sun - unknown
    Computational cognitive models hypothesize internal mental processes of human cognitive activities and express such activities by computer programs Such computational models often consist of many components and aspects Claims are often made that certain aspects of the models play a key role in modeling but such claims are sometimes not well justi ed or explored In this paper we rst review some fundamental distinctions and issues in computational modeling We then discuss in principle systematic ways of (...)
     
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  22.  14
    Systematic Parameter Reviews in Cognitive Modeling: Towards a Robust and Cumulative Characterization of Psychological Processes in the Diffusion Decision Model.N. -Han Tran, Leendert van Maanen, Andrew Heathcote & Dora Matzke - 2021 - Frontiers in Psychology 11.
    Parametric cognitive models are increasingly popular tools for analyzing data obtained from psychological experiments. One of the main goals of such models is to formalize psychological theories using parameters that represent distinct psychological processes. We argue that systematic quantitative reviews of parameter estimates can make an important contribution to robust and cumulative cognitive modeling. Parameter reviews can benefit model development and model assessment by providing valuable information about the expected parameter space, and can facilitate the more efficient (...)
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  23.  27
    Editors’ Introduction: Cognitive Modeling at ICCM : Advancing the State of the Art.William G. Kennedy, Marieke K. van Vugt & Adrian P. Banks - 2018 - Topics in Cognitive Science 10 (1):140-143.
    In this issue of topiCS, we present the best papers from the ICCM meeting. These best papers represent advances in the state of the art in cognitive modeling. Since ICCM was for the first time also held jointly with the Society for Mathematical Psychology, we use this preface to also reflect on the similarities and differences between mathematical psychology and cognitive modeling.
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  24. 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 (...)
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  25.  83
    Cognitive Modeling of Individual Variation in Reference Production and Comprehension.Petra Hendriks - 2016 - Frontiers in Psychology 7.
  26. On Cognitive Modeling and Other Minds.J. P. Gamboa - 2024 - Philosophy of Science 91 (3):615-633.
    Scientists and philosophers alike debate whether various systems such as plants and bacteria exercise cognition. One strategy for resolving such debates is to ground claims about nonhuman cognition in evidence from mathematical models of cognitive capacities. In this article, I show that proponents of this strategy face two major challenges: demarcating phenomenological models from process models and overcoming underdetermination by model fit. I argue that even if the demarcation problem is resolved, fitting a process model to behavioral data is, (...)
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  27.  42
    Quantum probability and cognitive modeling: Some cautions and a promising direction in modeling physics learning.Donald R. Franceschetti & Elizabeth Gire - 2013 - Behavioral and Brain Sciences 36 (3):284-285.
    Quantum probability theory offers a viable alternative to classical probability, although there are some ambiguities inherent in transferring the quantum formalism to a less determined realm. A number of physicists are now looking at the applicability of quantum ideas to the assessment of physics learning, an area particularly suited to quantum probability ideas.
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  28.  33
    A Cognitive Modeling Approach to Strategy Formation in Dynamic Decision Making.Prezenski Sabine, Brechmann André, Wolff Susann & Russwinkel Nele - 2017 - Frontiers in Psychology 8.
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  29.  28
    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: (...)
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  30. Cognitive modeling for cognitive engineering.Wayne D. Gray - 2008 - In Ron Sun, The Cambridge handbook of computational psychology. New York: Cambridge University Press. pp. 565--588.
  31.  14
    Introduction to neural and cognitive modeling.Sue Becker - 1993 - Artificial Intelligence 62 (1):113-116.
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  32.  40
    Artificial Intelligence and Cognitive Modeling Have the Same Problem.Nicholas L. Cassimatis - 2012 - In Pei Wang & Ben Goertzel, Theoretical Foundations of Artificial General Intelligence. Springer. pp. 11--24.
  33.  48
    Does Comparative Animal Cognition Need to Be Saved by Cognitive Modeling?Robert Lurz - 2014 - Southern Journal of Philosophy 52 (S1):98-108.
    Colin Allen prescribes cognitive modeling as “the right kind of theory” to use in comparative animal cognition and predicts that unless researchers shift from using conceptual framework hypotheses (“the wrong kind of theory”) to cognitive models, the field will fail to be sustained or develop further. I argue, on the contrary, that the robust development of the field over the past 35 years actually belies Allen's dire prediction. What is more, there is reason to be concerned that (...)
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  34.  24
    Cognitive modeling and intelligent tutoring.John R. Anderson, C. Franklin Boyle, Albert T. Corbett & Matthew W. Lewis - 1990 - Artificial Intelligence 42 (1):7-49.
  35.  62
    Spanning seven orders of magnitude: a challenge for cognitive modeling.John R. Anderson - 2002 - Cognitive Science 26 (1):85-112.
    Much of cognitive psychology focuses on effects measured in tens of milliseconds while significant educational outcomes take tens of hours to achieve. The task of bridging this gap is analyzed in terms of Newell's (1990) bands of cognition—the Biological, Cognitive, Rational, and Social Bands. The 10 millisecond effects reside in his Biological Band while the significant learning outcomes reside in his Social Band. The paper assesses three theses: The Decomposition Thesis claims that learning occurring at the Social Band (...)
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  36.  35
    Editors’ Introduction: Best Papers from the 18th International Conference on Cognitive Modeling.Terrence C. Stewart & Christopher W. Myers - 2021 - Topics in Cognitive Science 13 (3):464-466.
    The 18th International Conference on Cognitive Modelling (ICCM 2020) brought together researchers whose goal is to develop computational simulations of the mind, and to use those simulations to test theories about how the mind works. In this special issue, we present four top papers from ICCM 2020. Two of these address the challenge of scaling up to more complex tasks, and the other two address the challenge of scaling down to connect these computational models to neuroscience.
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  37. Cognitive modeling repository.Jay Myung & Mark Pitt - unknown
     
