Jiachong Guo , Xing Liu , Weiguo Liu , Angang Luo , Xinlu Si
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引用次数: 0
Abstract
In this study, to address the issues of short rendezvous time between the projectile and target as well as the weak target acquisition capability under high-speed rendezvous conditions, a new forward-looking dual-linear array rotational scanning laser fuze based on linear array laser detectors is proposed. The working principle of this fuze is discussed, according to which the parameters such as the maximum adjacent beam angle, maximum adjacent pulsed beam angle, and minimum pulse frequency are derived. Considering the spatiotemporal rendezvous relationship between the “cylindrical” target and the scanning light field, a multi-line laser scanning target size calculation model is established to determine the contour features of the target. Additionally, a multi-feature information fusion method is proposed, enabling the classification and recognition of targets of different sizes. To mitigate laser signal interference from pseudo-pulse signals, a time window denoising filtering method is adopted based on the characteristics of the multi-line laser target echo signal. In addition, the impact of different combinations of fusion features, the number of fused frames, and detection frequency on the recognition performance is analyzed. The experimental and simulation results show that the proposed forward-looking dual-linear array rotational scanning laser fuze effectively extends the duration of scanning rendezvous and captures more frames of target information. Moreover, integrating target contour features significantly enhances the recognition capability for targets of different sizes. Additionally, the introduction of target contour features can significantly improve the recognition capability for targets with different sizes.
期刊介绍:
Optics & Laser Technology aims to provide a vehicle for the publication of a broad range of high quality research and review papers in those fields of scientific and engineering research appertaining to the development and application of the technology of optics and lasers. Papers describing original work in these areas are submitted to rigorous refereeing prior to acceptance for publication.
The scope of Optics & Laser Technology encompasses, but is not restricted to, the following areas:
•development in all types of lasers
•developments in optoelectronic devices and photonics
•developments in new photonics and optical concepts
•developments in conventional optics, optical instruments and components
•techniques of optical metrology, including interferometry and optical fibre sensors
•LIDAR and other non-contact optical measurement techniques, including optical methods in heat and fluid flow
•applications of lasers to materials processing, optical NDT display (including holography) and optical communication
•research and development in the field of laser safety including studies of hazards resulting from the applications of lasers (laser safety, hazards of laser fume)
•developments in optical computing and optical information processing
•developments in new optical materials
•developments in new optical characterization methods and techniques
•developments in quantum optics
•developments in light assisted micro and nanofabrication methods and techniques
•developments in nanophotonics and biophotonics
•developments in imaging processing and systems