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Hierarchical Normalization for Robust Monocular Depth Estimation

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In this paper, we address monocular depth estimation with deep neural networks. To enable training of deep monocular estimation models with various sources of datasets, state-of-the-art methods adopt image-level normalization strategies to generate affine-invariant depth representations. However, learning with image-level normalization mainly emphasizes the relations of pixel representations with the global statistic in the images, such as the structure of the scene, while the fine-grained depth difference may be overlooked. In this paper, we propose a novel multi-scale depth normalization method that hierarchically normalizes the depth representations based on spatial information and depth distributions. Compared with previous normalization strategies applied only at the holistic image level, the proposed hierarchical normalization can effectively preserve the fine-grained details and improve accuracy. We present two strategies that define the hierarchical normalization contexts in the depth domain and the spatial domain, respectively. Our extensive experiments show that the proposed normalization strategy remarkably outperforms previous normalization methods, and we set new state-of-the-art on five zero-shot transfer benchmark datasets.

Chi Zhang, Wei Yin, Zhibin Wang, Gang Yu, Bin Fu, Chunhua Shen• 2022

Related benchmarks

TaskDatasetResultRank
Monocular Depth EstimationKITTI (Eigen)
Abs Rel11.5
552
Depth EstimationNYU v2 (test)
Threshold Accuracy (delta < 1.25)94.8
438
Monocular Depth EstimationNYU v2 (test)
Abs Rel6.9
327
Depth EstimationNYU Depth V2--
226
Monocular Depth EstimationKITTI
Abs Rel0.115
220
Monocular Depth EstimationKITTI (Eigen split)
Abs Rel0.115
215
Monocular Depth EstimationNYU V2
Delta 1 Acc94.8
192
Depth EstimationKITTI--
184
Monocular Depth EstimationETH3D
AbsRel12.1
173
Monocular Depth EstimationDIODE
AbsRel24.2
161
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