PyWiSim : Python wireless simulation framework for multislice systems
Resumen:
This paper introduces PyWiSim, a Python-based simulation framework designed for wireless systems that falls somewhere between a link simulator and a system simulator. Link simulators model all communication layers in detail, making large-scale simulations computationally expensive. On the other hand, system simulators typically perform throughput calculations for a given simulation scenario, allowing simulations with many devices but providing little detailed information. With this compromise between these two classes of simulators, PyWiSim seeks a simulator that enables simulations with a large number of devices but modeling the most relevant aspects of the system with a certain level of detail. This framework is well-documented and allows for the easy addition of new wireless channel models, traffic generators, scheduling algorithms, etc. Being built in Python—a language widely used in artificial intelligence (AI) applications—PyWiSim facilitates the natural integration of AIbased algorithms into wireless simulations. To demonstrate this versatility, we present an example of a scheduler developed using deep reinforcement learning, specifically the Deep Q-Network (DQN) algorithm. It natively supports multislice, a fundamental feature of modern networks like 5G, and provides a flexible architecture that allows extensions to various wireless technologies, as demonstrated in this paper. Finally, we also present some graphical results obtained from PyWiSim to illustrate its capabilities.
| 2025 | |
| Este trabajo fue financiado parcialmente por el Proyecto de I+D de CSIC “5/6G Optical Network Convergence : An holistic view” de la Universidad de la República. | |
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Simulation Wireless Netwoks Framework |
|
| Inglés | |
| Universidad de la República | |
| COLIBRI | |
| https://hdl.handle.net/20.500.12008/53939 | |
| Acceso abierto | |
| Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0) |
| _version_ | 1872864820712177664 |
|---|---|
| author | Belzarena, Pablo |
| author2 | González Barbone, Víctor Rattaro, Claudina |
| author2_role | author author |
| author_facet | Belzarena, Pablo González Barbone, Víctor Rattaro, Claudina |
| author_role | author |
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| collection | COLIBRI |
| dc.contributor.filiacion.none.fl_str_mv | Belzarena Pablo, Universidad de la República (Uruguay). Facultad de Ingeniería. González Barbone Víctor, Universidad de la República (Uruguay). Facultad de Ingeniería. Rattaro Claudina, Universidad de la República (Uruguay). Facultad de Ingeniería. |
| dc.creator.none.fl_str_mv | Belzarena, Pablo González Barbone, Víctor Rattaro, Claudina |
| dc.date.accessioned.none.fl_str_mv | 2026-03-18T16:12:07Z |
| dc.date.available.none.fl_str_mv | 2026-03-18T16:12:07Z |
| dc.date.issued.none.fl_str_mv | 2025 |
| dc.description.abstract.none.fl_txt_mv | This paper introduces PyWiSim, a Python-based simulation framework designed for wireless systems that falls somewhere between a link simulator and a system simulator. Link simulators model all communication layers in detail, making large-scale simulations computationally expensive. On the other hand, system simulators typically perform throughput calculations for a given simulation scenario, allowing simulations with many devices but providing little detailed information. With this compromise between these two classes of simulators, PyWiSim seeks a simulator that enables simulations with a large number of devices but modeling the most relevant aspects of the system with a certain level of detail. This framework is well-documented and allows for the easy addition of new wireless channel models, traffic generators, scheduling algorithms, etc. Being built in Python—a language widely used in artificial intelligence (AI) applications—PyWiSim facilitates the natural integration of AIbased algorithms into wireless simulations. To demonstrate this versatility, we present an example of a scheduler developed using deep reinforcement learning, specifically the Deep Q-Network (DQN) algorithm. It natively supports multislice, a fundamental feature of modern networks like 5G, and provides a flexible architecture that allows extensions to various wireless technologies, as demonstrated in this paper. Finally, we also present some graphical results obtained from PyWiSim to illustrate its capabilities. |
