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cspn_monodepth's Introduction

CSPN implemented in Pytorch 0.4.1

Introduction

This is a PyTorch(0.4.1) implementation of Depth Estimation via Affinity Learned with Convolutional Spatial Propagation Network. At present, we can provide train script in NYU Depth V2 dataset for depth completion and monocular depth estimation. KITTI will be available soon!

Note: we fix some bugs in original code.

Reselt

We use 2 Titan X to train CSPN for depth completion and monocular depth estimation.

Monocular Depth Estimation

Method rml rmse log10 Delta1 Delta2 Delta3
CSPN_ours 0.151 0.546 0.064 0.793 0.949 0.985

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Depth Completion

We test CSPN for depth completion in NYU Depth dataset and use 500 sparse samples.

Method rml rmse log10 Delta1 Delta2 Delta3
CSPN 0.016 0.117 - 0.992 0.999 1.000
CSPN_ours 0.023 0.152 0.010 0.988 0.997 0.999

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