一种新的粒子滤波框架,用于单视角二维图像序列的二维到三维转换

Jing Huang, D. Schonfeld
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引用次数: 0

摘要

本文提出了一种基于单视角二维图像序列的二维到三维转换方法。我们提出了一种粒子滤波框架,用于从图像序列匹配的特征对应中递归恢复逐点深度。将摄像机模型、结构模型和平移模型相结合,建立了一种新的二维动态递归深度估计模型。该方法利用边缘检测辅助尺度不变特征,避免了尺度不变特征(SIFT)中边缘特征的缺失。此外,深度图中的深度计算和插值使用二维Delaunay三角剖分。最后,利用所提出的动力学模型和粒子滤波框架,提出了一种多用户立体视图生成算法。实验结果表明,该框架具有较好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel particle filtering framework for 2D-TO-3D conversion from a monoscopic 2D image sequence
This paper presents a novel 2D-TO-3D conversion approach from a monoscopic 2D image sequence. We propose a particle filter framework for recursive recovery of point-wise depth from feature correspondences matched through image sequences. We formulate a novel 2D dynamics model for recursive depth estimation with the combination of camera model, structure model and translation model. The proposed method utilizes edge-detection-assisted scale-invariant features to avoid lack of edge features in scale-invariant features (SIFT). Furthermore, the depths in the depth map are computed and interpolated using 2D Delaunay triangulation. Finally, a stereo-view generation algorithm is presented for multiple users that uses proposed dynamics model and particle filter framework. Experimental results show that our proposed framework yields superior results.
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