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Papers/Dense Extreme Inception Network for Edge Detection

Dense Extreme Inception Network for Edge Detection

Xavier Soria, Angel Sappa, Patricio Humanante, Arash Akbarinia

2021-12-04Edge Detection
PaperPDFCode(official)

Abstract

<<<This is a pre-acceptance version, please, go through Pattern Recognition Journal on Sciencedirect to read the final version>>>. Edge detection is the basis of many computer vision applications. State of the art predominantly relies on deep learning with two decisive factors: dataset content and network's architecture. Most of the publicly available datasets are not curated for edge detection tasks. Here, we offer a solution to this constraint. First, we argue that edges, contours and boundaries, despite their overlaps, are three distinct visual features requiring separate benchmark datasets. To this end, we present a new dataset of edges. Second, we propose a novel architecture, termed Dense Extreme Inception Network for Edge Detection (DexiNed), that can be trained from scratch without any pre-trained weights. DexiNed outperforms other algorithms in the presented dataset. It also generalizes well to other datasets without any fine-tuning. The higher quality of DexiNed is also perceptually evident thanks to the sharper and finer edges it outputs.

Results

TaskDatasetMetricValueModel
Edge DetectionUDEDODS0.815DexiNed
Edge DetectionBIPEDODS0.895DexiNed
Edge DetectionMDBDODS0.894DexiNed-a
Edge DetectionMDBDODS0.891DexiNed-f
2D Object DetectionUDEDODS0.815DexiNed
2D Object DetectionBIPEDODS0.895DexiNed
2D Object DetectionMDBDODS0.894DexiNed-a
2D Object DetectionMDBDODS0.891DexiNed-f

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