Call for Paper

Computer Vision and Pattern Recognition

• 3D imaging from multi-view and sensors 

• 3D imaging from single images 

• Adversarial attack and defense mechanisms

• Biometrics and Computational Imaging 

• Computer vision for societal good 

• Computer vision theory 

• Datasets and evaluation 

• Machine learning, Deep learning architectures, and techniques 

• Document analysis and understanding 

• Efficient and scalable vision 

• Embodied vision: Active agents, simulation

• Event-based cameras and Explainable computer vision 

• Face, body, pose, gesture, and movement detection

• Image and video synthesis and generation, and Low-level vision 

• Medical imaging and biological vision, cell microscopy

• Multimodal learning and Optimization methods

• Photogrammetry and remote sensing, Physics-based vision and shape-from-X 

• Categorization, detection, retrieval, and Representation learning 

• Computer Vision for Robotics 

• Understanding of Scene Analysis 

• Segmentation, grouping, and shape analysis 

• Self-, semi-, meta-, and unsupervised learning

• Transfer learning,  low-shot learning, continual, and long-tail learning 

• Transparency, fairness, accountability, privacy, and ethics in vision 

• Action and event understanding, Low-level analysis, motion, and tracking 

• Vision + graphics, Vision, language, and reasoning 

• Vision applications, systems, and services

5G and Beyond Wireless Communications Technologies

• 5G and 6G Technologies

• Cell-free Networks

• Cloud-RAN, Programmable RAN

• Ultra Large Cell Technologies for 5G and beyond 5G networks

• 5G and Beyond Small Cell Technologies

• Network Slicing and Multi-service Architectures

• Cloud-based 5G and Beyond Mobile Architectures

• Network Function Virtualization (NFV)

• Software Defined Networking (SDN) for 5G and beyond 5G networks

• Rdio Resource Management

• Millimeter-wave Communications, Massive MIMO Communications, and Adaptive Beamforming Techniques

• Free Space Optical for 5G and beyond 5G networks

• Multicast/Broadcast and Convergence of RAN and Core Network

• Mobility Management and Multi-Connectivity/RAT

• Network, Relay, and Cloud-Computing Resource Management Techniques

• Device-to-Device Communications and Networking

• Energy-Efficient Network Design and Protocols for 5G and Beyond

• QoE/QoS Dynamic QoS Framework for 5G and Beyond

• Disruptive Use Cases

• Network and Protocol Interoperability in 5G and Beyond Wireless Networks

• Machine Learning and Adaptive Techniques for 5G and Beyond

• Ultra-reliability and Low-latency communications

• Terahertz for Future Networks

• Digital Twins of Complex Systems with 5G & Future Networks

• Tactile Internet

Future Network Applications and Services

• Smart Cities, Smart Public Places, Smart Home

• Smart Agriculture and Water Management

• Cyber-physical systems

• Collaborative Applications and Systems

• Service Experiences and Analysis

• Cloud Services with 5G & Future Networks

• Future Generation Consumer Electronics with 5G & Future Networks

• Rural Services and Production

• Wireless Networks for Body Sensors

• Crowd-sensing, Human-centric Sensing, Ambient Intelligence

• Context-aware, Situation-aware, Social-aware 5G and beyond Networks

• Industry of the Future, Semantic Technologies, Collective Intelligence

• Cognitive and Reasoning about Things and Smart Objects

• Open Communities, Open API, and Open Source

Artificial Intelligence in Networking and Communications

• AI/ML-based physical layer technologies for B5G and 6G

• Beamforming in a massive MIMO system based on AI/ML

• AI/ML-based non-orthogonal multiple access (NOMA) techniques

• AI/ML-aided Channel modeling

• AI/ML in network design and planning

• AI/ML for coverage and capacity optimization

• AI/ML-based network load balancing and traffic steering

• Intelligent network slicing

• AI/ML for network deployment automation

• AI/ML for service quality assurance and improvement

• AI/ML self-driving networks

• AI/ML for network energy saving and efficiency improvement

• Reinforce Learning for Autonomous Networks and Federated Learning in Networking

