The methodology of biomimicry design thinking is based on and builds upon the overarching patterns that all life abides by. “Cultivating cooperative relationships” within an ecosystem is one such pattern we as humans can learn from to nurture our own mutualistic and symbiotic relationships. While form and process translations from biology to design have proven accessible by students learning biomimicry, the realm of translating biological functions in a systematic approach has proven to be more difficult. This study examines how higher education students can approach the gap that many companies in transition are struggling with today; that of thinking within the closed loops of their own ecosystem, to do good without damaging the system itself. Design students should be able to assess and advise on product design choices within such systems after graduation. We know when tackling a design challenge, teams have difficulties sifting through the mass of information they encounter, and many obstacles are encountered by students and their professional clients when trying to implement systems thinking into their design process. While biomimicry offers guidelines and methodology, there is insufficient research on complex, systems-level problem solving that systems thinking biomimicry requires. This study looks at factors found in course exercises, through student surveys and interviews that helped (novice) professionals initiate systems thinking methods as part of their strategy. The steps found in this research show characteristics from student responses and matching educational steps which enabled them to develop their own approach to challenges in a systems thinking manner. Experiences from the 2022 cohort of the semester “Design with Nature” within the Industrial Design Engineering program at The Hague University of Applied Sciences in the Netherlands have shown that the mixing and matching of connected biological design strategies to understand integrating functions and relationships within a human system is a promising first step. Stevens LL, Whitehead C, Singhal A. Cultivating Cooperative Relationships: Identifying Learning Gaps When Teaching Students Systems Thinking Biomimicry. Biomimetics. 2022; 7(4):184. https://doi.org/10.3390/biomimetics7040184
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Teacher beliefs have been shown to play a major role in shaping educational practice, especially in the area of grammar teaching―an area of language education that teachers have particularly strong views on. Traditional grammar education is regularly criticized for its focus on rules-of-thumb rather than on insights from modern linguistics, and for its focus on lower order thinking. A growing body of literature on grammar teaching promotes the opposite, arguing for more linguistic conceptual knowledge and reflective or higher order thinking in grammar pedagogy. In the Netherlands, this discussion plays an important role in the national development of a new curriculum. This study explores current Dutch teachers’ beliefs on the use of modern linguistic concepts and reflective judgment in grammar teaching. To this end, we conducted a questionnaire among 110 Dutch language teachers from secondary education and analyzed contemporary school textbooks likely to reflect existing teachers’ beliefs. Results indicate that teachers generally appear to favor stimulating reflective judgement in grammar teaching, although implementing activities aimed at fostering reflective thinking seems to be difficult for two reasons: (1) existing textbooks fail to implement sufficient concepts from modern linguistics, nor do they stimulate reflective thinking; (2) teachers lack sufficient conceptual knowledge from linguistics necessary to adequately address reflective thinking.
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In recent decades, technology has influenced various aspects of assessment in mathematics education: (1) supporting the assessment of higher-order thinking skills in mathematics, (2) representing authentic problems from the world around us to use and apply mathematical knowledge and skills, and (3) making the delivery of tests and the analysis of results through psychometric analysis more sophisticated. We argue that these developments are not pushing mathematics education in the same direction, however, which creates tensions. Mathematics education—so essential for educating young people to be creative and problem solving agents in the twenty-first century—is at risk of focusing too much on assessment of lower order goals, such as the reproduction of procedural, calculation based, knowledge and skills. While there is an availability of an increasing amount of sophisticated technology, the related advances in measurement, creation and delivery of automated assessments of mathematics are however being based on sequences of atomised test items. In this article several aspects of the use of technology in the assessment of mathematics education are exemplified and discussed, including in relation to the aforementioned tension. A way forward is suggested by the introduction of a framework for the categorisation of mathematical problem situations with an increasing sophistication of representing the problem situation using various aspects of technology. The framework could be used to reflect on and discuss mathematical assessment tasks, especially in relation to twenty-first century skills.
