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Object detection based on machine learning combined with physical attributes and movement patterns detection

机译:基于机器学习的对象检测与物理属性和移动模式检测相结合

摘要

Presented herein are systems and methods for increasing reliability of object detection, comprising, receiving a plurality of images of one or more objects captured by imaging sensor(s), receiving an object classification coupled with a first probability score from machine learning model(s) trained to detect the object(s) and applied to the image(s), computing a second probability score for classification of the object(s) according to physical attribute(s) of the object(s) estimated by analyzing the image(s), computing a third probability score for classification of the object(s) according to a movement pattern of the object(s) estimated by analyzing at least some consecutive images, computing an aggregated probability score aggregating the first, second and third probability scores, and outputting, in case the aggregated probability score exceeds a certain threshold, the classification of each object coupled with the aggregated probability score for use by object detection based system(s).
机译:呈现了用于增加对象检测可靠性的系统和方法,包括通过成像传感器捕获的一个或多个物体的多个图像,接收与来自机器学习模型的第一概率分数耦合的对象分类训练以检测对象并将其应用于图像,根据通过分析图像估计的对象的物理属性来计算用于分类对象的第二概率分数(s)(s ),计算根据通过分析至少一些连续图像的对象的运动模式来计算对象分类的第三概率分数,计算聚合概率得分聚合第一,第二和第三概率分数,在聚合概率得分超过某个阈值的情况下,输出输出,每个对象的分类耦合与基于对象检测的对象检测的聚合概率分数小姐)。

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