Automatic image indexing for rapid content-based retrieval

Zhi-Jie Zheng, C. Leung
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引用次数: 19

Abstract

Four models of image data representations are examined for automatic indexing from pixel, nearest neighbourhood, block to full image. For each their invariant properties (translation, reflection and connection) and complexities are assessed. The nearest neighbourhood approach is found to be the best under these criteria. Using the nearest neighbourhood approach, a new automatic feature extraction and indexing algorithm for images on rectangular grid is presented. The algorithm enumerates the number of entire feature points in the ten clusters to form ten integers, which correspond to specific strengths of the ten feature clusters in the image. A probability model is then used to generate a quantitative feature index for supporting the rapid retrieval of images based on their contents. Some sample images and their indexes are also illustrated.
自动图像索引快速基于内容的检索
研究了四种图像数据表示模型,用于从像素、最近邻、块到完整图像的自动索引。对于每一个,它们的不变属性(转换、反射和连接)和复杂性都被评估。在这些标准下,发现最近邻方法是最好的。利用最近邻方法,提出了一种新的矩形网格图像特征自动提取与索引算法。该算法枚举十个聚类中整个特征点的个数,形成十个整数,十个整数对应图像中十个特征聚类的具体强度。然后使用概率模型生成定量特征索引,以支持基于图像内容的快速检索。并举例说明了一些示例图像及其索引。
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