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  38. Cognitive modeling: research logic in cognitive science.G. Strube - 2001 - In Neil J. Smelser & Paul B. Baltes, International Encyclopedia of the Social and Behavioral Sciences. Elsevier. pp. 3--2124.
  39. (1 other version)Ecological-enactive scientific cognition: modeling and material engagement.Giovanni Rolla & Felipe Novaes - 2020 - Phenomenology and the Cognitive Sciences 1:1-19.
    Ecological-enactive approaches to cognition aim to explain cognition in terms of the dynamic coupling between agent and environment. Accordingly, cognition of one’s immediate environment (which is sometimes labeled “basic” cognition) depends on enaction and the picking up of affordances. However, ecological-enactive views supposedly fail to account for what is sometimes called “higher” cognition, i.e., cognition about potentially absent targets, which therefore can only be explained by postulating representational content. This challenge levelled against ecological-enactive approaches highlights a putative explanatory gap between (...)
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  40. Seminario Interuniversitario: 'Artificial Life: Modelling Biological and Cognitive Systems'.Jon Umerez - 1991 - Theoria: Revista de Teoría, Historia y Fundamentos de la Ciencia 6 (1-2):328-330.
     
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  41. Theoretical status of computational cognitive modeling.Ron Sun - unknown
    This article explores the view that computational models of cognition may constitute valid theories of cognition, often in the full sense of the term ‘‘theory”. In this discussion, this article examines various (existent or possible) positions on this issue and argues in favor of the view above. It also connects this issue with a number of other relevant issues, such as the general relationship between theory and data, the validation of models, and the practical benefits of computational modeling. All (...)
     
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  42. Quantum cognitive modeling of concepts: an introduction.Tomas Veloz & Pablo Razeto - 2019 - In Diederik Aerts, Dalla Chiara, Maria Luisa, Christian de Ronde & Decio Krause, Probing the meaning of quantum mechanics: information, contextuality, relationalism and entanglement: Proceedings of the II International Workshop on Quantum Mechanics and Quantum Information: Physical, Philosophical and Logical Approaches, CLEA, Brussels. New Jersey: World Scientific.
     
