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3 months ago

Unsupervised Scale-consistent Depth Learning from Video

Jia-Wang Bian Huangying Zhan Naiyan Wang Zhichao Li Le Zhang Chunhua Shen Ming-Ming Cheng Ian Reid

Unsupervised Scale-consistent Depth Learning from Video

Abstract

We propose a monocular depth estimator SC-Depth, which requires only unlabelled videos for training and enables the scale-consistent prediction at inference time. Our contributions include: (i) we propose a geometry consistency loss, which penalizes the inconsistency of predicted depths between adjacent views; (ii) we propose a self-discovered mask to automatically localize moving objects that violate the underlying static scene assumption and cause noisy signals during training; (iii) we demonstrate the efficacy of each component with a detailed ablation study and show high-quality depth estimation results in both KITTI and NYUv2 datasets. Moreover, thanks to the capability of scale-consistent prediction, we show that our monocular-trained deep networks are readily integrated into the ORB-SLAM2 system for more robust and accurate tracking. The proposed hybrid Pseudo-RGBD SLAM shows compelling results in KITTI, and it generalizes well to the KAIST dataset without additional training. Finally, we provide several demos for qualitative evaluation.

Code Repositories

Benchmarks

BenchmarkMethodologyMetrics
monocular-depth-estimation-on-kitti-eigenSC-Depth (ResNet18)
Delta u003c 1.25: 0.863
Delta u003c 1.25^2: 0.957
Delta u003c 1.25^3: 0.981
RMSE: 4.950
RMSE log: 0.197
absolute relative error: 0.119
monocular-depth-estimation-on-kitti-eigenSC-Depth (ResNet 50)
Delta u003c 1.25: 0.873
Delta u003c 1.25^2: 0.960
Delta u003c 1.25^3: 0.982
RMSE: 4.706
RMSE log: 0.191
absolute relative error: 0.114
monocular-depth-estimation-on-nyu-depth-v2-4Bian et al
Absolute relative error (AbsRel): 0.157
Root mean square error (RMSE): 0.593
delta_1: 78.0
delta_2: 94.0
delta_3: 98.4

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