Call for General Papers

Prospective authors are invited to submit original technical papers for oral or poster presentations at MLCC and publication in the Conference Proceedings. The papers in communications, signal processing, and systems are solicited in the following topics, but are not limited to:

(Fundamental Theories)
* Fundamental Theories and Algorithms of Machine Learning
* Data Mining and Big Data Analysis
* Knowledge Discovery and Representations
* Feature Engineering and Representation Learning
* Traditional Machine Learning and Ensemble Learning
* Deep Learning and Neural Networks
* Generative Adversarial Networks and Generative Models
* Reinforcement Learning and Adaptive Systems
* Weak Supervision and Semi-supervised Learning
* Transfer Learning and Knowledge Distillation
* Active Learning
* Meta-Learning
* Adversarial Machine Learning
* Trustworthy Computing and Explainable AI
* Federated Learning and Distributed Machine Learning
* Secure Computing and Privacy Protection
* Knowledge Engineering and Knowledge Management
* Incremental Learning and Dynamic Knowledge Acquisition
* Probability, Statistics, and Stochastic Processes
* Numerical Computation and Mathematical Optimization
* Continuous Optimization and Combinatorial Optimization
* Differential Equations and Dynamical Systems

(Perception and Cognition)
* Human-Machine Interaction
* Neural Information Processing and Brain–machine Interfaces
* Internet of Things and Intelligent Sensing
* Intelligent Perception and Pattern Recognition
* Multimodal Learning and Cross-Modal Analysis
* Computer Vision and Image Understanding
* Object Location and Object Detection
* Natural Language Processing and Speech Recognition
* Human-Computer Dialogues and Narrative Generation
* Knowledge Graphs and Semantic Understanding
* Automatic Reasoning and Decision Making
* Cognitive Computing and Affective Intelligence
* Affective Computing and Semantic Analysis

(Application Systems)
* Recommendation Systems and Personalized Services
* Social Network Analysis
* Anomaly Detection and Fault Diagnosis
* Intelligent Control and Optimal Control
* Robotic Learning and Autonomous Systems
* Industrial Intelligence and Smart Manufacturing
* Industrial Big Data Application Practice
* Agriculture Intelligence and Smart Farming
* Intelligent Transportation and Autonomous Driving
* Smart City and Cognitive City
* Environmental Big Data Analysis
* Disaster Prediction and Management
* Bioinformatics and Computational Biology
* Biomedical Data Analysis and Biomedical AI
* AI Medical Diagnosis and Intelligent Therapy
* Financial Intelligence and Quantitative Analysis
* Financial Mathematics and Risk Management
* Financial data analysis and Investment Management
* Computational Geometry and Topological Analysis

(Computing Architecture)
* Cloud Computing and Edge Computing
* Distributed and High-Performance Computing
* High-Performance Networking and Communications
* Quantum Computing and Quantum Machine Learning
* Neuromorphic Computing and Brain-Inspired Intelligence
* In-Memory Computing and Near-Data Processing
* Intelligent Chips and Hardware Acceleration
* Novel Memory Architectures and Systems
* Photonics Computing and Novel Computing Paradigms
* Green Computing and Energy Efficiency Optimization

(Emerging Paradigms)
* Digital Twins and Virtual Simulation
* Metaverse and Immersive Computing
* Computational Modeling and Simulation
* Blockchain and Trusted Computing
* Granular Ball Computing

(Data Processing)
* Graph Data and Network Analysis
* Matrix Computation and Tensor Analysis
* Unstructured Data Processing
* Data Visualization and Interaction
* Time Series Analysis and Predictive Modeling
* Spatial Data and Geo-Computation
* Data Governance and Quality Management
* Data Security and Privacy Protection


 

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