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应用扩展型ALIS技术的高性能55英寸(对角)WXGA PDP
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作者 胡彬彬(译) 刘转果(校) 《显示器件技术》 2006年第4期33-37,28,共6页
我们通过应用扩展型ALIS(交替发光表面)技术开发了一种结构新颖的高性能55英寸(对角)WXGAPDP组件。发明了采用公共电极概念的新型放电单元结构,这种结果带有一种旨在逐级发光的新型驱动电路。同时还开发了一种减少动态拟似轮廓(DF... 我们通过应用扩展型ALIS(交替发光表面)技术开发了一种结构新颖的高性能55英寸(对角)WXGAPDP组件。发明了采用公共电极概念的新型放电单元结构,这种结果带有一种旨在逐级发光的新型驱动电路。同时还开发了一种减少动态拟似轮廓(DFC)的新方法——动态适应型子场编码。新开发的55英寸WXGA屏具有一个1000cd/m^2峰值亮度和一个在350W显示耗能时带有一个9000K色温的160cd/m^2的全屏白先。 展开更多
关键词 扩展型交替发光表面技术 逐级 动态适应型 公共电极 相移持续驱动
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Bayesian moving object detection in dynamic scenes using an adaptive foreground model 被引量:1
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作者 Sheng-yang YU Fang-lin WANG +1 位作者 Yun-feng XUE Jie YANG 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2009年第12期1750-1758,共9页
Accurate detection of moving objects is an important step in stable tracking or recognition. By using a nonparametric density estimation method over a joint domain-range representation of image pixels, the correlation... Accurate detection of moving objects is an important step in stable tracking or recognition. By using a nonparametric density estimation method over a joint domain-range representation of image pixels, the correlation between neighboring pixels can be used to achieve high levels of detection accuracy in the presence of dynamic background. However, color similarity between foreground and background will cause many foreground pixels to be misclassified. In this paper, an adaptive foreground model is exploited to detect moving objects in dynamic scenes. The foreground model provides an effective description of foreground by adaptively combining the temporal persistence and spatial coherence of moving objects. Building on the advantages of MAP-MRF (the maximum a posteriori in the Markov random field) decision framework, the proposed method performs well in addressing the challenging problem of missed detection caused by similarity in color between foreground and background pixels. Experimental results on real dynamic scenes show that the proposed method is robust and efficient. 展开更多
关键词 Moving object detection Foreground model Kernel density estimation (KDE) MAP-MRF estimation
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