# ICMLCN — IEEE International Conference on Machine Learning for Communication and Networking

- **Submission deadline**: 2024-10-31
- **Notification date**: 2025-01-31
- **Conference date**: 2025-05-26
- **Location**: Barcelona, Spain
- **Conference Partner Index**: 39.7/100 (ranked #5082, confidence 0.45, algorithm 1.1) — how this is computed: https://www.myhuiban.com/ranking
- **Trackers**: 0
- **Attendees**: 0
- **Canonical page**: https://www.myhuiban.com/conference/4622

## Call for papers

The second IEEE International Conference on Machine Learning in Communications and Networking will be held in Barcelona, Spain. The conference brings together researchers from the disciplines of Machine Learning (ML), Communication and Networking and Signal Processing, and aims at promoting fundamental and applied research of ML for designing and analyzing communication systems and networks, for developing communication protocols to support ML services, as well as for advancing distributed ML over communication networks. The conference targets any communication and networking area, such as, but not limited to, wireless, satellite, optical, or molecular communications, Internet, and WLAN. TOPICS • ML and molecular networks • ML and optical networks • ML in Intelligent reflecting surfaces • ML and networking in smart cities • Decentralized transmission optimization for edge learning • Distributed multi-agent reinforcement learning • Edge learning in wireless networks • Experiments and testbeds • Integrated distributed optimization with edge learning • Integrated sensing and communication via ML • Network architectures and protocols for edge learning • Over-the-air computation for edge learning • Privacy and security issues with ML over networks • Trustworthiness in ML decisions • ML and networking for intelligent transportation systems • ML and networking for smart grids • ML for signal processing in communication and networking • ML for the MAC layer • ML for the physical layer • ML for the transport layer • Communication-efficient distributed ML • Distributed ML over communication networks • Federated learning and communications • Learn to transmit and receive • Resource management and network optimization • Semantic communications and ML • Wireless communication to support ML services • Wireless networking to support ML services • ML and IoT • Large language models (LLMs) for communication and networking

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## Related journals

- Machine Learning — https://www.myhuiban.com/journal/194
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- Knowledge-Based Systems — https://www.myhuiban.com/journal/227
- Software & Systems Modeling — https://www.myhuiban.com/journal/99
- IEEE Transactions on Computers — https://www.myhuiban.com/journal/3

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Source: Conference Partner — https://www.myhuiban.com/conference/4622 (rankings reproduced from CCF / ICORE / QUALIS; data cached up to 1 hour)
