Cross-Media Retrieval Method Based on Temporal-spatial Clustering and Multimodal Fusion

Yang Liu, Feng-bin Zheng, K. Cai, Baoqing Jiang
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引用次数: 4

Abstract

Aiming at the problem of the "semantic gap" and the "dimensionality curse", this paper discussed the model of cross-media retrieval. The methods of feature extraction and fusion of multimedia were given for processing high-dimensional data, and a nonlinear hybrid classifier based on support vector hidden Markov models was design for implementation semantic mapping and learning. According to Shannon information theory, calculation methods of similarity and correlation were given to implement temporal-spatial clustering. Typhoon and other multimedia disaster data are selected for experiments and comparisons. Experimental results show that this method improves the performance of cross-media retrieval.
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基于时空聚类和多模态融合的跨媒体检索方法
针对“语义缺口”和“维数诅咒”问题,探讨了跨媒体检索模型。提出了多媒体特征提取和融合的方法来处理高维数据,设计了一种基于支持向量隐马尔可夫模型的非线性混合分类器来实现语义映射和学习。根据香农信息理论,给出了相似度和相关性的计算方法,实现了时空聚类。选取台风等多媒体灾害资料进行实验和比较。实验结果表明,该方法提高了跨媒体检索的性能。
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