Xiuzhi Deng

dblp:427/8020 · DBLP profile ↗
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3ranked-venue papers in the field
0as first author
3since 2021 · last 2026
—ORCID · none

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

Other / Interdisciplinary · 3
YearPublicationVenuePosition
2026 Worker intent recognition for human-crane collaboration: an uncertainty-aware and interpretable multimodal large language model
Siying Cao, Xiuzhi Deng, Jitong Zhao
Adv. Eng. Informatics4
2026 Real-time multimodal fusion and semantic mapping for robotic tower crane perception
abstract
Robotic tower crane operation requires real-time perception of complex and rapidly changing construction environments. Conventional Simultaneous Localization and Mapping (SLAM) methods assume smooth sensor motion and emphasize geometry over semantics, limiting their suitability for crane-mounted sensing affected by vibration, rotation, and intermittent movement. This research proposes a multimodal perception framework that integrates Light Detection and Ranging (LiDAR), camera, and Inertial Measurement Unit (IMU) data within a tightly coupled fusion and semantic reconstruction pipeline. A Mahony-filter-based attitude optimization module stabilizes high-frequency vibrations, while a Fast LiDAR-Inertial Odometry (FAST-LIVO2)-inspired LiDAR–visual–inertial fusion strategy achieves centimeter-level three-dimensional (3D) mapping. To enhance scene understanding, an improved Random Sampled and Lightweight Aggregated Network (RandLA-Net) jointly exploits geometric and visual cues for point-level semantic segmentation, with color-aware spatial encoding. Field deployment on an operational tower crane demonstrates superior performance, yielding the lowest global reconstruction errors and highest semantic accuracy. The framework provides a robust perception foundation for autonomous planning, safety monitoring, and intelligent lifting assistance.
Xiuzhi Deng, Peter E. D. Love, Weili Fang
Adv. Eng. Informatics2
2026 A framework for constructing datasets for construction-domain-general large language models
Zhiliang Ma, Yinhao Song, Xiuzhi Deng
Adv. Eng. Informatics5