2,514 research outputs found

    Acoustical Ranging Techniques in Embedded Wireless Sensor Networked Devices

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    Location sensing provides endless opportunities for a wide range of applications in GPS-obstructed environments; where, typically, there is a need for higher degree of accuracy. In this article, we focus on robust range estimation, an important prerequisite for fine-grained localization. Motivated by the promise of acoustic in delivering high ranging accuracy, we present the design, implementation and evaluation of acoustic (both ultrasound and audible) ranging systems.We distill the limitations of acoustic ranging; and present efficient signal designs and detection algorithms to overcome the challenges of coverage, range, accuracy/resolution, tolerance to Doppler’s effect, and audible intensity. We evaluate our proposed techniques experimentally on TWEET, a low-power platform purpose-built for acoustic ranging applications. Our experiments demonstrate an operational range of 20 m (outdoor) and an average accuracy 2 cm in the ultrasound domain. Finally, we present the design of an audible-range acoustic tracking service that encompasses the benefits of a near-inaudible acoustic broadband chirp and approximately two times increase in Doppler tolerance to achieve better performance

    Mitigation of Through-Wall Distortions of Frontal Radar Images using Denoising Autoencoders

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    Radar images of humans and other concealed objects are considerably distorted by attenuation, refraction and multipath clutter in indoor through-wall environments. While several methods have been proposed for removing target independent static and dynamic clutter, there still remain considerable challenges in mitigating target dependent clutter especially when the knowledge of the exact propagation characteristics or analytical framework is unavailable. In this work we focus on mitigating wall effects using a machine learning based solution -- denoising autoencoders -- that does not require prior information of the wall parameters or room geometry. Instead, the method relies on the availability of a large volume of training radar images gathered in through-wall conditions and the corresponding clean images captured in line-of-sight conditions. During the training phase, the autoencoder learns how to denoise the corrupted through-wall images in order to resemble the free space images. We have validated the performance of the proposed solution for both static and dynamic human subjects. The frontal radar images of static targets are obtained by processing wideband planar array measurement data with two-dimensional array and range processing. The frontal radar images of dynamic targets are simulated using narrowband planar array data processed with two-dimensional array and Doppler processing. In both simulation and measurement processes, we incorporate considerable diversity in the target and propagation conditions. Our experimental results, from both simulation and measurement data, show that the denoised images are considerably more similar to the free-space images when compared to the original through-wall images

    Signal Processing and Propagation for Aeroacoustic Sensor Networking,” Ch

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    Passive sensing of acoustic sources is attractive in many respects, including the relatively low signal bandwidth of sound waves, the loudness of most sources of interest, and the inherent difficulty of disguising or concealing emitted acoustic signals. The availability of inexpensive, low-power sensing and signal-processing hardware enables application of sophisticated real-time signal processing. Among th

    Performance of the upgraded VERITAS Stellar Intensity Interferometer (VSII)

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    The VERITAS Imaging Atmospheric Cherenkov Telescope array (IACT) was augmented in 2019 with high-speed focal plane electronics to create a new Stellar Intensity Interferometry (SII) observational capability (VERITAS-SII, or VSII). VSII operates during bright moon periods, providing high angular resolution observations ( < 1 mas) in the B photometric band using idle telescope time. VSII has already demonstrated the ability to measure the diameters of two B stars at 416 nm (Bet CMa and Eps Ori) with < 5% accuracy using relatively short (5 hours) exposures. The VSII instrumentation was recently improved to increase instrumental sensitivity and observational efficiency. This paper describes the upgraded VSII instrumentation and documents the ongoing improvements in VSII sensitivity. The report describes VSII's progress in extending SII measurements to dimmer magnitude stars and improving the VSII angular diameter measurement resolution to better than 1%.Comment: SPIE Astronomical Telescopes + Instrumentation, 2022, Montr\'eal, Qu\'ebec, Canada : Optical and Infrared Interferometry and Imaging VIII, (15 pages, 10 figures

    A survey on acoustic positioning systems for location-based services

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    Positioning systems have become increasingly popular in the last decade for location-based services, such as navigation, and asset tracking and management. As opposed to outdoor positioning, where the global navigation satellite system became the standard technology, there is no consensus yet for indoor environments despite the availability of different technologies, such as radio frequency, magnetic field, visual light communications, or acoustics. Within these options, acoustics emerged as a promising alternative to obtain high-accuracy low-cost systems. Nevertheless, acoustic signals have to face very demanding propagation conditions, particularly in terms of multipath and Doppler effect. Therefore, even if many acoustic positioning systems have been proposed in the last decades, it remains an active and challenging topic. This article surveys the developed prototypes and commercial systems that have been presented since they first appeared around the 1980s to 2022. We classify these systems into different groups depending on the observable that they use to calculate the user position, such as the time-of-flight, the received signal strength, or the acoustic spectrum. Furthermore, we summarize the main properties of these systems in terms of accuracy, coverage area, and update rate, among others. Finally, we evaluate the limitations of these groups based on the link budget approach, which gives an overview of the system's coverage from parameters such as source and noise level, detection threshold, attenuation, and processing gain.Agencia Estatal de InvestigaciĂłnResearch Council of Norwa

