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Method for generating spatial-temporally consistent depth map sequences based on convolution neural networks

机译:基于卷积神经网络的时空一致深度图序列生成方法

摘要

A method for generating spatial-temporal consistency depth map sequences based on convolutional neural networks for 2D-3D conversion of television works includes steps of: 1) collecting a training set, wherein each training sample thereof includes a sequence of continuous RGB images, and a corresponding depth map sequence; 2) processing each image sequence in the training set with spatial-temporal consistency superpixel segmentation, and establishing a spatial similarity matrix and a temporal similarity matrix; 3) establishing the convolution neural network including a single superpixel depth regression network and a spatial-temporal consistency condition random field loss layer; 4) training the convolution neural network; and 5) recovering a depth maps of a RGB image sequence of unknown depth through forward propagation with the trained convolution neural network; which avoids that clue-based depth recovery method is greatly depended on scenario assumptions, and inter-frame discontinuity between depth maps generated by conventional neural networks.
机译:一种基于卷积神经网络生成时空一致性深度图序列以进行电视作品的2D-3D转换的方法,包括以下步骤:1)收集训练集,其中每个训练样本包括一系列连续的RGB图像,以及相应的深度图序列; 2)利用时空一致性超像素分割对训练集中的每个图像序列进行处理,建立空间相似度矩阵和时间相似度矩阵; 3)建立包括单个超像素深度回归网络和时空一致性条件随机场损失层的卷积神经网络; 4)训练卷积神经网络; 5)通过训练卷积神经网络的正向传播,恢复未知深度的RGB图像序列的深度图;这避免了基于线索的深度恢复方法在很大程度上取决于场景假设,以及传统神经网络生成的深度图之间的帧间不连续性。

著录项

  • 公开/公告号US2019332942A1

    专利类型

  • 公开/公告日2019-10-31

    原文格式PDF

  • 申请/专利权人 ZHEJIANG GONGSHANG UNIVERSITY;

    申请/专利号US201616067819

  • 发明设计人 XUN WANG;XURAN ZHAO;

    申请日2016-12-29

  • 分类号G06N3/08;G06N3/04;G06T7/10;G06F17/16;G06K9/62;G06F17/13;

  • 国家 US

  • 入库时间 2022-08-21 12:09:28

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