Research Article

Algebra errors and misconceptions: A teaching and learning opportunity

Eric Machisi 1 * , Mpho Gift Manamela 2
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1 Department of Mathematics, Fujairah Boys’ School, Fujairah, UNITED ARAB EMIRATES2 Department of Mathematics, Monyong Secondary School, Polokwane, SOUTH AFRICA* Corresponding Author
Contemporary Mathematics and Science Education, 7(1), January 2026, ep26001, https://doi.org/10.30935/conmaths/17739
Submitted: 18 April 2025, Published: 14 January 2026
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ABSTRACT

This study examines common algebra errors and misconceptions among grade 11 secondary school students in South Africa and proposes a classroom-based intervention strategy to turn these errors into learning opportunities. A purposive sample of 35 students from a public secondary school in Seshego Township, Polokwane, was selected for the study. Using students’ scripts from a district-level algebra test, the research utilized a mixed-methods case study design. Qualitative analysis was employed to categorize types of errors and provide interpretive explanations, while frequency counts and percentages were calculated to determine their prevalence. The results revealed three predominant misconceptions: misapplication of algebra rules (37.04%), illegal cancellation (48.15%), and cancellation errors (14.81%), most of which stemmed from prior learning experiences. Building on constructivist and sociocultural learning theories, the study introduced a collaborative, student-centered intervention using error-analysis worksheets integrated into daily lessons. This approach encouraged peer dialogue, reflection, and correction of misconceptions. A decrease in the frequency of errors and misconceptions was observed in the post-intervention assessment results. The study’s novelty lies in linking diagnostic error analysis with pedagogy to provide a replicable model for transforming algebraic mistakes and misconceptions into opportunities for conceptual growth. Despite being limited to one school, the findings offer new theoretical and practical insights into how error analysis can enhance metacognition, resilience, and instructional quality in mathematics. Future researchers are encouraged to conduct experimental studies on the proposed intervention to assess its effectiveness.

CITATION (APA)

Machisi, E., & Manamela, M. G. (2026). Algebra errors and misconceptions: A teaching and learning opportunity. Contemporary Mathematics and Science Education, 7(1), ep26001. https://doi.org/10.30935/conmaths/17739

