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  1. Analizzare l’argomentazione sui social media. Il caso dei tweet di Salvini.Fabrizio Macagno - 2019 - Sistemi Intelligenti 3 (31):601-632.
    Twitter is an instrument used not only for sharing public or personal information, but also for persuading the audience. While specific platforms and software have been developed for analyzing macro-analytical data, and specific studies have focused on the linguistic dimension of the tweets, the argumentative dimension of the latter is unexplored to this date. This paper intends to propose a method grounded on the tools advanced in argumentation theory for capturing, coding, and assessing the different argumentative dimensions of the messages (...)
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  • Exploring Arguments Presented in Predatory Journals Using Toulmin’s Model of Argumentation.Saman Ebadi, Soroor Ashtarian & Gerannaz Zamani - 2020 - Journal of Academic Ethics 18 (4):435-449.
    In the academic community, predatory publishers are exploiting academic integrity and the open access publishing model. Academicians receive numerous spam e-mail messages inviting article submissions each day which deceive authors by promising fast review and publication. The content of these emails present arguments in a way to appear as legitimate and valid to grab the attention of authors. Therefore, the aim of this paper is to advance insights into the arguments deployed by fake journals in their attempt to convey specific (...)
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  • The Dimensions of Argumentative Texts and Their Assessment.Fabrizio Macagno & Chrysi Rapanta - 2019 - Studia Paedagogica 24 (4):11-44.
    The definition and the assessment of the quality of argumentative texts has become an increasingly crucial issue in education, classroom discourse, and argumentation theory. The different methods developed and used in the literature are all characterized by specific perspectives that fail to capture the complexity of the subject matter, which remains ill-defined and not systematically investigated. This paper addresses this problem by building on the four main dimensions of argument quality resulting from the definition of argument and the literature in (...)
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  • Using Computer Simulations for Promoting Model-based Reasoning.Maria Develaki - 2017 - Science & Education 26 (7-9):1001-1027.
    Scientific reasoning is particularly pertinent to science education since it is closely related to the content and methodologies of science and contributes to scientific literacy. Much of the research in science education investigates the appropriate framework and teaching methods and tools needed to promote students’ ability to reason and evaluate in a scientific way. This paper aims to contribute to an extended understanding of the nature and pedagogical importance of model-based reasoning and to exemplify how using computer simulations can support (...)
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  • What Students' Arguments Can Tell Us: Using Argumentation Schemes in Science Education.Fabrizio Macagno & Aikaterini Konstantinidou - 2013 - Argumentation 27 (3):225-243.
    The relationship between teaching and argumentation is becoming a crucial issue in the field of education and, in particular, science education. Teaching has been analyzed as a dialogue aimed at persuading the interlocutors, introducing a conceptual change that needs to be grounded on the audience’s background knowledge. This paper addresses this issue from a perspective of argumentation studies. Our claim is that argumentation schemes, namely abstract patterns of argument, can be an instrument for reconstructing the tacit premises in students’ argumentative (...)
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  • Teaching the Philosophical Interpretations of Quantum Mechanics and Quantum Chemistry Through Controversies.Andoni Garritz - 2013 - Science & Education 22 (7):1787-1807.
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  • The History and Philosophy of Science in Physics Teaching: A Research Synthesis of Didactic Interventions.Elder Sales Teixeira, Ileana Maria Greca & Olival Freire - 2012 - Science & Education 21 (6):771-796.
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  • Deliberation versus Dispute: The Impact of Argumentative Discourse Goals on Learning and Reasoning in the Science Classroom.Mark Felton, Merce Garcia-Mila & Sandra Gilabert - 2009 - Informal Logic 29 (4):417-446.
    Researchers in science education have converged on the view that argumentation can be an effective intervention for promoting knowledge construction in science classrooms. However, the impact of such interventions may be mediated by individuals’ task goals while arguing. In argumentative discourse, one can distinguish two overlapping but distinct kinds of activity: dispute and deliberation. In dispute the goal is to defend a conclusion by undermining alternatives, whereas in deliberation the goal is to arrive at a conclusion by contrasting alternatives. In (...)
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  • From Yeshiva to Academia: The Argumentative Writing Characteristics of Ultra-Orthodox Male Students.Ehud Tsemach & Anat Zohar - 2021 - Argumentation 35 (3):457-481.
    This study compares the argumentative writing characteristics of students from different sociocultural backgrounds. We focused on Jewish ultra-Orthodox (Haredi) students, educated in a segregated religious school for boys (yeshiva), who are now attempting to integrate in secular higher education in Israel. To better understand the unique characteristics of this population, we reviewed 92 essays written by Haredi students, and compared them with 76 essays by public education (PE) graduates. Our analysis was based on the cognitive and sociocultural perspectives of argumentation. (...)
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  • What Constitutes Skilled Argumentation and How Does it Develop?Marion Goldstein, Amanda Crowell & Deanna Kuhn - 2009 - Informal Logic 29 (4):379-395.
    We report our efforts to assess the skill of contemplating and evaluating argumentation. An adaptive forced-choice instrument was developed and administered to 6th grade students, 7th grade students who had participated in a year-long intervention that successfully strengthened their argumentation production skills, and expert arguers. The instrument was sensitive enough to detect differences in skill level across these groups. Despite their gains in production skill, however, 7th graders showed only modest superiority over the untrained 6th graders and performance well below (...)
