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  1. Experimental Philosophy and Causal Attribution.Jonathan Livengood & David Rose - 2016 - In Justin Sytsma & Wesley Buckwalter (eds.), A Companion to Experimental Philosophy. Malden, MA: Wiley. pp. 434–449.
    Humans often attribute the things that happen to one or another actual cause. In this chapter, we survey some recent philosophical and psychological research on causal attribution. We pay special attention to the relation between graphical causal modeling and theories of causal attribution. We think that the study of causal attribution is one place where formal and experimental techniques nicely complement one another.
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  • Explaining contentious political issues promotes open-minded thinking.Abdo Elnakouri, Alex C. Huynh & Igor Grossmann - 2024 - Cognition 247 (C):105769.
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  • Causal-explanatory pluralism: how intentions, functions, and mechanisms influence causal ascriptions.Tania Lombrozo - 2010 - Cognitive Psychology 61 (4):303-332.
    Both philosophers and psychologists have argued for the existence of distinct kinds of explanations, including teleological explanations that cite functions or goals, and mechanistic explanations that cite causal mechanisms. Theories of causation, in contrast, have generally been unitary, with dominant theories focusing either on counterfactual dependence or on physical connections. This paper argues that both approaches to causation are psychologically real, with different modes of explanation promoting judgments more or less consistent with each approach. Two sets of experiments isolate the (...)
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  • Explaining the moral of the story.Caren M. Walker & Tania Lombrozo - 2017 - Cognition 167 (C):266-281.
    Although storybooks are often used as pedagogical tools for conveying moral lessons to children, the ability to spontaneously extract "the moral" of a story develops relatively late. Instead, children tend to represent stories at a concrete level - one that highlights surface features and understates more abstract themes. Here we examine the role of explanation in 5- and 6-year-old children's developing ability to learn the moral of a story. Two experiments demonstrate that, relative to a control condition, prompts to explain (...)
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  • Effects of explanation on children’s question asking.Azzurra Ruggeri, Fei Xu & Tania Lombrozo - 2019 - Cognition 191 (C):103966.
    The capacity to search for information effectively by asking informative questions is crucial for self-directed learning and develops throughout the preschool years and beyond. We tested the hypothesis that explaining observations in a given domain prepares children to ask more informative questions in that domain, and that it does so by promoting the identification of features that apply to multiple objects, thus supporting more effective questions. Across two experiments, 4- to 7-year-old children (N = 168) were prompted to explain observed (...)
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  • Explanation–Question–Response dialogue: An argumentative tool for explainable AI.Federico Castagna, Peter McBurney & Simon Parsons - forthcoming - Argument and Computation:1-23.
    Advancements and deployments of AI-based systems, especially Deep Learning-driven generative language models, have accomplished impressive results over the past few years. Nevertheless, these remarkable achievements are intertwined with a related fear that such technologies might lead to a general relinquishing of our lives’s control to AIs. This concern, which also motivates the increasing interest in the eXplainable Artificial Intelligence (XAI) research field, is mostly caused by the opacity of the output of deep learning systems and the way that it is (...)
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  • Formal and Empirical Methods in Philosophy of Science.Vincenzo Crupi & Stephan Hartmann - 2009 - In Friedrich Stadler et al (ed.), The Present Situation in the Philosophy of Science. Springer. pp. 87--98.
    This essay addresses the methodology of philosophy of science and illustrates how formal and empirical methods can be fruitfully combined. Special emphasis is given to the application of experimental methods to confirmation theory and to recent work on the conjunction fallacy, a key topic in the rationality debate arising from research in cognitive psychology. Several other issue can be studied in this way. In the concluding section, a brief outline is provided of three further examples.
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  • What's the Point of Understanding?Michael Hannon - 2019 - In What's the Point of Knowledge? A Function-First Epistemology. New York, NY, USA: Oxford University Press.
    What is human understanding and why should we care about it? I propose a method of philosophical investigation called ‘function-first epistemology’ and use this method to investigate the nature and value of understanding-why. I argue that the concept of understanding-why serves the practical function of identifying good explainers, which is an important role in the general economy of our concepts. This hypothesis sheds light on a variety of issues in the epistemology of understanding including the role of explanation, the relationship (...)
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  • The Epistemology of Causal Selection: Insights from Systems Biology.Beckett Sterner - forthcoming - In C. Kenneth Waters & James Woodward (eds.), Philosophical Perspectives on Causal Reasoning in Biology. University of Minnesota Press.
