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DeepScanner: a Robotic System for Automated 2D Object Dataset Collection with Annotations

5 August 2021
V. Ilin
Ivan Kalinov
Pavel A. Karpyshev
Dzmitry Tsetserukou
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Abstract

In the proposed study, we describe the possibility of automated dataset collection using an articulated robot. The proposed technology reduces the number of pixel errors on a polygonal dataset and the time spent on manual labeling of 2D objects. The paper describes a novel automatic dataset collection and annotation system, and compares the results of automated and manual dataset labeling. Our approach increases the speed of data labeling 240-fold, and improves the accuracy compared to manual labeling 13-fold. We also present a comparison of metrics for training a neural network on a manually annotated and an automatically collected dataset.

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