Journal of Agricultural Science and Technology ›› 2024, Vol. 26 ›› Issue (3): 110-116.DOI: 10.13304/j.nykjdb.2022.0996
• INTELLIGENT AGRICULTURE & AGRICULTURAL MACHINERY • Previous Articles
Yafeng ZHAO1(), Mengxue WANG1, Deshuai WANG1, Dongdong WANG1, Yuan LI1, Junfeng HU2(
)
Received:
2022-11-16
Accepted:
2023-01-10
Online:
2024-03-15
Published:
2024-03-07
赵亚凤1(), 王孟雪1, 王德帅1, 王冬冬1, 李园1, 胡峻峰2(
)
作者简介:
赵亚凤 E-mail:zyf@nefu.edu.cn;通信胡峻峰E-mail:nefuhjf@126.com基金资助:
CLC Number:
Yafeng ZHAO, Mengxue WANG, Deshuai WANG, Dongdong WANG, Yuan LI, Junfeng HU. Maize Root Image Segmentation Based on CP-DeepLabv3+[J]. Journal of Agricultural Science and Technology, 2024, 26(3): 110-116.
赵亚凤, 王孟雪, 王德帅, 王冬冬, 李园, 胡峻峰. 基于CP-DeepLabv3+的玉米根系图像分割[J]. 中国农业科技导报, 2024, 26(3): 110-116.
实验环境 Experimental environment | 版本配置 Version Configuration |
---|---|
操作系统 Operating system | Windows 10 |
CPU | Intel i5-8300 |
GPU | GeForce RTX 2080×2 |
CUDA | 10.2 |
Python | 3.7 |
框架 Frame | Pytorch 1.7.1 |
Table 1 Software and hardware environment configuration
实验环境 Experimental environment | 版本配置 Version Configuration |
---|---|
操作系统 Operating system | Windows 10 |
CPU | Intel i5-8300 |
GPU | GeForce RTX 2080×2 |
CUDA | 10.2 |
Python | 3.7 |
框架 Frame | Pytorch 1.7.1 |
模型 Model | 交并比IoU/% | 准确率 PA/% | 平均准确率MPA/% | ||||
---|---|---|---|---|---|---|---|
根系 Root | 背景 Background | 平均 MIoU/% | |||||
Unet | 57.61 | 92.43 | 75.02 | 93.13 | 83.23 | ||
DeepLabv3+(Xception) | 64.94 | 93.57 | 79.26 | 94.25 | 88.03 | ||
DeepLabv3+(CA)(MobileNetv2) | 66.28 | 93.88 | 80.08 | 94.55 | 89.08 | ||
DeepLabv3+(CA+CFF) (ResNet) | 66.42 | 94.04 | 80.23 | 94.52 | 89.95 | ||
DeepLabv3+(DenseASPP) (Xception) | 66.49 | 94.23 | 80.36 | 94.60 | 89.98 | ||
CP-DeepLabv3+ | 70.18 | 95.72 | 82.95 | 96.58 | 92.47 |
Table 2 Evaluation results of different network models
模型 Model | 交并比IoU/% | 准确率 PA/% | 平均准确率MPA/% | ||||
---|---|---|---|---|---|---|---|
根系 Root | 背景 Background | 平均 MIoU/% | |||||
Unet | 57.61 | 92.43 | 75.02 | 93.13 | 83.23 | ||
DeepLabv3+(Xception) | 64.94 | 93.57 | 79.26 | 94.25 | 88.03 | ||
DeepLabv3+(CA)(MobileNetv2) | 66.28 | 93.88 | 80.08 | 94.55 | 89.08 | ||
DeepLabv3+(CA+CFF) (ResNet) | 66.42 | 94.04 | 80.23 | 94.52 | 89.95 | ||
DeepLabv3+(DenseASPP) (Xception) | 66.49 | 94.23 | 80.36 | 94.60 | 89.98 | ||
CP-DeepLabv3+ | 70.18 | 95.72 | 82.95 | 96.58 | 92.47 |
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