    Among the many causes of an event, how do we distinguish the important ones? Are there ways to distinguish among causes on principled grounds that integrate both practical aims and objective knowledge? Psychologist Tania Lombrozo has suggested that causal explanations “identify factors that are ‘exportable’ in the sense that they are likely to subserve future prediction and intervention” (Lombrozo 2010, 327). Hence portable causes are more important precisely because they provide objective information to prediction and intervention as practical aims. However, (...)
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  • Deference and Ideals of Practical Agency.Jonathan Knutzen - 2021 - Canadian Journal of Philosophy 51 (1):17-32.
    This paper develops a moderate pessimist account of moral deference. I argue that while some pessimist explanations of the puzzle of moral deference have been misguided in matters of detail, they nevertheless share an important insight, namely that there is a justified moral agency ideal grounded in pro tanto reasons against moral deference. This thought is unpacked in terms of a set of values associated with the practice of morality. I conclude by suggesting that the solution to the puzzle of (...)
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  • Depth and deference: When and why we attribute understanding.Daniel A. Wilkenfeld, Dillon Plunkett & Tania Lombrozo - 2016 - Philosophical Studies 173 (2):373-393.
    Four experiments investigate the folk concept of “understanding,” in particular when and why it is deployed differently from the concept of knowledge. We argue for the positions that people have higher demands with respect to explanatory depth when it comes to attributing understanding, and that this is true, in part, because understanding attributions play a functional role in identifying experts who should be heeded with respect to the general field in question. These claims are supported by our findings that people (...)
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  • Three Kinds of Idealization.Michael Weisberg - 2007 - Journal of Philosophy 104 (12):639-659.
    Philosophers of science increasingly recognize the importance of idealization: the intentional introduction of distortion into scientific theories. Yet this recognition has not yielded consensus about the nature of idealization. e literature of the past thirty years contains disparate characterizations and justifications, but little evidence of convergence towards a common position.
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  • Explanatory anti-psychologism overturned by lay and scientific case classifications.Jonathan Waskan, Ian Harmon, Zachary Horne, Joseph Spino & John Clevenger - 2014 - Synthese 191 (5):1-23.
    Many philosophers of science follow Hempel in embracing both substantive and methodological anti-psychologism regarding the study of explanation. The former thesis denies that explanations are constituted by psychological events, and the latter denies that psychological research can contribute much to the philosophical investigation of the nature of explanation. Substantive anti-psychologism is commonly defended by citing cases, such as hyper-complex descriptions or vast computer simulations, which are reputedly generally agreed to constitute explanations but which defy human comprehension and, as a result, (...)
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  • Explaining prompts children to privilege inductively rich properties.Caren M. Walker, Tania Lombrozo, Cristine H. Legare & Alison Gopnik - 2014 - Cognition 133 (2):343-357.
    Two studies examined the specificity of effects of explanation on learning by prompting 3- to 6-year-old children to explain a mechanical toy and comparing what they learned about the toy’s causal and non-causal properties to children who only observed the toy, both with and without accompanying verbalization. In Study 1, children were experimentally assigned to either explain or observe the mechanical toy. In Study 2, children were classified according to whether the content of their response to an undirected prompt involved (...)
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  • Simplicity as a Cue to Probability: Multiple Roles for Simplicity in Evaluating Explanations.Thalia H. Vrantsidis & Tania Lombrozo - 2022 - Cognitive Science 46 (7):e13169.
    Cognitive Science, Volume 46, Issue 7, July 2022.
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  • Science Is Awe-Some: The Emotional Antecedents of Science Learning.Piercarlo Valdesolo, Andrew Shtulman & Andrew S. Baron - 2017 - Emotion Review 9 (3):215-221.
    Scientists from Einstein to Sagan have linked emotions like awe with the motivation for scientific inquiry, but no research has tested this possibility. Theoretical and empirical work from affective science, however, suggests that awe might be unique in motivating explanation and exploration of the physical world. We synthesize theories of awe with theories of the cognitive mechanisms related to learning, and offer a generative theoretical framework that can be used to test the effect of this emotion on early science learning.
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  • The psychology of scientific explanation.J. D. Trout - 2007 - Philosophy Compass 2 (3):564–591.
    Philosophers agree that scientific explanations aim to produce understanding, and that good ones succeed in this aim. But few seriously consider what understanding is, or what the cues are when we have it. If it is a psychological state or process, describing its specific nature is the job of psychological theorizing. This article examines the role of understanding in scientific explanation. It warns that the seductive, phenomenological sense of understanding is often, but mistakenly, viewed as a cue of genuine understanding. (...)
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  • The impact of explanations as communicative acts on belief in a claim: The role of source reliability.Marko Tešić & Ulrike Hahn - 2023 - Cognition 240 (C):105586.
