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Enhanced YOLOv8 for Efficient Parcel Identification in Disordered Logistics Environments
by
Yu, Han
, Gaoshuai, Zhuang
, Aohui, He
, Yuanhao, Qu
, Fengshou, Zhang
, Qingyang, Duan
in
Ablation
/ Ablation experiment
/ Accuracy
/ Algorithms
/ Artificial Intelligence
/ Complexity
/ Computational Intelligence
/ Control
/ Datasets
/ Engineering
/ Experiments
/ Identification
/ Logistics
/ Mathematical Logic and Foundations
/ Mechatronics
/ Modules
/ Packages
/ Packaging
/ Real time
/ Research Article
/ Robotics
/ Robots
/ Target recognition
/ Unordered logistics package
/ YOLOV8
2025
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Enhanced YOLOv8 for Efficient Parcel Identification in Disordered Logistics Environments
by
Yu, Han
, Gaoshuai, Zhuang
, Aohui, He
, Yuanhao, Qu
, Fengshou, Zhang
, Qingyang, Duan
in
Ablation
/ Ablation experiment
/ Accuracy
/ Algorithms
/ Artificial Intelligence
/ Complexity
/ Computational Intelligence
/ Control
/ Datasets
/ Engineering
/ Experiments
/ Identification
/ Logistics
/ Mathematical Logic and Foundations
/ Mechatronics
/ Modules
/ Packages
/ Packaging
/ Real time
/ Research Article
/ Robotics
/ Robots
/ Target recognition
/ Unordered logistics package
/ YOLOV8
2025
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Do you wish to request the book?
Enhanced YOLOv8 for Efficient Parcel Identification in Disordered Logistics Environments
by
Yu, Han
, Gaoshuai, Zhuang
, Aohui, He
, Yuanhao, Qu
, Fengshou, Zhang
, Qingyang, Duan
in
Ablation
/ Ablation experiment
/ Accuracy
/ Algorithms
/ Artificial Intelligence
/ Complexity
/ Computational Intelligence
/ Control
/ Datasets
/ Engineering
/ Experiments
/ Identification
/ Logistics
/ Mathematical Logic and Foundations
/ Mechatronics
/ Modules
/ Packages
/ Packaging
/ Real time
/ Research Article
/ Robotics
/ Robots
/ Target recognition
/ Unordered logistics package
/ YOLOV8
2025
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Enhanced YOLOv8 for Efficient Parcel Identification in Disordered Logistics Environments
Journal Article
Enhanced YOLOv8 for Efficient Parcel Identification in Disordered Logistics Environments
2025
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Overview
Accurate parcel identification in disordered logistics environments poses significant challenges due to varying package sizes, materials, and orientations. This study presents an improved YOLOv8-Efficiency algorithm tailored for such complex scenarios. The proposed algorithm introduces the C2f-OR module to reduce parameters and computation, the Conv-Ghost module for efficient feature extraction, and the HIoU loss function to enhance identification accuracy. By constructing a dataset of 4689 photos, experiments demonstrate the algorithm's effectiveness, achieving a 93.2% mAP, a 1.6% recall rate improvement, and a significant reduction in computational complexity (9.9% decrease in FLOPs). This work provides a robust solution for real-time parcel identification in disordered logistics, facilitating automation and efficiency in logistics operations.
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