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Learning Audio Feedback for Estimating Amount and Flow of Granular Material

机译:学习音频反馈以估计粒状材料的数量和流量

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Granular materials produce audio-frequency mechanical vibrations in air and structures when manipulated. These vibrations correlate with both the nature of the events and the intrinsic properties of the materials producing them. We therefore propose learning to use audio-frequency vibrations from contact events to estimate the flow and amount of granular materials during scooping and pouring tasks. We evaluated multiple deep and shallow learning frameworks on a dataset of 13,750 shaking and pouring samples across five different granular materials. Our results indicate that audio is an informative sensor modality for accurately estimating flow and amounts, with a mean RMSE of 2.8g across the five materials for pouring. We also demonstrate how the learned networks can be used to pour a desired amount of material.
机译:粒状材料在操纵时产生空气和结构的音频机械振动。这些振动与事件的性质和产生它们的材料的本质性质相关。因此,我们建议使用从接触事件中使用音频振动来估计挖掘和倾倒任务期间颗粒材料的流量和数量。我们在数据集中评估了多个深层浅的学习框架,在13,750次摇晃和浇注五种不同的颗粒材料上的样品。我们的结果表明,音频是一种信息性传感器模式,用于准确地估计流量和量,平均RMSE横跨五种材料浇注。我们还展示了学习网络如何用于倾吐所需数量的材料。

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