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Steven Higbee; Devany Harrell; Anthony Chase; Sharon Miller – Biomedical Engineering Education, 2025
Purpose: Engineering students gain confidence and competency through continual practice of key skills. The social cognitive theory construct of self-efficacy provides a useful measure to assess students' beliefs in their ability to succeed or perform tasks. Research focused on the impacts of curricular engineering design experiences on student…
Descriptors: Biomedicine, Engineering Education, Undergraduate Students, Self Efficacy
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Samuel A. Acuña – Biomedical Engineering Education, 2024
Should your department offer a course on how to be a scientist and a successful graduate student? We offer this course at George Mason University as a mandatory part of the graduate curriculum, but this is not common practice for graduate biomedical engineering programs. Graduate education in biomedical engineering is evolving rapidly, with an…
Descriptors: Biomedicine, Engineering Education, Graduate Students, Courses
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Marissa Gray; Jennifer R. Amos; Soraya Bailey; K. Jane Grande-Allen; Celinda Kofron; Sabriya Stukes – Biomedical Engineering Education, 2024
Authored by six current and former Biomedical Engineering (BME) Master's Program Directors, this article aims to summarize the types of BME master's programs that are offered in the U.S., delve into the value of BME master's programs, and reveal concerns of BME master's students and directors that are exacerbated among international and…
Descriptors: Biomedicine, Masters Programs, Engineering Education, Student Attitudes
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Suzanne Lightsey; Michele Dill; Madison Temples; Taylor Yeater; Sarah Furtney – Biomedical Engineering Education, 2024
Hands-on laboratory courses seldom appear in biomedical engineering (BME) graduate programs, thus limiting graduate students' ability to acquire wet laboratory skills like cell culturing. At large, BME graduate programs rely on ad hoc training provided by senior graduate students; however, this method cannot be extended to new or non-BME…
Descriptors: Graduate Students, Engineering Education, Biomedicine, Cooperative Learning
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Ellen P. Brennan-Pierce; Susan G. Stanton; Julie A. Dunn – Biomedical Engineering Education, 2025
Clinical immersion programs provide opportunities for biomedical engineering (BME) students to observe the clinical environment and medical devices in use, often leading to the identification of unmet clinical needs. Due to hospital restrictions during the COVID-19 pandemic, in-person clinical immersion programs were generally not possible in…
Descriptors: Biomedicine, COVID-19, Pandemics, Technology Uses in Education
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Lyn Denend; Ross Venook; Ravinder D. Pamnani; Kunj Sheth; Joseph Towles – Biomedical Engineering Education, 2024
In design-oriented biomedical engineering courses, some instructors teach need-driven methods for health technology innovation that use a "need statement" to reflect a student team's hypothesis about the most fruitful direction for their project. While need statements are of the utmost importance to the projects, we were not aware of any…
Descriptors: Scoring Rubrics, Biomedicine, Engineering Education, Student Projects
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Marissa L. Gray; Celinda M. Kofron – Biomedical Engineering Education, 2024
We have implemented a jigsaw framework in our biomedical engineering capstone design course by overlaying strategic consideration groups across our design teams. Collaboration in design courses is usually focused within a design team with some peer feedback, but opportunities to work across teams are often limited. The purpose of this teaching tip…
Descriptors: Biomedicine, Design, Cooperative Learning, Engineering Education
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Isabel Miller; Grisel Lopez-Alvarez; M. Teresa Cardador; Karin J. Jensen – Biomedical Engineering Education, 2024
Biomedical engineering is a broad and interdisciplinary field that prepares graduates for a variety of careers across multiple career sectors. Given this breadth, undergraduate degree programs often have formal or informal opportunities for students to further specialize within the biomedical engineering major to develop skills in subdisciplines…
Descriptors: Career Choice, Decision Making, Biomedicine, Engineering Education
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Caroline Cvetkovic; Sarah Lindley; Holly Golecki; Robert Krencik – Biomedical Engineering Education, 2024
Biomedical engineering (BME) is a multidisciplinary, constantly advancing field; as such, undergraduate programs in BME must continually adapt. Elective courses provide opportunities for students to select topic areas relevant to their interests or future careers. Specifically, laboratory courses allow experiential learning in specialized topics…
Descriptors: Experiential Learning, Laboratories, Biomedicine, Engineering Education
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Noah Goshi; Gregory Girardi; Hyehyun Kim; Erkin Seker – Biomedical Engineering Education, 2023
There is a need for novel teaching approaches to train biomedical engineers that are conversant across disciplines and have the technical skills to address interdisciplinary scientific and technological challenges. Here, we describe a graduate-level miniaturized biomedical device engineering course that has been taught over the last decade in…
Descriptors: Experiential Learning, Biomedicine, Equipment, Teaching Methods
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Patricia Jaimes; Elizabeth Bottorff; Theo Hopper; Javiera Jilberto; Jessica King; Monica Wall; Maria Coronel; Karin Jensen; Elizabeth Mays; Aaron Morris; James Weiland; Melissa Wrobel; David Nordsletten; Tershia Pinder-Grover – Biomedical Engineering Education, 2024
To broaden efforts for improving diversity, equity, and inclusion (DEI) in biomedical engineering (BME) education--a key area of emphasis is the integration of inclusive teaching practices. While BME faculty generally support these efforts, translating support into action remains challenging. This project aimed to address this need through a…
Descriptors: Biomedicine, Diversity, Equal Education, Inclusion
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T. Claire Davies; Jesse Manzin; Maya Meraw; Deborah S. Munro – Biomedical Engineering Education, 2023
As students gain more experience with design concepts, they should progress from novice to expert design thinkers. The purpose of this research was to identify the constructs of growth in design thinking (DT) over short- (one weekend) and long-term (10 weeks) design challenges. A DT mindset questionnaire was completed by students in a third-year…
Descriptors: Biomedicine, Engineering Education, Design, Thinking Skills
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Melikhan Tanyeri – Biomedical Engineering Education, 2025
Purpose: This paper describes a senior-level biomedical engineering course designed to educate students on primary literature analysis and effective scientific communication. The course integrates elements from both disciplines through in-class discussions of primary research articles and an innovative annotation project utilizing the Science in…
Descriptors: Documentation, Biomedicine, Engineering Education, Science Process Skills
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Jessica Hardin; Anna Carter; Lee Smith; Pema Lama; Anna Pasquantonio; Makenna Hakim – Anthropology & Education Quarterly, 2025
This ethnographic study investigates the teaching and learning of the design process in biomedical engineering classrooms. Through classroom fieldwork, we examine how faculty and students conceptualize and implement the design process, focusing on its linear teaching methods, the abstraction of users, and the reinforcement of expertise…
Descriptors: Engineering Education, Attitudes toward Disabilities, Design, Biomedicine
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David B. Knight; Dustin M. Grote; Timothy J. Kinoshita; Maura Borrego – Biomedical Engineering Education, 2024
Whether doctoral students are funded primarily by fellowships, research assistantships, or teaching assistantships impacts their degree completion, time to degree, learning outcomes, and short- and long-term career outcomes. Variations in funding patterns have been studied at the broad field level but not comparing engineering sub-disciplines. We…
Descriptors: Doctoral Students, Financial Support, Biological Sciences, Biomedicine
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