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CORDIS - Resultados de investigaciones de la UE
CORDIS

Big dAta aNalYtics for radio Access Networks

CORDIS proporciona enlaces a los documentos públicos y las publicaciones de los proyectos de los programas marco HORIZONTE.

Los enlaces a los documentos y las publicaciones de los proyectos del Séptimo Programa Marco, así como los enlaces a algunos tipos de resultados específicos, como conjuntos de datos y «software», se obtienen dinámicamente de OpenAIRE .

Resultado final

Recommendation to 3GPP on how to rank buildings for phased in-building mobile network deployment (se abrirá en una nueva ventana)

The report will describe the output of Task 2.4: Rank buildings for phased in-building mobile network deployment. Details of T2.4 can be found in WP2 description.

Orchestrators for network slice management at the mobile edge (se abrirá en una nueva ventana)

The report will describe the output of Task 3.1: Anticipatory edge network slices orchestration. Details of T3.1 can be found in WP3 description.

Mobile traffic demand predictors (se abrirá en una nueva ventana)

The report will describe the output of Task 1.3: Predictors of mobile service demands. Details of T1.3 can be found in WP1 description.

Report on proactive optimization of indoor networks (to 3GPP, NGMN, Small Cell Forum, etc.) (se abrirá en una nueva ventana)

The report will describe the output of Task 3.3: Proactive optimization of indoor networks. Details of T3.3 can be found in WP3 description.

Report on algorithms to localise indoor UEs (se abrirá en una nueva ventana)

The report will describe the output of Task 2.2: Localise in-building UEs in 3D. Details of T2.2 can be found in WP2 description.

Report on in-building mobile traffic characterization (se abrirá en una nueva ventana)

The report will describe the output of Task 2.3: Characterise in-building mobile traffic. Details of T2.3 can be found in WP2 description.

Report on mobile traffic demand multi-scale analytics (se abrirá en una nueva ventana)

The report will describe the output of Task 12 Multiscale analytics for mobile service demands Details of T12 can be found in WP1 description

Advertising vacancies (se abrirá en una nueva ventana)

The ESR posts will have been advertised

Report on mobile traffic demand baseline analytics (se abrirá en una nueva ventana)

The report will describe the output of Task 11 Basic analytics for regular and irregular structures in macroscopic mobile service demands Details of T11 can be found in WP1 description

Report on joint outdoor-indoor optimization based on BDA (to 3GPP, NGMN, Small Cell Forum, etc.) (se abrirá en una nueva ventana)

The report will describe the output of Task 3.2: Optimize and coordinate outdoor and indoor mobile networks. Details of T3.2 can be found in WP3 description.

Report on algorithms to geo-localise traffic to buildings (se abrirá en una nueva ventana)

The report will describe the output of Task 21 Develop algorithms to geolocate in which building a UE is Details of T21 can be found in WP2 description

Summer school: Data-driven 5G RANs (se abrirá en una nueva ventana)

Delivery of Summer school: Data-driven 5G RANsThe specific summer school on data-driven 5G RAN will be organized by CNR. This 3-day training school will deal with the new models applied for the 5G characterization, including channel, mobility, radio resource management and network traffic modelling, as well as addressing the visualization of dynamic results. Experts in the field from partners in the network will present relevant research results. The summer school will also be an occasion for ESRs and other PhD candidates or researchers to present their on-going research activities and obtain feedback from senior attendees.

Scientific and technological workshop (se abrirá en una nueva ventana)

Delivery of Scientific and technological workshop.A scientific and technological workshop organized by RPN and UCAM, and hosted by UCAM. The 2-day event will be open to the research community. Each ESR will write a scientific paper and present the current status of their work. Electronic copies of all papers and tutorial materials and video records of invited talks will be made available to the participants. ESRs will be directly involved in the organization of the event.

Complementary skills training workshops (se abrirá en una nueva ventana)

Delivery of complementary skills training workshops.CC1. Intellectual propertyCC2. Publication strategiesCC3. Public engagement skillsCC4. Management skillsCC5. CommunicationCC6. Knowledge transfer and commercial exploitation of results CC7. Grant proposal writing and research policyCC8. Entrepreneurship

Summer school: Sci. and technological training (se abrirá en una nueva ventana)

Delivery of Summer school - Sci. and technological trainingTC1. Mobile network data processing, modelling and analysisTC2. Machine LearningTC3. Selected Topics on Spatiotemporal System Analysis and Data Mining TC4. Indoor localisationTC5. Modelling & Optimization in Wireless NetworksTC6. Key Enabling Technologies for 5G

BANYAN training school (se abrirá en una nueva ventana)

A BANYAN training school should have been organised by Month 35.

