Development of mathematics teaching materials based on the scientific approach to facilitate students' mathematical problem–solving ability in statistics learning
DOI:
https://doi.org/10.30606/absis.v9i1.3483Keywords:
mathematics teaching materials, scientific approach, mathematical problem-solving ability, statistics learning, pendekatan saintifik, kemampuan pemecahan masalah matematis, pembelajaran statistikaAbstract
This study was motivated by students’ low mathematical problem-solving ability, which was caused by inappropriate learning approaches and the lack of teaching materials that support the development of mathematical problem-solving ability. This study aims to produce mathematics teaching materials based on a scientific approach that are valid and practical to facilitate students’ mathematical problem-solving ability in statistics material, specifically measures of central tendency, for Grade VIII SMP/MTs students. This research is development research using the Tessmer model, which consists of preliminary and formative evaluation stages, including self-evaluation, expert review, one-to-one evaluation, and small group evaluation. The instruments used were validation sheets and student response questionnaires. The results of validation by three experts showed that the teaching materials had a very high level of validity, with an average score of 87.4%. Readability and attractiveness tests through one-to-one evaluation, as well as practicality tests through small group evaluation involving 11 students, resulted in an average response score of 89.25%, which was categorized as very practical. These findings show that the developed teaching materials are feasible to use and can support the development of students’ mathematical problem-solving ability. The contribution of this research lies in the explicit integration of the scientific approach into the structure of teaching materials to facilitate mathematical problem-solving ability. The implication of this research shows that developing teaching materials based on the scientific approach can be a strategic solution for improving the quality of mathematics learning at the junior high school level.
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Asmaranti, W., Pratama, G. S., & Wisniarti. (2018). Desain lembar kerja peserta didik (LKPD) matematika dengan pendekatan saintifik berbasis pendidikan karakter. In Prosiding Seminar Nasional Etnomatnesia (pp. 639–646).
Clarke, D., & Roche, A. (2018). Using contextualized tasks to engage students in meaningful and worthwhile mathematics learning. The Journal of Mathematical Behavior, 51, 95–108. https://doi.org/10.1016/j.jmathb.2017.11.006
Damayanti, N., & Kartini, K. (2022). Analisis kemampuan pemecahan masalah matematis siswa SMA pada materi barisan dan deret geometri. Mosharafa: Jurnal Pendidikan Matematika, 11(1).
https://doi.org/10.31980/mosharafa.v11i1.1162
Fuada, S. (2019). Pengujian validitas alat peraga pembangkit sinyal (oscillator) untuk pembelajaran workshop instrumentasi industri. In Prosiding Seminar Nasional Pendidikan. FKIP Universitas Muhammadiyah Ponorogo.
Harahap, E. R., & Surya, E. (2017). Kemampuan pemecahan masalah matematis siswa kelas VII dalam menyelesaikan persamaan linear satu variabel. Edumatica: Jurnal Pendidikan Matematika, 7(1), 44–54.
https://doi.org/10.22437/edumatica.v7i01.3874
Kementerian Pendidikan, Kebudayaan, Riset, dan Teknologi. (2021). Keputusan Menteri Pendidikan, Kebudayaan, Riset, dan Teknologi Republik Indonesia Nomor 371/M/2021 tentang Program Sekolah Penggerak.
Kurniawati, L. (2022). Pengembangan bahan ajar berbasis kemampuan pemecahan masalah pada materi kesebangunan dan kekongruenan. AJME: Algoritma Journal of Mathematics Education, 4(1), 10–20.
