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Quantized embeddings of scale-invariant image features for mobile augmented reality

机译:用于移动增强现实的尺度不变图像特征的量化嵌入

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Randomized embeddings of scale-invariant image features are proposed for retrieval of object-specific meta data in an augmented reality application. The method extracts scale invariant features from a query image, computes a small number of quantized random projections of these features, and sends them to a database server. The server performs a nearest neighbor search in the space of the random projections and returns meta-data corresponding to the query image. Prior work has shown that binary embeddings of image features enable efficient image retrieval. This paper generalizes the prior art by characterizing the tradeoff between the number of random projections and the number of bits used to represent each projection. The theoretical results suggest a bit allocation scheme under a total bit rate constraint: It is often advisable to spend bits on a small number of finely quantized random measurements rather than on a large number of coarsely quantized random measurements. This theoretical result is corroborated via experimental study of the above tradeoff using the ZuBuD database. The proposed scheme achieves a retrieval accuracy up to 94% while requiring the mobile device to transmit only 2.5 kB to the database server, a significant improvement over 1-bit quantization schemes reported in prior art.
机译:提出了比例尺不变的图像特征的随机嵌入,以在增强现实应用程序中检索特定于对象的元数据。该方法从查询图像中提取尺度不变特征,计算这些特征的少量量化随机投影,然后将其发送到数据库服务器。服务器在随机投影的空间中执行最近邻居搜索,并返回与查询图像相对应的元数据。先前的工作表明,图像特征的二进制嵌入使有效的图像检索成为可能。本文通过表征随机投影的数量和用来表示每个投影的位数之间的折衷来概括现有技术。理论结果提出了在总比特率约束下的比特分配方案:通常建议将比特花费在少量的精细量化的随机测量上,而不是在大量的粗糙量化的随机测量上。使用ZuBuD数据库通过上述折衷的实验研究,证实了这一理论结果。所提出的方案实现了高达94%的检索精度,同时要求移动设备仅向数据库服务器传输2.5 kB,这是对现有技术中报道的1位量化方案的重大改进。

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