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  • Show or tell? Exploring when (and why) teaching with language outperforms demonstration.Theodore R. Sumers, Mark K. Ho, Robert D. Hawkins & Thomas L. Griffiths - 2023 - Cognition 232 (C):105326.
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  • Explanations in the wild.Justin Sulik, Jeroen van Paridon & Gary Lupyan - 2023 - Cognition 237 (C):105464.
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  • Revisiting the narrow latent scope bias in explanatory reasoning.Simon Stephan - 2023 - Cognition 241 (C):105630.
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  • Using state abstractions to compute personalized contrastive explanations for AI agent behavior.Sarath Sreedharan, Siddharth Srivastava & Subbarao Kambhampati - 2021 - Artificial Intelligence 301 (C):103570.
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  • The Automated Laplacean Demon: How ML Challenges Our Views on Prediction and Explanation.Sanja Srećković, Andrea Berber & Nenad Filipović - 2021 - Minds and Machines 32 (1):159-183.
    Certain characteristics make machine learning a powerful tool for processing large amounts of data, and also particularly unsuitable for explanatory purposes. There are worries that its increasing use in science may sideline the explanatory goals of research. We analyze the key characteristics of ML that might have implications for the future directions in scientific research: epistemic opacity and the ‘theory-agnostic’ modeling. These characteristics are further analyzed in a comparison of ML with the traditional statistical methods, in order to demonstrate what (...)
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  • Foundations of explanations as model reconciliation.Sarath Sreedharan, Tathagata Chakraborti & Subbarao Kambhampati - 2021 - Artificial Intelligence 301 (C):103558.
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  • Current Status of Research in Teaching and Learning Evolution: II. Pedagogical Issues.Mike U. Smith - 2010 - Science & Education 19 (6-8):539-571.
  • Current Status of Research in Teaching and Learning Evolution: I. Philosophical/Epistemological Issues.Mike U. Smith - 2010 - Science & Education 19 (6-8):523-538.
  • The cultural evolution of shamanism.Manvir Singh - 2018 - Behavioral and Brain Sciences 41.
    Shamans, including medicine men, mediums, and the prophets of religious movements, recur across human societies. Shamanism also existed among nearly all documented hunter-gatherers, likely characterized the religious lives of many ancestral humans, and is often proposed by anthropologists to be the “first profession,” representing the first institutionalized division of labor beyond age and sex. In this article, I propose a cultural evolutionary theory to explain why shamanism consistently develops and, in particular, why shamanic traditions exhibit recurrent features around the world; (...)
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  • How Lay Cognition Constrains Scientific Cognition.Andrew Shtulman - 2015 - Philosophy Compass 10 (11):785-798.
    Scientific cognition is a hard-won achievement, both from a historical point of view and a developmental point of view. Here, I review seven facets of lay cognition that run counter to, and often impede, scientific cognition: incompatible folk theories, missing ontologies, tolerance for shallow explanations, tolerance for contradictory explanations, privileging explanation over empirical data, privileging testimony over empirical data, and misconceiving the nature of science itself. Most of these facets have been investigated independent of the others, and I propose directions (...)
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  • Children adapt their questions to achieve efficient search.Azzurra Ruggeri & Tania Lombrozo - 2015 - Cognition 143 (C):203-216.
    One way to learn about the world is by asking questions. We investigate how younger children (7- to 8-year-olds), older children (9- to 11-year-olds), and young adults (17- to 18-year-olds) ask questions to identify the cause of an event. We find a developmental shift in children’s reliance on hypothesis-scanning questions (which test hypotheses directly) versus constraint-seeking questions (which reduce the space of hypotheses), but also that all age groups ask more constraint-seeking questions when hypothesis-scanning questions are least likely to pay (...)
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  • On searching explanatory argumentation graphs.Régis Riveret - 2020 - Journal of Applied Non-Classical Logics 30 (2):123-192.
    Cases or examples can be often explained by the interplay of arguments in favour or against their outcomes. This paper addresses the problem of finding explanations for a collection of cases where an explanation is a labelled argumentation graph consistent with the cases, and a case is represented as a statement labelling. The focus is on semi-abstract argumentation graphs specifying attack and subargument relations between arguments, along with particular complete argument labellings taken from probabilistic argumentation where arguments can be excluded. (...)
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  • Representation of Principled Connections: A Window Onto the Formal Aspect of Common Sense Conception.Sandeep Prasada & Elaine M. Dillingham - 2009 - Cognitive Science 33 (3):401-448.
