Precise Localization of Multiple Noncooperative Objects in a Disordered Cavity by Wave Front Shaping

被引:56
作者
del Hougne, Philipp
Imani, Mohammadreza F.
Fink, Mathias
Smith, David R.
Lerosey, Geoffroy
机构
[1] Institut Langevin, CNRS UMR 7587, ESPCI Paris, PSL Research University, 1 rue Jussieu, Paris
[2] Department of Electrical and Computer Engineering, Center for Metamaterials and Integrated Plasmonics, Duke University, Durham, 27708, NC
[3] Greenerwave, ESPCI Paris Incubator pc'Up, 6 rue Jean Calvin, Paris
关键词
SCATTERING; TIME; MEDIA; LIGHT;
D O I
10.1103/PhysRevLett.121.063901
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Complicated multipath trajectories of waves in disordered cavities cause object localization to be very challenging with traditional ray-tracing approaches. Yet it is known that information about the object position is encoded in the Green's function. After a calibration step, traditional time-reversal approaches retrieve a source's location from a broadband impulse response measurement. Here, we show that a nonemitting object's scattering contribution to a reverberant medium suffices to localize the object. We demonstrate our finding in the microwave domain. Then, we further simplify the scheme by replacing the temporal degrees of freedom (d.o.f.) of the broadband measurement with spatial d.o.f. obtained from wave front shaping. A simple electronically reconfigurable reflectarray inside the cavity dynamically modulates parts of the cavity boundaries, thereby providing spatial d.o.f. The demonstrated ability to localize multiple noncooperative objects with a single-frequency scheme may have important applications for sensors in smart homes.
引用
收藏
页数:6
相关论文
共 66 条
[1]   Implementation and Analysis of a Wireless Sensor Network-Based Pet Location Monitoring System for Domestic Scenarios [J].
Aguirre, Erik ;
Lopez-Iturri, Peio ;
Azpilicueta, Leyre ;
Astrain, Jose Javier ;
Villadangos, Jesus ;
Santesteban, Daniel ;
Falcone, Francisco .
SENSORS, 2016, 16 (09)
[2]  
[Anonymous], 2013, P 2013 ACM C PERVASI
[3]  
[Anonymous], 2012, Mobile Systems, Applications, and Services Proceedings of the 10th International Conference, DOI DOI 10.1145/2307636.2307654
[4]  
Asefi M., 2017, P 32 INT UN RAD SCI
[5]   Use of Field-Perturbing Elements to Increase Nonredundant Data for Microwave Imaging Systems [J].
Asefi, Mohammad ;
LoVetri, Joe .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2017, 65 (09) :3172-3179
[6]   The Internet of Things: A survey [J].
Atzori, Luigi ;
Iera, Antonio ;
Morabito, Giacomo .
COMPUTER NETWORKS, 2010, 54 (15) :2787-2805
[7]   Complete S matrix in a microwave cavity at room temperature -: art. no. 016205 [J].
Barthélemy, J ;
Legrand, O ;
Mortessagne, F .
PHYSICAL REVIEW E, 2005, 71 (01)
[8]   A new TwIST: Two-step iterative shrinkage/thresholding algorithms for image restoration [J].
Bioucas-Dias, Jose M. ;
Figueiredo, Mario A. T. .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2007, 16 (12) :2992-3004
[9]   Spectral statistics of chaotic systems with a pointlike scatterer [J].
Bogomolny, E ;
Leboeuf, P ;
Schmit, C .
PHYSICAL REVIEW LETTERS, 2000, 85 (12) :2486-2489
[10]   In situ compressive sensing [J].
Carin, Lawrence ;
Liu, Dehong ;
Guo, Bin .
INVERSE PROBLEMS, 2008, 24 (01)