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LiDAR Data Synthesis with Denoising Diffusion Probabilistic Models

About

Generative modeling of 3D LiDAR data is an emerging task with promising applications for autonomous mobile robots, such as scalable simulation, scene manipulation, and sparse-to-dense completion of LiDAR point clouds. While existing approaches have demonstrated the feasibility of image-based LiDAR data generation using deep generative models, they still struggle with fidelity and training stability. In this work, we present R2DM, a novel generative model for LiDAR data that can generate diverse and high-fidelity 3D scene point clouds based on the image representation of range and reflectance intensity. Our method is built upon denoising diffusion probabilistic models (DDPMs), which have shown impressive results among generative model frameworks in recent years. To effectively train DDPMs in the LiDAR domain, we first conduct an in-depth analysis of data representation, loss functions, and spatial inductive biases. Leveraging our R2DM model, we also introduce a flexible LiDAR completion pipeline based on the powerful capabilities of DDPMs. We demonstrate that our method surpasses existing methods in generating tasks on the KITTI-360 and KITTI-Raw datasets, as well as in the completion task on the KITTI-360 dataset. Our project page can be found at https://kazuto1011.github.io/r2dm.

Kazuto Nakashima, Ryo Kurazume• 2023

Related benchmarks

TaskDatasetResultRank
LiDAR Semantic SegmentationSemanticKITTI
mIoU62.57
36
Unconditional LiDAR GenerationKITTI360 (val)
FSVD36.8
11
LiDAR Scene GenerationKITTI-360 (val)
FRD179.4
9
LiDAR DensificationKITTI-360 64-beam, ~120K to ~250K (val)
CD (m)0.2416
9
LiDAR DensificationnuScenes 32-beam (val)
CD (m)0.2745
9
Unconditional LiDAR GenerationKITTI-360 19
FRD149.7
8
LiDAR Scene GenerationnuScenes 2
FPD14.35
7
Unconditional LiDAR GenerationKITTI-360 (val)
FSVD12.67
6
Unconditional LiDAR GenerationKITTI-360 (train-val)
FSVD10.99
6
LiDAR GenerationConstructed multi-domain dataset Vehicle
FRD443.3
4
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