• Artificial intelligence-generated content (AIGC) for wireless security

• Large language model (LLM) for wireless security

• Machine learning/deep learning-driven device identification using radio frequency fingerprint, Physical layer channel features, and network traffic features

• Deep learning enhanced physical layer security

• Deep learning-enhanced RF security

• Adversarial machine learning in wireless communications, including adversarial erosion attacks, poisoning attacks, and Trojan/backdoor attacks

• Defensive and anticipatory aspects of adversarial machine learning in wireless communications

• AI/ML for Security and privacy of deep learning-based wireless sensing

• AI/ML for Intrusion and anomaly detection for wireless networks

Intelligent Transport and Vertical  Applications

• Aerospace and Defense Communications

• Smart Grid, Energy, Utilities Management and Operation

• Consumer Electronics and Rural Services

• Mining, Oil & Gas, Digital Oilfield,  Agriculture, Hospitality, Retailing

• Large Event Management, Industrial Service Creation, and Management

• Highway, Rail Systems

• Financial Services, Media & Entertainment

• E-Health and Mobile Health over 5G and Beyond Networks, and Assisted Living

• Operation Automation and  Building Management

• Environmental Monitoring, Connected Car, Automotive

Internet of Things

• IoT technologies for energy monitoring, efficiency, harvesting, etc.

• IoT Architecture with embedded AI

• AI for IoT edge computing

• Low-power AI for IoT and Distributed AI for IoT

• IoT with SDGs (Sustainable Development Goals)

• Intelligent Transportation Systems

• Big Data and Information Integrity in IoT

• Non-Terrestrial Networks for IoT/AI

• Beyond 5G, 6G technologies for IoT/AI

• Digital Twins in IoT applications

• Cryptography, Key Management, Authentication, and Authorization for IoT

• Biometrics Applications in Enhancing IoT Security and Privacy

• Blockchain for Securing 6G-enabled IoT-based Applications

• Security Awareness and Effective Training Approaches in IoT

• Applying Machine Learning Techniques in IoT Security

• Blockchain and Distributed Ledger Technology for IoT Security and Privacy

• Blockchain-based Security and Privacy in Resilient IoT-enabled 5G and Beyond

• Strategies for Proactive Cybersecurity Incident Prevention and Response in IoT

• Edge Computing and Intelligence in AI and IoT

• Machine Learning for IoT Applications

• Mobile deployment of Large Language Models (LLMs)

• LLMs for AIoT applications

• AI and IoT Solutions for Smart Cities

• Security and Privacy in AI-driven IoT Systems

• 5G and Its Impact on AI and IoT

• Human-Machine Interaction in IoT Environments

• IoT Sensors and Actuators: Innovations and Advances

• AI-driven Predictive Maintenance in IoT

• Energy-Efficient AI Algorithms for IoT Devices

• IoT in Healthcare: Applications and Challenges

• Industrial IoT (IIoT) and AI for Manufacturing

• AI and IoT in Precision Farming

• Ethical Considerations in AI-powered IoT Systems

• IoT Standards and Interoperability

• Robotic Process Automation (RPA) in IoT

• AI-driven Automation in Supply Chain Management

• IoT Analytics and Big Data Processing

• AI in Edge Devices: Challenges and Solutions

• Wireless Sensor Networks in AI and IoT

• IoT for Environmental Monitoring and Sustainability

• AI and IoT in Transportation and Logistics

• Cross-domain Integration of AI and IoT Technologies

Networking and Communications Technologies for Smart Agriculture

• Embedded Systems Solutions and Pervasive Computing for Smart Agriculture.

• Artificial intelligence in Smart Agriculture.

• Communications and Networking Technologies to enable Smart Agriculture.

• Novel systems, Models, Solutions, and Applications to minimize CO2 emissions.

• Technologies and Applications to assist in Agricultural Productivity and Resilience to Climate Change.

• Technologies and Applications for a sustainable Agrifood chain.

• Technologies and Applications to preserve soil, water, and biodiversity and to Sustain Environmental Protection.

 
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