Ruben Ricart-Sanchez

dblp:229/5379 · DBLP profile ↗
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4ranked-venue papers
3as first author
1since 2021 · last 2024
0000-0003-0387-1621ORCID · reported

Domains — the database's venue-derived domains; a paper can count in several

Computer networks · 4 · 3 first-author · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Computer networks
1 paper
Software-defined and programmable networks · 100%
Network and information security
1 paper
Network security · 100%
Computer architecture, parallel and distributed computing, and storage systems
1 paper
Reconfigurable computing and FPGAs · 100%

Topics — the 4 heaviest of 4, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Software-defined and programmable networks › programmable data plane
p4
0.312018
Hardware-Accelerated Firewall for 5G Mobile Networks · ICNP 2018
Software-defined and programmable networks
programmable data plane
0.312018
Hardware-Accelerated Firewall for 5G Mobile Networks · ICNP 2018
Network security
firewall
0.312018
Hardware-Accelerated Firewall for 5G Mobile Networks · ICNP 2018
Reconfigurable computing and FPGAs
FPGA accelerator
0.112018
Hardware-Accelerated Firewall for 5G Mobile Networks · ICNP 2018

Methods — techniques the papers use, named apart from their topics

p4 · 1.0FPGA · 1.0
YearPublicationVenuePosition
2024 An eBPF-XDP Hardware-Based Network Slicing Architecture for Future 6G Front- to Back-Haul Networks
abstract
The heterogeneous requirements imposed by different vertical businesses have motivated a networking paradigm shift in the next generation of mobile networks (beyond 5G and 6G), leading to critical operation competitiveness of improved productivity, performance and efficiency. Furthermore, with the global digital revolution, such as Industry 4.0, and a connected world, network virtualisation together with high reliability and high performance communications have become crucial elements for mobile network operators. To minimise the negative effects that could affect critical services, network slicing is widely recognised as a key technology with the objective of meeting the Service-Level Agreements (SLAs) and Key Performance Indicators (KPIs) in future 6G networks. In this context, it is essential to introduce a programmable data plane able to enforce flexible Quality of Service (QoS) commitments, while providing high-performance packet processing and real-time monitoring capabilities. To this end, this paper is focused on designing, prototyping and evaluating a novel framework that leverages a set of hardware-based technologies including eXpress Data Path (XDP), extended Barkeley Packet Filter (eBPF) and Smart Network Interface Cards (SmartNICs) to offload network functionality with the objective of providing high-performance pre-6G front-, mid-and back-haul network communications and thus, decreasing the overhead incurs by the Linux Kernel. The proposed solution is implemented based on bypassing the Linux Kernel and accelerating the communication, while providing network slice control and real-time monitoring capabilities. The main aim of this framework is to ensure network communications in forthcoming 6G infrastructures by guaranteeing 6G KPIs and avoiding system overload. The empirical validation of this solution for Industry 4.0 services as an example use case demonstrates key performance improvements in terms of packet processing as high as about 25Gbps, 20M packet per second, 0% packet loss, 0.1ms of latency and less than 10% load on the CPUs.
Pablo Salva-Garcia, Ruben Ricart-Sanchez, José M. Alcaraz Calero, Qi Wang 0001, Octavio Herrera
IEEE Trans. Netw. Serv. Manag.2
2019 P4-NetFPGA-based network slicing solution for 5G MEC architectures
abstract
Network Slicing is one of the fundamental capabilities of the new Fifth-generation (5G)networks. It is defined as several logical networks that are created to fulfil specific Quality of Service (QoS)and Quality of Experience (QoE)requirements and are available over the same physical infrastructure. This paper proposes a novel extension to P4-NetFPGA framework to achieve network slicing between different 5G users in the edge-to-core network segment. This solution provides hardware-isolation of the performance in terms of bandwidth, latency and packet loss of 5G network traffic. The work proposed has been validated in a real 5G infrastructure.
Ruben Ricart-Sanchez, Pedro Malagón, José M. Alcaraz Calero, Qi Wang 0001
ANCS1
2018 Hardware-Accelerated Firewall for 5G Mobile Networks
abstract
The evolution from the current Fourth-Generation (4G) networks to the emerging Fifth-Generation (5G) technologies implies significant changes in the architecture and poses demanding requirements on network infrastructures. One of the Key Performance Indicators (KPIs) in 5G is to ensure a secure network with zero downtime. In this paper, we focus on the provisioning of protection capabilities for 5G infrastructures. Our objective is to implement a new 5G firewall that allows the detection, differentiation and selective blocking of 5G network traffic in the edge-to-core network segment of a 5G infrastructure, using a hardware-accelerated framework based on Field Programmable Gate Arrays (FPGA), developed using the P4 language. The proposed 5G firewall has been prototyped with the new capabilities proposed empirically validated.
Ruben Ricart-Sanchez, Pedro Malagón, José M. Alcaraz Calero, Qi Wang 0001
ICNP1
2018 Towards an FPGA-Accelerated programmable data path for edge-to-core communications in 5G networks
Ruben Ricart-Sanchez, Pedro Malagón, Pablo Salva-Garcia, Enrique Chirivella-Perez, Qi Wang 0001, José M. Alcaraz Calero
J. Netw. Comput. Appl.1