An intensive vRAN deployment with OpenAirInterface
Pith reviewed 2026-05-22 03:48 UTC · model grok-4.3
The pith
Adapting OpenAirInterface enables scaling multiple vRAN instances on a shared server with measurable performance effects.
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
We adapted the OpenAirInterface software stack to leverage the capabilities of hardware and developed methods to scale the vRAN deployment with several instances sharing a server. We describe the improvements to the stack and their effect on performance, along with observations on how computer architectures influence the deployment and the remaining limitations that call for further work.
What carries the argument
The adapted OpenAirInterface stack configured for multi-instance vRAN scaling on shared general-purpose processors and hardware accelerators.
Load-bearing premise
The tested computer architectures and chosen scaling configurations are representative enough that the reported performance effects and architectural observations will generalize to other intensive vRAN deployments without substantial additional tuning.
What would settle it
Deploying the same multi-instance configuration on a different processor family or with a higher number of concurrent vRAN instances would reveal whether performance scales as reported or requires further software changes.
Figures
read the original abstract
The advent of 5G virtualized Radio Access Networks (vRANs) brings a new challenge with regards to computer architectures. It requires to select or design computing technologies that provide a sufficient level of performance while maximizing the flexibility and efficiency of the implemented networks. Several solutions addressing this challenge were proposed, relying on general purpose processors as well as hardware accelerators. This work describes our effort to enable an intensive vRAN deployment using the 5G software stack OpenAirInterface on top of these computer architectures. We had to adapt the software stack to leverage the capabilities of hardware and to find how to scale up the vRAN deployment with several vRAN instances sharing a server. We describe in this work our improvements to the stack and their effect on performance. We also share our observations on the behavior of the computer architectures and how they affect our deployment. We finally discuss the limitations of our deployment and further efforts to implement better vRAN deployments.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript describes adaptations to the OpenAirInterface 5G software stack to support intensive vRAN deployments, specifically enabling multiple vRAN instances to share a single server. The authors detail modifications to leverage hardware capabilities of general-purpose processors and accelerators, report the performance effects of these changes, and share observations on how computer architectures influence such deployments. The work concludes by discussing limitations and suggesting further improvements for better vRAN implementations.
Significance. If the reported adaptations produce reproducible performance gains and the architectural observations hold beyond the tested setups, the work offers practical value for scaling open-source vRAN systems on shared commodity hardware. It addresses real deployment challenges in 5G virtualization and could inform efficient resource sharing strategies, though its significance depends on the strength of the empirical evidence and generalizability.
major comments (2)
- [§4 (Performance Evaluation)] §4 (Performance Evaluation): The central claim that the stack adaptations enabled scaling with measurable performance effects lacks quantitative metrics, baseline comparisons to unmodified OAI, error bars, or statistical details. This is load-bearing for validating the improvements and their impact.
- [§5 (Architectural Observations)] §5 (Architectural Observations): The observations on computer architecture behavior are drawn from a small number of tested configurations without systematic variation of CPU models, memory hierarchies, or accelerators. This undermines broader conclusions about intensive vRAN deployments.
minor comments (2)
- [Abstract] The abstract summarizes claims qualitatively but would be strengthened by including at least one key quantitative result or comparison.
- [§3 (Adaptations)] Notation for vRAN instance scaling parameters could be clarified with a table or diagram in the methods section.
Simulated Author's Rebuttal
We thank the referee for the detailed and constructive review. We address the two major comments point by point below, indicating where revisions will be made to strengthen the empirical presentation while preserving the scope of the work.
read point-by-point responses
-
Referee: [§4 (Performance Evaluation)] The central claim that the stack adaptations enabled scaling with measurable performance effects lacks quantitative metrics, baseline comparisons to unmodified OAI, error bars, or statistical details. This is load-bearing for validating the improvements and their impact.
Authors: We agree that Section 4 would be strengthened by additional quantitative detail. The current manuscript reports measured effects on throughput, latency, and scaling when multiple vRAN instances share a server after our modifications. To address the concern, we will add explicit baseline comparisons against unmodified OpenAirInterface, include error bars on all performance plots, and report basic statistical measures (means and standard deviations across repeated runs) in the revised version. revision: yes
-
Referee: [§5 (Architectural Observations)] The observations on computer architecture behavior are drawn from a small number of tested configurations without systematic variation of CPU models, memory hierarchies, or accelerators. This undermines broader conclusions about intensive vRAN deployments.
