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Unverified paper record

Crops3D: a diverse 3D crop dataset for realistic perception and segmentation toward agricultural applications.

Scientific data · 27 Dec 2024 · 10.1038/s41597-024-04290-0

Abstract

Point cloud analysis is a crucial task in computer vision. Despite significant advances over the past decade, the developments in agricultural domain have faced challenges due to a scarcity of datasets. To facilitate 3D point cloud research in agriculture community, we introduce Crops3D, the diverse real-world dataset derived from authentic agricultural scenarios. Crops3D distinguishes itself through its unique properties: diversity, authenticity, and complexity. The dataset incorporates data from diverse point cloud acquisition methods, encompassing eight distinct crop types with 1,230 samples, authentically representing crops in the real-world. It stands as the pioneering dataset that comprehensively supports the three critical tasks in 3D crop phenotyping: instance segmentation of individual plants in agricultural settings, plant type perception, and plant organ segmentation. Additionally, the intricate crop structures in Crops3D exhibit higher complexity than available 3D public datasets, showcasing substantial self-occlusion and increased complexity as crops mature. We analyse diverse crop point cloud acquisition methods and evaluate multiple models' performance with the Crops3D dataset.

Plant phenotyping relevance

3D作物点群データセットを構築し、個体・器官のセグメンテーションなど植物フェノタイピング用途で複数モデルと取得法を評価しており、データセットと解析手法が中心である。

abstractIt stands as the pioneering dataset that comprehensively supports the three critical tasks in 3D crop phenotyping: instance segmentation of individual plants in agricultural settings, plant type perception, and plant organ segmentation.
abstractWe analyse diverse crop point cloud acquisition methods and evaluate multiple models' performance with the Crops3D dataset.

Code and data availability

The paper's Crops3D point cloud dataset is deposited in figshare, but no figshare URL is among the allowed URLs, so the dataset itself cannot be linked. The authors' analysis code (subsampling, corruption, S3DIS-format conversion scripts, environment files) is explicitly stated to be publicly available on GitHub, which

Codepublic

the subsampling, corruption scripts, conversion to S3DIS format scripts, along with other code-related content, are available through the following GitHub repository: https://github.com/clawCa/Crops3D

Open resource ↗https://github.com/clawCa/Crops3D · pdf-page:15 lines:1-21

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