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Over the last two decades, institutions for higher education such as universities and colleges have rapidly expanded and as a result have experienced profound changes in processes of research and organization. However, the rapid expansion and change has fuelled concerns about issues such as educators' technology professional development. Despite the educational value of emerging technologies in schools, the introduction has not yet enjoyed much success. Effective use of information and communication technologies requires a substantial change in pedagogical practice. Traditional training and learning approaches cannot cope with the rising demand on educators to make use of innovative technologies in their teaching. As a result, educational institutions as well as the public are more and more aware of the need for adequate technology professional development. The focus of this paper is to look at action research as a qualitative research methodology for studying technology professional development in HE in order to improve teaching and learning with ICTs at the tertiary level. The data discussed in this paper have been drawn from a cross institutional setting at Fontys University of Applied Sciences, The Netherlands. The data were collected and analysed according to a qualitative approach.
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In higher education, design thinking is often taught as a process. Yet design cognition resides in action and design practices. Dewey’s pragmatism offers a solid epistemology for design thinking. This paper describes a design research whereby Dewey’s inquiry served as the foundation for educating students. Three extensive educational case studies are presented whereby a design inquiry was introduced and became part of the curricula. It was found that students and coaches struggled with doubts experienced as a result of the co-evolution of problem and solution, means and ends. Four coping mechanisms were observed: (1) focus on problems, risking analysis paralysis; (2) focus on creative problem-solving, risking unsubstantiated design; (3) focus on means, risking fixation; and (4) focus on future ends, risking hanging on to a dream. By establishing a joint practice and a community of learnersthrough show-andshare sessions, the students establish solid ground.
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Visual Thinking (VT) is concerned with the use of visual resources (diagrams, simple drawings, short texts) to represent, organize or communicate ideas or contents. VT aims to favor the understanding of concepts to `translate' to a visual representation a content or process. Lower thinking skills to remember and understand concepts are necessary as much as higher order skills to filter, manage and spatially organize contents. VT offers us a slower, but more effective, way to learn and teachers are increasingly using VT for educational purposes in their lectures. Within the VT techniques, we have set ourselves in the so-called canvas as a template that allows to visually structuring the fundamental elements of an entity or process. As an example of use in the educational field, the PBL canvas proposed by conecta13, describes a Project Based Learning process in nine steps (key competences, learning standards, evaluation method, final product, tasks, resources, ICT tools, grouping and organization and dissemination). On the other hand, we find the need to encourage Science, Technonoloy, Engineering and Mathematics (STEM) vocations, especially in women, given the decreasing interest in these areas (Science, Mathematics, Engineering and Mathematics) considered more arid and boring by students. This makes us to face a paradoxical crossroad, since much of the jobs of the future will be linked to these fields. It is therefore necessary to bring the methodology of scientific thinking closer to the students by presenting it in accessible ways. Here we propose a canvas that provides a visual structure to represent graphically the various steps of the scientific method. These steps include the systematic observation, formulation of hypothesis, design of the experiment to prove or discard them, to finally elaborate some conclusions leading to development of a theory. The canvas is used as a visual tool to support the design to summarize the results of the scientific experiment, to cover the different steps in a schematic way either with text or graphically. An empty template is provided as well as different examples of the canvas covered with experiments that can be carried out in different pre-university educational levels. In order to let this canvas become part of the public domain it is released under the Creative Commons Attribution-Share Alike license, so that anyone can use it, copy or modify by free, with the only condition of attributing the corresponding authorship and keeping the license open.
