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Capturing Layers in Image Collections with Componential Models: From the Layered Epitome to the Componential Counting Grid

机译:使用组件模型捕获图像集合中的图层:从分层的缩影到组件计数网格

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Recently, the Counting Grid (CG) model was developed to represent each input image as a point in a large grid of feature counts. This latent point is a corner of a window of grid points which are all uniformly combined to match the (normalized) feature counts in the image. Being a bag of word model with spatial layout in the latent space, the CG model has superior handling of field of view changes in comparison to other bag of word models, but with the price of being essentially a mixture, mapping each scene to a single window in the grid. In this paper we introduce a family of componential models, dubbed the Componential Counting Grid, whose members represent each input image by multiple latent locations, rather than just one. In this way, we make a substantially more flexible admixture model which captures layers or parts of images and maps them to separate windows in a Counting Grid. We tested the models on scene and place classification where their componential nature helped to extract objects, to capture parallax effects, thus better fitting the data and outperforming Counting Grids and Latent Dirichlet Allocation, especially on sequences taken with wearable cameras.
机译:最近,开发了计数网格(CG)模型以将每个输入图像表示为特征计数的大网格中的一个点。该潜点是网格点窗口的一角,这些网格点均被统一组合以匹配图像中的(规范化)特征计数。 CG模型是一袋在潜在空间中具有空间布局的单词模型,与其他单词模型相比,它具有更好的视野变化处理能力,但其代价是本质上是混合的,将每个场景映射到一个场景网格中的窗口。在本文中,我们介绍了一个称为Componential Counting Grid的组件模型系列,其成员通过多个潜在位置(而不只是一个)代表每个输入图像。通过这种方式,我们制作了一个更加灵活的混合模型,该模型可以捕获图像的层或部分并将它们映射到“计数网格”中的单独窗口中。我们在场景和地点分类中测试了这些模型,这些模型的成分性质有助于提取对象,捕获视差效果,从而更好地拟合数据并优于计数网格和潜在狄利克雷分配,尤其是在可穿戴式相机拍摄的序列上。

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