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  1. Models of misbelief: Integrating motivational and deficit theories of delusions.Ryan McKay, Robyn Langdon & Max Coltheart - 2007 - Consciousness and Cognition 16 (4):932-941.
    The impact of our desires and preferences upon our ordinary, everyday beliefs is well-documented [Gilovich, T. . How we know what isn’t so: The fallibility of human reason in everyday life. New York: The Free Press.]. The influence of such motivational factors on delusions, which are instances of pathological misbelief, has tended however to be neglected by certain prevailing models of delusion formation and maintenance. This paper explores a distinction between two general classes of theoretical explanation for delusions; the motivational (...)
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  • 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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  • Evaluating Weaknesses of “Perceptual-Cognitive Training” and “Brain Training” Methods in Sport: An Ecological Dynamics Critique.Ian Renshaw, Keith Davids, Duarte Araújo, Ana Lucas, William M. Roberts, Daniel J. Newcombe & Benjamin Franks - 2019 - Frontiers in Psychology 9.
    The recent upsurge in “brain-training and perceptual-cognitive-training", proposing to improve isolated processes such as brain function, visual perception and decision-making, has created significant interest in elite sports practitioners, seeking to create an ‘edge’ for athletes. The claims of these related 'performance-enhancing industries' can be considered together as part of a process training approach proposing enhanced cognitive and perceptual skills and brain capacity, to support performance in everyday life activities, including sport. For example, the 'process-training industry' promotes the idea that playing (...)
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  • A Computational Cognitive Model of Syntactic Priming.David Reitter, Frank Keller & Johanna D. Moore - 2011 - Cognitive Science 35 (4):587-637.
    The psycholinguistic literature has identified two syntactic adaptation effects in language production: rapidly decaying short-term priming and long-lasting adaptation. To explain both effects, we present an ACT-R model of syntactic priming based on a wide-coverage, lexicalized syntactic theory that explains priming as facilitation of lexical access. In this model, two well-established ACT-R mechanisms, base-level learning and spreading activation, account for long-term adaptation and short-term priming, respectively. Our model simulates incremental language production and in a series of modeling studies, we show (...)
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  • Left‐Corner Parsing With Distributed Associative Memory Produces Surprisal and Locality Effects.Nathan E. Rasmussen & William Schuler - 2018 - Cognitive Science 42 (S4):1009-1042.
    This article describes a left-corner parser implemented within a cognitively and neurologically motivated distributed model of memory. This parser's approach to syntactic ambiguity points toward a tidy account both of surprisal effects and of locality effects, such as the parsing breakdowns caused by center embedding. The model provides an algorithmic-level account of these breakdowns: The structure of the parser's memory and the nature of incremental parsing produce a smooth degradation of processing accuracy for longer center embeddings, and a steeper degradation (...)
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  • Locality and expectation effects in Hindi preverbal constituent ordering.Sidharth Ranjan, Rajakrishnan Rajkumar & Sumeet Agarwal - 2022 - Cognition 223 (C):104959.
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  • A cognitive architecture with incremental levels of machine consciousness inspired by cognitive neuroscience.Klaus Raizer, André L. O. Paraense & Ricardo R. Gudwin - 2012 - International Journal of Machine Consciousness 4 (2):335-352.
  • Can quantum probability provide a new direction for cognitive modeling?Emmanuel M. Pothos & Jerome R. Busemeyer - 2013 - Behavioral and Brain Sciences 36 (3):255-274.
    Classical (Bayesian) probability (CP) theory has led to an influential research tradition for modeling cognitive processes. Cognitive scientists have been trained to work with CP principles for so long that it is hard even to imagine alternative ways to formalize probabilities. However, in physics, quantum probability (QP) theory has been the dominant probabilistic approach for nearly 100 years. Could QP theory provide us with any advantages in cognitive modeling as well? Note first that both CP and QP theory share the (...)
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  • Atlas poznawczy: W stronę fundamentów wiedzy w neurokognitywistyce.Russell A. Poldrack, Aniket Kittur, Donald Kalar, Eric MillerI, Christian Seppa, Yolanda Gil, Stott D. Parker, Fred W. Sabb, Robert M. Bilder & Przemysław Nowakowski - 2016 - Avant: Trends in Interdisciplinary Studies 7 (3):75-100.
    Cognitive neuroscience aims to map mental processes onto brain function, which begs the question of what “mental processes” exist and how they relate to the tasks that are used to manipulate and measure them. This topic has been addressed informally in prior work, but we propose that cumulative progress in cognitive neuroscience requires a more systematic approach to representing the mental entities that are being mapped to brain function and the tasks used to manipulate and measure mental processes. We describe (...)
