TY - JOUR
T1 - A biologically inspired compound-eye detector array - Part II
T2 - Statistical performance analysis
AU - Liu, Zhi
AU - Nehorai, Arye
AU - Paldi, Eytan
N1 - Funding Information:
Manuscript received October 27, 2007; accepted November 26, 2008. First published February 06, 2009; current version published April 15, 2009. The associate editor coordinating the review of this manuscript and approving it for publication was Prof. Mounir Ghogho. This work was supported by the AFOSR Grant FA9550-05-1-0018, the National Science Foundation Grants CCR-0330342 and CCF-0630734.
PY - 2009
Y1 - 2009
N2 - This is the second part of our paper. In this paper, we propose, model, and analyze the performance of a detector array for localizing far-field particle-emitting sources, which is inspired by but generalizes the compound eye of insects. The array consists of multiple eyelets, each having a conical module with a lens on its top and an inner subarray containing multiple particle detectors. Using a parametric measurement model introduced for the array in Part I, in this part we analytically and numerically analyze the statistical performance of the array. First, we compute the statistical Cramér-Rao bounds (CRBs) on the errors in estimating the direction of arrival of the incident particles; then we derive a lower bound on the mean-square angular error (MSAE) of source localization for any specific array configuration; thirdly, we consider two source-direction estimators, the maximum likelihood estimator (MLE) and the weighted direction estimator (WDE), and analyze their MSAE performance. In the numerical examples, we quantitatively compare the performance of the proposed array with the biological compound eye; show the array performance as a function of the array configuration variables; optimally design the array configuration; illustrate that the MLE asymptotically attains the performance bound, whereas the WDE is nearly optimal for sufficiently large SNR; and analyze the hardware efficiency by comparing the two MSAE bounds. Potential applications of this work include artificial vision in medicine or robotics, astronomy assisted, security, and particle communications.
AB - This is the second part of our paper. In this paper, we propose, model, and analyze the performance of a detector array for localizing far-field particle-emitting sources, which is inspired by but generalizes the compound eye of insects. The array consists of multiple eyelets, each having a conical module with a lens on its top and an inner subarray containing multiple particle detectors. Using a parametric measurement model introduced for the array in Part I, in this part we analytically and numerically analyze the statistical performance of the array. First, we compute the statistical Cramér-Rao bounds (CRBs) on the errors in estimating the direction of arrival of the incident particles; then we derive a lower bound on the mean-square angular error (MSAE) of source localization for any specific array configuration; thirdly, we consider two source-direction estimators, the maximum likelihood estimator (MLE) and the weighted direction estimator (WDE), and analyze their MSAE performance. In the numerical examples, we quantitatively compare the performance of the proposed array with the biological compound eye; show the array performance as a function of the array configuration variables; optimally design the array configuration; illustrate that the MLE asymptotically attains the performance bound, whereas the WDE is nearly optimal for sufficiently large SNR; and analyze the hardware efficiency by comparing the two MSAE bounds. Potential applications of this work include artificial vision in medicine or robotics, astronomy assisted, security, and particle communications.
KW - Artificial compound eye
KW - Biologically inspired
KW - Biomimetics
KW - Dilogarithm function
KW - Fundamental limits
KW - Hardware efficiency
KW - Manifolds
KW - Mean-square angular error
KW - Modeling
KW - Particle detector array
KW - Particle source localization
KW - Statistical performance analysis
KW - Sums over manifolds
KW - Weighted direction estimator
UR - https://www.scopus.com/pages/publications/65649133964
U2 - 10.1109/TSP.2009.2014695
DO - 10.1109/TSP.2009.2014695
M3 - Article
AN - SCOPUS:65649133964
SN - 1053-587X
VL - 57
SP - 1858
EP - 1876
JO - IEEE Transactions on Signal Processing
JF - IEEE Transactions on Signal Processing
IS - 5
ER -