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The space requirements of indexing under perspective projections

机译:透视投影下索引的空间要求

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Object recognition systems can be made more efficient through the use of table lookup to match features. The cost of this indexing process depends on the space required to represent groups of model features in such a lookup table. We determine the space required to perform indexing of arbitrary sets of 3D model points for lookup from a single 2D image formed under perspective projection. We show that in this case, one must use a 3D surface to represent model groups, and we provide an analytic description of such a surface. This is in contrast to the cases of scaled-orthographic or affine projection, in which only a 2D surface is required to represent a group of model features. This demonstrates a fundamental way in which the recognition of objects under perspective projection is more complex than is recognition under other projection models.
机译:通过使用表查找以匹配功能,可以使对象识别系统更高效。该索引过程的成本取决于在这种查找表中表示模型特征组所需的空间。我们确定在立体投影下形成的单个2D图像中执行索引任意3D模型点集以进行查找所需的空间。我们证明了在这种情况下,必须使用3D曲面来表示模型组,并且我们提供了这种曲面的解析描述。这与比例正射投影或仿射投影的情况相反,在比例投影或仿射投影中,仅需要2D曲面即可表示一组模型特征。这证明了一种基本方式,在这种方式下,透视投影下的对象识别比其他投影模型下的识别更为复杂。

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