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首页> 外文期刊>International Journal of Computer Vision >The Ignorant Led by the Blind: A Hybrid Human-Machine Vision System for Fine-Grained Categorization
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The Ignorant Led by the Blind: A Hybrid Human-Machine Vision System for Fine-Grained Categorization

机译:盲人领导的无知:精细分类的混合人机视觉系统

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摘要

We present a visual recognition system for finegrained visual categorization. The system is composed of a human and a machine working together and combines the complementary strengths of computer vision algorithms and (non-expert) human users. The human users provide two heterogeneous forms of information object part clicks and answers to multiple choice questions. The machine intelligently selects the most informative question to pose to the user in order to identify the object class as quickly as possible. By leveraging computer vision and analyzing the user responses, the overall amount of human effort required, measured in seconds, is minimized. Our formalism shows how to incorporate many different types of computer vision algorithms into a human-in-the-loop framework, including standard multiclass methods, part-based methods, and localized multiclass and attribute methods. We explore our ideas by building a field guide for bird identification. The experimental results demonstrate the strength of combining ignorant humans with poor-sighted machines the hybrid system achieves quick and accurate bird identification on a dataset containing 200 bird species.
机译:我们提出了用于细粒度视觉分类的视觉识别系统。该系统由人和机器共同组成,并结合了计算机视觉算法和(非专家)用户的互补优势。人类用户提供两种不同形式的信息对象部分单击和对多项选择题的回答。机器会智能地选择要向用户提出的信息最丰富的问题​​,以便尽快识别对象类别。通过利用计算机视觉并分析用户的响应,将以秒为单位的人力需求总量降至最低。我们的形式主义展示了如何将许多不同类型的计算机视觉算法整合到“人在环”的框架中,包括标准的多类方法,基于零件的方法以及本地化的多类和属性方法。我们通过建立野外鸟类识别指南来探索我们的想法。实验结果表明,将无知的人与视力差的机器相结合的优势在于,该混合系统可在包含200种鸟类的数据集上实现快速准确的鸟类识别。

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