Publicaciones

Fast Detection of Cyberattacks on the Metaverse through User-plane Inference (se abrirá en una nueva ventana)

Autores: Bütün, Beyza; Akem, Aristide Tanyi-Jong; Gucciardo, Michele; Fiore, Marco
Publicado en: Crossref, Edición 1, 2023
Editor: 2023 IEEE International Conference on Metaverse Computing, Networking and Applications
DOI: 10.1109/metacom57706.2023.00067

Encrypted Traffic Classification at Line Rate in Programmable Switches with Machine Learning (se abrirá en una nueva ventana)

Autores: Aristide Tanyi-Jong Akem, Guillaume Fraysse, Marco Fiore
Publicado en: NOMS 2024-2024 IEEE Network Operations and Management Symposium, Edición 8, 2024, Página(s) 1-9
Editor: IEEE
DOI: 10.1109/noms59830.2024.10575394

Showcasing In-Switch Machine Learning Inference (se abrirá en una nueva ventana)

Autores: Akem Aritside; Bütün, Beyza; Gucciardo, Michele; Fiore, Marco
Publicado en: Crossref, Edición 3, 2022
Editor: 1st International Workshop on Native Network Intelligence
DOI: 10.1109/netsoft57336.2023.10175464

Henna (se abrirá en una nueva ventana)

Autores: Aristide Tanyi-Jong Akem, Beyza Bütün, Michele Gucciardo, Marco Fiore
Publicado en: Proceedings of the 1st International Workshop on Native Network Intelligence, 2023
Editor: ACM
DOI: 10.1145/3565009.3569520

Impact of Public Protests on Mobile Networks (se abrirá en una nueva ventana)

Autores: André F. Zanella, Orlando E. Martínez-Durive, Sachit Mishra, Diego Madariaga, Marco Fiore
Publicado en: IEEE INFOCOM 2024 - IEEE Conference on Computer Communications Workshops (INFOCOM WKSHPS), 2024, Página(s) 1-2
Editor: IEEE
DOI: 10.1109/infocomwkshps61880.2024.10620747

Characterizing 5G Adoption and its Impact on Network Traffic and Mobile Service Consumption (se abrirá en una nueva ventana)

Autores: Sachit Mishra, André F. Zanella, Orlando E. Martínez-Durive, Diego Madariaga, Cezary Ziemlicki, Marco Fiore
Publicado en: IEEE INFOCOM 2024 - IEEE Conference on Computer Communications, 2024, Página(s) 1531-1540
Editor: IEEE
DOI: 10.1109/infocom52122.2024.10621344

Demonstrating Flow-Level In-Switch Inference (se abrirá en una nueva ventana)

Autores: Gucciardo, Michele; Akem, Aristide Tanyi-Jong; Bütün, Beyza; Fiore, Marco
Publicado en: Crossref, Edición 2, 2023
Editor: INFOCOM 2023
DOI: 10.1109/infocomwkshps57453.2023.10225967

IRDM: A generative diffusion model for indoor radio map interpolation (se abrirá en una nueva ventana)

Autores: Kehai Q, Stefanos B, lan W, Hui S, Kan L, Jie Z
Publicado en: 2023
Editor: IEEE Global Communications Conference 2023
DOI: 10.1109/globecom54140.2023.10436970

Characterizing and Modeling Session-Level Mobile Traffic Demands from Large-Scale Measurements (se abrirá en una nueva ventana)

Autores: André Felipe Zanella; Antonio Bazco-Nogueras; Cezary Ziemlicki; Marco Fiore
Publicado en: Crossref, Edición 2, 2023
Editor: Internet Measurement Conference. 2023
DOI: 10.1145/3618257.3624825

Characterizing Mobile Service Demands at Indoor Cellular Networks (se abrirá en una nueva ventana)

Autores: Stefanos B, Andre F.Z, Stefania R, Cezary Z, Zbigniew S, lan W, Jie Z, Marco F
Publicado en: 2023
Editor: IMC '23: ACM Internet Measurement Conference
DOI: 10.1145/3618257.3624807

Stochastic Evaluation of Indoor Wireless Network Performance with Data-Driven Propagation Models (se abrirá en una nueva ventana)

Autores: Bakirtzis, Stefanos; Wassell, Ian; Fiore, Marco; Zhang, Jie
Publicado en: Crossref, Edición 5, 2022
Editor: 2022 Globecom
DOI: 10.1109/globecom48099.2022.10001717

Towards Data-Driven Management of Mobile Networks through User Plane Inference (se abrirá en una nueva ventana)

Autores: Aristide Tanyi-Jong Akem, Marco Fiore
Publicado en: NOMS 2024-2024 IEEE Network Operations and Management Symposium, Edición 28, 2024, Página(s) 1-4
Editor: IEEE
DOI: 10.1109/noms59830.2024.10575655

DeepRay: Deep Learning Meets Ray-Tracing (se abrirá en una nueva ventana)

Autores: Bakirtzis, S; Qiu, K; Zhang, J; Wassell, I
Publicado en: Crossref, Edición 10, 2022
Editor: 16th European Conference on Antennas and Propagation
DOI: 10.23919/eucap53622.2022.9769203

Flowrest: Practical Flow-Level Inference in Programmable Switches with Random Forests (se abrirá en una nueva ventana)