REFERENCES

  1. Askew, M., & Wiliam, D. (1995). Recent research in mathematics education 5–16. HMSO.
  2. Awofala, A. O. (2012). An Analysis of the new 9-year basic education mathematics curriculum in Nigeria. Acta Didactica Napocensia, 5(1), 17-28. https://eric.ed.gov/?id=EJ1054294
  3. Barbieri, C. A., & Booth, J. L. (2020). Mistakes on display: Incorrect examples refine equation solving and algebraic feature knowledge. Applied Cognitive Psychology, 34(4), 862-878. https://doi.org/10.1002/acp.3663
  4. Boser, U. (2024). Confronting the math misconception spiral. Forbes. https://www.forbes.com/sites/ulrichboser/2024/03/15/confronting-the-math-misconception-spiral/
  5. Bruner, J. S. (1966). Toward a theory of instruction. Harvard University Press.
  6. Chinn, S. (2020). The trouble with maths: A practical guide to helping learners with numeracy difficulties. Routledge. https://doi.org/10.4324/9781003017714
  7. Clegg, A., Bregman, J., & Ottevanger, W. (2008). Uganda-secondary education and training: Curriculum, assessment, and examination (CURASSE): Roadmap for reform. ADEA. https://biennale.adeanet.org/2008/Documentation/Papers%20for%20presentation/07.%20Session%207/Parallel%20session%207A/Final%20PDF%20documents/Session%207A%20Doc%202%20World%20Bank%20ENG.pdf
  8. Costa, A. L., & Kallick, B. (2000). Habits of mind: Strategies for disciplined choice making. ASCD. https://thesystemsthinker.com/habits-of-mind-strategies-for-disciplined-choice-making/
  9. Demme, I. (2018). 6 reasons why we learn algebra. Demme Learning. https://demmelearning.com/why-we-learn-algebra/
  10. Dweck, C. S. (2006). Mindset: The new psychology of success. Random House.
  11. Flavell, J. H. (1979). Metacognition and cognitive monitoring: A new area of cognitive-developmental inquiry. American Psychologist, 34(10), 906-911. https://doi.org/10.1037/0003-066X.34.10.906
  12. Graham, M. A. (2023). Overcrowded classrooms and their association with South African learners’ mathematics achievement. African Journal of Research in Mathematics, Science and Technology Education, 27(2), 169-179. https://doi.org/10.1080/18117295.2023.2244217
  13. Great Schools Staff. (2021). Why is algebra so important? GreatSchools.org. https://www.greatschools.org/gk/articles/why-algebra/
  14. Gupta, U., & Zheng, R. Z. (2020). Cognitive load in solving mathematics problems: Validating the role of motivation and the interaction among prior knowledge, worked examples, and task difficulty. European Journal of STEM Education, 5(1), Article 05. https://doi.org/10.20897/ejsteme/9252
  15. Kazemi, E., & Hintz, A. (2014). Intentional talk: How to structure and lead productive mathematical discussions. Routledge. https://doi.org/10.4324/9781032681337
  16. Krall, G. (2018). Necessary conditions: Teaching secondary math with academic safety, quality tasks, and effective facilitation (1st ed.). Routledge. https://doi.org/10.4324/9781032681795
  17. Krzyzaniak, S. M., Kaplan, B., Lucas, D., Bradley, E., & Wolf, S. J. (2021). Unheard voices: A qualitative study of resident perspectives on remediation. Journal of Graduate Medical Education, 13(4), 507-514. https://doi.org/10.4300/JGME-D-20-01481.1
  18. Kshetree, M. P. (2018). Nature of mathematical content as a contributing factor for students’ mathematical errors. International Journal of Mathematics Trends and Technology, 58(4), 309-317. https://ijmttjournal.org/public/assets/volume-58/number-4/IJMTT-V58P541.pdf
  19. Lee, Y. F., Chen, P. Y., & Cheng, S. C. (2024). Improve learning retention, self-efficacy, learning attitude and problem-solving skills through e-books based on sequential multi-level prompting strategies. Education and Information Technologies, 29(3), 3663-3680. https://doi.org/10.1007/s10639-023-11994-0
  20. Lucariello, J. (2015). How do I get my students over their alternative conceptions (misconceptions) for learning. American Psychological Association. https://www.apa.org/education-career/k12/misconceptions
  21. Maharani, I. P., & Subanji, S. (2018). Scaffolding based on cognitive conflict in correcting the students’ algebra errors. International Electronic Journal of Mathematics Education, 13(2), 67-74. https://doi.org/10.12973/iejme/2697
  22. Majoni, C. (2017). Curriculum overload and its impact on teacher effectiveness in primary schools. European Journal of Education Studies, 3(3), Article 156. https://doi.org/10.5281/zenodo.290597
  23. Makamure, C. (2021). Examination of pre-service teachers’ error analysis skills in teaching differential calculus. Universal Journal of Educational Research, 9(11), 1826-1840. https://doi.org/10.13189/ujer.2021.091103
  24. Makonye, J. P., & Fakude, J. (2016). A study of errors and misconceptions in the learning of addition and subtraction of directed numbers in grade 8. SAGE Open, 6(4). https://doi.org/10.1177/2158244016671375
  25. Makonye, J., & Mashaka, H. (2016). Understanding of grade 10 learner errors and misconceptions in elementary algebra. Journal of Educational Studies, 1, 288-313. https://www.researchgate.net/publication/302598848_UNDERSTANDING_OF_GRADE_10_LEARNER_ERRORS_AND_MISCONCEPTIONS_IN_ELEMENTARY_ALGEBRA
