Pons-Escat, L.; Feliu-Pérez, J.; Sahuquillo Borrás, J.; Gómez Requena, ME.; Petit Martí, SV.; Pons Terol, J.; Huang, C. (2023). Cloud White: Detecting and Estimating QoS Degradation of Latency-Critical Workloads in the Public Cloud. Future Generation Computer Systems. 138:13-25. https://doi.org/10.1016/j.future.2022.08.012
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/200990
Título:
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Cloud White: Detecting and Estimating QoS Degradation of Latency-Critical Workloads in the Public Cloud
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Autor:
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Pons-Escat, Lucía
Feliu-Pérez, Josué
Sahuquillo Borrás, Julio
Gómez Requena, María Engracia
Petit Martí, Salvador Vicente
Pons Terol, Julio
Huang, Chaoyi
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Entidad UPV:
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Universitat Politècnica de València. Escola Tècnica Superior d'Enginyeria Informàtica
Universitat Politècnica de València. Departamento de Informática de Sistemas y Computadores - Departament d'Informàtica de Sistemes i Computadors
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Fecha difusión:
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Resumen:
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[EN] The increasing popularity of cloud computing has forced cloud providers to build economies of scale to meet the growing demand. Nowadays, data-centers include thousands of physical machines, each hosting many virtual ...[+]
[EN] The increasing popularity of cloud computing has forced cloud providers to build economies of scale to meet the growing demand. Nowadays, data-centers include thousands of physical machines, each hosting many virtual machines (VMs), which share the main system resources, causing interference that can significantly impact on performance.
Frequently, these data-centers run latency-critical workloads, whose performance is determined by tail latency, which is very sensitive to the interference of co-running workloads. To prevent QoS violations, cloud providers adopt overprovisioning strategies but they reduce the server utilization and increase the costs. A mechanism that accurately estimates performance degradation dynamically in a production system would allow cloud providers to improve the servers' utilization. In this work we propose Cloud White, an approach that is able to detect the inter-VM interference in scenarios with multiple co-located latency-critical VMs and estimate the performance degradation using multi-variable regression models. Unlike previous proposals, Cloud White is built taking into account the limitations of a public cloud production system. Experimental results show that Cloud White is able to estimate performance degradation with a small overall prediction error of 5%.
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Palabras clave:
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Cloud computing
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Public cloud
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Virtualization
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Interference
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Performance estimation
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QoS
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Tail latency
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Latency-critical workloads
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Derechos de uso:
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Reconocimiento (by)
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Fuente:
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Future Generation Computer Systems. (issn:
0167-739X
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DOI:
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10.1016/j.future.2022.08.012
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Editorial:
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Elsevier
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Versión del editor:
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https://doi.org/10.1016/j.future.2022.08.012
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Código del Proyecto:
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info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/RTI2018-098156-B-C51/ES/TECNOLOGIAS INNOVADORAS DE PROCESADORES, ACELERADORES Y REDES, PARA CENTROS DE DATOS Y COMPUTACION DE ALTAS PRESTACIONES/
info:eu-repo/grantAgreement/AEI//PID2021-123627OB-C51//TÉCNICAS INNOVADORAS PARA INFRAESTRUCTURAS, APLICACIONES Y SERVICIOS EN CENTROS DE DATOS Y SISTEMAS ALTAMENTE DISTRIBUIDOS/
info:eu-repo/grantAgreement/ //FPU18%2F01948//AYUDA PREDOCTORAL FPU-PONS ESCAT. PROYECTO: GESTION EFICIENTE DE RECURSOS COMPARTIDOS EN HIGH-PERFORMANCE COMPUTING Y CLOUD COMPUTING/
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Agradecimientos:
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This work has been supported by Huawei Cloud, and in part by Spanish Ministerio de Universidades under grant FPU18/01948, and by Spanish Ministerio de Universidades and European ERDF under grants RTI2018-098156-B-C51 and ...[+]
This work has been supported by Huawei Cloud, and in part by Spanish Ministerio de Universidades under grant FPU18/01948, and by Spanish Ministerio de Universidades and European ERDF under grants RTI2018-098156-B-C51 and PID2021-123627OB-C51. Funding for open access charge: CRUE-Universitat Politec-nica de Valencia.
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Tipo:
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Artículo
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