WPS-Dataset: A benchmark for wood plate segmentation in bark removal processing

Author:

Wang Rijun1,Zhang Guanghao1,Liang Fulong1,WANG Bo2,Mou Xiangwei1,Chen Yesheng1,Sun Peng3,Wang Canjin4

Affiliation:

1. Guangxi Normal University

2. Hechi University

3. North University of China

4. Xinhua Zhiyun Technology Co., Ltd.

Abstract

Abstract

Using deep learning methods is a promising approach to improving bark removal efficiency and enhancing the quality of wood products. However, the lack of publicly available datasets for wood plate segmentation in bark removal processing poses challenges for researchers in this field. To address this issue, a benchmark for wood plate segmentation in bark removal processing named WPS-dataset is proposed in this study, which consists of 4863 images. We designed an image acquisition device and assembled it on a bark removal equipment to capture images in real industrial settings. We evaluated the WPS-dataset using six typical segmentation models. The models effectively learn and understand the WPS-dataset characteristics during training, resulting in high performance and accuracy in wood plate segmentation tasks. We believe that our dataset can lay a solid foundation for future research in bark removal processing and contribute to advancements in this field.

Publisher

Research Square Platform LLC

Reference31 articles.

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2. Low accuracy bark gouging controls Ips typographus outbreaks while conserving non-target beetle diversity, Forest Ecology and Management;Sebastian Zarges Simon,2023

3. Zhang Yawei. Wood peeling machine research and manufacture[D] Zhejiang Forestry University, 2009.

4. Wang, Q., Zhan, X., Wu, Z., Liu, X., and Feng, X. (2022). "The applications of machine vision in raw material and production of wood products," BioResources 17(3), 5532–5556.

5. Zhong, Yuan, Image segmentation for defect detection on veneer surfaces, 1995, Oregon State University.

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