參考文獻 |
[1] M. Hegarty, R. E. Mayer, and C. A. Monk, "Comprehension of arithmetic word problems: A comparison of successful and unsuccessful problem solvers," Journal of educational psychology, vol. 87, no. 1, p. 18, 1995.
[2] C. J. Maker and M. Wearne, "Engaging gifted students in solving real problems creatively: Implementing the real engagement in active problem-solving (REAPS) teaching/learning model in Australasian and Pacific Rim contexts," Handbook of Giftedness and Talent Development in the Asia-Pacific, pp. 885-916, 2021.
[3] R. Gaschler, B. Vaterrodt, P. A. Frensch, A. Eichler, and H. Haider, "Spontaneous usage of different shortcuts based on the commutativity principle," PLoS One, vol. 8, no. 9, p. e74972, 2013.
[4] A. Ben Khedher, I. Jraidi, and C. Frasson, "Static and dynamic eye movement metrics for students’ performance assessment," Smart Learning Environments, vol. 5, pp. 1-12, 2018.
[5] S. Lalle, C. Conati, and R. Azevedo, "Prediction of student achievement goals and emotion valence during interaction with pedagogical agents," in Proceedings of the 17th International Conference on Autonomous Agents and MultiAgent Systems, 2018, pp. 1222-1231.
[6] D. Toker, S. Lalle, and C. Conati, "Pupillometry and head distance to the screen to predict skill acquisition during information visualization tasks," in Proceedings of the 22nd International Conference on Intelligent User Interfaces, 2017, pp. 221-231.
[7] F. Ke, R. Liu, Z. Sokolikj, I. Dahlstrom-Hakki, and M. Israel, "Using eye-tracking in education: review of empirical research and technology," Educational technology research and development, pp. 1-36, 2024.
[8] S. P. Liversedge, K. B. Paterson, and M. J. Pickering, "Eye movements and measures of reading time," in Eye guidance in reading and scene perception: Elsevier, 1998, pp. 55-75.
[9] J. H. Goldberg and X. P. Kotval, "Computer interface evaluation using eye movements: methods and constructs," International journal of industrial ergonomics, vol. 24, no. 6, pp. 631-645, 1999.
[10] K. Rayner, "Eye movements in reading and information processing: 20 years of research," Psychological bulletin, vol. 124, no. 3, p. 372, 1998.
[11] R. Radach, J. Hyona, and H. Deubel, The mind′s eye: Cognitive and applied aspects of eye movement research. Elsevier, 2003.
[12] C. I. Johnson and R. E. Mayer, "An eye movement analysis of the spatial contiguity effect in multimedia learning," Journal of Experimental Psychology: Applied, vol. 18, no. 2, p. 178, 2012.
[13] A. Podlesek, M. Veldin, C. Peklaj, and M. Svetina, "Cognitive Processes and Eye-Tracking Methodology," in Applying Bio-Measurements Methodologies in Science Education Research: Springer, 2021, pp. 1-31.
[14] L. Zhu and J. Lv, "Review of studies on user research based on EEG and eye tracking," Applied Sciences, vol. 13, no. 11, p. 6502, 2023.
[15] Y. Jia and C. W. Tyler, "Measurement of saccadic eye movements by electrooculography for simultaneous EEG recording," Behavior research methods, vol. 51, pp. 2139-2151, 2019.
[16] M. Keskin, K. Ooms, A. O. Dogru, and P. De Maeyer, "Exploring the cognitive load of expert and novice map users using EEG and eye tracking," ISPRS International Journal of Geo-Information, vol. 9, no. 7, p. 429, 2020.
[17] M. Borys et al., "An analysis of eye-tracking and electroencephalography data for cognitive load measurement during arithmetic tasks," in 2017 10th International Symposium on Advanced Topics in Electrical Engineering (ATEE), 2017: IEEE, pp. 287-292.
[18] N. Peitek et al., "Correlates of programmer efficacy and their link to experience: A combined EEG and eye-tracking study," in Proceedings of the 30th ACM Joint European Software Engineering Conference and Symposium on the Foundations of Software Engineering, 2022, pp. 120-131.
[19] F. Paas, J. E. Tuovinen, H. Tabbers, and P. W. Van Gerven, "Cognitive load measurement as a means to advance cognitive load theory," in Cognitive Load Theory: Routledge, 2016, pp. 63-71.
[20] Z. Chen, Y. He, and Y. Yu, "Enhanced functional connectivity properties of human brains during in-situ nature experience," PeerJ, vol. 4, p. e2210, 2016.
[21] P. Antonenko, F. Paas, R. Grabner, and T. Van Gog, "Using electroencephalography to measure cognitive load," Educational psychology review, vol. 22, pp. 425-438, 2010.
[22] H. Lee, "Measuring cognitive load with electroencephalography and self-report: focus on the effect of English-medium learning for Korean students," Educational Psychology, vol. 34, no. 7, pp. 838-848, 2014.
[23] P. D. Antonenko and D. S. Niederhauser, "The influence of leads on cognitive load and learning in a hypertext environment," Computers in Human Behavior, vol. 26, no. 2, pp. 140-150, 2010.
[24] J. F. Cavanagh and M. J. Frank, "Frontal theta as a mechanism for cognitive control," Trends in cognitive sciences, vol. 18, no. 8, pp. 414-421, 2014.
[25] S. Schapkin, J. Raggatz, M. Hillmert, and I. Bockelmann, "EEG correlates of cognitive load in a multiple choice reaction task," Acta neurobiologiae experimentalis, vol. 80, no. 1, pp. 76-89, 2020.
