localization systems
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2022 ◽  
pp. 123-145
Author(s):  
Pelin Yildirim Taser ◽  
Vahid Khalilpour Akram

The GPS signals are not available inside the buildings; hence, indoor localization systems rely on indoor technologies such as Bluetooth, WiFi, and RFID. These signals are used for estimating the distance between a target and available reference points. By combining the estimated distances, the location of the target nodes is determined. The wide spreading of the internet and the exponential increase in small hardware diversity allow the creation of the internet of things (IoT)-based indoor localization systems. This chapter reviews the traditional and machine learning-based methods for IoT-based positioning systems. The traditional methods include various distance estimation and localization approaches; however, these approaches have some limitations. Because of the high prediction performance, machine learning algorithms are used for indoor localization problems in recent years. The chapter focuses on presenting an overview of the application of machine learning algorithms in indoor localization problems where the traditional methods remain incapable.


Author(s):  
Van Long Do ◽  
The Anh Luong ◽  
Anh Hung Hoang ◽  
Minh Tung Duong ◽  
Thai Binh Nguyen ◽  
...  

2021 ◽  
Author(s):  
Jumpei Matsumoto ◽  
Kouta Kanno ◽  
Masahiro Kato ◽  
Hiroshi Nishimaru ◽  
Tsuyoshi Setogawa ◽  
...  

Ultrasonic vocalizations in mice have recently been widely investigated as social behavior; however, using existing sound localization systems in home cages, which allow observations of more undisturbed behavior expressions, is challenging. We introduce a novel system, named USVCAM, that uses a phased microphone array and demonstrate novel vocal interactions under a resident-intruder paradigm. The extended applicability and usability of USVCAM may facilitate investigations of social behaviors and underlying physiological mechanisms.


2021 ◽  
Author(s):  
B Venkata Krishnaveni ◽  
K Suresh Reddy ◽  
P Ramana Reddy

2021 ◽  
Vol 2131 (5) ◽  
pp. 052062
Author(s):  
S I Ivanov ◽  
V D Kuptsov ◽  
A A Fedotov ◽  
V L Badenko

Abstract The work is devoted to the development of an algorithm for the optimal Radio Signal Time Delay Estimation Performance in passive location systems of stationary targets based on the TDOA method in two-dimensional space. A realistic model of the radio signal at the input of sensors (base station receivers) is considered, considering the random power value as a function of the distance to the source. The optimal estimate is based on the strategy of maximum posterior probability density. The calculation of the statistical characteristics of the obtained estimate of the radio signal delay time is carried out. The Bayesian Cramér - Rao lower bound (BCRLB) of the latency estimate is calculated. It is shown that the use of a priori statistical information on the path loss of a radio signal model can improve the accuracy of estimating the propagation delay time of a radio signal in TDOA/SSR-Based Source Localization Systems.


2021 ◽  
Author(s):  
Joseph Boulis ◽  
Mohamed Hemdan ◽  
Ahmed Shokry ◽  
Moustafa Youssef

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