Autores: Akem Aristide Tanyi-Jong; Michele Gucciardo; Marco Fiore
Publicado en: Crossref, Edición 6, 2023
Editor: INFOCOM 2023
DOI: 10.1109/infocom53939.2023.10229100

Deep Learning-Based Path Loss Prediction For Outdoor Wireless Communication Systems (se abrirá en una nueva ventana)

Autores: Kehai Q, Stefanos B, Hui S, lan W, Jie Z,
Publicado en: 2023
Editor: IEEE International Conference on Acoustics
DOI: 10.1109/icassp49357.2023.10095501

Ray-Tracing Meets Deep Learning

Autores: Stefanos Bakirtzis, Kehai Qiu, Jie Zhang, Ian Wassell
Publicado en: 2022
Editor: EUCAP

Impact of Later-Stages COVID-19 Response Measures on Spatiotemporal Mobile Service Usage (se abrirá en una nueva ventana)

Autores: Andre Felipe Zanella, Orlando E. Martinez-Durive, Sachit Mishra, Zbigniew Smoreda, Marco Fiore
Publicado en: IEEE INFOCOM 2022 - IEEE Conference on Computer Communications, 2022, Página(s) 970-979
Editor: IEEE
DOI: 10.1109/infocom48880.2022.9796888

Spatial and Temporal Exploratory Factor Analysis of Urban Mobile Data Traffic (se abrirá en una nueva ventana)

Autores: Angelo Furno; André Felipe Zanella; Razvan Stanica; Marco Fiore
Publicado en: Crossref, Edición 1, 2024, ISSN 2948-135X
Editor: Data Science for Transportation
DOI: 10.1007/s42421-024-00089-y

Deep-Learning-Based Multivariate Time-Series Classification for Indoor/Outdoor Detection (se abrirá en una nueva ventana)

Autores: Bakirtzis, S; Qiu, K; Wassell, I; Fiore, M; Zhang, J
Publicado en: instname:, Edición 4, 2022, ISSN 2327-4662
Editor: Institute of Electrical and Electronics Engineers Inc.
DOI: 10.1109/jiot.2022.3190555

Forecasting Network Traffic: A Survey and Tutorial With Open-Source Comparative Evaluation (se abrirá en una nueva ventana)

Autores: Ferreira; Gabriel O.; Ravazzi; Chiara; Dabbene; Fabrizio; Calafiore; Giuseppe C.; Fiore; Marco
Publicado en: info:cnr-pdr/source/autori:Ferreira, Gabriel O. and Ravazzi, Chiara and Dabbene, Fabrizio and Calafiore, Giuseppe C. and Fiore, Marco/titolo:Forecasting Network Traffic: A Survey and Tutorial With Open-Source Comparative Evaluation/doi:10.1109%2FACCESS.2023.3236261/rivista:IEEE access/anno:2023/pagina_da:6018/pagina_a:6044/intervallo_pagine:6018–6044/volume:11, Edición 1, 2023, ISSN 2169-3536
Editor: Institute of Electrical and Electronics Engineers Inc.
DOI: 10.1109/access.2023.3236261

A Joint Optimization Approach for Power-Efficient Heterogeneous OFDMA Radio Access Networks (se abrirá en una nueva ventana)

Autores: Gabriel O. Ferreira, André F. Zanella, Stefanos Bakirtzis, Chiara Ravazzi, Fabrizio Dabbene, Giuseppe C. Calafiore, Ian Wassell, Jie Zhang, Marco Fiore
Publicado en: IEEE Journal on Selected Areas in Communications, 2024, Página(s) 1-1, ISSN 0733-8716
Editor: Institute of Electrical and Electronics Engineers
DOI: 10.1109/jsac.2024.3431524

EM DeepRay: An Expedient, Generalizable, and Realistic Data-Driven Indoor Propagation Model (se abrirá en una nueva ventana)

Autores: Bakirtzis, S; Chen, J; Qiu, K; Zhang, J; Wassell, I
Publicado en: Crossref, Edición 4, 2022, ISSN 1558-2221
Editor: IEEE Transactions on Antennas and Propagation
DOI: 10.1109/tap.2022.3172221

Expedient AI-assisted Indoor Wireless Network Planning with Data-Driven Propagation Models (se abrirá en una nueva ventana)

Autores: Jie Zhang; Ian Wassell; Marco Fiore; Stefanos Bakirtzis
Publicado en: Crossref, Edición 3, 2024
Editor: IEEE Networks
DOI: 10.36227/techrxiv.22682650.v1

Pseudo Ray-Tracing: Deep Leaning Assisted Outdoor mm-Wave Path Loss Prediction (se abrirá en una nueva ventana)

Autores: Qiu, K; Bakirtzis, S; Song, H; Zhang, J; Wassell, I
Publicado en: Crossref, Edición 8, 2022
Editor: IEEE Wireless Communications Letters
DOI: 10.1109/lwc.2022.3175091

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