Xi Vincent Wang

dblp:65/11273 · DBLP profile ↗
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9ranked-venue papers in the field
0as first author
9since 2021 · last 2026
0000-0001-9694-0483ORCID · verified

Domains — venue-derived; a paper can count in several

Other / Interdisciplinary · 9
YearPublicationVenuePosition
2026 Physics-informed embodied intelligence in the foundation model era: Advancing robot manipulation for smart manufacturing
Cheng Liu 0004, Jianzhuang Zhao, Pai Zheng, Xi Vincent Wang
Adv. Eng. Informatics5
2026 Spatiotemporal dynamic modeling approach for distributed thermal processes under digital twin framework
Tianyue Wang, Han-Xiong Li, Xi Vincent Wang
Adv. Eng. Informatics4
2026 FineMLD: A fine-grained motion latent diffusion for human motion prediction in Human-robot Collaboration
Ruirui Zhong, Bingtao Hu, Yixiong Feng, Qiang Qin, Xi Vincent Wang, Lihui Wang 0001, Jianrong Tan
Adv. Eng. Informatics6
2026 Fatigue delamination shape prognostics in composites using numerical simulation-assisted transfer learning
Ruirui Zhong, Xi Vincent Wang, Manuel Chiachío, Francesco Cadini, Claudio Sbarufatti, Tianzhi Li
Adv. Eng. Informatics2
2025 Dynamic adaptive fault diagnosis using multi-channel image fusion and deep learning in channel failure occasions on rolling bearings
Binbin Qiu, Weidong Li 0001, Xi Vincent Wang, Lihui Wang 0001
Adv. Eng. Informatics4
2025 A human-inspired slow-fast dual-branch method for product quality prediction of complex manufacturing processes with hierarchical variations
Tianyu Wang 0007, Zongyang Hu, Mian Li 0001, Xi Vincent Wang
Adv. Eng. Informatics6
2025 A data-efficient and general-purpose hand-eye calibration method for robotic systems using next best view
Shuming Yi, Sichao Liu, Sijie Yan, Xi Vincent Wang, Lihui Wang 0001
Adv. Eng. Informatics5
2024 Safety-aware human-centric collaborative assembly
abstract
Manufacturing systems envisioned for factories of the future will promote human-centricity for close collaboration in a shared working environment towards better overall productivity within the context of Industry 5.0. Robust and accurate recognition and prediction of human intentions are crucial to reliable and safe collaborative operations between humans and robots. For this purpose, this paper proposed a safety-aware human-centric collaborative assembly approach driven by function blocks, human action recognition for intention detection, and collision avoidance for safe robot control. Within the context, a deep learning-based recognition system is developed for high-accuracy human intention recognition and prediction, and an assembly feature-based approach driven by function blocks is presented for assembly execution and control. Thus, assembly features and human behaviours during assembly are formulated to support safe assembly actions. Skeleton-based human behaviours are defined as control inputs to an adaptive safety-aware scheme. The scheme includes collaborative and parallel mode-based pre-warning and obstacle avoidance approaches for a human-centric collaborative assembly system. The former is to monitor and regulate robot control modes when working in parallel with humans, and the latter uses a position-based approach to control robot actions by adaptively adjusting obstacle avoidance trajectories in a dynamic collaborative environment. The findings of this paper reveal the effectiveness of the developed system, as experimentally validated through an engine-assembly case study.
Shuming Yi, Sichao Liu, Sijie Yan, Daqiang Guo, Xi Vincent Wang, Lihui Wang 0001
Adv. Eng. Informatics6
2024 A blockchain-empowered secure federated domain generalization framework for machinery fault diagnosis
Shucheng Zhang, Pei Jiang 0006, Xiaobin Li 0002, Xi Vincent Wang
Adv. Eng. Informatics5