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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Heuristic hybrid genetic algorithm based shape matching approach for the pose detection of backlight units in LCD module assembly
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Heuristic hybrid genetic algorithm based shape matching approach for the pose detection of backlight units in LCD module assembly

机译:基于启发式混合遗传算法的形状匹配方法用于LCD模块组件中背光单元的姿态检测

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摘要

Backlight unit (BLU) and open cell are two critical parts of the liquid crystal display (LCD) module (LCM) which is the most significant component of LCD TV. To place the open cell into a BLU automatically using an assembly robot, this paper proposes a heuristic hybrid genetic algorithm (HHGA) based shape matching approach to detect the pose (orientation and position) of the BLU. The approach takes advantages of line structures of the BLUs to avoid the most time-consuming exhaustive search. Firstly, obtain initial orientation of a BLU by the dominant orientations which can be obtained with the statistical gradient orientation histograms. Secondly, search the optimal pose through the HHGA which mainly consists of local search strategy, crossover strategy, clone strategy, and mutation strategy. Local search strategy is designed according to the rising trend of matching features around the optimal pose and along the lines. Crossover and clone are heuristic strategies designed according to the distribution characteristics of local maxima to produce new meaningful offspring. Mutation is a necessary strategy to keep the diversity of the population. The performance of the proposed approach has been tested on an image database acquired from the LCM assembly lines and compared with standard hybrid GA and exhaustive search by a new statistical indicator. Experimental results show that the proposed approach has a high efficiency within limited time and is suitable for the pose detection of the BLUs.
机译:背光单元(BLU)和开式液晶屏是液晶显示器(LCD)模块(LCM)的两个关键部分,这是LCD TV的最重要组成部分。为了使用组装机器人将开放单元自动放置到BLU中,本文提出了一种基于启发式混合遗传算法(HHGA)的形状匹配方法来检测BLU的姿态(方向和位置)。该方法利用了BLU的线结构来避免最耗时的详尽搜索。首先,通过可以通过统计梯度取向直方图获得的优势取向获得BLU的初始取向。其次,通过HHGA搜索最优姿态,主要由局部搜索策略,交叉策略,克隆策略和变异策略组成。根据围绕最佳姿势和沿线匹配特征的上升趋势来设计局部搜索策略。交叉和克隆是根据局部最大值的分布特征设计的启发式策略,以产生新的有意义的后代。变异是保持种群多样性的必要策略。该提议方法的性能已经在从LCM装配线获得的图像数据库上进行了测试,并与标准混合GA和通过新的统计指标进行详尽搜索进行了比较。实验结果表明,所提出的方法在有限的时间内具有很高的效率,适用于BLU的姿态检测。

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