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  • Rational analyses of information foraging on the web.Peter Pirolli - 2005 - Cognitive Science 29 (3):343-373.
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  • The Computational Origin of Representation.Steven T. Piantadosi - 2020 - Minds and Machines 31 (1):1-58.
    Each of our theories of mental representation provides some insight into how the mind works. However, these insights often seem incompatible, as the debates between symbolic, dynamical, emergentist, sub-symbolic, and grounded approaches to cognition attest. Mental representations—whatever they are—must share many features with each of our theories of representation, and yet there are few hypotheses about how a synthesis could be possible. Here, I develop a theory of the underpinnings of symbolic cognition that shows how sub-symbolic dynamics may give rise (...)
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  • A Computational and Empirical Investigation of Graphemes in Reading.Conrad Perry, Johannes C. Ziegler & Marco Zorzi - 2013 - Cognitive Science 37 (5):800-828.
    It is often assumed that graphemes are a crucial level of orthographic representation above letters. Current connectionist models of reading, however, do not address how the mapping from letters to graphemes is learned. One major challenge for computational modeling is therefore developing a model that learns this mapping and can assign the graphemes to linguistically meaningful categories such as the onset, vowel, and coda of a syllable. Here, we present a model that learns to do this in English for strings (...)
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  • Retrieval Interference in Syntactic Processing: The Case of Reflexive Binding in English.Umesh Patil, Shravan Vasishth & Richard L. Lewis - 2016 - Frontiers in Psychology 7.
  • A Computational Evaluation of Sentence Processing Deficits in Aphasia.Umesh Patil, Sandra Hanne, Frank Burchert, Ria De Bleser & Shravan Vasishth - 2016 - Cognitive Science 40 (1):5-50.
    Individuals with agrammatic Broca's aphasia experience difficulty when processing reversible non-canonical sentences. Different accounts have been proposed to explain this phenomenon. The Trace Deletion account attributes this deficit to an impairment in syntactic representations, whereas others propose that the underlying structural representations are unimpaired, but sentence comprehension is affected by processing deficits, such as slow lexical activation, reduction in memory resources, slowed processing and/or intermittent deficiency, among others. We test the claims of two processing accounts, slowed processing and intermittent deficiency, (...)
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  • Not All Phrases Are Equally Attractive: Experimental Evidence for Selective Agreement Attraction Effects.Dan Parker & Adam An - 2018 - Frontiers in Psychology 9.
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  • Encoding and Accessing Linguistic Representations in a Dynamically Structured Holographic Memory System.Dan Parker & Daniel Lantz - 2016 - Topics in Cognitive Science 8 (4).
    This paper presents a computational model that integrates a dynamically structured holographic memory system into the ACT-R cognitive architecture to explain how linguistic representations are encoded and accessed in memory. ACT-R currently serves as the most precise expression of the moment-by-moment working memory retrievals that support sentence comprehension. The ACT-R model of sentence comprehension is able to capture a range of linguistic phenomena, but there are cases where the model makes the wrong predictions, such as the over-prediction of retrieval interference (...)
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  • Encoding and Accessing Linguistic Representations in a Dynamically Structured Holographic Memory System.Dan Parker & Daniel Lantz - 2017 - Topics in Cognitive Science 9 (1):51-68.
    This paper presents a computational model that integrates a dynamically structured holographic memory system into the ACT-R cognitive architecture to explain how linguistic representations are encoded and accessed in memory. ACT-R currently serves as the most precise expression of the moment-by-moment working memory retrievals that support sentence comprehension. The ACT-R model of sentence comprehension is able to capture a range of linguistic phenomena, but there are cases where the model makes the wrong predictions, such as the over-prediction of retrieval interference (...)
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  • Cue Combinatorics in Memory Retrieval for Anaphora.Dan Parker - 2019 - Cognitive Science 43 (3):e12715.
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  • Modeling Misretrieval and Feature Substitution in Agreement Attraction: A Computational Evaluation.Dario Paape, Serine Avetisyan, Sol Lago & Shravan Vasishth - 2021 - Cognitive Science 45 (8):e13019.
    We present computational modeling results based on a self‐paced reading study investigating number attraction effects in Eastern Armenian. We implement three novel computational models of agreement attraction in a Bayesian framework and compare their predictive fit to the data using k‐fold cross‐validation. We find that our data are better accounted for by an encoding‐based model of agreement attraction, compared to a retrieval‐based model. A novel methodological contribution of our study is the use of comprehension questions with open‐ended responses, so that (...)
