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Dive into the research topics where Kimia Shamaei is active.

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Featured researches published by Kimia Shamaei.


ieee/ion position, location and navigation symposium | 2016

A software-defined receiver architecture for cellular CDMA-based navigation

Joe Khalife; Kimia Shamaei; Zaher M. Kassas

A detailed software-defined receiver (SDR) architecture for navigation using cellular code division multiple access (CDMA) signals is presented. The cellular forward-link signal structure is described and models for the transmitted and received signals are developed. Particular attention is paid to relevant information that could be extracted and subsequently exploited for navigation and timing purposes. The differences between a typical GPS receiver and the proposed cellular CDMA receiver are highlighted. Moreover, a framework that is based on a mapping/navigating receiver scheme for navigation in a cellular CDMA environment is studied. The position and timing errors arising due to estimating the base transceiver station clock biases in different cell sectors are also analyzed. Experimental results utilizing the proposed SDR are presented demonstrating a mean distance difference of 5.51 m from a GPS navigation solution.


IEEE Signal Processing Magazine | 2017

I Hear, Therefore I Know Where I Am: Compensating for GNSS Limitations with Cellular Signals

Zaher M. Kassas; Joe Khalife; Kimia Shamaei; Joshua J. Morales

Global navigation satellite systems (GNSSs) have been the prevalent positioning, navigation, and timing technology over the past few decades. However, GNSS signals suffer from four main limitations.


european signal processing conference | 2017

Ranging precision analysis of LTE signals

Kimia Shamaei; Joe Khalife; Zaher M. Kassas

The ranging precision of the secondary synchronization signal in cellular long-term evolution (LTE) systems is evaluated. First, the pseudorange error for a delay-locked loop with a coherent baseband discriminator is analyzed, and a closed-form expression for the standard deviation of the pseudorange error is derived. Second, the effect of multipath on the ranging error is evaluated analytically. Experimental results closely matching the analytical expression of the pseudorange error standard deviation are presented. Key remarks to take into consideration when designing a receiver for positioning using LTE signals are provided throughout the paper.


IEEE Transactions on Wireless Communications | 2018

Exploiting LTE Signals for Navigation: Theory to Implementation

Kimia Shamaei; Joe Khalife; Zaher M. Kassas

Exploiting cellular long-term evolution (LTE) downlink signals for navigation purposes is considered. First, the transmitted LTE signal model is presented and relevant positioning and timing information that can be extracted from these signals are identified. Second, a software-defined receiver (SDR) that is capable of acquiring, tracking, and producing pseudoranges from LTE signals is designed. Third, a threshold-based approach for detecting the first peak of the channel impulse response is proposed in which the threshold adapts to the environmental noise level. This method is demonstrated to be robust against noise and interference in the environment. Fourth, an approach for estimating pseudoranges of multiple base stations by tracking only one base station is proposed. Fifth, a navigation framework based on an extended Kalman filter is proposed to produce the navigation solution using the pseudorange measurements obtained by the proposed SDR. Finally, the proposed SDR is evaluated experimentally on an unmanned aerial vehicle (UAV) and a ground vehicle. The root mean squared-error (RMSE) between the GPS navigation solution and LTE signals from three base stations produced by the proposed SDR for the UAV is shown to be 8.15 m with a standard deviation of 2.83 m. The RMSE between the GPS navigation solution and LTE signals from six base stations in a severe multipath environment for the ground vehicle is shown to be 5.80 m with a standard deviation of 3.02 m.


Proceedings of the 29th International Technical Meeting of The Satellite Division of the Institute of Navigation (ION GNSS+ 2016) | 2016

Performance Characterization of Positioning in LTE Systems

Kimia Shamaei; Joe Khalife; Zaher M. Kassas


Archive | 2017

Comparative Results for Positioning with Secondary Synchronization Signal versus Cell Specific Reference Signal in LTE Systems

Kimia Shamaei; Joe Khalife; Zaher M. Kassas


wireless communications and networking conference | 2018

Pseudorange and multipath analysis of positioning with LTE secondary synchronization signals

Kimia Shamaei; Joe Khalife; Zaher M. Kassas


ieee/ion position, location and navigation symposium | 2018

A joint TOA and DOA approach for positioning with LTE signals

Kimia Shamaei; Joe Khalife; Zaher M. Kassas


IEEE Transactions on Signal Processing | 2018

Navigation With Cellular CDMA Signals—Part I: Signal Modeling and Software-Defined Receiver Design

Joe Khalife; Kimia Shamaei; Zaher M. Kassas


Proceedings of the 30th International Technical Meeting of The Satellite Division of the Institute of Navigation (ION GNSS+ 2017) | 2017

Computationally Efficient Receiver Design for Mitigating Multipath for Positioning with LTE Signals

Kimia Shamaei; Joe Khalife; Souradeep Bhattacharya; Zaher M. Kassas

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Joe Khalife

University of California

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