Evolutionary Approach to Straight Line Approximation for Image Matching in Dance-Posture Recognition

P. Rakshit, S. Saha, A. Konar, A. Nagar
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引用次数: 1

Abstract

The proposed system aims at automatic identification of an unknown dance posture referring to the 34 primitive postures of ballet, simultaneously measuring the proximity of an unknown dance posture to a known primitive. A simple and novel seven stage algorithm achieves the desired objective. Skin color segmentation is performed on the dance postures, the output of which is dilated and edge is detected. From the boundaries of the postures, connected components are identified and the boundary is piecewise linearly approximated using modified artificial bee colony algorithm. Here, lies the novelty of our work. From the approximated boundary, features are extracted in terms of internal angles. This whole procedure is repeated for all the training images as well as testing image. The classification of the training image containing ballet posture is done using Euclidean distance matching.
基于直线逼近的舞蹈姿态识别图像匹配进化方法
该系统旨在根据芭蕾的34种原始姿势自动识别未知的舞蹈姿势,同时测量未知舞蹈姿势与已知原始姿势的接近程度。一种简单新颖的七阶段算法实现了预期的目标。对舞蹈姿态进行肤色分割,对其输出进行扩张和边缘检测。从姿态的边界出发,识别出连接分量,并采用改进的人工蜂群算法分段线性逼近边界。这就是我们工作的新奇之处。从近似边界出发,根据内角提取特征。所有的训练图像和测试图像都重复这个过程。采用欧几里得距离匹配对包含芭蕾舞姿态的训练图像进行分类。
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