Authors: The observations reflect the specific commodity platforms and accelerators available for our experiments, which are representative of current vRAN testbeds. We did not perform an exhaustive parameter sweep, as that would exceed the scope of demonstrating practical scaling on shared hardware. In revision we will explicitly list the tested CPU models, memory configurations, and accelerators, add a limitations paragraph clarifying the generalizability of the observations, and avoid language that implies universality. revision: partial
Circularity Check
No circularity: empirical deployment report with direct measurements
full rationale
The paper is an empirical description of software adaptations to OpenAirInterface for scaling multiple vRAN instances on shared servers, including performance measurements and architectural observations on tested hardware. No mathematical derivations, equations, fitted parameters, or predictions appear. Claims rest on direct testing and reported effects rather than any self-referential reduction to inputs. No self-citations form load-bearing premises, and the work is self-contained against external benchmarks of vRAN performance. This is the expected non-finding for a deployment-focused systems paper.
Axiom & Free-Parameter Ledger
Lean theorems connected to this paper
-
IndisputableMonolith/Cost/FunctionalEquation.leanwashburn_uniqueness_aczel unclear?
unclearRelation between the paper passage and the cited Recognition theorem.
We contributed in enabling an AAL compliant offload of channel encoding and decoding with LDPC relying on DPDK BBDev... reworked the interface to LDPC coding implementations... reduction of the processing time of up to 21% for channel encoding...
-
IndisputableMonolith/Foundation/DimensionForcing.leanalexander_duality_circle_linking unclear?
unclearRelation between the paper passage and the cited Recognition theorem.
The AMD EPYC 9005 and 8004 processors are manufactured from 8-cores core complexes with one L3 cache per core complex... a gNB instance has to be contained on one core complex.
What do these tags mean?
- matches
- The paper's claim is directly supported by a theorem in the formal canon.
- supports
- The theorem supports part of the paper's argument, but the paper may add assumptions or extra steps.
- extends
- The paper goes beyond the formal theorem; the theorem is a base layer rather than the whole result.
- uses
- The paper appears to rely on the theorem as machinery.
- contradicts
- The paper's claim conflicts with a theorem or certificate in the canon.
- unclear
- Pith found a possible connection, but the passage is too broad, indirect, or ambiguous to say the theorem truly supports the claim.
Reference graph
Works this paper leans on
-
[1]
White paper, China Mobile Research Institute, April 2010
C-RAN The Road Towards Green RAN. White paper, China Mobile Research Institute, April 2010
work page 2010
-
[2]
White paper, O-RAN Alliance, October 2018
O-RAN: Towards an Open and Smart RAN. White paper, O-RAN Alliance, October 2018
work page 2018
-
[3]
White paper, NTT DOCOMO, June 2021
5G Open RAN Ecosystem Whitepaper. White paper, NTT DOCOMO, June 2021
work page 2021
-
[4]
Solution brief, AMD, January 2021
MODERNIZE YOUR NETWORK TO MAXIMIZE 5G OPPORTUNITIES. Solution brief, AMD, January 2021
work page 2021
-
[5]
Solution brief, AMD Xilinx, 2021
Xilinx T2 Telco Accelerator Card. Solution brief, AMD Xilinx, 2021
work page 2021
-
[6]
Slices-ri blueprint, 2023. https://doc.slices-sc. eu/blueprint/
work page 2023
-
[7]
Solution brief, Lenovo Press, September 2023
Virtual Radio Access Network Distributed Unit (vRAN DU) with Lenovo ThinkEdge SE455 V3. Solution brief, Lenovo Press, September 2023