    Nominal concepts represent things as tokens of types. Recent research suggests that we represent principled connections between the type of thing something is (e.g., DOG) and some of its properties (k‐properties; e.g., having four legs for dogs) but not other properties (t‐properties; e.g., being brown for dogs). Principled connections differ from logical, statistical, and causal connections. Principled connections license (i) the expectation that tokens of the type will generally possess their k‐properties, (ii) formal explanations (i.e., explanation of the presence of (...)
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  • Violations of expectation trigger infants to search for explanations.Jasmin Perez & Lisa Feigenson - 2022 - Cognition 218 (C):104942.
  • Motivated explanation.Richard Patterson, Joachim T. Operskalski & Aron K. Barbey - 2015 - Frontiers in Human Neuroscience 9.
  • Artificial agents’ explainability to support trust: considerations on timing and context.Guglielmo Papagni, Jesse de Pagter, Setareh Zafari, Michael Filzmoser & Sabine T. Koeszegi - 2023 - AI and Society 38 (2):947-960.
    Strategies for improving the explainability of artificial agents are a key approach to support the understandability of artificial agents’ decision-making processes and their trustworthiness. However, since explanations are not inclined to standardization, finding solutions that fit the algorithmic-based decision-making processes of artificial agents poses a compelling challenge. This paper addresses the concept of trust in relation to complementary aspects that play a role in interpersonal and human–agent relationships, such as users’ confidence and their perception of artificial agents’ reliability. Particularly, this (...)
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  • Moral Values Reveal the Causality Implicit in Verb Meaning.Laura Niemi, Joshua Hartshorne, Tobias Gerstenberg, Matthew Stanley & Liane Young - 2020 - Cognitive Science 44 (6):e12838.
    Prior work has found that moral values that build and bind groups—that is, the binding values of ingroup loyalty, respect for authority, and preservation of purity—are linked to blaming people who have been harmed. The present research investigated whether people's endorsement of binding values predicts their assignment of the causal locus of harmful events to the victims of the events. We used an implicit causality task from psycholinguistics in which participants read a sentence in the form “SUBJECT verbed OBJECT because…” (...)
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  • On Fodor's First Law of the Nonexistence of Cognitive Science.Gregory L. Murphy - 2019 - Cognitive Science 43 (5):e12735.
    In his enormously influential The Modularity of Mind, Jerry Fodor (1983) proposed that the mind was divided into input modules and central processes. Much subsequent research focused on the modules and whether processes like speech perception or spatial vision are truly modular. Much less attention has been given to Fodor's writing on the central processes, what would today be called higher‐level cognition. In “Fodor's First Law of the Nonexistence of Cognitive Science,” he argued that central processes are “bad candidates for (...)
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  • The quest of parsimonious XAI: A human-agent architecture for explanation formulation.Yazan Mualla, Igor Tchappi, Timotheus Kampik, Amro Najjar, Davide Calvaresi, Abdeljalil Abbas-Turki, Stéphane Galland & Christophe Nicolle - 2022 - Artificial Intelligence 302 (C):103573.
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  • Explanation in artificial intelligence: Insights from the social sciences.Tim Miller - 2019 - Artificial Intelligence 267 (C):1-38.
  • The Instrumental Value of Explanations.Tania Lombrozo - 2011 - Philosophy Compass 6 (8):539-551.
    Scientific and ‘intuitive’ or ‘folk’ theories are typically characterized as serving three critical functions: prediction, explanation, and control. While prediction and control have clear instrumental value, the value of explanation is less transparent. This paper reviews an emerging body of research from the cognitive sciences suggesting that the process of seeking, generating, and evaluating explanations in fact contributes to future prediction and control, albeit indirectly by facilitating the discovery and confirmation of instrumentally valuable theories. Theoretical and empirical considerations also suggest (...)
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  • The Campaign for Concepts.Tania Lombrozo - 2011 - Dialogue 50 (1):165-177.
    In his book Doing Without Concepts, Edouard Machery argues that cognitive scientists should reject the concept of “concept” as a natural, psychological kind. I review and critique several of Machery’s arguments, focusing on his definition of “concept” and on claims against the possibility and utility of a unified account of concepts. In particular, I suggest ways in which prototype, exemplar, and theory-theory approaches to concepts might be integrated.
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  • Inference to the Best Explanation (IBE) Versus Explaining for the Best Inference.Tania Lombrozo & Daniel Wilkenfeld - 2015 - Science & Education 24 (9-10):1059-1077.
    In pedagogical contexts and in everyday life, we often come to believe something because it would best explain the data. What is it about the explanatory endeavor that makes it essential to everyday learning and to scientific progress? There are at least two plausible answers. On one view, there is something special about having true explanations. This view is highly intuitive: it’s clear why true explanations might improve one’s epistemic position. However, there is another possibility—it could be that the process (...)
