Intelligent identification of film on cotton based on hyperspectral imaging and convolutional neural network

Author:

Liu Zongbin1,Zhao Ling1ORCID,Yu Xin1,Zhang Yiqing1,Cui Jianping2,Ni Chao3,Zhang Laigang1

Affiliation:

1. School of Mechanical and Automobile Engineering, Liaocheng University, Liaocheng, China

2. Research Institute of Economic Crops, Xinjiang Academy of Agricultural Sciences, Urumqi, China

3. College of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing, Jiangsu, China

Abstract

The identification of the film on cotton is of great significance for the improvement of cotton quality. Most of the existing technologies are dedicated to removing colored foreign fibers from cotton using photoelectric sorting methods. However, the current technologies are difficult to identify colorless transparent film, which becomes an obstacle for the harvest of high-quality cotton. In this paper, an intelligent identification method is proposed to identify the colorless and transparent film on cotton, based on short-wave near-infrared hyperspectral imaging and convolutional neural network (CNN). The algorithm includes black-and-white correction of hyperspectral images, hyperspectral data dimensionality reduction, CNN model training and testing. The key technology is that the features of the hyperspectral image data are degraded by the principal component analysis (PCA) to reduce the amount of computing time. The main innovation is that the colorless and transparent film on cotton can be accurately identified through a CNN with the performance of automatic feature extraction. The experimental results show that the proposed method can greatly improve the identification precision, compared with the traditional methods. After the simulation experiment, the method proposed in this paper has a recognition rate of 98.5% for film. After field testing, the selection rate of film is as high as 96.5%, which meets the actual production needs.

Funder

Key Funding Projects of Liaocheng University

Natural Science Foundation of Shandong Province

Publisher

SAGE Publications

Subject

Multidisciplinary

Reference33 articles.

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3. Junting M, Shoujun W, Shurong T, et al. Analysis on the hazards and risks of residual film to cotton fields and cotton products. China Cotton Association. China Cotton Association 2014 Annual Conference Paper Collection [C]. China Cotton Society: Editorial Office of "Cotton Journal", 2014: 3. (in Chinese).

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