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基于课程学习的点云同步颜色配准与深度补全

Simultaneous Color Registration and Depth Completion of Point Clouds with Curriculum Learning.

作者信息

Martinez Juan Camilo, Montes Ana María, Marín Cesar, Álvarez-Martínez David

机构信息

Department of Industrial Engineering, Universidad de los Andes, Bogotá 11171, Colombia.

Integra S.A., Pereira 660003, Colombia.

出版信息

Sensors (Basel). 2025 May 26;25(11):3328. doi: 10.3390/s25113328.

Abstract

Dense depth completion is critical for 3D computer vision but remains challenging when depth data are sparse and misaligned with color images due to sensor offsets. We propose a fully convolutional neural network architecture that simultaneously performs depth completion and color image registration, effectively addressing the problem of sparse depth maps and misaligned RGB inputs. Our model is trained with a novel synthetic depth generation strategy that mimics real time-of-flight (ToF) sensor noise and occlusion artifacts, helping to bridge the simulation-to-real gap. In addition, we adopt a staged curriculum learning paradigm that progressively increases task complexity over three training phases, from easy alignment scenarios to full-depth completion with simulated sensor noise. By leveraging shared features between the depth and color tasks, the joint model outperforms separate single-task approaches. At the KITTI Depth Completion benchmark, the proposed approach achieves competitive accuracy while using significantly fewer parameters and achieving faster inference than existing methods, demonstrating its effectiveness and efficiency.

摘要

密集深度补全对于3D计算机视觉至关重要,但当深度数据稀疏且由于传感器偏移而与彩色图像未对齐时,仍然具有挑战性。我们提出了一种全卷积神经网络架构,该架构同时执行深度补全和彩色图像配准,有效解决了稀疏深度图和未对齐RGB输入的问题。我们的模型采用了一种新颖的合成深度生成策略进行训练,该策略模仿了实时飞行时间(ToF)传感器噪声和遮挡伪像,有助于弥合模拟与现实之间的差距。此外,我们采用了一种分阶段的课程学习范式,在三个训练阶段逐步增加任务复杂性,从简单的对齐场景到带有模拟传感器噪声的全深度补全。通过利用深度和颜色任务之间的共享特征,联合模型优于单独的单任务方法。在KITTI深度补全基准测试中,所提出的方法在使用明显更少的参数并比现有方法实现更快推理的同时,达到了有竞争力的准确率,证明了其有效性和效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a74a/12156971/41a752443fca/sensors-25-03328-g001.jpg

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