work page 2023
-
[8]
What is the difference between inline and lookaside ac- celerators in virtualized distributed units? White paper, Fujitsu, 2023
work page 2023
-
[9]
4TH GEN AMD EPYC™ PROCESSOR ARCHITEC- TURE. White paper, AMD, May 2024
work page 2024
-
[10]
5TH GEN AMD EPYC™ PROCESSOR ARCHITEC- TURE. White paper, AMD, March 2025
work page 2025
-
[11]
Docker compose file for the deployments of a 100MHz 4T4R numerology 1 FHI 7.2 gNB, February 2026. https://gitlab.eurecom.fr/ oai/openairinterface5g/-/blob/2026.w06/ ci-scripts/yaml_files/sa_fhi_7.2_vvdn_gnb/ docker-compose.yml?ref_type=tags
work page 2026
-
[12]
OpenAir- Interface Documentation, February 2026
OAI 7.2 Fronthaul Interface 5G SA Tutorial. OpenAir- Interface Documentation, February 2026. https:// gitlab.eurecom.fr/oai/openairinterface5g/-/ blob/2026.w06/doc/ORAN_FHI7.2_Tutorial.md
work page 2026
-
[13]
OpenAirInterface Documentation, Febru- ary 2026
OAI LDPC offload (O-RAN AAL/DPDK BB- DEV). OpenAirInterface Documentation, Febru- ary 2026. https://gitlab.eurecom.fr/oai/ openairinterface5g/-/blob/2026.w06/doc/ LDPC_OFFLOAD_SETUP.md
work page 2026
-
[14]
Platforms for advanced wireless research, [Online; ac- cessed 17-April-2026]. https://advancedwireless. org/
work page 2026
-
[15]
Scientific large scale infrastructure for comput- ing/communication experimental studies, [Online; ac- cessed 17-April-2026]. https://www.slices-ri. eu/
work page 2026
-
[16]
srsRAN Project website, [Online; ac- cessed 17-April-2026]
srsRAN Project. srsRAN Project website, [Online; ac- cessed 17-April-2026]. https://www.srslte.com/ 5g
work page 2026
-
[17]
OCUDU Ecosystem Foundation, [Online; accessed 22- April-2026].https://ocudu.org/
work page 2026
-
[18]
https://www.amd.com/en/products/ adaptive-socs-and-fpgas/versal/rf-series
AMD Versal™ RF Series, [Online; accessed 23- April-2026]. https://www.amd.com/en/products/ adaptive-socs-and-fpgas/versal/rf-series. html
work page 2026
-
[19]
Product brief, AMD, [Online; accessed 23-April-2026]
AMD VERSAL™ RF SERIES. Product brief, AMD, [Online; accessed 23-April-2026]. https://www.amd. com/content/dam/amd/en/documents/products/ adaptive-socs-and-fpgas/versal/rf-series/ versal-rf-series-product-brief.pdf
work page 2026
-
[20]
3GPP.5G; NR; Multiplexing and channel coding, Jan- uary 2022
work page 2022
-
[21]
OpenAirInterface Software Alliance. openairinter- face5g. OpenAirInterface Git Repository, Febru- ary 2026. https://gitlab.eurecom.fr/oai/ openairinterface5g/-/blob/2026.w06
work page 2026
-
[22]
https://docs.amd.com/v/u/en-US/58268_ amd-epyc-8004-tg-architecture-overview
AMD.AMD EPYC™ 8004 PROCESSOR ARCHITECTURE OVERVIEW, May 2024. https://docs.amd.com/v/u/en-US/58268_ amd-epyc-8004-tg-architecture-overview
work page 2024
-
[23]
https://docs.amd.com/v/u/en-US/58462_ amd-epyc-9005-tg-architecture-overview
AMD.AMD EPYC™ 9005 PROCESSOR ARCHITECTURE OVERVIEW, April 2025. https://docs.amd.com/v/u/en-US/58462_ amd-epyc-9005-tg-architecture-overview
work page 2025
-
[24]
Leonardo Bonati, Michele Polese, Salvatore D’Oro, Stefano Basagni, and Tommaso Melodia. Open, Pro- grammable, and Virtualized 5G Networks: State-of- the-Art and the Road Ahead.Computer Networks, 182:107516, 2020
work page 2020
-
[25]
Agora: Real-time massive MIMO base- band processing in software
Jian Ding, Rahman Doost-Mohammady, Anuj Kalia, and Lin Zhong. Agora: Real-time massive MIMO base- band processing in software. InProceedings of the 16th International Conference on Emerging Network- ing EXperiments and Technologies, CoNEXT ’20, page 232–244, New York, NY , USA, 2020. Association for Computing Machinery
work page 2020
- [26]
-
[27]
