MinkSORT: A 3D deep feature extractor using sparse convolutions to improve 3D multi-object tracking in greenhouse tomato plants
David Rapado-Rincon, Eldert J. van Henten, Gert Kootstra

TL;DR
MinkSORT introduces a 3D deep feature extraction method using sparse convolutions to enhance multi-object tracking accuracy in greenhouse tomato environments, addressing challenges like occlusions and high variability.
Contribution
The paper presents MinkSORT, a novel 3D sparse convolutional network-based tracking method that significantly improves multi-object tracking performance in agro-food environments.
Findings
MinkSORT increased HOTA from 42.8% to 44.77%.
MinkSORT improved association accuracy from 32.55% to 35.55%.
MinkSORT enhanced MOTA from 57.63% to 58.81%.
Abstract
The agro-food industry is turning to robots to address the challenge of labour shortage. However, agro-food environments pose difficulties for robots due to high variation and occlusions. In the presence of these challenges, accurate world models, with information about object location, shape, and properties, are crucial for robots to perform tasks accurately. Building such models is challenging due to the complex and unique nature of agro-food environments, and errors in the model can lead to task execution issues. In this paper, MinkSORT, a novel method for generating tracking features using a 3D sparse convolutional network in a deepSORT-like approach, is proposed to improve the accuracy of world models in agro-food environments. MinkSORT was evaluated using real-world data collected in a tomato greenhouse, where it significantly improved the performance of a baseline model that…
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Taxonomy
TopicsSmart Agriculture and AI · Remote Sensing in Agriculture · Spectroscopy and Chemometric Analyses
