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Biogeography-based optimisation search algorithm for block matching motion estimation

机译:基于生物地理学的块匹配运动估计优化搜索算法

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摘要

Global optimisation methods such as genetic algorithm and particle swarm optimisation have been applied to motion estimation to prevent from being trapped into local minimum. However, their computational complexity is very high. To overcome this problem, a novel search algorithm for block motion estimation based on biogeography-based optimisation (BMEBBO) is proposed in this study. Since biogeography-based optimisation (BBO) has few initial parameters, fast convergence speed and high searching precision, BMEBBO can search global minimum effectively through the migration and the mutation operation of BBO. In addition, BMEBBO with chaotic search (BBOCHAO) is proposed to improve the local search ability of BMEBBO and a multi-mode algorithm combining BBOCHAO with diamond search (BBOCDS) is also proposed to improve the speed of BBOCHAO. Experimental results show that BBOCHAO has high prediction quality and low fluctuations of video quality especially for violent motion. BBOCDS can remarkably decrease the computational complexity of BBOCHAO with little sacrifice of peak signal-to-noise ratio. Moreover, BBOCDS is faster than test zero search algorithm in scalable video coding implementation with little sacrifice in rate-distortion sense.
机译:全局优化方法(例如遗传算法和粒子群优化)已应用于运动估计,以防止陷入局部最小值。但是,它们的计算复杂度很高。为了克服这个问题,本研究提出了一种新的基于生物地理优化的块运动估计搜索算法(BMEBBO)。由于基于生物地理的优化(BBO)初始参数少,收敛速度快,搜索精度高,因此,BMEBBO可以通过BBO的迁移和变异操作有效地搜索全局最小值。另外,提出了带有混沌搜索的BMEBBO(BBOCHAO)来提高BMEBOO的局部搜索能力,并且提出了一种将BMBOCHO与菱形搜索相结合的多模算法(BBOCDS)来提高BBMEBO的速度。实验结果表明,BBOCHAO具有较高的预测质量,并且视频质量波动小,尤其对于剧烈运动而言。 BBOCDS可以显着降低BBOCHAO的计算复杂度,而几乎不牺牲峰值信噪比。此外,在可伸缩视频编码实现中,BBOCDS比测试零搜索算法更快,而在速率失真方面几乎没有牺牲。

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  • 来源
    《Image Processing, IET》 |2012年第7期|p.1014-1023|共10页
  • 作者

    Zhang P.; Wei P.; Yu H.-Y.;

  • 作者单位

    School of Electronic Engineering, University of Electronic Science and Technology of China, Chengdu 611731, People's Republic of China;

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  • 正文语种 eng
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