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Image retrieval systems and methods with semantic and feature based relevance feedback

机译:具有基于语义和特征的相关反馈的图像检索系统和方法

摘要

An image retrieval system performs both keyword-based and content-based image retrieval. A user interface allows a user to specify queries using a combination of keywords and examples images. Depending on the input query, the image retrieval system finds images with keywords that match the keywords in the query and/or images with similar low-level features, such as color, texture, and shape. The system ranks the images and returns them to the user. The user interface allows the user to identify images that are more relevant to the query, as well as images that are less or not relevant to the query. The user may alternatively elect to refine the search by selecting one example image from the result set and submitting its low-level features in a new query. The image retrieval system monitors the user feedback and uses it to refine any search efforts and to train itself for future search queries. In the described implementation, the image retrieval system seamlessly integrates feature-based relevance feedback and semantic-based relevance feedback.
机译:图像检索系统执行基于关键字和基于内容的图像检索。用户界面允许用户使用关键字和示例图像的组合来指定查询。取决于输入的查询,图像检索系统查找具有与查询中的关键字匹配的关键字的图像和/或具有类似的低级特征(例如颜色,纹理和形状)的图像。系统对图像进行排名并将其返回给用户。用户界面允许用户识别与查询更相关的图像,以及与查询无关或不相关的图像。用户可以选择通过从结果集中选择一个示例图像并在新查询中提交其低级特征来选择优化搜索。图像检索系统监视用户反馈,并使用它来完善所有搜索工作并为将来的搜索查询进行自我训练。在所描述的实施方式中,图像检索系统无缝地集成了基于特征的相关性反馈和基于语义的相关性反馈。

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