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Causal thinking in science: How scientists and students interpret the unexpected

In M. Gorman, R. Tweney, D. Gooding & A. Kincannon (eds.), Scientific and Technological Thinking. Erlbaum. pp. 57--79 (2005)

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  1. Is the Inquiry Based Education Paradigm Useful not just for Teaching Sciences but also Theology?Mihai Girtu & Tudor Cosmin Ciocan - 2015 - Dialogo 2 (1):73-82.
    Starting from the traditional approaches to teaching science and religion we discuss modern pedagogical methods based on inquiry. We explore whether and how the teaching methods specific to each discipline may benefit in the teaching of the other.
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  • Becoming Attuned.Christian Busch - 2020 - In The Serendipity Mindset: The Art and Science of Creating Good Luck. New York, USA: Penguin. pp. 1-45.
    Breaking Down the Barriers to Serendipity Life is what happens to us while we are making other plans. ALLEN SAUNDERS, AMERICAN WRITER, JOURNALIST, AND CARTOONIST.
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  • The Serendipity Mindset: The Art and Science of Creating Good Luck.Christian Busch (ed.) - 2020 - New York, USA: Penguin.
    Good luck isn’t just chance—it can be learned and leveraged—and The Serendipity Mindset explains how you can use serendipity to make life better at work, at home—everywhere. Many of us believe that the great turning points and opportunities in our lives happen by chance, that they’re out of our control. Often we think that successful people—and successful companies and organizations—are simply luckier than the rest of us. Good fortune—serendipity—just seems to happen to them. Is that true? Or are some people (...)
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  • From Science Studies to Scientific Literacy: A View from the Classroom.Douglas Allchin - 2014 - Science & Education 23 (9):1911-1932.
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  • Introduction to Cognition in Science and Technology.Michael E. Gorman - 2009 - Topics in Cognitive Science 1 (4):675-685.
    Cognitive studies of science and technology have had a long history of largely independent research projects that have appeared in multiple outlets, but rarely together. The emergence of a new International Society for Psychology of Science and Technology suggests that this is a good time to put some of the latest work in this area into topiCS in a way that will both acquaint readers with the cutting edge in this domain and also give them a hint of its history. (...)
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  • The Creative Structuring of Counterintuitive Worlds.Ryan Tweney, Kristin Edwards, Lauren Gonce, D. Jason Slone & M. Afzal Upal - 2006 - Journal of Cognition and Culture 6 (3-4):483-498.
    Recent research has shown a memory advantage for minimally counterintuitive concepts, over concepts that are either intuitive or maximally counterintuitive, although the general result is heavily affected by context. Items from one such study were given to subjects who were asked to create novel stories using at least three concepts from a list containing all three types. Results indicated a preference for using MCI items, and further disclosed two styles of usage, an accommodative style and an assimilative style. The results (...)
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  • Mathematical Representations in Science: A Cognitive–Historical Case History.Ryan D. Tweney - 2009 - Topics in Cognitive Science 1 (4):758-776.
    The important role of mathematical representations in scientific thinking has received little attention from cognitive scientists. This study argues that neglect of this issue is unwarranted, given existing cognitive theories and laws, together with promising results from the cognitive historical analysis of several important scientists. In particular, while the mathematical wizardry of James Clerk Maxwell differed dramatically from the experimental approaches favored by Michael Faraday, Maxwell himself recognized Faraday as “in reality a mathematician of a very high order,” and his (...)
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  • Visualizing Scientific Inference.David C. Gooding - 2010 - Topics in Cognitive Science 2 (1):15-35.
    The sciences use a wide range of visual devices, practices, and imaging technologies. This diversity points to an important repertoire of visual methods that scientists use to adapt representations to meet the varied demands that their work places on cognitive processes. This paper identifies key features of the use of visualization in a range of scientific domains and considers the implications of this repertoire for understanding scientists as cognitive agents.
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