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From Big to Small: Multi-Scale Local Planar Guidance for Monocular Depth Estimation

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Estimating accurate depth from a single image is challenging because it is an ill-posed problem as infinitely many 3D scenes can be projected to the same 2D scene. However, recent works based on deep convolutional neural networks show great progress with plausible results. The convolutional neural networks are generally composed of two parts: an encoder for dense feature extraction and a decoder for predicting the desired depth. In the encoder-decoder schemes, repeated strided convolution and spatial pooling layers lower the spatial resolution of transitional outputs, and several techniques such as skip connections or multi-layer deconvolutional networks are adopted to recover the original resolution for effective dense prediction. In this paper, for more effective guidance of densely encoded features to the desired depth prediction, we propose a network architecture that utilizes novel local planar guidance layers located at multiple stages in the decoding phase. We show that the proposed method outperforms the state-of-the-art works with significant margin evaluating on challenging benchmarks. We also provide results from an ablation study to validate the effectiveness of the proposed method.

Jin Han Lee, Myung-Kyu Han, Dong Wook Ko, Il Hong Suh• 2019

Related benchmarks

TaskDatasetResultRank
Monocular Depth EstimationKITTI (Eigen)
Abs Rel0.056
502
Depth EstimationNYU v2 (test)
Threshold Accuracy (delta < 1.25)88.5
423
Depth EstimationKITTI (Eigen split)
RMSE1.925
276
Monocular Depth EstimationNYU v2 (test)
Abs Rel0.11
257
Monocular Depth EstimationKITTI (Eigen split)
Abs Rel0.06
193
Depth EstimationNYU Depth V2
RMSE0.391
177
3D Semantic SegmentationScanNet V2 (val)
mIoU53.72
171
Monocular Depth EstimationKITTI
Abs Rel0.059
161
Monocular Depth EstimationKITTI Raw Eigen (test)
RMSE2.756
159
Monocular Depth EstimationKITTI 80m maximum depth (Eigen)
Abs Rel0.059
126
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