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3-D Dense Reconstruction of Vision-Based Tactile Sensor With Coded Markers

Hongxiang Xue, Fuchun Sun, Haoqiang Yu

发表年份
2023
引用次数
15

摘要

Perceiving accurate 3D object shape is an essential and challenging task for robotic manipulation, which is commonly based on vision systems. However, vision perception suffers from several limitations especially in manipulation tasks where objects are often occluded by the robotic hand. Alternativaly, tactile perception attracts lots of attentions. Due to the low resolution, the density and efficiency of existing tactile-based 3D reconstructions are limited. In order to solve the above problems, this paper describes a vision-based tactile sensor with coded markers. By combining the neighborhood structure coding method and U-net-based decoding algorithm, the sensor can reconstruct high-density 3D object shapes efficiently. Extensive experimental results show the promising sensitivity, accuracy, stability and robustness of our proposed sensor.

关键词

Computer visionArtificial intelligenceComputer scienceRobustness (evolution)Tactile sensorDecoding methodsCoding (social sciences)Cognitive neuroscience of visual object recognitionMachine visionObject detection

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