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October 16, 20250 citationsOpen Access

A Multimodal Framework for Understanding Collaborative Design Processes

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MKMaurice KochNPNelusa PathmanathanDWDaniel Weiskopf

Key Points

  • The proposed framework improves understanding of collaborative design outcomes through multimodal analysis.
  • Workshops highlighted the framework's capabilities for integrating diverse data sources, improving decision-making.
  • The interactive analysis system allows exploration of data through videos, audio, and notes for deeper insights.
  • The study illustrates challenges in workshop planning and participant collaboration via detailed case studies.

Abstract

An essential task in analyzing collaborative design processes, such as those that are part of workshops in design studies, is identifying design outcomes and understanding how the collaboration between participants formed the results and led to decision-making. However, findings are typically restricted to a consolidated textual form based on notes from interviews or observations. A challenge arises from integrating different sources of observations, leading to large amounts and heterogeneity of collected data. To address this challenge we propose a practical, modular, and adaptable framework of workshop setup, multimodal data acquisition, AI-based artifact extraction, and visual analysis. Our interactive visual analysis system, reCAPit, allows the flexible combination of different modalities, including video, audio, notes, or gaze, to analyze and communicate important workshop findings. A multimodal streamgraph displays activity and attention in the working area, temporally aligned topic cards summarize participants' discussions, and drill-down techniques allow inspecting raw data of included sources. As part of our research, we conducted six workshops across different themes ranging from social science research on urban planning to a design study on band-practice visualization. The latter two are examined in detail and described as case studies. Further, we present considerations for planning workshops and challenges that we derive from our own experience and the interviews we conducted with workshop experts. Our research extends existing methodology of collaborative design workshops by promoting data-rich acquisition of multimodal observations, combined AI-based extraction and interactive visual analysis, and transparent dissemination of results.

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Cite This Study

Koch et al. (2025) studied this question.

synapsesocial.com/papers/68f12bfb2107091eab27a1b5https://doi.org/10.48550/arxiv.2508.06117
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