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Trend-Centric Motion Visualization: Designing and Applying a New Strategy for Analyzing Scientific Motion Collections

机译:以趋势为中心的运动可视化:设计和应用分析科学运动集合的新策略

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摘要

In biomechanics studies, researchers collect, via experiments or simulations, datasets with hundreds or thousands of trials, each describing the same type of motion (e.g., a neck flexion-extension exercise) but under different conditions (e.g., different patients, different disease states, pre- and post-treatment). Analyzing similarities and differences across all of the trials in these collections is a major challenge. Visualizing a single trial at a time does not work, and the typical alternative of juxtaposing multiple trials in a single visual display leads to complex, difficult-to-interpret visualizations. We address this problem via a new strategy that organizes the analysis around motion trends rather than trials. This new strategy matches the cognitive approach that scientists would like to take when analyzing motion collections. We introduce several technical innovations making trend-centric motion visualization possible. First, an algorithm detects a motion collection's trends via time-dependent clustering. Second, a 2D graphical technique visualizes how trials leave and join trends. Third, a 3D graphical technique, using a median 3D motion plus a visual variance indicator, visualizes the biomechanics of the set of trials within each trend. These innovations are combined to create an interactive exploratory visualization tool, which we designed through an iterative process in collaboration with both domain scientists and a traditionally-trained graphic designer. We report on insights generated during this design process and demonstrate the tool's effectiveness via a validation study with synthetic data and feedback from expert musculoskeletal biomechanics researchers who used the tool to analyze the effects of disc degeneration on human spinal kinematics.
机译:在生物力学研究中,研究人员通过实验或模拟收集具有数百或数千次试验的数据集,每个试验描述的是相同类型的运动(例如,颈部屈伸运动),但条件不同(例如,不同的患者,不同的疾病状态) ,治疗前和治疗后)。分析这些馆藏中所有试验的异同是一项重大挑战。一次可视化单个试验是行不通的,将多个试验并置在单个视觉显示中的典型替代方法会导致复杂且难以解释的可视化。我们通过一种新策略解决了这个问题,该策略围绕运动趋势而不是试验组织分析。这一新策略与科学家在分析运动集合时希望采用的认知方法相匹配。我们介绍了几种技术创新,使以趋势为中心的运动可视化成为可能。首先,一种算法通过与时间有关的聚类来检测运动集合的趋势。其次,二维图形技术可视化试验如何离开和加入趋势。第三,一种3D图形技术,使用中值3D运动加上视觉差异指示器,可以使每个趋势内的一组试验的生物力学形象化。这些创新相结合,创建了一个交互式的探索性可视化工具,我们与领域科学家和受过传统训练的图形设计师合作,通过迭代过程进行了设计。我们将报告在此设计过程中产生的见解,并通过一项验证研究来证明该工具的有效性,该研究利用合成数据和专家肌肉骨骼生物力学研究人员的反馈进行了验证,他们使用该工具分析了椎间盘退变对人体脊柱运动学的影响。

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