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Fitness training driven by image target detection technology

机译:由图像目标检测技术驱动的健身训练

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Abstract The fitness training system needs to capture the training staff dynamics in real time, but it is difficult to capture the training staff dynamics during the actual training process. Based on this, this study uses the physical characteristics of fitness trainers as indicators for image target detection. According to the human body will dissipate more heat during the fitness process, this study uses infrared capture as the basis of image capture detection technology, uses FCM clustering algorithm as the fuzzy image background segmentation algorithm, and uses k -means clustering analysis to study the gray histogram and propose a composite classification feature tracking method for trainer image tracking. Combined with the experimental research, the research shows that the research method utilizes the advantages of the composite classification feature to improve the detection rate of the human target. Therefore, it is a real-time and very effective infrared image human detection algorithm.
机译:摘要健身培训系统需要实时捕获培训人员动态,但在实际培训过程中难以捕获培训人员动态。基于此,本研究使用健身培训师的物理特性作为图像目标检测的指标。根据人体将在健身过程中会散发更多的热量,本研究使用红外捕获作为图像捕获检测技术的基础,使用FCM聚类算法作为模糊图像背景分割算法,并使用K -Means聚类分析研究灰色直方图,提出了一种培训师图像跟踪的复合分类特征跟踪方法。结合实验研究,研究表明,研究方法利用复合分类特征的优势来提高人体目标的检测率。因此,它是一个实时和非常有效的红外图像人类检测算法。

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