A computational model of student cognitive processes while solving a critical thinking problem in science

被引:6
|
作者
Lamb, Richard [1 ]
Firestone, Jonah [2 ]
Schmitter-Edgecombe, Maureen [3 ]
Hand, Brian [4 ]
机构
[1] SUNY Buffalo, Learning & Instruct, Amherst, NY USA
[2] Washington State Univ, Teaching & Learning, Tri Cities, WA USA
[3] Washington State Univ, Coll Arts & Sci, Pullman, WA 99164 USA
[4] Univ Iowa, Teaching & Learning, Iowa City, IA USA
来源
JOURNAL OF EDUCATIONAL RESEARCH | 2019年 / 112卷 / 02期
基金
中国国家自然科学基金;
关键词
Critical thinking; Piaget; computational models; cognition; elementary science; BRAIN; SYSTEMS; ARGUMENTATION; MATHEMATICS; SIMULATIONS; JUDGMENT; MIND;
D O I
10.1080/00220671.2018.1514357
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
Critical thinking when engaged in science problem solving around even simple tasks such as the Piagetian volume conservation task is a complex endeavor. Tasks such as the conservation task often require the interaction of multiple cognitive systems. Parity judgment, retrieval, and lateral thinking are three examples of such systems interacting with critical thinking during a student's attempt to solve the Piagetian task. The purpose of this computational ablation study is to establish the role of critical thinking as a necessary component of a system of cognition used for the completion of the Piagetian volume conservation task. This ablation study consists of three phases. The confidence interval between the ablation model and the elementary students do not overlap, indicating they are not statistically significantly different. This provides evidence that the model successfully emulates aspects of human cognition and the model can provide a robust picture of science student cognitive processes.
引用
收藏
页码:243 / 254
页数:12
相关论文
共 50 条
  • [31] T/E design based learning: assessing student critical thinking and problem solving abilities
    Susheela Shanta
    John G. Wells
    International Journal of Technology and Design Education, 2022, 32 : 267 - 285
  • [32] Critical Thinking Skills of an Eighth Grade Male Student with High Mathematical Ability in Solving Problem
    Ismail
    MATHEMATICS, INFORMATICS, SCIENCE AND EDUCATION INTERNATIONAL CONFERENCE (MISEIC), 2018, 947
  • [33] T/E design based learning: assessing student critical thinking and problem solving abilities
    Shanta, Susheela
    Wells, John G.
    INTERNATIONAL JOURNAL OF TECHNOLOGY AND DESIGN EDUCATION, 2022, 32 (01) : 267 - 285
  • [34] The influence of scaffolding for computational thinking on cognitive load and problem-solving skills in collaborative programming
    Shin, Yoonhee
    Jung, Jaewon
    Choi, Seohyun
    Jung, Bokmoon
    EDUCATION AND INFORMATION TECHNOLOGIES, 2025, 30 (01) : 583 - 606
  • [35] Creative Learning in Problem Solving and Development of Computational Thinking
    Da Silva, Tatyane S. C.
    De Melo, Jeane C. B.
    Tedesco, Patricia C. A. R.
    COMPUTER SUPPORTED EDUCATION (CSEDU 2020), 2021, 1473 : 199 - 215
  • [36] Competitive programming in computational thinking and problem solving education
    Yuen, Kevin K. F.
    Liu, Dennis Y. W.
    Leong, Hong Va
    COMPUTER APPLICATIONS IN ENGINEERING EDUCATION, 2023, 31 (04) : 850 - 866
  • [37] The Effect of Problem Based Learning Model and Creative Thinking Ability on Student's Problem Solving Ability
    Sahyar, Sahyar
    Noveri, Rizki
    PROCEEDINGS OF THE 2ND ANNUAL INTERNATIONAL SEMINAR ON TRANSFORMATIVE EDUCATION AND EDUCATIONAL LEADERSHIP (AISTEEL 2017), 2017, 104 : 107 - 112
  • [38] Implementing Problem Solving Environments for computational science
    Rana, OF
    Li, MZ
    Shields, MS
    Walker, DW
    Golby, D
    EURO-PAR 2000 PARALLEL PROCESSING, PROCEEDINGS, 2000, 1900 : 1345 - 1349
  • [39] Future problem solving environments for computational science
    Houstis, EN
    Rice, JR
    MATHEMATICS AND COMPUTERS IN SIMULATION, 2000, 54 (4-5) : 243 - 257
  • [40] Puzzle-Based Learning: Introducing Critical Thinking and Problem Solving for Computer Science and Engineering
    Sooriamurthi, Raja
    Falkner, Nickolas
    Michalewicz, Zbigniew
    SIGCSE 12: PROCEEDINGS OF THE 43RD ACM TECHNICAL SYMPOSIUM ON COMPUTER SCIENCE EDUCATION, 2011, : 663 - 663