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Object Detection and Counting Using Unsupervised Method

机译:使用无监督方法进行对象检测和计数

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Differentiating and finding similar patterns of images from a video frame source emerges as the basic elemental task in image processing. In this paper, various algorithms on object identification, shape identification, color identification, object counting are analyzed and compared to obtain new unsupervised method. These methods find applications in the field of defense, security check, healthcare and Traffic monitoring. Various challenging features and applications of object Detection, identification and counting methods are elaborated with new algorithm with least set of dataset. In addition, the different steps involved in object detection and results for several steps are discussed. Moreover, the proposed algorithmic method is able to process the unstructured and structured images in multiple visual concepts. Further, these algorithms can be applied in wide area and crowded scenes with high precision identification.
机译:从视频帧源中区分并找到相似的图像模式,已成为图像处理中的基本基本任务。本文对物体识别,形状识别,颜色识别,物体计数的各种算法进行了分析和比较,以得到一种新的无监督方法。这些方法可在国防,安全检查,医疗保健和交通监控领域中找到应用。利用最少数据集的新算法,详细阐述了各种具有挑战性的特征和对象的应用。此外,还讨论了对象检测中涉及的不同步骤以及几个步骤的结果。此外,所提出的算法方法能够处理多个视觉概念中的非结构化和结构化图像。此外,这些算法可以高精度识别应用于广域和拥挤的场景。

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