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Motivational profiles in TIMSS mathe...
~
Michaelides, Michalis P.
Motivational profiles in TIMSS mathematicsexploring student clusters across countries and time /
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Motivational profiles in TIMSS mathematicsby Michalis P. Michaelides ... [et al.].
其他題名:
exploring student clusters across countries and time /
其他作者:
Michaelides, Michalis P.
出版者:
Cham :Springer International Publishing :2019.
面頁冊數:
xi, 144 p. :ill., digital ;24 cm.
Contained By:
Springer Nature eBook
標題:
MathematicsStudy and teaching.
電子資源:
https://doi.org/10.1007/978-3-030-26183-2
ISBN:
9783030261832$q(electronic bk.)
Motivational profiles in TIMSS mathematicsexploring student clusters across countries and time /
Motivational profiles in TIMSS mathematics
exploring student clusters across countries and time /[electronic resource] :by Michalis P. Michaelides ... [et al.]. - Cham :Springer International Publishing :2019. - xi, 144 p. :ill., digital ;24 cm. - IEA research for education ;v.7. - IEA research for education ;v.1..
1. Introduction to Motivational Profiles in TIMSS Mathematics -- 2. The Relationship of Motivation with Achievement in Mathematics -- 3. Methodology: Cluster Analysis of Motivation Variables in the TIMSS Data -- 4. Cluster Analysis Results for TIMSS 2015 Mathematics Motivation by Grade and Jurisdiction -- 5. Cluster Analysis Findings Over 20 Years of TIMSS -- 6. Insights from Motivational Profiles in TIMSS Mathematics -- Appendix A -- Appendix B -- Appendix C.
Open access.
This open access book presents a person-centered exploration of student profiles, using variables related to motivation to do school mathematics derived from the IEA's Trends in International Mathematics and Science Study (TIMSS) data. Statistical cluster analysis is used to identify groups of students with similar motivational profiles, across grades and over time, for multiple participating countries. While motivational variables systematically relate to school outcomes, linear relationships can obscure the diverse makeup of student subgroups, each with varying combinations of motivation, emotions, and attitudes. In this book, a person-centered analysis of distinct and meaningful motivational profiles and their differences on sociodemographic variables and mathematics performance broadens understanding about the role that motivation characteristics play in learning and achievement in mathematics. Exploiting the richness of IEA's TIMSS data from many countries, extracted clusters reveal consistent, as well as certain nuanced patterns that are systematically linked to sociodemographic and achievement measures. Student clusters with inconsistent motivational profiles were found in all countries; mathematics self-confidence then emerged as the variable more closely associated with average achievement. The findings demonstrate that teachers, researchers, and policymakers need to take into account differential student profiles, prioritizing techniques that target skill and competence in mathematics, in educational efforts to develop student motivation.
ISBN: 9783030261832$q(electronic bk.)
Standard No.: 10.1007/978-3-030-26183-2doiSubjects--Corporate Names:
878565
Trends in International Mathematics and Science Study.
Subjects--Topical Terms:
189978
Mathematics
--Study and teaching.
LC Class. No.: QA11.2 / .M53 2019
Dewey Class. No.: 510.71
Motivational profiles in TIMSS mathematicsexploring student clusters across countries and time /
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1. Introduction to Motivational Profiles in TIMSS Mathematics -- 2. The Relationship of Motivation with Achievement in Mathematics -- 3. Methodology: Cluster Analysis of Motivation Variables in the TIMSS Data -- 4. Cluster Analysis Results for TIMSS 2015 Mathematics Motivation by Grade and Jurisdiction -- 5. Cluster Analysis Findings Over 20 Years of TIMSS -- 6. Insights from Motivational Profiles in TIMSS Mathematics -- Appendix A -- Appendix B -- Appendix C.
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This open access book presents a person-centered exploration of student profiles, using variables related to motivation to do school mathematics derived from the IEA's Trends in International Mathematics and Science Study (TIMSS) data. Statistical cluster analysis is used to identify groups of students with similar motivational profiles, across grades and over time, for multiple participating countries. While motivational variables systematically relate to school outcomes, linear relationships can obscure the diverse makeup of student subgroups, each with varying combinations of motivation, emotions, and attitudes. In this book, a person-centered analysis of distinct and meaningful motivational profiles and their differences on sociodemographic variables and mathematics performance broadens understanding about the role that motivation characteristics play in learning and achievement in mathematics. Exploiting the richness of IEA's TIMSS data from many countries, extracted clusters reveal consistent, as well as certain nuanced patterns that are systematically linked to sociodemographic and achievement measures. Student clusters with inconsistent motivational profiles were found in all countries; mathematics self-confidence then emerged as the variable more closely associated with average achievement. The findings demonstrate that teachers, researchers, and policymakers need to take into account differential student profiles, prioritizing techniques that target skill and competence in mathematics, in educational efforts to develop student motivation.
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