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  • Mechanisms of knowledge transfer.Timothy J. Nokes - 2009 - Thinking and Reasoning 15 (1):1 – 36.
    A central goal of cognitive science is to develop a general theory of transfer to explain how people use and apply their prior knowledge to solve new problems. Previous work has identified multiple mechanisms of transfer including (but not limited to) analogy, knowledge compilation, and constraint violation. The central hypothesis investigated in the current work is that the particular profile of transfer processes activated for a given situation depends on both (a) the type of knowledge to be transferred and how (...)
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  • When High-Capacity Readers Slow Down and Low-Capacity Readers Speed Up: Working Memory and Locality Effects.Bruno Nicenboim, Pavel Logačev, Carolina Gattei & Shravan Vasishth - 2016 - Frontiers in Psychology 7.
  • A computational cognitive model of judgments of relative direction.Phillip M. Newman, Gregory E. Cox & Timothy P. McNamara - 2021 - Cognition 209 (C):104559.
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  • Rational Task Analysis: A Methodology to Benchmark Bounded Rationality.Hansjörg Neth, Chris R. Sims & Wayne D. Gray - 2016 - Minds and Machines 26 (1-2):125-148.
    How can we study bounded rationality? We answer this question by proposing rational task analysis —a systematic approach that prevents experimental researchers from drawing premature conclusions regarding the rationality of agents. RTA is a methodology and perspective that is anchored in the notion of bounded rationality and aids in the unbiased interpretation of results and the design of more conclusive experimental paradigms. RTA focuses on concrete tasks as the primary interface between agents and environments and requires explicating essential task elements, (...)
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  • A Computational Investigation of Sources of Variability in Sentence Comprehension Difficulty in Aphasia.Paul Mätzig, Shravan Vasishth, Felix Engelmann, David Caplan & Frank Burchert - 2018 - Topics in Cognitive Science 10 (1):161-174.
    We present a computational evaluation of three hypotheses about sources of deficit in sentence comprehension in aphasia: slowed processing, intermittent deficiency, and resource reduction. The ACT-R based Lewis and Vasishth model is used to implement these three proposals. Slowed processing is implemented as slowed execution time of parse steps; intermittent deficiency as increased random noise in activation of elements in memory; and resource reduction as reduced spreading activation. As data, we considered subject vs. object relative sentences, presented in a self-paced (...)
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  • 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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  • Toward a Psychology of Deep Reinforcement Learning Agents Using a Cognitive Architecture.Konstantinos Mitsopoulos, Sterling Somers, Joel Schooler, Christian Lebiere, Peter Pirolli & Robert Thomson - 2022 - Topics in Cognitive Science 14 (4):756-779.
    We argue that cognitive models can provide a common ground between human users and deep reinforcement learning (Deep RL) algorithms for purposes of explainable artificial intelligence (AI). Casting both the human and learner as cognitive models provides common mechanisms to compare and understand their underlying decision-making processes. This common grounding allows us to identify divergences and explain the learner's behavior in human understandable terms. We present novel salience techniques that highlight the most relevant features in each model's decision-making, as well (...)
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  • Modeling inference of mental states: As simple as possible, as complex as necessary.Ben Meijering, Niels A. Taatgen, Hedderik van Rijn & Rineke Verbrugge - 2014 - Interaction Studies 15 (3):455-477.
    Behavior oftentimes allows for many possible interpretations in terms of mental states, such as goals, beliefs, desires, and intentions. Reasoning about the relation between behavior and mental states is therefore considered to be an effortful process. We argue that people use simple strategies to deal with high cognitive demands of mental state inference. To test this hypothesis, we developed a computational cognitive model, which was able to simulate previous empirical findings: In two-player games, people apply simple strategies at first. They (...)
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  • Modeling inference of mental states: As simple as possible, as complex as necessary.Ben Meijering, Niels A. Taatgen, Hedderik van Rijn & Rineke Verbrugge - 2014 - Interaction Studies 15 (3):455-477.
    Behavior oftentimes allows for many possible interpretations in terms of mental states, such as goals, beliefs, desires, and intentions. Reasoning about the relation between behavior and mental states is therefore considered to be an effortful process. We argue that people use simple strategies to deal with high cognitive demands of mental state inference. To test this hypothesis, we developed a computational cognitive model, which was able to simulate previous empirical findings: In two-player games, people apply simple strategies at first. They (...)
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  • Modeling inference of mental states: As simple as possible, as complex as necessary.Ben Meijering, Niels A. Taatgen, Hedderik van Rijn & Rineke Verbrugge - 2014 - Interaction Studies 15 (3):455-477.
