Title :
UWB radar imaging based multipath delay prediction for NLOS position estimation
Author :
Luecken, Heinrich ; Wittneben, Armin
Author_Institution :
Commun. Technol. Lab., ETH Zurich, Zurich, Switzerland
Abstract :
Conventional Time-of-Arrival (ToA) based Ultra-Wideband (UWB) positioning suffers strongly from multipath. Harsh propagation environments or non-line-of-sight (NLOS) situations lead to biased position estimates with high estimation errors. To overcome this problem, we propose a radar imaging based method to predict delays of dominant propagation paths. This is done in a three-step approach: First, a radar image of the environment is created using measured training data. We generate a scattering coefficient map with the large synthetic aperture of distributed and moving antennas. The training data can easily be obtained from channel estimates of a UWB communication system with mobile nodes. Second, the radar image is used to reconstruct path gains and path delays. Thus, the channel response is predicted for arbitrary transmitter and receiver positions. Finally, dominant multipath delays are extracted using WRELAX. The proposed algorithm is validated by anechoic chamber measurements with controlled reflectors. Moreover, an extensive measurement campaign in a laboratory/office environment shows that strong paths can be predicted with nanosecond accuracy in a real world scenario.
Keywords :
anechoic chambers (electromagnetic); channel estimation; delay estimation; error analysis; image reconstruction; multipath channels; radar imaging; reflector antennas; synthetic aperture radar; time-of-arrival estimation; ultra wideband antennas; ultra wideband radar; Harsh propagation; NLOS; UWB communication; anechoic chamber measurements; channel estimation; controlled reflectors; distributed antennas; dominant propagation paths; error estimation; image reconstruction; mobile nodes; multipath delay prediction; non line of sight; path gains; position estimation; radar imaging; synthetic aperture radar; time-of-arrival estimation; ultra wideband; Delay; Estimation; Image reconstruction; Imaging; Radar imaging; Receivers; Scattering;
Conference_Titel :
Ultra-Wideband (ICUWB), 2011 IEEE International Conference on
Conference_Location :
Bologna
Print_ISBN :
978-1-4577-1763-5
Electronic_ISBN :
2162-6588
DOI :
10.1109/ICUWB.2011.6058804