日本フィジカルAI新聞

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週刊ニュースレター購読
ナビゲーションarXiv:2502.20731

自律ロボットナビゲーションのための屋内測位

Indoor Localization for Autonomous Robot Navigation

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RSSIと機械学習を用いた屋内測位システムで自律ロボットをナビゲートし、A*経路計画と組み合わせて角を曲がる実験を行った。

著者: Sean Kouma, Rachel Masters

分類: cs.RO, cs.LG

原文アブストラクト

Indoor positioning systems (IPSs) have gained attention as outdoor navigation becomes prevalent in everyday life. Research is being actively conducted on how indoor smartphone navigation can be accomplished and improved using received signal strength indication (RSSI) and machine learning (ML). IPSs have more use cases that need further exploration, and we aim to explore using IPSs for the indoor navigation of an autonomous robot. We collected a dataset and trained models to test on a robot. We also developed an A* path-planning algorithm so that our robot could navigate itself using predicted directions. After testing different network structures, our robot was able to successfully navigate corners around 50 percent of the time. The findings of this paper indicate that using IPSs for autonomous robots is a promising area of future research.

関連論文

PR本紙発行元 EmplifAI