    Behavior oftentimes allows for many possible interpretations in terms of mental states, such as goals, beliefs, desires, and intentions. Reasoning about the relation between behavior and mental states is therefore considered to be an effortful process. We argue that people use simple strategies to deal with high cognitive demands of mental state inference. To test this hypothesis, we developed a computational cognitive model, which was able to simulate previous empirical findings: In two-player games, people apply simple strategies at first. They (...)
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  • Hierarchically organized behavior and its neural foundations: A reinforcement-learning perspective.Andrew C. Barto Matthew M. Botvinick, Yael Niv - 2009 - Cognition 113 (3):262.
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  • Processes models, environmental analyses, and cognitive architectures: Quo vadis quantum probability theory?Julian N. Marewski & Ulrich Hoffrage - 2013 - Behavioral and Brain Sciences 36 (3):297 - 298.
    A lot of research in cognition and decision making suffers from a lack of formalism. The quantum probability program could help to improve this situation, but we wonder whether it would provide even more added value if its presumed focus on outcome models were complemented by process models that are, ideally, informed by ecological analyses and integrated into cognitive architectures.
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  • Cognitive niches: An ecological model of strategy selection.Julian N. Marewski & Lael J. Schooler - 2011 - Psychological Review 118 (3):393-437.
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  • The burden of social proof: Shared thresholds and social influence.Robert J. MacCoun - 2012 - Psychological Review 119 (2):345-372.
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  • Editorial: Emergentist Approaches to Language.Brian MacWhinney, Vera Kempe, Patricia J. Brooks & Ping Li - 2022 - Frontiers in Psychology 12.
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  • A Strategy‐Based Interpretation of Stroop.Marsha C. Lovett - 2005 - Cognitive Science 29 (3):493-524.
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  • On the ability to inhibit thought and action: General and special theories of an act of control.Gordon D. Logan, Trisha Van Zandt, Frederick Verbruggen & Eric-Jan Wagenmakers - 2014 - Psychological Review 121 (1):66-95.
  • A Computational Evaluation of Two Models of Retrieval Processes in Sentence Processing in Aphasia.Paula Lissón, Dorothea Pregla, Bruno Nicenboim, Dario Paape, Mick L. Van het Nederend, Frank Burchert, Nicole Stadie, David Caplan & Shravan Vasishth - 2021 - Cognitive Science 45 (4):e12956.
    Can sentence comprehension impairments in aphasia be explained by difficulties arising from dependency completion processes in parsing? Two distinct models of dependency completion difficulty are investigated, the Lewis and Vasishth (2005) activation-based model and the direct-access model (DA; McElree, 2000). These models' predictive performance is compared using data from individuals with aphasia (IWAs) and control participants. The data are from a self-paced listening task involving subject and object relative clauses. The relative predictive performance of the models is evaluated using k-fold (...)
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  • A Computational Evaluation of Two Models of Retrieval Processes in Sentence Processing in Aphasia.Paula Lissón, Dorothea Pregla, Bruno Nicenboim, Dario Paape, Mick L. het Nederend, Frank Burchert, Nicole Stadie, David Caplan & Shravan Vasishth - 2021 - Cognitive Science 45 (4):e12956.
    Can sentence comprehension impairments in aphasia be explained by difficulties arising from dependency completion processes in parsing? Two distinct models of dependency completion difficulty are investigated, the Lewis and Vasishth (2005) activation‐based model and the direct‐access model (DA; McElree, 2000). These models' predictive performance is compared using data from individuals with aphasia (IWAs) and control participants. The data are from a self‐paced listening task involving subject and object relative clauses. The relative predictive performance of the models is evaluated using k‐fold (...)
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  • Computational principles of working memory in sentence comprehension.Richard L. Lewis, Shravan Vasishth & Julie A. Van Dyke - 2006 - Trends in Cognitive Sciences 10 (10):447-454.
  • Computational Rationality: Linking Mechanism and Behavior Through Bounded Utility Maximization.Richard L. Lewis, Andrew Howes & Satinder Singh - 2014 - Topics in Cognitive Science 6 (2):279-311.
    We propose a framework for including information‐processing bounds in rational analyses. It is an application of bounded optimality (Russell & Subramanian, 1995) to the challenges of developing theories of mechanism and behavior. The framework is based on the idea that behaviors are generated by cognitive mechanisms that are adapted to the structure of not only the environment but also the mind and brain itself. We call the framework computational rationality to emphasize the incorporation of computational mechanism into the definition of (...)
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  • Expectation-based syntactic comprehension.Roger Levy - 2008 - Cognition 106 (3):1126-1177.
