TEGRA: A Flexible & Scalable NextGen Mobile Core

Fuente: arXiv
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Main Authors: Saleem, Bilal, Basit, Omar, Meng, Jiayi, Alam, Iftekhar, Thakur, Ajay, Maciocco, Christian, Shahbaz, Muhammad, Hu, Y. Charlie, Peterson, Larry
Format: Preprint
Published: 2025
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author Saleem, Bilal
Basit, Omar
Meng, Jiayi
Alam, Iftekhar
Thakur, Ajay
Maciocco, Christian
Shahbaz, Muhammad
Hu, Y. Charlie
Peterson, Larry
author_facet Saleem, Bilal
Basit, Omar
Meng, Jiayi
Alam, Iftekhar
Thakur, Ajay
Maciocco, Christian
Shahbaz, Muhammad
Hu, Y. Charlie
Peterson, Larry
contents To support emerging mobile use cases (e.g., AR/VR, autonomous driving, and massive IoT), next-generation mobile cores for 5G and 6G are being re-architected as service-based architectures (SBAs) running on both private and public clouds. However, current performance optimization strategies for scaling these cores still revert to traditional NFV-based techniques, such as consolidating functions into rigid, monolithic deployments on dedicated servers. This raises a critical question: Is there an inherent tradeoff between flexibility and scalability in an SBA-based mobile core, where improving performance (and resiliency) inevitably comes at the cost of one or the other? To explore this question, we introduce resilient SBA microservices design patterns and state-management strategies, and propose TEGRA -- a high-performance, flexible, and scalable SBA-based mobile core. By leveraging the mobile core's unique position in the end-to-end internet ecosystem (i.e., at the last-mile edge), TEGRA optimizes performance without compromising adaptability. Our evaluation demonstrates that TEGRA achieves significantly lower latencies, processing requests 20x, 11x, and 1.75x faster than traditional SBA core implementations -- free5GC, Open5GS, and Aether, respectively -- all while matching the performance of state-of-the-art cores (e.g., CoreKube) while retaining flexibility. Furthermore, it reduces the complexity of deploying new features, requiring orders of magnitude fewer lines of code (LoCs) compared to existing cores.
format Preprint
id arxiv_https___arxiv_org_abs_2509_07410
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle TEGRA: A Flexible & Scalable NextGen Mobile Core
Saleem, Bilal
Basit, Omar
Meng, Jiayi
Alam, Iftekhar
Thakur, Ajay
Maciocco, Christian
Shahbaz, Muhammad
Hu, Y. Charlie
Peterson, Larry
Networking and Internet Architecture
To support emerging mobile use cases (e.g., AR/VR, autonomous driving, and massive IoT), next-generation mobile cores for 5G and 6G are being re-architected as service-based architectures (SBAs) running on both private and public clouds. However, current performance optimization strategies for scaling these cores still revert to traditional NFV-based techniques, such as consolidating functions into rigid, monolithic deployments on dedicated servers. This raises a critical question: Is there an inherent tradeoff between flexibility and scalability in an SBA-based mobile core, where improving performance (and resiliency) inevitably comes at the cost of one or the other? To explore this question, we introduce resilient SBA microservices design patterns and state-management strategies, and propose TEGRA -- a high-performance, flexible, and scalable SBA-based mobile core. By leveraging the mobile core's unique position in the end-to-end internet ecosystem (i.e., at the last-mile edge), TEGRA optimizes performance without compromising adaptability. Our evaluation demonstrates that TEGRA achieves significantly lower latencies, processing requests 20x, 11x, and 1.75x faster than traditional SBA core implementations -- free5GC, Open5GS, and Aether, respectively -- all while matching the performance of state-of-the-art cores (e.g., CoreKube) while retaining flexibility. Furthermore, it reduces the complexity of deploying new features, requiring orders of magnitude fewer lines of code (LoCs) compared to existing cores.
title TEGRA: A Flexible & Scalable NextGen Mobile Core
topic Networking and Internet Architecture
url https://arxiv.org/abs/2509.07410