JOURNAL ARTICLE

Exploring Feature-Based Learning for Data-Driven Haptic Rendering

Anatolii SianovMatthias Harders

Year: 2018 Journal:   IEEE Transactions on Haptics Vol: 11 (3)Pages: 388-399   Publisher: Institute of Electrical and Electronics Engineers

Abstract

In this work we extend ideas of machine learning to the domain of data-driven haptic rendering. The proposed approach facilitates the processing of high-dimensional haptic interaction signals, which so far proved too difficult for existing data-driven methods. The key idea is to construct a compact feature space in the frequency domain which allows for efficient data reduction via a feature selection process. First, in a recording stage, extensive force and displacement datasets are acquired in automated measurements on deformable sample objects. These data are then transformed into a dimensionally reduced, compact frequency space representation. Next, feature-based learning is carried out in this feature space to significantly reduce the size of the original dataset. Based on this, time-domain haptic models capable of real-time performance are finally generated to encode the forces arising from bimanual object interactions. The presented processing chain is generally applicable and extendable to more complex interactions with even higher-dimensional data. The resulting haptic models are directly usable for data-driven haptic rendering. We illustrate the improved performance in comparison with previously existing data-processing approaches.

Keywords:
Haptic technology Computer science Artificial intelligence Rendering (computer graphics) Computer vision Feature vector USable Feature (linguistics) Feature extraction Pattern recognition (psychology)

Metrics

11
Cited By
0.89
FWCI (Field Weighted Citation Impact)
39
Refs
0.70
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Teleoperation and Haptic Systems
Physical Sciences →  Engineering →  Mechanical Engineering
Tactile and Sensory Interactions
Life Sciences →  Neuroscience →  Cognitive Neuroscience
Mechanics and Biomechanics Studies
Physical Sciences →  Engineering →  Biomedical Engineering

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