Title :
Space-time measurement of indoor radio propagation
Author :
Tingley, Robert D. ; Pahlavan, Kaveh
Author_Institution :
Charles Stark Draper Lab. Inc., Cambridge, MA, USA
fDate :
2/1/2001 12:00:00 AM
Abstract :
Most existing techniques for indoor radio propagation measurement do not resolve the angles from which signal components arrive at the receiving antenna. Knowledge of the angle-of-arrival is required for evaluation of evolving systems that employ smart antenna technology to provide features such as geolocation, interference cancellation, and space-division multiplexing. This paper presents a novel technique for the joint measurement of the angles, times and complex amplitudes of discrete path arrivals in an indoor propagation environment. A data acquisition system, based upon a vector network analyzer and multichannel antenna array is described, together with its use to collect channel measurement matrices. The inherent error sources present in these measurement matrices are investigated using a compact indoor anechoic range. Two signal processing algorithms are presented whereby the channel parameters may be estimated from raw measurements. In the first approach, an optimum beamformer is derived which compensates for systematic errors in the data acquisition system. This approach features very low computational complexity, and delivers modest resolution of path components. The second algorithm is based upon the maximum likelihood criterion, using the measured calibration matrices as space-time basis functions. This algorithm provides super-resolution of all path parameters, at the cost of increased computation. Several example measurements are given, and future directions of our research are indicated
Keywords :
adaptive antenna arrays; calibration; computational complexity; data acquisition; direction-of-arrival estimation; error compensation; indoor radio; least squares approximations; maximum likelihood estimation; radiowave propagation; signal resolution; space-time adaptive processing; transient response; wireless LAN; angle-of-arrival; array signal processing; calibration matrices; channel measurement matrices; channel parameters; compact indoor anechoic range; data acquisition system; discrete path arrivals; geolocation; high resolution signal processing; impulse response; indoor radio propagation; inherent error sources; interference cancellation; low computational complexity; maximum likelihood criterion; multichannel antenna array; optimum beamformer; path parameters; signal processing algorithms; smart antenna technology; space-division multiplexing; space-time measurement; spatial filter periodogram algorithm; super-resolution; systematic error compensation; vector network analyzer; wireless LAN; Antenna accessories; Antenna measurements; Antennas and propagation; Data acquisition; Indoor radio communication; Interference cancellation; Receiving antennas; Signal processing algorithms; Signal resolution; Space technology;
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on