作者
Ivo Bizon, Zhongju Li, Ahmad Nimr, Marwa Chafii, Gerhard P Fettweis
发表日期
2022/12/4
研讨会论文
GLOBECOM 2022-2022 IEEE Global Communications Conference
页码范围
4553-4557
出版商
IEEE
简介
Accurate indoor positioning for wireless communication systems represents an important step towards enhanced reliability and security, which are crucial aspects for realizing Industry 4.0. In this context, this paper presents an investigation on the real-world indoor positioning performance that can be obtained using a deep learning (DL)-based technique. For obtaining experimental data, we collect power measurements associated with reference positions using a wireless sensor network in an indoor scenario. The DL-based positioning scheme is modeled as a supervised learning problem, where the function that describes the relation between measured signal power values and their corresponding transmitter coordinates is approximated. We compare the DL approach to two different schemes with varying degrees of online computational complexity. Namely, maximum likelihood estimation and proximity …
引用总数
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I Bizon, Z Li, A Nimr, M Chafii, GP Fettweis - GLOBECOM 2022-2022 IEEE Global Communications …, 2022