DPDK. 7. Intel® vRAN Boost Poll Mode Driver (PMD). DPDK Documentation, [Online; accessed 17-April-2026]. https://doc.dpdk.org/guides/ bbdevs/vrb1.html
work page 2026
-
[28]
DPDK. 7. Linux Drivers. DPDK Documentation, [On- line; accessed 17-April-2026]. https://doc.dpdk. org/guides/linux_gsg/linux_drivers.html
work page 2026
-
[29]
DPDK. 8. Wireless Baseband Device Library. DPDK Documentation, [Online; accessed 17-April- 2026]. https://doc.dpdk.org/guides/prog_ guide/bbdev.html
work page 2026
-
[30]
ESFRI. Scientific large-scale infrastructure for com- puting/communication experimental studies, [Online; accessed 17-April-2026]. https://roadmap2021. esfri.eu/projects-and-landmarks/ browse-the-catalogue/slices/
work page 2026
-
[31]
Serge Fdida, Nikos Makris, Thanasis Korakis, Raffaele Bruno, Andrea Passarella, Panayiotis Andreou, Bartosz Belter, Cédric Crettaz, Walid Dabbous, Yuri Demchenko, and Raymond Knopp. SLICES, a scientific instrument for the networking community.Computer Communica- tions, 193:189–203, 2022
work page 2022
-
[32]
Concordia: teaching the 5G vRAN to share compute
Xenofon Foukas and Bozidar Radunovic. Concordia: teaching the 5G vRAN to share compute. InProceed- ings of the 2021 ACM SIGCOMM 2021 Conference, SIGCOMM ’21, page 580–596, New York, NY , USA,
work page 2021
-
[34]
Sutton, Pablo Serrano, Cristina Cano, and Doug J
Ismael Gomez-Miguelez, Andres Garcia-Saavedra, Paul D. Sutton, Pablo Serrano, Cristina Cano, and Doug J. Leith. srslte: an open-source platform for lte evolution and experimentation. InProceedings of the Tenth ACM International Workshop on Wireless Network Testbeds, Experimental Evaluation, and Characteriza- tion, WiNTECH ’16, page 25–32, New York, NY , USA,
-
[36]
Scalable Distributed Massive MIMO Baseband Processing
Junzhi Gong, Anuj Kalia, and Minlan Yu. Scalable Distributed Massive MIMO Baseband Processing. In 20th USENIX Symposium on Networked Systems Design and Implementation (NSDI 23), pages 405–417, Boston, MA, April 2023. USENIX Association
work page 2023
-
[37]
FlexRAN™ Reference Architecture for Wireless Access, March 2023
Intel. FlexRAN™ Reference Architecture for Wireless Access, March 2023. https://www. intel.com/content/www/us/en/developer/ topic-technology/edge-5g/tools/flexran. html
work page 2023
-
[38]
Intel. FlexRAN, September 2025. https: //github.com/intel/FlexRAN/tree/ c441ed3b3d692457428ee855e9e13d76b0a36167
work page 2025
-
[39]
Intel® intrinsics guide, [Online; accessed 17-April-2026]
Intel. Intel® intrinsics guide, [Online; accessed 17-April-2026]. https://www.intel.com/content/ www/us/en/docs/intrinsics-guide/index. html#avx512techs=AVX512_FP16
work page 2026
-
[40]
Products formerly Sapphire Rapids Edge Enhanced
Intel. Products formerly Sapphire Rapids Edge Enhanced. Product Specifications, [Online; accessed 17-April-2026]. https://www.intel.com/content/ www/us/en/ark/products/codename/235054/ products-formerly-sapphire-rapids-edge-enhanced. html
work page 2026
-
[41]
Anuj Kalia, Nikita Lazarev, Leyang Xue, Xenofon Foukas, Bozidar Radunovic, and Francis Y . Yan. To- wards energy efficient 5G vRAN servers. InProceed- ings of the 22nd USENIX Symposium on Networked Systems Design and Implementation, NSDI ’25, USA,
-
[42]
Florian Kaltenberger, Tommaso Melodia, Irfan Ghauri, Michele Polese, Raymond Knopp, Tien Thinh Nguyen, Sakthivel Velumani, Davide Villa, Leonardo Bonati, Robert Schmidt, Sagar Arora, Mikel Irazabal, and Navid Nikaein. Driving innovation in 6G wireless technolo- gies: The OpenAirInterface approach.Computer Net- works, 269:111410, 2025
work page 2025
-
[43]
NVIDIA Aerial GPU Hosted AI-on-5G
Anupa Kelkar and Chris Dick. NVIDIA Aerial GPU Hosted AI-on-5G. In2021 IEEE 4th 5G World Forum (5GWF), pages 64–69, 2021
work page 2021