  • Processing Speaker-Specific Information in Two Stages During the Interpretation of Referential Precedents.Edmundo Kronmüller & Ernesto Guerra - 2020 - Frontiers in Psychology 11.
    To reduce ambiguity across a conversation, interlocutors reach temporary conventions or referential precedents on how to refer to an entity. Despite their central role in communication, the cognitive underpinnings of the interpretation of precedents remain unclear, specifically the role and mechanisms by which information related to the speaker is integrated. We contrast predictions of one-stage, original two-stage, and extended two-stage models for the processing of speaker information and provide evidence favoring the latter: we show that both stages are sensitive to (...)
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  • Explanatory limitations of cognitive-developmental approaches to morality.Dennis L. Krebs & Kathy Denton - 2006 - Psychological Review 113 (3):672-675.
  • The Knowledge-Learning-Instruction Framework: Bridging the Science-Practice Chasm to Enhance Robust Student Learning.Kenneth R. Koedinger, Albert T. Corbett & Charles Perfetti - 2012 - Cognitive Science 36 (5):757-798.
    Despite the accumulation of substantial cognitive science research relevant to education, there remains confusion and controversy in the application of research to educational practice. In support of a more systematic approach, we describe the Knowledge-Learning-Instruction (KLI) framework. KLI promotes the emergence of instructional principles of high potential for generality, while explicitly identifying constraints of and opportunities for detailed analysis of the knowledge students may acquire in courses. Drawing on research across domains of science, math, and language learning, we illustrate the (...)
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  • A Neuroadaptive Cognitive Model for Dealing With Uncertainty in Tracing Pilots' Cognitive State.Oliver W. Klaproth, Marc Halbrügge, Laurens R. Krol, Christoph Vernaleken, Thorsten O. Zander & Nele Russwinkel - 2020 - Topics in Cognitive Science 12 (3):1012-1029.
    When people are performing a task, it is hard to know whether they are about to make a mistake. Klaproth, Halbrügge, Krol, Vernaleken, Zander, and Russwinkel address this by recording EEG signals while people are performing a flight control task, and show that by examining the EEG signal they can determine when people failed to notice particular stimuli, which could lead to better assistive tools.
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  • Neural Correlates of Workload Transition in Multitasking: An ACT-R Model of Hysteresis Effect.Na Young Kim, Russell House, Myung H. Yun & Chang S. Nam - 2019 - Frontiers in Human Neuroscience 12.
  • Maximizing Students' Retention via Spaced Review: Practical Guidance From Computational Models of Memory.Mohammad M. Khajah, Robert V. Lindsey & Michael C. Mozer - 2014 - Topics in Cognitive Science 6 (1):157-169.
    During each school semester, students face an onslaught of material to be learned. Students work hard to achieve initial mastery of the material, but when they move on, the newly learned facts, concepts, and skills degrade in memory. Although both students and educators appreciate that review can help stabilize learning, time constraints result in a trade-off between acquiring new knowledge and preserving old knowledge. To use time efficiently, when should review take place? Experimental studies have shown benefits to long-term retention (...)
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  • Parameter Inference for Computational Cognitive Models with Approximate Bayesian Computation.Antti Kangasrääsiö, Jussi P. P. Jokinen, Antti Oulasvirta, Andrew Howes & Samuel Kaski - 2019 - Cognitive Science 43 (6):e12738.
    This paper addresses a common challenge with computational cognitive models: identifying parameter values that are both theoretically plausible and generate predictions that match well with empirical data. While computational models can offer deep explanations of cognition, they are computationally complex and often out of reach of traditional parameter fitting methods. Weak methodology may lead to premature rejection of valid models or to acceptance of models that might otherwise be falsified. Mathematically robust fitting methods are, therefore, essential to the progress of (...)
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  • Sequential effects in response time reveal learning mechanisms and event representations.Matt Jones, Tim Curran, Michael C. Mozer & Matthew H. Wilder - 2013 - Psychological Review 120 (3):628-666.
  • Teasing apart retrieval and encoding interference in the processing of anaphors.Lena A. Jäger, Lena Benz, Jens Roeser, Brian W. Dillon & Shravan Vasishth - 2015 - Frontiers in Psychology 6:130122.
    Two classes of account have been proposed to explain the memory processes subserving the processing of reflexive-antecedent dependencies. Structure-based accounts assume that the retrieval of the antecedent is guided by syntactic tree-configurational information without considering other kinds of information such as gender marking in the case of English reflexives. By contrast, unconstrained cue-based retrieval assumes that all available information is used for retrieving the antecedent. Similarity-based interference effects from structurally illicit distractors which match a non-structural retrieval cue have been interpreted (...)
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