Title :
Fast-time 2-D spatial modulation of physical radar emissions
Author :
McCormick, Patrick ; Blunt, Shannon D.
Author_Institution :
Radar Syst. & Remote Sensing Lab. (RSL), Univ. of Kansas, Lawerence, KS, USA
Abstract :
It was recently shown that polyphase-coded frequency modulation (PCFM) waveforms can be expanded to incorporate a spatial modulation coding across a linear antenna array that enables fast-time beamsteering during a transmitted pulsewidth. Here this joint waveform / spatial modulation framework is generalized to two spatial dimensions via a planar array so that complete fast-time spatial steering freedom is available. The resulting emission represents a physically realizable manifestation of MIMO radar that provides enhanced spatial resolution and target discrimination capability using only matched filtering and non-adaptive beamforming. Spatial modulation can also be viewed as a time-varying form of phase-only transmit beam-shaping where the significant increase in degrees-of-freedom, relative to static beam-shaping, translates into many more possible physically achievable design solutions.
Keywords :
FM radar; MIMO radar; array signal processing; beam steering; linear antenna arrays; phase coding; planar antenna arrays; radar antennas; radar resolution; MIMO radar; degrees-of-freedom; fast-time 2D spatial modulation; fast-time beamsteering; joint waveform spatial modulation framework; linear antenna array; matched filtering; nonadaptive beamforming; phase-only transmit beamshaping; physical radar emission; planar array; polyphase-coded frequency modulation waveforms; spatial resolution; target discrimination capability; Array signal processing; Arrays; Azimuth; Modulation; Radar; Signal to noise ratio; Standards;
Conference_Titel :
Radar Symposium (IRS), 2015 16th International
Conference_Location :
Dresden
DOI :
10.1109/IRS.2015.7226302