Maharani, Z., Sakur, & Armis. (2024). Improving mathematical problem-solving skills in ratio through the application of problem-based learning. Jurnal Absis: Jurnal Pendidikan Matematika dan Matematika, 7(2), 234–244. https://doi.org/10.30606/absis.v7i2.2602
Mason, J. (2019). Relationships between proof and examples: Comments arising from the papers in this issue. The Journal of Mathematical Behavior, 53, 339–347. https://doi.org/10.1016/j.jmathb.2017.07.005
McGrath, J., & Fischetti, J. (2019). What if compulsory schooling was a 21st century invention? Weak signals from a systematic review of the literature. International Journal of Educational Research, 95, 212–226.
https://doi.org/10.1016/j.ijer.2019.02.006
Nakakoji, Y., & Wilson, R. (2020). Interdisciplinary learning in mathematics and science: Transfer of learning for 21st century problem solving at university. Journal of Intelligence, 8(3), Article 32.
https://doi.org/10.3390/jintelligence8030032
Nugraha, M. R., & Basuki, B. (2021). Kesulitan kemampuan pemecahan masalah matematis siswa SMP di Desa Mulyasari pada materi statistika. Plusminus: Jurnal Pendidikan Matematika, 1(2). https://doi.org/10.31980/plusminus.v1i2.1259
Nurhidayati, S., Tayeb, T., & Baharuddin. (2017). Pengembangan bahan ajar matematika berbasis masalah untuk memfasilitasi pencapaian kemampuan penalaran pada pokok bahasan perbandingan kelas VII MTsN Model Makassar. MaPan: Jurnal Matematika dan Pembelajaran, 5(2), 236–250.
OECD. (2023). PISA 2022 results (Volume I): The state of learning and equity in education. OECD Publishing.
Polya, G. (1957). How to solve it: A new aspect of mathematical method (2nd ed.). Princeton University Press.
Pujiastuti, H., Haryadi, R., & Solihati, E. (2021). Pengembangan modul matematika berbasis kontekstual pada materi aljabar. AKSIOMA: Jurnal Program Studi Pendidikan Matematika, 10(1), 63. https://doi.org/10.24127/ajpm.v10i1.3392
Reyes, J. D., Insorio, A. O., Ingreso, M. L. V., Hilario, F. F., & Gutierrez, C. R. (2019). Conception and application of contextualization in mathematics education. International Journal of Education Studies in Mathematics, 6(1), 1–18.
Simon, M. A. (2018). An emerging methodology for studying mathematics concept learning and instructional design. The Journal of Mathematical Behavior, 52, 113–121. https://doi.org/10.1016/j.jmathb.2018.03.005
Skaalvik, E. M., Federici, R. A., & Klassen, R. M. (2015). Mathematics achievement and self-efficacy: Relations with motivation for mathematics. International Journal of Educational Research, 72, 129–136.
https://doi.org/10.1016/j.ijer.2015.06.008
Solomon, Y., & Croft, T. (2015). Understanding undergraduate disengagement from mathematics: Addressing alienation. International Journal of Educational Research, 79, 267–276. https://doi.org/10.1016/j.ijer.2015.10.006
Sriwahyuni, K., & Maryati, I. (2022). Kemampuan pemecahan masalah matematis siswa pada materi statistika. Plusminus: Jurnal Pendidikan Matematika, 2(2), 335–344.
Suraji, Maimunah, & Sehatta, S. (2018). Analisis kemampuan pemahaman konsep matematis dan kemampuan pemecahan masalah matematis siswa SMP pada materi sistem persamaan linear dua variabel (SPLDV). Suska Journal of Mathematics Education, 4(1), 9–16.
Toksoy, D., & Akdeniz, F. (2015). The effect of using manipulatives on students’ problem-solving skills in mathematics. International Journal of Mathematical Education in Science and Technology, 46(6), 871–884.
Zaslavsky, O. (2019). There is more to examples than meets the eye: Thinking with and through mathematical examples in different settings. The Journal of Mathematical Behavior, 53, 245–255.
https://doi.org/10.1016/j.jmathb.2017.10.001
Zuin, M., Rigatelli, G., Faggian, G., & Roncon, L. (2018). Mathematics and thrombolysis: Role of the mathematical modelling in understanding and developing blood clot fragmentation. European Journal of Internal Medicine, 54, e19–e20. https://doi.org/10.1016/j.ejim.2018.06.003
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