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Artículo

Scheduling in a random environment: stability and asymptotic optimality

Ayesta, U.; Erauskin, M.; Jonckheere, Matthieu Thimothy SamsonIcon ; Verloop, M.
Fecha de publicación: 02/2013
Editorial: Institute Of Electrical And Electronics Engineers
Revista: Ieee-acm Transactions On Networking
ISSN: 1063-6692
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Estadística y Probabilidad

Resumen

We investigate the scheduling of a common resource between several concurrent users when the feasible transmission rate of each user varies randomly over time. Time is slotted and users arrive and depart upon service completion. This may model for example the flow-level behavior of end-users in a narrowband HDR wireless channel (CDMA 1xEV-DO). As performance criteria we consider the stability of the system and the mean delay experienced by the users. Given the complexity of the problem we investigate the fluid-scaled system, which allows to obtain important results and insights for the original system: (1) We characterize for a large class of scheduling policies the stability conditions and identify a set of maximum stable policies, giving in each time slot preference to users being in their best possible channel condition. We find in particular that many opportunistic scheduling policies like Score-Based [8], Proportionally Best [1] or Potential Improvement [4] are stable under the maximum stability conditions, whereas the opportunistic scheduler Relative-Best [9] or the c-rule are not. (2) We show that choosing the right tie-breaking rule is crucial for the performance (e.g. average delay) as perceived by a user. We prove that a policy is asymptotically optimal if it is maximum stable and the tie-breaking rule gives priority to the user with the highest departure probability. We will refer to such tiebreaking rule as myopic. (3) We derive the growth rates of the number of users in the system in overload settings under various policies, which give additional insights on the performance. (4) We conclude that simple priority-index policies with the myopic tie-breaking rule, are stable and asymptotically optimal. All our findings are validated with extensive numerical experiments.
Palabras clave: Fluid Limits , Performance Evaluation , Stability Analysis , Cellular Ireless Systems
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info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/14846
DOI: http://dx.doi.org/10.1109/TNET.2012.2199764
URL: http://ieeexplore.ieee.org/document/6209453/
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Articulos(IMAS)
Articulos de INSTITUTO DE INVESTIGACIONES MATEMATICAS "LUIS A. SANTALO"
Citación
Ayesta, U.; Erauskin, M.; Jonckheere, Matthieu Thimothy Samson; Verloop, M.; Scheduling in a random environment: stability and asymptotic optimality; Institute Of Electrical And Electronics Engineers; Ieee-acm Transactions On Networking; 21; 1; 2-2013; 258-271
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