Category News

Balancing Energy Efficiency and Data Constraints at the Edge

Edge storage systems must minimize active nodes while respecting collocation, hardware, and privacy constraints. Our CATER framework achieves this with a hybrid optimization-heuristic approach, reducing energy consumption and data movement by up to 61%. 🌟 Follow us on LinkedIn! …

Why Edge Storage Needs Policy-Driven Data Placement

Traditional distributed storage systems ignore edge-specific constraints—like data sovereignty, hardware proximity, and privacy. CATER changes that, using integer linear programming and heuristics to place data optimally. Tested on Apache Ozone, it cuts active nodes by 23% while meeting all constraints.…

CATER: Smart Data Placement for the Edge-Cloud Continuum

Edge computing demands dynamic, constraint-aware data placement. CATER, our policy-driven framework, integrates with Apache Ozone to optimize storage while respecting GDPR, hardware compatibility, and collocation restrictions. The result? 23% fewer active nodes and 100% constraint compliance. 🌟 Follow us on…

From TCP to RDMA: A 55% Performance Leap in GPGPU Virtualization

Swapping TCP/IP for RDMA in GVirtuS didn’t just improve speed—it transformed GPGPU remoting. With Mellanox Infiniband, we slashed SAXPY execution time by 82% and Matrix Multiplication by 55%. The secret? Eliminating system calls and leveraging pre-registered memory. 🌟 Follow us…

The Hidden Costs of RDMA—and How We Overcame Them

RDMA’s memory registration overhead can negate its performance benefits. Our optimized GVirtuS RDMA communicator uses pre-registered buffers and polling-based work completion, cutting context switches by 98% and boosting Matrix Multiplication speed by 5.5x over TCP. 🌟 Follow us on LinkedIn!…

GVirtuS: A Plug-in Framework for Seamless GPGPU Virtualization

GVirtuS isn’t just another virtualization tool—it’s a vendor-agnostic, plug-in framework for CUDA API interception and GPGPU remoting. With RDMA over Infiniband, we achieved 55% faster performance than TCP on Ethernet. Open-source, flexible, and future-proof. #GPGPU #Virtualization 🌟 Follow us on…

Why RDMA Outperforms TCP in GPGPU Virtualization

Traditional TCP/IP communication in GPGPU virtualization suffers from high context switch overhead. Our RDMA communicator for GVirtuS reduces voluntary context switches by 90%, slashing execution time for Matrix Multiplication and SAXPY algorithms. The future of low-latency HPC is here. 🌟…

Revolutionizing GPGPU Virtualization with RDMA

Hardware virtualization in HPC and cloud computing demands low-latency, high-throughput communication. Our research introduces an RDMA-based communicator for GVirtuS, achieving 35% performance boost over TCP on Infiniband and 55% on Ethernet. Discover how RDMA eliminates context switches, enabling faster, more…

Join the 6G Revolution: Scalable, User-Centric MIMO

The future of 6G is user-centric, scalable, and efficient. Our research proves that distributed massive MIMO can achieve 96% lower processing complexity with minimal SE loss. Be part of the next wireless revolution. 🌟 Follow us on LinkedIn! Check…

The CLEVER Approach: Scalable MIMO for Real-World 6G T

The CLEVER Project introduces user-centric D-mMIMO—where processing capacity adapts to network demands, ensuring scalability without compromise. Explore how we’re making 6G a reality. 🌟 Follow us on LinkedIn! Check the updates from the website: www.cleverproject.eu 🌟 Full paper in:…