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  • From conceptual representations to explanatory relations.Tania Lombrozo - 2010 - Behavioral and Brain Sciences 33 (2-3):218-219.
    Machery emphasizes the centrality of explanation for theory-based approaches to concepts. I endorse Machery's emphasis on explanation and consider recent advances in psychology that point to the of explanation, with consequences for Machery's heterogeneity hypothesis about concepts.
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  • Explanation and categorization: How “why?” informs “what?”.Tania Lombrozo - 2009 - Cognition 110 (2):248-253.
    Recent theoretical and empirical work suggests that explanation and categorization are intimately related. This paper explores the hypothesis that explanations can help structure conceptual representations, and thereby influence the relative importance of features in categorization decisions. In particular, features may be differentially important depending on the role they play in explaining other features or aspects of category membership. Two experiments manipulate whether a feature is explained mechanistically, by appeal to proximate causes, or functionally, by appeal to a function or goal. (...)
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  • Explanation and inference: mechanistic and functional explanations guide property generalization.Tania Lombrozo & Nicholas Z. Gwynne - 2014 - Frontiers in Human Neuroscience 8:102987.
    The ability to generalize from the known to the unknown is central to learning and inference. Two experiments explore the relationship between how a property is explained and how that property is generalized to novel species and artifacts. The experiments contrast the consequences of explaining a property mechanistically, by appeal to parts and processes, with the consequences of explaining the property functionally, by appeal to functions and goals. The findings suggest that properties that are explained functionally are more likely to (...)
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  • The Role of Explanation in Discovery and Generalization: Evidence From Category Learning.Joseph J. Williams & Tania Lombrozo - 2010 - Cognitive Science 34 (5):776-806.
    Research in education and cognitive development suggests that explaining plays a key role in learning and generalization: When learners provide explanations—even to themselves—they learn more effectively and generalize more readily to novel situations. This paper proposes and tests a subsumptive constraints account of this effect. Motivated by philosophical theories of explanation, this account predicts that explaining guides learners to interpret what they are learning in terms of unifying patterns or regularities, which promotes the discovery of broad generalizations. Three experiments provide (...)
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  • A computational framework for understanding the roles of simplicity and rational support in people's behavior explanations.Alan Jern, Austin Derrow-Pinion & A. J. Piergiovanni - 2021 - Cognition 210 (C):104606.
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  • The Power of a “Maverick” in Collaborative Problem Solving: An Experimental Investigation of Individual Perspective‐Taking Within a Group.Yugo Hayashi - 2018 - Cognitive Science 42 (S1):69-104.
    Integrating different perspectives is a sophisticated strategy for developing constructive interactions in collaborative problem solving. However, cognitive aspects such as individuals’ knowledge and bias often obscure group consensus and produce conflict. This study investigated collaborative problem solving, focusing on a group member interacting with another member having a different perspective. It was predicted that mavericks might mitigate disadvantages and facilitate perspective taking during problem solving. Thus, 344 university students participated in two laboratory-based experiments by engaging in a simple rule-discovery task (...)
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  • The development of principled connections and kind representations.Paul Haward, Laura Wagner, Susan Carey & Sandeep Prasada - 2018 - Cognition 176 (C):255-268.
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  • The Role of Surprise in Learning: Different Surprising Outcomes Affect Memorability Differentially.Meadhbh I. Foster & Mark T. Keane - 2019 - Topics in Cognitive Science 11 (1):75-87.
    Surprise has been explored as a cognitive-emotional phenomenon that impacts many aspects of mental life from creativity to learning to decision-making. In this paper, we specifically address the role of surprise in learning and memory. Although surprise has been cast as a basic emotion since Darwin's (1872) The Expression of the Emotions in Man and Animals, recently more emphasis has been placed on its cognitive aspects. One such view casts surprise as a process of “sense making” or “explanation finding”: metacognitive (...)
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  • Pragmatic experimental philosophy.Justin C. Fisher - 2015 - Philosophical Psychology 28 (3):412-433.
    This paper considers three package deals combining views in philosophy of mind, meta-philosophy, and experimental philosophy. The most familiar of these packages gives center-stage to pumping intuitions about fanciful cases, but that package involves problematic commitments both to a controversial descriptivist theory of reference and to intuitions that “negative” experimental philosophers have shown to be suspiciously variable and context-sensitive. In light of these difficulties, it would be good for future-minded experimental philosophers to align themselves with a different package deal. This (...)
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