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◆ Transportation Safety and Environment2026-06-11· Computer science

Enhancing Indoor Navigation of Mobile Robots with 2D Safety Scanners through Semantic Map Optimization and Parameter Tuning

Sadegh Refaeiabdolhosseinzadehneishabouri, Jiahao Huang, Steffen Junginger, Kerstin Thurow

原始摘要(英文原文)· Original abstract
Abstract This paper presents a navigation optimization of ASTI’s ProBOT L35 TC automated guided vehicle (AGV) using only its existing 2D SICK S300 safety scanner and SLAM-based navigation stack. The research addresses low navigation efficiency in a multi-floor, factory-like laboratory, where the default configuration caused slow driving, stop–spin behavior, doorway hesitations, and frequent ‘blocked-map’ aborts. The study combines targeted map optimization—preferred lines, narrow-corridor tags, waypoints, and forbidden zones—with detailed area geometries, including doorway regions, single-robot (one-way) sections, and stop-and-wait regions in front of constrained transitions. In parallel, key navigation parameters costmap inflation radius, preferred-line width, recovery behavior, fine-positioning timeouts, and speed limitswere systematically tuned. Across more than 200 autonomous missions on two floors, the optimized configuration reduced time-weighted travel time by approximately 46.1% on the second floor, 35.88% on representative third-floor segments, and about 37.53% on multi-floor elevator-related segments. Door-related hesitations and re-planning events were decreased by ~75%, ‘blocked-map’ aborts by ~80%, and navigation failures in the tightest laboratory—Labor 313, with a 95 cm doorway and an adjacent 107 cm corridor—both narrower than the minimum widths specified in the ProBOT/proANT-L documentation—by 75%, all while remaining compliant with ISO 3691–4. These results demonstrate that careful semantic map design and systematic parameter tuning can transform conservative stop-and-go AGV behavior into smooth, reliable, an efficient navigation.
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Enhancing Indoor Navigation of Mobile Robots with 2D Safety Scanners through Semantic Map Optimization and Parameter Tuning — 科研速览 Science Skim