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Gait events detection from heel and toe trajectories: comparison of methods using multiple datasets

机译:步态事件从脚后跟和脚趾轨迹检测:使用多个数据集的方法比较

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Reliable detection of gait events is important to ensure accurate assessment of gait. While it is usually performed resorting to force platforms, methods based uniquely on kinematic analysis have also been proposed. These methods place no restrictions on the number of steps that can be analysed, simplifying setup and complexity of assessments. They also replace the need of annotating events manually when force platforms are not available. Although few methods have been proposed in literature, validation studies are relatively scarce. In this study we present multiple methods for the detection of heel strike (HS) and toe off (TO) in normal walking, and validate the detection against annotated events using three different datasets. The best performing candidates are based on the evaluation of heel vertical velocity (for HS) and toe vertical acceleration (for TO), resulting in relative errors of -12.4 ± 32.9 ms for HS and of -15.5 ± 24.9 ms for TO. The method is compatible with barefoot and shod walking, constituting a convenient, fast and reliable alternative to automatic gait event detection using kinematic data.
机译:可靠地检测步态事件对于确保对步态准确评估非常重要。虽然通常进行诉诸强制平台,但也已经提出了基于运动学分析的方法。这些方法没有对可以分析的步数的限制,简化了评估的设置和复杂性。当强制平台不可用时,它们还将手动替换指注注注注注注释事件的需求。虽然文学中已经提出了很少的方法,但验证研究相对稀缺。在这项研究中,我们在正常行走中呈现了检测脚后跟击打(HS)和脚趾(to)的多种方法,并使用三个不同的数据集来验证针对注释事件的检测。最好的候选人基于对鞋跟垂直速度(用于HS)和脚趾垂直加速度(用于)的评估,导致HS的-12.4±32.9ms的相对误差和-15.5±24.9ms。该方法与赤脚和鞋面行走兼容,构成使用运动数据的自动步态事件检测方便,快速可靠的替代品。

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