    Spatial Identification Methods and Systems for RFID Tags

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    DisertačnĂ­ prĂĄce je zaměƙena na metody a systĂ©my pro měƙenĂ­ vzdĂĄlenosti a lokalizaci RFID tagĆŻ pracujĂ­cĂ­ch v pĂĄsmu UHF. Úvod je věnovĂĄn popisu současnĂ©ho stavu vědeckĂ©ho poznĂĄnĂ­ v oblasti RFID prostorovĂ© identifikace a stručnĂ©mu shrnutĂ­ problematiky modelovĂĄnĂ­ a nĂĄvrhu prototypĆŻ těchto systĂ©mĆŻ. Po specifikaci cĂ­lĆŻ disertace pokračuje prĂĄce popisem teorie modelovĂĄnĂ­ degenerovanĂ©ho kanĂĄlu pro RFID komunikaci. Detailně jsou rozebrĂĄny metody měƙenĂ­ vzdĂĄlenosti a odhadu směru pƙíchodu signĂĄlu zaloĆŸenĂ© na zpracovĂĄnĂ­ fĂĄzovĂ© informace. Pro Ășčely lokalizace je navrĆŸeno několik scĂ©náƙƯ rozmĂ­stěnĂ­ antĂ©n. Modely degenerovanĂ©ho kanĂĄlu jsou simulovĂĄny v systĂ©mu MATLAB. VĂœznamnĂĄ část tĂ©to prĂĄce je věnovĂĄna konceptu softwarově definovanĂ©ho rĂĄdia (SDR) a specifikĆŻm jeho adaptace na UHF RFID, kterĂĄ vyuĆŸitĂ­ bÄ›ĆŸnĂœch SDR systĂ©mĆŻ značně omezujĂ­. DiskutovĂĄna je zejmĂ©na problematika prĆŻniku nosnĂ© vysĂ­lače do pƙijĂ­macĂ­ cesty a poĆŸadavky na signĂĄl lokĂĄlnĂ­ho oscilĂĄtoru pouĆŸĂ­vanĂœ pro směơovĂĄnĂ­. PrezentovĂĄny jsou tƙi vyvinutĂ© prototypy: experimentĂĄlnĂ­ dotazovač EXIN-1, měƙicĂ­ systĂ©m zaloĆŸenĂœ na platformě Ettus USRP a antĂ©nnĂ­ pƙepĂ­nacĂ­ matice pro emulaci SIMO systĂ©mu. ZĂĄvěrečnĂĄ část je zaměƙena na testovĂĄnĂ­ a zhodnocenĂ­ popisovanĂœch lokalizačnĂ­ch technik, zaloĆŸenĂœch na měƙenĂ­ komplexnĂ­ pƙenosovĂ© funkce RFID kanĂĄlu. Popisuje ĂșzkopĂĄsmovĂ©/ĆĄirokopĂĄsmovĂ© měƙenĂ­ vzdĂĄlenosti a metody odhadu směru signĂĄlu. Oba navrĆŸenĂ© scĂ©náƙe rozmĂ­stěnĂ­ antĂ©n jsou v zĂĄvěru ověƙeny lokalizačnĂ­m měƙenĂ­m v reĂĄlnĂœch podmĂ­nkĂĄch.The doctoral thesis is focused on methods and systems for ranging and localization of RFID tags operating in the UHF band. It begins with a description of the state of the art in the field of RFID positioning with short extension to the area of modeling and prototyping of such systems. After a brief specification of dissertation objectives, the thesis overviews the theory of degenerate channel modeling for RFID communication. Details are given about phase-based ranging and direction of arrival finding methods. Several antenna placement scenarios are proposed for localization purposes. The degenerate channel models are simulated in MATLAB. A significant part of the thesis is devoted to software defined radio (SDR) concept and its adaptation for UHF RFID operation, as it has its specialties which make the usage of standard SDR test equipment very disputable. Transmit carrier leakage into receiver path and requirements on local oscillator signals for mixing are discussed. The development of three experimental prototypes is also presented there: experimental interrogator EXIN-1, measurement system based on Ettus USRP platform, and antenna switching matrix for an emulation of SIMO system. The final part is focused on testing and evaluation of described positioning techniques based on complex backscatter channel transfer function measurement. Both narrowband/wideband ranging and direction of arrival methods are validated. Finally, both proposed antenna placement scenarios are evaluated with real-world measurements.
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