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Recent Advancements in Deep Learning Applications and Methods for Autonomous Navigation -- A Comprehensive Review"
A collection of end-to-end deep learning frameworks for autonomous navigation. The review is based on the paper "Recent Advancements in Deep Learning Applications and Methods for Autonomous Navigation -- A Comprehensive Review".
Recent Advancements in Deep Learning Applications and Methods for Autonomous Navigation -- A Comprehensive Review
Arman Asgharpoor Golroudbari and Mohammad Hossein Sabour
arXiv:2302.11089 [PDF]
ResearchGate: [PDF]
Abstract
This comprehensive review article surveys recent advancements in deep learning applications and methods for autonomous navigation. We provide a detailed overview of state-of-the-art deep learning frameworks for key functions in autonomous navigation, including obstacle detection, scene perception, path planning, and control. We analyze recent research studies to evaluate the implementation and testing of these methods, and provide a critical assessment of their strengths, limitations, and potential areas of growth. We also highlight interdisciplinary work related to this field, and discuss the challenges posed by environmental complexity, uncertainty, obstacles, and dynamic environments. Our review emphasizes the importance of navigation for mobile robots, autonomous cars, unmanned aerial vehicles, and space vehicles, and identifies key trends in recent research. By synthesizing findings from multiple studies, we provide a valuable resource for researchers and practitioners working in this field.
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Based on a Convolutional Neural Network Considering Traversability Cost | | 2022 | IEEE Internet of Things Journal | Deep Reinforcement Learning for Trajectory Path Planning and Distributed Inference in Resource-Constrained UAV Swarms | | 2022 | 2022 30th International Conference on Electrical Engineering (ICEE) | Synergy of Deep Learning and Artificial Potential Field Methods for Robot Path Planning in the Presence of Static and Dynamic Obstacles | | 2023 | Drones | Visual-Inertial Odometry Using High Flying Altitude Drone Datasets | | 2023 | IEEE Sensors Journal | A Novel Deep Multifeature Extraction Framework Based on Attention Mechanism Using Wearable Sensor Data for Human Activity Recognition | | 2023 | Expert Systems with Applications | Learning precise feature via self-attention and self-cooperation YOLOX for smoke detection | | 2023 | Signal, Image and Video Processing | Curve-based lane estimation model with lightweight attention mechanism | | 2023 | Neurocomputing | Probabilistic instance shape reconstruction with sparse LiDAR for monocular 3D object detection | | 2023 | Sensors | A preliminary study of deep learning sensor fusion for pedestrian detection | | 2023 | Journal of Real-Time Image Processing | D3NET (divide and detect drivable area net): deep learning based drivable area detection and its embedded application | | 2023 | IEEE Transactions on Intelligent Transportation Systems | Data-driven indoor positioning correction for infrastructure-enabled autonomous driving systems: A lifelong framework | | 2023 | Pattern Recognition Letters | Small-object detection based on YOLOv5 in autonomous driving systems | | 2023 | International Journal of Automotive Technology | High Definition Map Aided Object Detection for Autonomous Driving in Urban Areas | | 2023 | Journal of Visual Communication and Image Representation | LiDAR-only 3D object detection based on spatial context | | 2023 | Image and Vision Computing | An automated hyperparameter tuned 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Citation
A. Asgharpoor, M. H. Sabour, 2023, Recent Advancements in Deep Learning Applications and Methods for Autonomous Navigation A Comprehensive Review, Sensors, arxiv.org/abs/2302.11089
Owner
- Name: Arman Asgharpoor
- Login: Armanasq
- Kind: user
- Company: University of Tehran
- Website: https://armanasq.github.io/
- Twitter: Armannearu
- Repositories: 1
- Profile: https://github.com/Armanasq
Avionics Engineer M.Sc. Space Engineering AI / Deep Learning
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