Agriculture-Vision: A Large Aerial Image Database for Agricultural Pattern Analysis
Mang Tik Chiu, Xingqian Xu, Yunchao Wei, Zilong Huang, Alexander, Schwing, Robert Brunner, Hrant Khachatrian, Hovnatan Karapetyan, Ivan Dozier,, Greg Rose, David Wilson, Adrian Tudor, Naira Hovakimyan, Thomas S. Huang,, Honghui Shi

TL;DR
This paper introduces Agriculture-Vision, a large-scale aerial image dataset with high-resolution RGB and NIR images for semantic segmentation of agricultural patterns, aiming to advance computer vision applications in agriculture.
Contribution
It provides a new extensive dataset with annotated farmland images and proposes a specialized model for agricultural pattern recognition, addressing unique challenges in this domain.
Findings
The dataset contains 94,986 images from 3,432 farmlands across the US.
Semantic segmentation models face significant challenges with this dataset.
The proposed model improves agricultural pattern recognition performance.
Abstract
The success of deep learning in visual recognition tasks has driven advancements in multiple fields of research. Particularly, increasing attention has been drawn towards its application in agriculture. Nevertheless, while visual pattern recognition on farmlands carries enormous economic values, little progress has been made to merge computer vision and crop sciences due to the lack of suitable agricultural image datasets. Meanwhile, problems in agriculture also pose new challenges in computer vision. For example, semantic segmentation of aerial farmland images requires inference over extremely large-size images with extreme annotation sparsity. These challenges are not present in most of the common object datasets, and we show that they are more challenging than many other aerial image datasets. To encourage research in computer vision for agriculture, we present Agriculture-Vision: a…
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Code & Models
Videos
Agriculture-Vision: A Large Aerial Image Database for Agricultural Pattern Analysis· youtube
Taxonomy
TopicsSmart Agriculture and AI · Remote Sensing in Agriculture · Remote Sensing and LiDAR Applications
