Design of Dancing Robot Based on Machine Vision

Aiming at the application requirements of artificial intelligence and robotics, this paper adopts a lightweight and low-cost scheme to construct a dancing-robot system integrating machine vision, mechanical structure and motion control so as to improve its accurate human-motion imitation capability. It provides an important reference for the engineering application of motion imitation of humanoid robots. A human-pose visual-recognition model is built based on Python and deep-learning techniques. A monocular camera captures two-dimensional images, from which skeletal key-point coordinates are extracted via 3D reconstruction. Joint angles are calculated by inverse kinematics to supply core input data for motion imitation. Mechanically, a humanoid joint structure composed of 16 servos is adopted to realize one-to-one mapping and execution of joint angles. In hardware, a collaborative control circuit is constructed with the main-control module and servo-drive module as the core. Software implements data-parsing, instruction generation and closed-loop control. After system integration and debugging, the robot can stably and accurately reproduce simple human dance movements, which verifies the feasibility and effectiveness of the proposed scheme.

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Publication Details

Journal
Electronics
Published
2026-09-14
DOI
https://doi.org/10.3390/electronics15184161
Primary Topic
Human Motion and Animation
Type
article
Field-Weighted Citation Impact
0.00

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article

Design of Dancing Robot Based on Machine Vision

竜城 南, Dawei Gong, Yang Liu, Junmei Gong et al.
Electronics
Human Motion and Animation
article

Design of Dancing Robot Based on Machine Vision

竜城 南, Dawei Gong, Yang Liu, Junmei Gong, Dan Lai
article en

Abstract

Aiming at the application requirements of artificial intelligence and robotics, this paper adopts a lightweight and low-cost scheme to construct a dancing-robot system integrating machine vision, mechanical structure and motion control so as to improve its accurate human-motion imitation capability. It provides an important reference for the engineering application of motion imitation of humanoid robots. A human-pose visual-recognition model is built based on Python and deep-learning techniques. A monocular camera captures two-dimensional images, from which skeletal key-point coordinates are extracted via 3D reconstruction. Joint angles are calculated by inverse kinematics to supply core input data for motion imitation. Mechanically, a humanoid joint structure composed of 16 servos is adopted to realize one-to-one mapping and execution of joint angles. In hardware, a collaborative control circuit is constructed with the main-control module and servo-drive module as the core. Software implements data-parsing, instruction generation and closed-loop control. After system integration and debugging, the robot can stably and accurately reproduce simple human dance movements, which verifies the feasibility and effectiveness of the proposed scheme.

ElectronicsVol. 15(18)
University of Electronic Science and Technology of China (CN), Chengdu Medical College (CN)
Fundamental Research Funds for the Central Universities
Openalex Percentile: Top 15%
Human Motion and Animation
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Design of Dancing Robot Based on Machine Vision — 竜城 南, Dawei Gong, et al. · Electronics (2026) | TGRS Research Map | TGRS