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Research Article

Self-regulated math instructions for pupils with learning disabilities

ORCID Icon | (Reviewing Editor)
Article: 1262306 | Received 17 Jul 2016, Accepted 13 Nov 2016, Published online: 21 Dec 2016

References

  • Agran, M., & Wehmeyer, M. (1999). Teaching problem solving to students with mental retardation. Innovations, 15, 1–30.
  • Bannert, M. (2008). Metacognitive prompting: Design and effects when learning with hypermedia. Paper presented in the AERA Annual Conference. Brussels.
  • Cohen, Z., & Kremarski, B. (2010). Developing self-regulated by teachers through reflective support in technological environment. J. Eshet Alcalay, A. Caspi, S. Eden, N. Geary, & J. Yaier (Eds.), Learning in the technological age. Chai’se conference book for research in learning technologies (pp. 15–22). Ra’anana: The Open University (in Hebrew).
  • Eyni, D. (2008). Improving the skills of self-regulated among students with learning disabilities at secondary school (MA thesis). Beit Berl College, Kfar-Sava (in Hebrew).
  • Fischbein, E. (1997). Intuition in science and mathematics: An educational approach. Dordrecht: Reidel.
  • Gazit, A. (2004). Teaching mathematics, interest and beauty – walked together and maybe not meant? In S. Gori-Rosenblatt (Ed.), Teachers in a world of changing - Trends and challenges (pp. 356–389). Ra’anana: The Open University (in Hebrew).
  • Gazit, A., & Patkin, D. (2009). The role of creativity in unconventional problem solving in series for mathematics teachers in elementary school and in teaching gifted students and other fields of knowledge (Strong Number 2000, Issue 17). Haifa: The National Center for Teachers of Mathematics in Primary Schools, the University of Haifa (in Hebrew).
  • Geary, D. G. (2004). Mathematics and learning disabilities. Journal of Learning Disabilities, 37, 4–15.10.1177/00222194040370010201
  • Gibbs, C. J. (2003). Explaining effective teaching: Self-efficacy and thought control of action. Journal of Education Enquiry, 4(2), 1–14.
  • Giron, T. (2009). The contribution of non-routine problems (Strong Number 2000, Issue 17). Haifa: The National Center for Teachers of Mathematics in Primary Schools, the University of Haifa (in Hebrew).
  • Grolnick, W. S., & Ryan, R. M. (2000). Self perceptions, motivation, and adjustment in children wite learning disabilities: A multiple group comp. Journal of Learning Disabilities, 23, 177–184.
  • Hakim, G., & Gazit, A. (2011). The role of creativity in unconventional problem solving in series for students (5th grade – 7th grade) compared to teachers of mathematics in primary school, and student teachers in other fields of knowledge (Strong Number 2000, Issue 20, pp. 40–48). Haifa: The National Center for Teachers of Mathematics in Primary School, University of Haifa (in Hebrew).
  • Israel Ministry of Education – Israel. (2006). Math curriculum for elementary schools of all sectors. Jerusalem: Ministry of Education (in Hebrew).
  • Israel Ministry of Education – Israel. (2012). Third grade math tests. Ramat Gan: The National Authority for Measurement and Evaluation (RAMA) (in Hebrew).
  • Kashti, Y., Arieli, M., & Shlasky, S. (1997). Lexicon of education and teaching. Tel Aviv: Ramot, Tel Aviv University (in Hebrew).
  • Kramarski, B., & Michalsky, T. (2009). Investigating preservice teachers’ professional growth in self-regulated learning environments. Journal of Educational Psychology, 101, 161–175 (in Hebrew).10.1037/a0013101
  • Margalit, M. (2003). Resilience model among individuals with learning disabilities: Proximal and distal influences. Learning Disabilities Research & Practice, 18, 82–86.10.1111/ldrp.2003.18.issue-2
  • Markovitz, Z. (2003). Mathematical events analysis in the class. Tel Aviv: MOFET Institute (in Hebrew).
  • Michalsky, T., & Kremarsky, B. (2008). Fostering independent learning among teachers in an online environment in relation to perceptions of learning and teaching. Trends, 2008 MH, 765–798 (in Hebrew).
  • National Joint Committee on Learning Disabilities. (2013). Learning disabilities issues on definition: Collective perspective on issues affecting learning disabilities. Austin, TX: PRO-ED.
  • Pintrich, P. R., & de Groot, E. V. (1990). Motivational and self regulated learning components of classroom academic performance. Journal of Educational Psychology, 82, 33–40.10.1037/0022-0663.82.1.33
  • Rab. (2014). Achievement gaps between boys and girls in mathematics and language - What can we learn from the analysis of these differences among students in Israel?. Ramat Gan: National Authority for Measurement and Evaluation in Education (in Hebrew).
  • Ross, J. A. (1995). Strategies for enhancing teachers’ beliefs in their effectiveness: Research on a school improvement hypothesis. Teachers College Record, 97, 227–251.
  • Scarpati, S., Malloy, T. E., & Fleming, R. (2000). Interpersonal perception of skill efficacy and behavioral control of adolescents with learning disabilities: A social relation approach. Learning Disability Quartely, 19, 15–22.
  • Schraw, G., Crippen, K. J., & Hartley, K. (2006). Promoting self-regulation in science education: Metacognition as part of a broader perspective on learning. Research in Science Education, 36, 111–139.10.1007/s11165-005-3917-8
  • Spelke, E. S. (2005). Sex differences in intrinsic aptitude for mathematics and science? A critical review. American Psychologist, 60, 950–958.10.1037/0003-066X.60.9.950
  • Yee, F. P. (2005). Developing creativity in the Singapore primary mathematics classes: Factors that support and inhibit. Thinking Classroom, 6, 14–46.
  • Yisraeli, T. (2008). Relationship between alternative assessment through exploration missions, and the motivation and achievement in science education in elementary schools religious state (MA thesis). Bar-Ilan University (in Hebrew).
  • Zimmerman, B. J. (2008). Investigating self-regulation and motivation: Historical background, methodological developments, and future prospects. American Educational Research Journal, 45, 166–183.10.3102/0002831207312909
  • Zohar, A. (2004). Higher order thinking in science classrooms: Students’ learning and teachers’ professional development. Dordrecht: Kluwer.10.1007/978-1-4020-1854-1