Title :
Experimental Evaluation of Estimating Living-Body Direction Using Array Antenna for Multipath Environment
Author :
Konno, Keita ; Nango, Masaki ; Honma, Naoki ; Nishimori, Kentaro ; Takemura, Nobuyasu ; Mitsui, Tsutomu
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Iwate Univ., Iwate, Japan
Abstract :
In this letter, we introduce a method that uses the radar system to observe the waves reflected from the target with the single-input-multiple-output (SIMO) array configuration to estimate living-body directions in a multipath environment for applications such as elderly monitoring. Directions of living body are estimated by the MUltiple SIgnal Classification (MUSIC) method, where the Fourier transformed channel matrix is used. Our use of the 2.4-GHz band allows greater miniaturization of the antenna than is possible with the low-frequency band used by conventional systems. Also, this method can be used in multipath-rich environments such as indoors. The experiments are carried out in a specific indoor environment as a demonstration, and the SIMO channel is measured with various subject numbers and positions. The results indicate that the proposed method can estimate living-body directions with high accuracy even in multipath environments.
Keywords :
Fourier transforms; UHF antennas; antenna arrays; direction-of-arrival estimation; matrix algebra; multipath channels; signal classification; Fourier transformed channel matrix; MUSIC method; SIMO array configuration; SIMO channel; elderly monitoring; frequency 2.4 GHz; indoor environment; living-body directions; low-frequency band; multipath environment; multiple signal classification method; radar system; single-input-multiple-output array configuration; Antenna measurements; Arrays; Directive antennas; Estimation; Indoor environments; Multiple signal classification; Array antenna; direction-of-arrival (DOA) estimation; living-body direction; microwave sensors; single-input–multiple-output (SIMO);
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
DOI :
10.1109/LAWP.2014.2315671