| dc.description.sponsorship.none.fl_txt_mv | Este trabajo fue financiado parcialmente por el Proyecto de I+D de CSIC “5/6G Optical Network Convergence : An holistic view” de la Universidad de la República. |
| dc.format.extent.es.fl_str_mv | 10 p. |
| dc.format.mimetype.es.fl_str_mv | application/pdf |
| dc.identifier.citation.es.fl_str_mv | Belzarena, P., González Barbone, V. y Rattaro, C. PyWiSim : Python wireless simulation framework for multislice systems [en línea]. EN: 2025 51st Latin American Informatics Conference (CLEI), Valparaíso, Chile, 27-31 oct. 2025, pp. 1-10. |
| dc.identifier.uri.none.fl_str_mv | https://hdl.handle.net/20.500.12008/53939 |
| dc.language.iso.none.fl_str_mv | en eng |
| dc.relation.none.fl_str_mv | 2025 51st Latin American Informatics Conference (CLEI), Valparaíso, Chile, 27-31 oct. 2025, pp. 1-10. |
| dc.rights.license.none.fl_str_mv | Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0) |
| dc.rights.none.fl_str_mv | info:eu-repo/semantics/openAccess |
| dc.source.none.fl_str_mv | reponame:COLIBRI instname:Universidad de la República instacron:Universidad de la República |
| dc.subject.es.fl_str_mv | Simulation Wireless Netwoks Framework |
| dc.title.none.fl_str_mv | PyWiSim : Python wireless simulation framework for multislice systems |
| dc.type.es.fl_str_mv | Ponencia |
| dc.type.none.fl_str_mv | info:eu-repo/semantics/conferenceObject |
| dc.type.version.none.fl_str_mv | info:eu-repo/semantics/publishedVersion |
| description | This paper introduces PyWiSim, a Python-based simulation framework designed for wireless systems that falls somewhere between a link simulator and a system simulator. Link simulators model all communication layers in detail, making large-scale simulations computationally expensive. On the other hand, system simulators typically perform throughput calculations for a given simulation scenario, allowing simulations with many devices but providing little detailed information. With this compromise between these two classes of simulators, PyWiSim seeks a simulator that enables simulations with a large number of devices but modeling the most relevant aspects of the system with a certain level of detail. This framework is well-documented and allows for the easy addition of new wireless channel models, traffic generators, scheduling algorithms, etc. Being built in Python—a language widely used in artificial intelligence (AI) applications—PyWiSim facilitates the natural integration of AIbased algorithms into wireless simulations. To demonstrate this versatility, we present an example of a scheduler developed using deep reinforcement learning, specifically the Deep Q-Network (DQN) algorithm. It natively supports multislice, a fundamental feature of modern networks like 5G, and provides a flexible architecture that allows extensions to various wireless technologies, as demonstrated in this paper. Finally, we also present some graphical results obtained from PyWiSim to illustrate its capabilities. |
| eu_rights_str_mv | openAccess |
| format | conferenceObject |
| id | COLIBRI_04c82c10f0ad7afed817097491291ef4 |
| identifier_str_mv | Belzarena, P., González Barbone, V. y Rattaro, C. PyWiSim : Python wireless simulation framework for multislice systems [en línea]. EN: 2025 51st Latin American Informatics Conference (CLEI), Valparaíso, Chile, 27-31 oct. 2025, pp. 1-10. |
| instacron_str | Universidad de la República |
| institution | Universidad de la República |
| instname_str | Universidad de la República |
| language | eng |
| language_invalid_str_mv | en |
| network_acronym_str | COLIBRI |
| network_name_str | COLIBRI |
| oai_identifier_str | oai:colibri.udelar.edu.uy:20.500.12008/53939 |
| publishDate | 2025 |
| reponame_str | COLIBRI |
| repository.mail.fl_str_mv | karina.camps@seciu.edu.uy |
| repository.name.fl_str_mv | COLIBRI - Universidad de la República |
| repository_id_str | 4771 |
| rights_invalid_str_mv | Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0) |
