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Bottom-Up/Top-Down Image Parsing with Attribute Grammar

机译:具有属性语法的自下而上/自上而下的图像解析

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This paper presents a simple attribute graph grammar as a generative representation for made-made scenes, such as buildings, hallways, kitchens, and living rooms, and studies an effective top-down/bottom-up inference algorithm for parsing images in the process of maximizing a Bayesian posterior probability or equivalently minimizing a description length (MDL). Given an input image, the inference algorithm computes (or constructs) a parse graph, which includes a parse tree for the hierarchical decomposition and a number of spatial constraints. In the inference algorithm, the bottom-up step detects an excessive number of rectangles as weighted candidates, which are sorted in certain order and activate top-down predictions of occluded or missing components through the grammar rules. In the experiment, we show that the grammar and top-down inference can largely improve the performance of bottom-up detection.
机译:本文提出了一种简单的属性图文法作为建筑物,走廊,厨房和客厅等人造场景的生成表示,并研究了一种有效的自上而下/自下而上的解析算法,用于解析图像。最大化贝叶斯后验概率或等效地最小化描述长度(MDL)。给定输入图像,推理算法将计算(或构造)解析图,该解析图包括用于层次分解的解析树和许多空间约束。在推理算法中,自下而上的步骤将过多的矩形检测为加权候选,这些矩形按一定顺序进行排序,并通过语法规则激活对被遮挡或缺失的组件进行自顶向下的预测。在实验中,我们表明语法和自上而下的推理可以大大提高自下而上的检测性能。

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