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  43. The role of cognitive modeling for user interface design representations: An epistemological analysis of knowledge engineering in the context of human-computer interaction. [REVIEW]Markus F. Peschl & Chris Stary - 1998 - Minds and Machines 8 (2):203-236.
    In this paper we review some problems with traditional approaches for acquiring and representing knowledge in the context of developing user interfaces. Methodological implications for knowledge engineering and for human-computer interaction are studied. It turns out that in order to achieve the goal of developing human-oriented (in contrast to technology-oriented) human-computer interfaces developers have to develop sound knowledge of the structure and the representational dynamics of the cognitive system which is interacting with the computer.We show that in a first (...)
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  44.  33
    Cognitive offloading is value-based decision making: Modelling cognitive effort and the expected value of memory.Sam J. Gilbert - 2024 - Cognition 247 (C):105783.
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  45.  39
    Computational modelling of spoken-word recognition processes: design choices and evaluation.Odette Scharenborg & Lou Boves - 2010 - Pragmatics and Cognition 18 (1):136-164.
    Computational modelling has proven to be a valuable approach in developing theories of spoken-word processing. In this paper, we focus on a particular class of theories in which it is assumed that the spoken-word recognition process consists of two consecutive stages, with an `abstract' discrete symbolic representation at the interface between the stages. In evaluating computational models, it is important to bring in independent arguments for the cognitive plausibility of the algorithms that are selected to compute the processes in (...)
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  46.  35
    Modelling the Direct and Indirect Effects of Positive Emotional and Cognitive Traits and States on Social Judgements.Scott C. Roesch - 1999 - Cognition and Emotion 13 (4):387-418.
  47. Computational Modeling in Cognitive Science: A Manifesto for Change.Caspar Addyman & Robert M. French - 2012 - Topics in Cognitive Science 4 (3):332-341.
    Computational modeling has long been one of the traditional pillars of cognitive science. Unfortunately, the computer models of cognition being developed today have not kept up with the enormous changes that have taken place in computer technology and, especially, in human-computer interfaces. For all intents and purposes, modeling is still done today as it was 25, or even 35, years ago. Everyone still programs in his or her own favorite programming language, source code is rarely made available, (...)
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  48.  61
    Cognitive dynamics of norm compliance. From norm adoption to flexible automated conformity.Giulia Andrighetto & Rosaria Conte - 2012 - Artificial Intelligence and Law 20 (4):359-381.
    In this paper, an integrated, cognitive view of different mechanisms, reasons and pathways to norm compliance is presented. After a short introduction, theories of norm compliance are reviewed, and found to group in four main typologies: the rational choice model of norm compliance; theories based on conditional preferences to conformity, theories of thoughtless conformity, and theories of norm internalization. In the third section of the paper, the normative architecture EMIL-A is presented. Previous work discussed the epistemic module of this (...)
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  49.  16
    Cognitive Modeling of Automation Adaptation in a Time Critical Task.Junya Morita, Kazuhisa Miwa, Akihiro Maehigashi, Hitoshi Terai, Kazuaki Kojima & Frank E. Ritter - 2020 - Frontiers in Psychology 11.
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  50.  31
    Editors’ Introduction: Best Papers from the 19th International Conference on Cognitive Modeling.Terrence C. Stewart & Joost de Jong - 2022 - Topics in Cognitive Science 14 (4):825-827.
    The International Conference on Cognitive Modeling brings together researchers from around the world whose main goal is to build computational systems that reflect the internal processes of the mind. In this issue, we present the five best representative papers on this work from our 19th meeting, ICCM 2021, which was held virtually from July 3 to July 9, 2021. Three of these papers provide new techniques for refining computational models, giving better methods for taking empirical data and producing (...)
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