[26] E. Tan et al., "Theta activity and cognitive functioning: Integrating evidence from resting-state and task-related developmental electroencephalography (EEG) research," Developmental Cognitive Neuroscience, vol. 67, p. 101404, 2024.
[27] A. Gevins et al., "Monitoring working memory load during computer-based tasks with EEG pattern recognition methods," Human factors, vol. 40, no. 1, pp. 79-91, 1998.
[28] E. Magosso, F. De Crescenzio, G. Ricci, S. Piastra, and M. Ursino, "EEG alpha power is modulated by attentional changes during cognitive tasks and virtual reality immersion," Computational intelligence and neuroscience, vol. 2019, no. 1, p. 7051079, 2019.
[29] A. Keil, T. Mussweiler, and K. Epstude, "Alpha-band activity reflects reduction of mental effort in a comparison task: a source space analysis," Brain Research, vol. 1121, no. 1, pp. 117-127, 2006.
[30] M. Sterman and C. Mann, "Concepts and applications of EEG analysis in aviation performance evaluation," Biological psychology, vol. 40, no. 1-2, pp. 115-130, 1995.
[31] W. Klimesch, "EEG alpha and theta oscillations reflect cognitive and memory performance: a review and analysis," Brain research reviews, vol. 29, no. 2-3, pp. 169-195, 1999.
[32] S. H. Fairclough and L. Venables, "Prediction of subjective states from psychophysiology: A multivariate approach," Biological psychology, vol. 71, no. 1, pp. 100-110, 2006.
[33] K. Ryu and R. Myung, "Evaluation of mental workload with a combined measure based on physiological indices during a dual task of tracking and mental arithmetic," International Journal of Industrial Ergonomics, vol. 35, no. 11, pp. 991-1009, 2005.
[34] R. Schmidt, M. H. Ruiz, B. E. Kilavik, M. Lundqvist, P. A. Starr, and A. R. Aron, "Beta oscillations in working memory, executive control of movement and thought, and sensorimotor function," Journal of Neuroscience, vol. 39, no. 42, pp. 8231-8238, 2019.
[35] B. A. Zavala, A. I. Jang, and K. A. Zaghloul, "Human subthalamic nucleus activity during non-motor decision making," Elife, vol. 6, p. e31007, 2017.
[36] B. Rott, B. Specht, and C. Knipping, "A descriptive phase model of problem-solving processes," ZDM–Mathematics Education, vol. 53, pp. 737-752, 2021.
[37] L. Bao, K. Koenig, Y. Xiao, J. Fritchman, S. Zhou, and C. Chen, "Theoretical model and quantitative assessment of scientific thinking and reasoning," Physical Review Physics Education Research, vol. 18, no. 1, p. 010115, 2022.
[38] V. Krassanakis, V. Filippakopoulou, and B. Nakos, "EyeMMV toolbox: An eye movement post-analysis tool based on a two-step spatial dispersion threshold for fixation identification," Journal of Eye Movement Research, vol. 7, no. 1, 2014.
[39] C. D. Tippett, "What recent research on diagrams suggests about learning with rather than learning from visual representations in science," International Journal of Science Education, vol. 38, no. 5, pp. 725-746, 2016.
[40] M. I. Bauer and P. N. Johnson-Laird, "How diagrams can improve reasoning," Psychological science, vol. 4, no. 6, pp. 372-378, 1993.
[41] C. Knox and D. Kimura, "Cerebral processing of nonverbal sounds in boys and girls," Neuropsychologia, vol. 8, no. 2, pp. 227-237, 1970.
[42] M. Hunter, "Right-Brained Kids in Left-Brained Schools," Today′s Education, vol. 65, no. 4, pp. 45-8, 1976.
[43] R. Rubenzer, "The role of the right hemisphere in learning & creativity implications for enhancing problem solving ability," Gifted Child Quarterly, vol. 23, no. 1, pp. 78-100, 1979.
[44] A. Marini, S. Carlomagno, C. Caltagirone, and U. Nocentini, "The role played by the right hemisphere in the organization of complex textual structures," Brain and language, vol. 93, no. 1, pp. 46-54, 2005.
[45] B. Raufi and L. Longo, "An Evaluation of the EEG alpha-to-theta and theta-to-alpha band Ratios as Indexes of Mental Workload," Frontiers in Neuroinformatics, vol. 16, p. 861967, 2022.
[46] D. Das Chakladar and P. P. Roy, "Cognitive workload estimation using physiological measures: A review," Cognitive Neurodynamics, vol. 18, no. 4, pp. 1445-1465, 2024.
[47] S. Puma, N. Matton, P.-V. Paubel, E. Raufaste, and R. El-Yagoubi, "Using theta and alpha band power to assess cognitive workload in multitasking environments," International Journal of Psychophysiology, vol. 123, pp. 111-120, 2018.
[48] O. Orun and Y. Akbulut, "Effect of multitasking, physical environment and electroencephalography use on cognitive load and retention," Computers in Human Behavior, vol. 92, pp. 216-229, 2019.
[49] C. Berka et al., "EEG correlates of task engagement and mental workload in vigilance, learning, and memory tasks," Aviation, space, and environmental medicine, vol. 78, no. 5, pp. B231-B244, 2007.
[50] T. Qin, W. Fias, N. Van de Weghe, and H. Huang, "Recognition of map activities using eye tracking and EEG data," International Journal of Geographical Information Science, vol. 38, no. 3, pp. 550-576, 2024.
[51] N. Hollenstein et al., "Reading task classification using EEG and eye-tracking data," arXiv preprint arXiv:2112.06310, 2021. |