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  • Examining Elementary Students’ Development of Oral and Written Argumentation Practices Through Argument-Based Inquiry.Ying-Chih Chen, Brian Hand & Soonhye Park - 2016 - Science & Education 25 (3-4):277-320.
    Argumentation, and the production of scientific arguments are critical elements of inquiry that are necessary for helping students become scientifically literate through engaging them in constructing and critiquing ideas. This case study employed a mixed methods research design to examine the development in 5th grade students’ practices of oral and written argumentation from one unit to another over 16 weeks utilizing the science writing heuristic approach. Data sources included five rounds of whole-class discussion focused on group presentations of arguments that (...)
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  • A Conceptual Analysis of Perspective Taking in Support of Socioscientific Reasoning.Sami Kahn & Dana L. Zeidler - 2019 - Science & Education 28 (6-7):605-638.
    Perspective taking is a critical yet tangled construct that is used to describe a range of psychological processes and that is applied interchangeably with related constructs. The resulting ambiguity is particularly vexing in science education, where although perspective taking is recognized as critical to informed citizens’ ability to negotiate scientifically related societal issues, or socioscientific issues via socioscientific reasoning, the precise nature of perspective taking remains elusive. To operationalize perspective taking, a theoretical conceptual analysis was employed and used to position (...)
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  • Troy D. Sadler : Socio-Scientific Issues in the Classroom: Teaching, Learning and Research.Laurence Simonneaux - 2013 - Science & Education 22 (3):723-728.
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  • Investigating the Intertwinement of Knowledge, Value, and Experience of Upper Secondary Students’ Argumentation Concerning Socioscientific Issues.Carl-Johan Rundgren, Martin Eriksson & Shu-Nu Chang Rundgren - 2016 - Science & Education 25 (9-10):1049-1071.
    This study aims to explore students’ argumentation and decision-making relating to an authentic socioscientific issue —the problem of environmental toxins in fish from the Baltic Sea. A multi-disciplinary instructional module, designed in order to develop students’ skills to argue about complex SSI, was successfully tested. Seven science majors in the final year of their upper secondary studies participated in this study. Their argumentation and decision-making processes were followed closely, and data were collected during multiple stages of the instructional module: group (...)
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  • Disciplinary authority and accountability in scientific practice and learning.Michael Ford - 2008 - Science Education 92 (3):404-423.
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  • Understandings of Nature of Science and Multiple Perspective Evaluation of Science News by Non-science Majors.Jessica Shuk Ching Leung, Alice Siu Ling Wong & Benny Hin Wai Yung - 2015 - Science & Education 24 (7-8):887-912.
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  • Argumentation in Science Education: A Model-based Framework.Florian Böttcher & Anke Meisert - 2011 - Science & Education 20 (2):103-140.
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  • (1 other version)Argumentation in School Science: Breaking the Tradition of Authoritative Exposition Through a Pedagogy that Promotes Discussion and Reasoning. [REVIEW]Shirley Simon & Katherine Richardson - 2009 - Argumentation 23 (4):469-493.
    The value of argumentation in science education has become internationally recognised and has been the subject of many research studies in recent years. Successful introduction of argumentation activities in learning contexts involves extending teaching goals beyond the understanding of facts and concepts, to include an emphasis on cognitive and metacognitive processes, epistemic criteria and reasoning. The authors focus on the difficulties inherent in shifting a tradition of teaching from one dominated by authoritative exposition to one that is more dialogic, involving (...)
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  • Argumentative Writing Behavior of Graduate EFL Learners.Esmaeel Abdollahzadeh, Mohammad Amini Farsani & Maryam Beikmohammadi - 2017 - Argumentation 31 (4):641-661.
    This study analyzed the argumentative writing behavior of Iranian graduate learners of English as Foreign Language in their English essays. Further, the correlations between the use of argument elements and overall writing quality as well as soundness of produced arguments were investigated. To this end, 150 essays were analyzed. The sample essays were found to be predominantly deductive in terms of rhetorical pattern. Moreover, they mainly utilized ‘data’ and ‘claim’ most frequently with secondary elements of argument as the least produced (...)
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  • The Nature of the Arguments for Creationism, Intelligent Design, and Evolution.Ralph M. Barnes, Rebecca A. Church & Samuel Draznin-Nagy - 2017 - Science & Education 26 (1-2):27-47.
    Seventy-two Internet documents promoting creationism, intelligent design, or evolution were selected for analysis. The primary goal of each of the 72 documents was to present arguments for creationism, I.D., or evolution. We first identified all arguments in these documents. Each argument was then coded in terms of both argument type and argument topic. We then provided a quantitative summary of each argument type and topic for each of the three positions. Three clear patterns were revealed by the data. First, websites (...)
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  • Changes in Pre-service Science Teachers’ Understandings After Being Involved in Explicit Nature of Science and Socioscientific Argumentation Processes.A. Y. Kutluca & A. Aydın - 2017 - Science & Education 26 (6):637-668.
    The study explored the changes in pre-service science teachers’ understanding of the nature of science and their opinions about the nature of science, science teaching and argumentation after their participation in explicit nature of science and socioscientific argumentation processes. The participants were 56 third-grade pre-service science teachers studying in a state university in Turkey. The treatment group comprised 27 participants, and there were 29 participants in the comparison group. The comparison group participants were involved in a student-centred science-teaching process, and (...)
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