  26. Mereku, D. K., & Anumel, C. R. (2011). Ghana’s achievement in mathematics in TIMSS 2007. Mathematics Connection, 10, 83-99. https://www.academia.edu/34056827/Ghanas_achievement_in_mathematics_in_TIMSS_2007
  27. Mulungye, M. M., O’Connor, M., & Ndethiu, S. (2016). Sources of student errors and misconceptions and in algebra and effectiveness of classroom practice remediation in Machakos County–Kenya. Journal of Education and Practice, 7(10), 31-33. https://files.eric.ed.gov/fulltext/EJ1099568.pdf
  28. Muthukrishnan, P., Kee, M., & Sidhu, G. (2019). Addition error patterns among preschool children. International Journal of Instruction, 12(2), 115-132. https://doi.org/10.29333/iji.2019.1228a
  29. Ndemo, O., & Ndemo, Z. (2018). Secondary school students’ errors and misconceptions in learning algebra. Journal of Education and Learning, 12(4), 690-701. https://doi.org/10.11591/edulearn.v12i4.9556
  30. Piaget, J. (1970). Science of education and the psychology of the child. Viking Press.
  31. Potari, D., Psycharis, G., Sakonidis, C., & Zachariades, T. (2019). Collaborative design of a reform-oriented mathematics curriculum: Contradictions and boundaries across teaching, research, and policy. Educational Studies in Mathematics, 102, 417-434. https://doi.org/10.1007/s10649-018-9834-3
  32. Pournara, C. (2020). Grade 9 learners’ algebra performance: Comparisons across quintiles, insights from errors and curriculum implications. South African Journal of Science, 116(9/10), Article 8125. https://doi.org/10.17159/sajs.2020/8125
  33. Russell, D. (2018). Algebra: Using mathematical symbols. ThoughtCo. https://www.thoughtco.com/what-is-algebra-why-take-algebra-2311937
  34. Samuel, T. S., & Warner, J. (2021). “I can math!”: Reducing math anxiety and increasing math self-efficacy using a mindfulness and growth mindset-based intervention in first-year students. Community College Journal of Research and Practice, 45(3), 205-222. https://doi.org/10.1080/10668926.2019.1666063
  35. Satianingrum, R. S., Syamsuri, S., & Satiani, Y. (2020). Analyzing students learning difficulties in algebra. MaPan: Jurnal Matematika dan Pembelajaran, 8(1), 19-34. https://doi.org/10.24252/mapan.2020v8n1a2
  36. Shahla, M., Kirmani, O. J., Sheikh, A. A., Mir, B. A., Zai, A. F., & Wani, S. R. (2023). Perfectionism: A double-edged sword. Journal of Namibian Studies: History, Politics, Culture, 33, 4263-4280. https://www.namibian-studies.com/index.php/JNS/article/view/6532
  37. Shields, D. J. (2007). Taking math anxiety out of math instruction. Nade Digest, 3(1), 55-64. https://files.eric.ed.gov/fulltext/EJ1097774.pdf
  38. Shin, T. S., Ranellucci, J., & Roseth, C. J. (2017). Effects of peer and instructor rationales on online students’ motivation and achievement. International Journal of Educational Research, 82, 184-199. https://doi.org/10.1016/j.ijer.2017.02.001
  39. Siller, H. S., & Ahmad, S. (2024). Analyzing the impact of collaborative learning approach on grade six students’ mathematics achievement and attitude towards mathematics. Eurasia Journal of Mathematics, Science and Technology Education, 20(2), Article em2395. https://doi.org/10.29333/ejmste/14153
  40. Silver, N., Kaplan, M., LaVaque-Manty, D., & Meizlish, D. (Eds.). (2023). Using reflection and metacognition to improve student learning: Across the disciplines, across the academy. Routledge. https://doi.org/10.4324/9781003448570
  41. Startup Info Team. (2021). Why is algebra important? 5 reasons why it is essential to learn. Startup.info. https://startup.info/why-is-algebra-important-5-reasons-why-it-is-essential-to-learn/
  42. Tobey, C. R. (2017). Identifying student misconceptions with formative assessment math probes. McGraw Hill Education.
  43. Tullis, J. G., & Goldstone, R. L. (2020). Why does peer instruction benefit student learning? Cognitive Research: Principles and Implications, 5, Article 15. https://doi.org/10.1186/s41235-020-00218-5
  44. Ung, T. S., Eng, L. S., & Khium, C. C. (2019). Errors and misconceptions in algebra: A case study of pre-commerce students at UITM Sarawak. Journal of Engineering and Applied Sciences, 14(3), 6165-6174. https://doi.org/10.36478/jeasci.2019.6165.6174
  45. Vygotsky, L. S. (1978). Mind in society: The development of higher psychological processes. Harvard University Press.
  46. Zambo, R., & Cleland, J. (2005). Integrating mathematics and the language arts. Academic Exchange Quarterly, 9(3), 156-161. https://www.thefreelibrary.com/Integrating+mathematics+and+the+language+arts.-a0138703680
  47. Zhang, J., Zhao, N., & Kong, Q. P. (2019). The relationship between math anxiety and math performance: A meta-analytic investigation. Frontiers in Psychology, 10, Article 1613. https://doi.org/10.3389/fpsyg.2019.01613
  48. Zuma, B. (2021). What adds up when teaching maths? Curiosity. https://www.wits.ac.za/curiosity/stories/what-adds-up-when-teaching-maths.html
  49. Zuya, H. E. (2014). Mathematics teachers’ responses to students’ misconceptions in algebra. International Journal of Research in Education Methodology, 6(2), 830-836. https://doi.org/10.24297/ijrem.v6i2.3880