Multi-Stage UAV-Based System for Scalable and Accurate Crop Health Monitoring

被引:0
|
作者
Gode, Kaustubh [1 ]
Gharat, Kaustubh [1 ]
Jogi, Harshita [1 ]
Sapkal, Advait [2 ]
Thakar, Ronak [2 ]
Vishwakarma, Shubham [2 ]
Talele, Kiran [1 ]
Kulkarni, Sujata [3 ]
机构
[1] Sardar Patel Inst Technol, Elect Dept, Mumbai, Maharashtra, India
[2] Sardar Patel Inst Technol, Comp Sci & Engn, Mumbai, Maharashtra, India
[3] Sardar Patel Inst Technol, Comp Sci Dept, Mumbai, Maharashtra, India
关键词
Crop Monitoring; Deep Learning; Single BoardComputer; NDVI Analysis; Image Processing; MobileNetV1; Nvidia Jetson Nano; Precision Agriculture;
D O I
10.1109/SPACE63117.2024.10667804
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This work presents a new approach to crop quality monitoring that makes use of deep learning vision algorithms and a Single Board Computer (SBC). Our approach consists of a multi-step image processing pipeline, wherein the ROI (Region of Interest) is first identified using a specialised Vegetation determination procedure (NDVI). Furthermore, geo-coordinates enabling accurate geospatial mapping of crop quality measurements. A 5-layer CNN classifier, as well as deep learning models for leaf classification and optimised picture filtering, augmentation, and segmentation, come next. The system's real-time capabilities were assessed using an Nvidia Jetson Nano Developer kit.
引用
收藏
页码:652 / 655
页数:4
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