| spelling | Belzarena Pablo, Universidad de la República (Uruguay). Facultad de Ingeniería.González Barbone Víctor, Universidad de la República (Uruguay). Facultad de Ingeniería.Rattaro Claudina, Universidad de la República (Uruguay). Facultad de Ingeniería.2026-03-18T16:12:07Z2026-03-18T16:12:07Z2025Belzarena, P., González Barbone, V. y Rattaro, C. PyWiSim : Python wireless simulation framework for multislice systems [en línea]. EN: 2025 51st Latin American Informatics Conference (CLEI), Valparaíso, Chile, 27-31 oct. 2025, pp. 1-10.https://hdl.handle.net/20.500.12008/53939This paper introduces PyWiSim, a Python-based simulation framework designed for wireless systems that falls somewhere between a link simulator and a system simulator. Link simulators model all communication layers in detail, making large-scale simulations computationally expensive. On the other hand, system simulators typically perform throughput calculations for a given simulation scenario, allowing simulations with many devices but providing little detailed information. With this compromise between these two classes of simulators, PyWiSim seeks a simulator that enables simulations with a large number of devices but modeling the most relevant aspects of the system with a certain level of detail. This framework is well-documented and allows for the easy addition of new wireless channel models, traffic generators, scheduling algorithms, etc. Being built in Python—a language widely used in artificial intelligence (AI) applications—PyWiSim facilitates the natural integration of AIbased algorithms into wireless simulations. To demonstrate this versatility, we present an example of a scheduler developed using deep reinforcement learning, specifically the Deep Q-Network (DQN) algorithm. It natively supports multislice, a fundamental feature of modern networks like 5G, and provides a flexible architecture that allows extensions to various wireless technologies, as demonstrated in this paper. Finally, we also present some graphical results obtained from PyWiSim to illustrate its capabilities.Submitted by Ribeiro Jorge (jribeiro@fing.edu.uy) on 2026-03-13T18:42:17Z No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) BGR25.pdf: 2205726 bytes, checksum: 15326e1af35a7c8e645a093a8de4acec (MD5)Rejected by Machado Jimena (jmachado@fing.edu.uy), reason: on 2026-03-13T18:47:54Z (GMT)Submitted by Ribeiro Jorge (jribeiro@fing.edu.uy) on 2026-03-13T18:59:21Z No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) BGR25.pdf: 2205726 bytes, checksum: 15326e1af35a7c8e645a093a8de4acec (MD5)Approved for entry into archive by Machado Jimena (jmachado@fing.edu.uy) on 2026-03-17T16:33:55Z (GMT) No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) BGR25.pdf: 2205726 bytes, checksum: 15326e1af35a7c8e645a093a8de4acec (MD5)Made available in DSpace by Luna Fabiana (fabiana.luna@seciu.edu.uy) on 2026-03-18T16:12:07Z (GMT). No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) BGR25.pdf: 2205726 bytes, checksum: 15326e1af35a7c8e645a093a8de4acec (MD5) Previous issue date: 2025Este trabajo fue financiado parcialmente por el Proyecto de I+D de CSIC “5/6G Optical Network Convergence : An holistic view” de la Universidad de la República.10 p.application/pdfeneng2025 51st Latin American Informatics Conference (CLEI), Valparaíso, Chile, 27-31 oct. 2025, pp. 1-10.Las obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad de la República.(Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. 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públicahttps://udelar.edu.uy/https://www.colibri.udelar.edu.uy/oai/requestkarina.camps@seciu.edu.uyUruguayopendoar:47712026-03-18T16:12:07COLIBRI - Universidad de la Repúblicafalse |
| spellingShingle | PyWiSim : Python wireless simulation framework for multislice systems Belzarena, Pablo Simulation Wireless Netwoks Framework |
| status_str | publishedVersion |
| title | PyWiSim : Python wireless simulation framework for multislice systems |
| title_full | PyWiSim : Python wireless simulation framework for multislice systems |
| title_fullStr | PyWiSim : Python wireless simulation framework for multislice systems |
| title_full_unstemmed | PyWiSim : Python wireless simulation framework for multislice systems |
| title_short | PyWiSim : Python wireless simulation framework for multislice systems |
| title_sort | PyWiSim : Python wireless simulation framework for multislice systems |
| topic | Simulation Wireless Netwoks Framework |
| url | https://hdl.handle.net/20.500.12008/53939 |