Title :
Blind estimator of multiple optical signals with a detection matrix
Author_Institution :
Dept. of Electron., Peking Univ., Beijing
Abstract :
An estimator model for multiple optical signals via a detection matrix is proposed and investigated. In the model, the intensity of the transmitted optical field is modulated by its own unique pseudo-random (PN) sequence and random binary data symbols, and then an estimated algorithm motivated by a signal subspace approach of using the sample matrix of the received signals is obtained under the hypothesis of a synchronous system. The optical channel is modeled using a log-normal distribution for the received signal intensity for low scintillation indexes. With the aid of numerical simulation, it is shown that the signal-to-noise ratio (SNR) can be estimated within 90% of the actual SNR after less than 18 frames. Moreover, it is shown that the method requires essentially no information about the propagation-channel characteristics and the amplitudes of signal and noise across the detector matrix.
Keywords :
code division multiple access; intensity modulation; log normal distribution; matrix algebra; optical information processing; optical modulation; optical signal detection; random sequences; telecommunication channels; CDMA technique; blind estimator; code division multiple access; detection matrix; log-normal distribution; multiple optical signals; optical channel modelling; pseudo-random sequence; random binary data symbols; scintillation index; signal subspace approach; synchronous system; transmitted optical field intensity modulation; High speed optical techniques; Multiaccess communication; Optical arrays; Optical fiber communication; Optical modulation; Optical receivers; Optical transmitters; Signal detection; Signal to noise ratio; Solid scintillation detectors; Free space optical communications; detector matrix; estimation; scintillation;
Conference_Titel :
Advanced Communication Technology, 2009. ICACT 2009. 11th International Conference on
Conference_Location :
Phoenix Park
Print_ISBN :
978-89-5519-138-7
Electronic_ISBN :
1738-9445