قارن الطرق
راجع الطرق التي اخترتها جنبًا إلى جنب؛ الصفوف المختلفة مميَّزة.
| تصميم الأساليب المختلطة للتثليث المتزامن× | التصميم التفسيري المتسلسل بالطرق المختلطة× | |
|---|---|---|
| المجال | تصميم البحث | تصميم البحث |
| العائلة | Process / pipeline | Process / pipeline |
| سنة النشأة≠ | 2007 (formally named in Creswell & Plano Clark, 1st ed.) | 2007 (formalized in Creswell & Plano Clark's mixed methods typology) |
| صاحب الطريقة | John W. Creswell & Vicki L. Plano Clark | John W. Creswell & Vicki L. Plano Clark |
| النوع | Mixed methods research design | Mixed methods research design |
| المصدر التأسيسي≠ | Creswell, J. W., & Plano Clark, V. L. (2011). Designing and Conducting Mixed Methods Research (2nd ed.). Sage. ISBN: 978-1412975179 | Creswell, J. W., & Plano Clark, V. L. (2018). Designing and Conducting Mixed Methods Research (3rd ed.). Sage. ISBN: 978-1483344379 |
| الأسماء البديلة | convergent parallel design, triangulation design, QUAN+QUAL concurrent design, simultaneous triangulation | explanatory sequential design, QUAN → qual design, two-phase explanatory design, sequential explanatory design |
| ذات صلة≠ | 5 | 6 |
| الملخص≠ | The concurrent triangulation mixed methods design collects quantitative and qualitative data simultaneously, analyzes each strand independently, and then merges the results to assess whether the two data sources corroborate one another. Often called the convergent parallel design, it is one of the foundational configurations in mixed methods research and is chosen specifically when the researcher wants to cross-validate or triangulate findings from two distinct methodological traditions. | The explanatory sequential mixed methods design is a two-phase research approach in which a quantitative study is conducted first, and qualitative data are then collected specifically to help explain or elaborate the initial quantitative results. The quantitative phase carries greater priority; the qualitative phase is purposefully built around the findings — such as surprising results, outliers, or statistically significant relationships — that need deeper interpretation. |
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