Measuring Process Factors of Fluid Reasoning Using Multidimensional Computerized Adaptive Testing

被引:1
|
作者
Akhtar, Hanif [1 ,2 ]
Kovacs, Kristof [1 ]
机构
[1] Eotvos Lorand Univ, Budapest, Hungary
[2] Univ Muhammadiyah, Malang, Indonesia
关键词
fluid reasoning; MIRT; multidimensional CAT; inductive reasoning; deductive reasoning; Cattell-Horn-Carroll model; COGNITIVE-ABILITY; RESPONSE-TIME; INTELLIGENCE; VALIDATION; PSYTOOLKIT; PACKAGE; CAT;
D O I
10.1177/10731911241236351
中图分类号
B849 [应用心理学];
学科分类号
040203 ;
摘要
Although many fluid reasoning (Gf) tests have been developed, there is a lack of figural tests measuring its lower-order process factors simultaneously. The present article introduces the development of the Multidimensional Induction-Deduction Computerized Adaptive Test (MID-CAT) to measure two process factors of Gf. The MID-CAT is designed to provide an instrument that is flexible, efficient, and entirely free for non-commercial use. We created 530 items and administered them to a sample of N = 2,247. Items were fitted and calibrated using the Rasch model. The results indicate that the final item pool has a wide range of difficulties that could precisely measure a wide range of test-takers' abilities. A simulation study also indicates that MID-CAT provides greater measurement efficiency than separate-unidimensional CAT or fixed-item test. In the discussion, we provide perspectives on how the MID-CAT can be used for future research.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Using Response Time in Multidimensional Computerized Adaptive Testing
    He, Yinhong
    Qi, Yuanyuan
    [J]. JOURNAL OF EDUCATIONAL MEASUREMENT, 2023, 60 (04) : 697 - 738
  • [2] Multidimensional Computerized Adaptive Testing Simulations in R
    Araci, F. Gul Ince
    Tan, Seref
    [J]. INTERNATIONAL JOURNAL OF ASSESSMENT TOOLS IN EDUCATION, 2022, 9 (01): : 118 - 137
  • [3] Deriving Stopping Rules for Multidimensional Computerized Adaptive Testing
    Wang, Chun
    Chang, Hua-Hua
    Boughton, Keith A.
    [J]. APPLIED PSYCHOLOGICAL MEASUREMENT, 2013, 37 (02) : 99 - 122
  • [4] Trait parameter recovery using multidimensional computerized adaptive testing in reading and mathematics
    Li, YH
    Schafer, WD
    [J]. APPLIED PSYCHOLOGICAL MEASUREMENT, 2005, 29 (01) : 3 - 25
  • [5] Implementation and measurement efficiency of multidimensional computerized adaptive testing
    Wang, WC
    Chen, PH
    [J]. APPLIED PSYCHOLOGICAL MEASUREMENT, 2004, 28 (05) : 295 - 316
  • [6] Multidimensional computerized adaptive testing in a certification or licensure context
    Luecht, RM
    [J]. APPLIED PSYCHOLOGICAL MEASUREMENT, 1996, 20 (04) : 389 - 404
  • [7] Using computerized adaptive testing
    Croudace, Tim
    [J]. HEALTH AND QUALITY OF LIFE OUTCOMES, 2016, 14
  • [8] Applying multidimensional computerized adaptive testing to the MSQOL-54
    Giordano, Andrea
    Testa, Silvia
    Bassi, Marta
    Cilia, Sabina
    Bertolotto, Antonio
    Quartuccio, Maria Esmeralda
    Pietrolongo, Erika
    Falautano, Monica
    Grobberio, Monica
    Niccolai, Claudia
    Allegri, Beatrice
    Viterbo, Rosa Gemma
    Confalonieri, Paolo
    Giovannetti, Ambra Mara
    Cocco, Eleonora
    Grasso, Maria Grazia
    Lugaresi, Alessandra
    Ferriani, Elisa
    Nocentini, Ugo
    Zaffaroni, Mauro
    De Livera, Alysha
    Jelinek, George
    Solari, Alessandra
    Rosato, Rosalba
    [J]. QUALITY OF LIFE RESEARCH, 2020, 29 (SUPPL 1) : S89 - S90
  • [9] A New Online Calibration Method for Multidimensional Computerized Adaptive Testing
    Ping Chen
    Chun Wang
    [J]. Psychometrika, 2016, 81 : 674 - 701
  • [10] A Review of SimuMCAT: A Simulation Software for Multidimensional Computerized Adaptive Testing
    Sie, Haskell
    [J]. APPLIED PSYCHOLOGICAL MEASUREMENT, 2015, 39 (03) : 241 - 244