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Biomimicry education is grounded in a set of natural design principles common to every known lifeform on Earth. These Life’s Principles (LPs) (cc Biomimicry 3.8), provide guidelines for emulating sustainable strategies that are field-tested over nearly four billion years of evolution. This study evaluates an exercise for teaching LPs to interdisciplinary students at three universities, Arizona State University (ASU) in Phoenix, Arizona (USA), College of Charleston (CofC) in Charleston, South Carolina (USA) and The Hague University of Applied Sciences (THUAS) in The Hague (The Netherlands) during the spring 2021 semester. Students researched examples of both biological organisms and human designs exhibiting the LPs. We gauged the effectiveness of the exercise through a common rubric and a survey to discover ways to improve instruction and student understanding. Increased student success was found to be directly linked to introducing the LPs with illustrative examples, assigning an active search for examples as part of the exercise, and utilizing direct assessment feedback loops. Requiring students to highlight the specific terms of the LP sub-principles in each example is a suggested improvement to the instructions and rubric. An iterative, face-to-face, discussion-based teaching and learning approach helps overcome minor misunderstandings. Reiterating the LPs throughout the semester with opportunities for application will highlight the potential for incorporating LPs into students’ future sustainable design process. Stevens LL, Fehler M, Bidwell D, Singhal A, Baumeister D. Building from the Bottom Up: A Closer Look into the Teaching and Learning of Life’s Principles in Biomimicry Design Thinking Courses. Biomimetics. 2022; 7(1):25. https://doi.org/10.3390/biomimetics7010025
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Educational policies in the Netherlands reveal that the current mainstream participatory approach to citizenship education jeopardises students’ autonomy. Especially in Dutch post-secondary vocational education, citizenship education has been shown to be mainly aimed at socialization: initiating students into tradition, internalising rules, societal norms and values. This article reports on the findings of a research project, which is grounded in the assumption that integrating Bildung, citizenship education and critical thinking is a promising way to grapple with the perceived overemphasis on socialization strategies. We justify the interrelationship of critical thinking, Bildung, citizenship education, and professional training from two perspectives – historical and contemporary. It is only by combining these concepts, we contend, that educational professionals can create teaching materials more geared to developing autonomy, and prepare students in vocational training to navigate the political and societal dilemma’s on the work floor. Furthermore, we also clarify our perspective by offering three educational principles, used in our project to guide the design of teaching materials, that form a context for integrating citizenship, critical thinking, and Bildung in vocational education. A practical illustration is subsequently discussed.
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Professional higher education is expected to educate large numbers of students to become innovative professionals within a time frame of three or four years. A mission impossible? Not necessarily, according to Henriëtta Joosten who is a philosopher as well as a teacher. She uses the experimental, liberating, but also dangerous ideas of Friedrich Nietzsche to rethink contemporary higher professional education. What does it mean to teach students to strive for better in a professional world where horizons tend to disperse and the possibility of long-term orientation is disappearing? Following Nietzsche, five key elements of striving for better are explored: uncertainty, excellence, critical thinking, truth seeking friendship, and learning through ups and downs. From these five perspectives, Joosten scrutinises existing educational discourses on professional higher education in search for openings to transform these discourses into new, more appropriate ones. Understanding excellence as rising above oneself (rather than being better than others), she argues for a learning environment in which all students are encouraged to excel. Such an environment allows for uncertainty and learning through ups and downs. Furthermore, teachers are prepared to risk their certainties in order to let a joined quest - that is, a quest of students and teacher - for better truths arise. Using the Nietzschean-inspired notions which have been developed in the study, Joosten describes two factual cases. One case relates to a course in close reading: first-year students jointly read philosophical and scientific texts. The second case involves a group of eleven senior students developing a course in project management. These descriptions and the recommendations serve as a catalyst for constructive debate on the question of how all students can be equipped for a dynamic professional world.
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This publication by Kathryn Best accompanied the Lector’s inauguration as head of the research group Cross-media, Brand, Reputation & Design Management (CBRD) in January 2011. The book outlines current debates around the Creative Industries, business and design education and the place of ’well being’ in society, the environment and the economy, before focusing in on the place for design thinking in creative and innovation processes, and how this is driving new applied research agendas and initiatives in education and industry.
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