-
[44]
Chip choices kickstart open RAN war between lookaside and inline.Light Reading, August 2023
Iain Morris. Chip choices kickstart open RAN war between lookaside and inline.Light Reading, August 2023
work page 2023
-
[45]
NVIDIA. Nvidia ai aerial. NVIDIA devel- oper website, [Online; accessed 17-April-2026]. https://developer.nvidia.com/industries/ telecommunications/ai-aerial
work page 2026
-
[46]
O-RAN Alliance.Control, User and Synchronization Plane Specification, October 2025
work page 2025
-
[47]
O-RAN Alliance.Management Plane Specification, October 2025
work page 2025
-
[48]
O-RAN Alliance.O-RAN Acceleration Abstraction Layer General Aspects and Principles, October 2025
work page 2025
-
[49]
O-RAN Alliance.O-RAN Architecture Description, October 2025
work page 2025
-
[50]
Benefits of Virtual- izing the Layer 1 in a RAN Stack
Niall Power and Sindhu Xirasagar. Benefits of Virtual- izing the Layer 1 in a RAN Stack. White paper, Intel, 2022
work page 2022
-
[51]
Programmable Millimeter-Wave MIMO 14 Radios with Real-Time Baseband Processing
Zhenzhou Qi, Zhihui Gao, Chung-Hsuan Tung, and Tingjun Chen. Programmable Millimeter-Wave MIMO 14 Radios with Real-Time Baseband Processing. InPro- ceedings of the 17th ACM Workshop on Wireless Net- work Testbeds, Experimental Evaluation & Character- ization, WiNTECH ’23, page 17–24, New York, NY , USA, 2023. Association for Computing Machinery
work page 2023
-
[52]
Savannah: A Real-time Programmable mmWave Baseband Processing Framework
Zhenzhou Qi, Chung-Hsuan Tung, Anuj Kalia, and Tingjun Chen. Savannah: A Real-time Programmable mmWave Baseband Processing Framework. InProceed- ings of the 30th Annual International Conference on Mobile Computing and Networking, ACM MobiCom ’24, page 1736–1738, New York, NY , USA, 2024. Asso- ciation for Computing Machinery
work page 2024
-
[53]
Savannah: Efficient mmWave Baseband Processing with Minimal and Heterogeneous Resources
Zhenzhou Qi, Chung-Hsuan Tung, Anuj Kalia, and Tingjun Chen. Savannah: Efficient mmWave Baseband Processing with Minimal and Heterogeneous Resources. InProceedings of the 30th Annual International Con- ference on Mobile Computing and Networking, ACM MobiCom ’24, page 1500–1514, New York, NY , USA,
-
[54]
Association for Computing Machinery
-
[55]
Blueprint-based reproducible research with the slices research infrastruc- ture
Damien Saucez, Sebastian Gallenmuller, Raymond Knopp, Nikos Makris, and Serge Fdida. Blueprint-based reproducible research with the slices research infrastruc- ture. InIEEE INFOCOM 2024 - IEEE Conference on Computer Communications Workshops (INFOCOM WKSHPS), pages 01–02, 2024
work page 2024
-
[56]
Ayala-Romero, An- dres Garcia-Saavedra, Marco Fiore, and Xavier Costa- Perez
Leonardo Lo Schiavo, Jose A. Ayala-Romero, An- dres Garcia-Saavedra, Marco Fiore, and Xavier Costa- Perez. YinYangRAN: Resource Multiplexing in GPU- Accelerated Virtualized RANs. InIEEE INFOCOM 2024 - IEEE Conference on Computer Communications, pages 721–730, 2024
work page 2024
-
[57]
CloudRIC: Open Radio Access Network (O-RAN) Virtualization with Shared Heterogeneous Computing
Leonardo Lo Schiavo, Gines Garcia-Aviles, Andres Garcia-Saavedra, Marco Gramaglia, Marco Fiore, Al- bert Banchs, and Xavier Costa-Perez. CloudRIC: Open Radio Access Network (O-RAN) Virtualization with Shared Heterogeneous Computing. InProceedings of the 30th Annual International Conference on Mobile Computing and Networking, ACM MobiCom ’24, page 558–572,...
work page 2024
-
[58]
Mody Sy. Demystifying 5g polar and ldpc codes: A comprehensive review and foundations.TechRxiv, 2025(0925), 2025. 15
work page 2025
discussion (0)
Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.