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首页> 外文期刊>Signal Processing. Image Communication: A Publication of the the European Association for Signal Processing >Rotation-invariant fast features for large-scale recognition and real-time tracking
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Rotation-invariant fast features for large-scale recognition and real-time tracking

机译:旋转不变的快速功能,可进行大规模识别和实时跟踪

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摘要

We present an end-to-end feature description pipeline which uses a novel interest point detector and rotation-invariant fast feature (RIFF) descriptors. The proposed RIFF algorithm is 15 x faster than SURF [1] while producing large-scale retrieval results that are comparable to SIFT [2]. Such high-speed features benefit a range of applications from mobile augmented reality (MAR) to web-scale image retrieval and analysis. In particular, RIFF enables unified tracking and recognition for MAR.
机译:我们提出了一种使用新型兴趣点检测器和旋转不变快速特征(RIFF)描述符的端到端特征描述管道。所提出的RIFF算法比SURF [1]快15倍,同时产生了与SIFT [2]相当的大规模检索结果。这样的高速功能使从移动增强现实(MAR)到Web规模的图像检索和分析等一系列应用程序受益。尤其是,RIFF支持对MAR进行统一跟踪和识别。

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