Asymptotic optimality of a greedy randomized algorithm in a large-scale service system with general packing constraints
We consider a service system model primarily motivated by the problem of efficient assignment of virtual machines to physical host machines in a network cloud, so that the number of occupied hosts is minimized.There are multiple types of arriving customers, where a customer’s mean service time depen...
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| Vydáno v: | Queueing systems Ročník 79; číslo 2; s. 117 - 143 |
|---|---|
| Hlavní autoři: | , |
| Médium: | Journal Article |
| Jazyk: | angličtina |
| Vydáno: |
Boston
Springer US
01.02.2015
Springer Nature B.V |
| Témata: | |
| ISSN: | 0257-0130, 1572-9443 |
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| Abstract | We consider a service system model primarily motivated by the problem of efficient assignment of virtual machines to physical host machines in a network cloud, so that the number of occupied hosts is minimized.There are multiple types of arriving customers, where a customer’s mean service time depends on its type. There is an infinite number of servers. Multiple customers can be placed for service into one server, subject to general “packing” constraints. Service times of different customers are independent, even if served simultaneously by the same server. Each new arriving customer is placed for service immediately, either into a server already serving other customers (as long as packing constraints are not violated) or into an idle server. After a service completion, each customer leaves its server and the system. We propose an extremely simple and easily implementable customer placement algorithm, called
Greedy-Random
(GRAND). It places each arriving customer uniformly at random into either one of the already occupied servers (subject to packing constraints) or one of the so-called
zero-servers
, which are empty servers designated to be available to new arrivals. One instance of GRAND, called GRAND(
a
Z
), where
a
≥
0
is a parameter, is such that the number of zero-servers at any given time
t
is
a
Z
(
t
)
, where
Z
(
t
)
is the current total number of customers in the system. We prove that GRAND(
a
Z
) with
a
>
0
is asymptotically optimal, as the customer arrival rates grow to infinity and
a
→
0
, in the sense of minimizing the total number of occupied servers in steady state. In addition, we study by simulations various versions of GRAND and observe the dependence of convergence speed and steady-state performance on the number of zero-servers. |
|---|---|
| AbstractList | We consider a service system model primarily motivated by the problem of efficient assignment of virtual machines to physical host machines in a network cloud, so that the number of occupied hosts is minimized.There are multiple types of arriving customers, where a customer’s mean service time depends on its type. There is an infinite number of servers. Multiple customers can be placed for service into one server, subject to general “packing” constraints. Service times of different customers are independent, even if served simultaneously by the same server. Each new arriving customer is placed for service immediately, either into a server already serving other customers (as long as packing constraints are not violated) or into an idle server. After a service completion, each customer leaves its server and the system. We propose an extremely simple and easily implementable customer placement algorithm, called
Greedy-Random
(GRAND). It places each arriving customer uniformly at random into either one of the already occupied servers (subject to packing constraints) or one of the so-called
zero-servers
, which are empty servers designated to be available to new arrivals. One instance of GRAND, called GRAND(
a
Z
), where
a
≥
0
is a parameter, is such that the number of zero-servers at any given time
t
is
a
Z
(
t
)
, where
Z
(
t
)
is the current total number of customers in the system. We prove that GRAND(
a
Z
) with
a
>
0
is asymptotically optimal, as the customer arrival rates grow to infinity and
a
→
0
, in the sense of minimizing the total number of occupied servers in steady state. In addition, we study by simulations various versions of GRAND and observe the dependence of convergence speed and steady-state performance on the number of zero-servers. We consider a service system model primarily motivated by the problem of efficient assignment of virtual machines to physical host machines in a network cloud, so that the number of occupied hosts is minimized. There are multiple types of arriving customers, where a customers mean service time depends on its type. There is an infinite number of servers. Multiple customers can be placed for service into one server, subject to general packing constraints. Service times of different customers are independent, even if served simultaneously by the same server. Each new arriving customer is placed for service immediately, either into a server already serving other customers (as long as packing constraints are not violated) or into an idle server. After a service completion, each customer leaves its server and the system. We propose an extremely simple and easily implementable customer placement algorithm, called Greedy-Random (GRAND). It places each arriving customer uniformly at random into either one of the already occupied servers (subject to packing constraints) or one of the so-called zero-servers, which are empty servers designated to be available to new arrivals. One instance of GRAND, called GRAND(aZ), where a 0 is a parameter, is such that the number of zero-servers at any given time t is aZ(t), where Z(t) is the current total number of customers in the system. We prove that GRAND(aZ) with a > 0 is asymptotically optimal, as the customer arrival rates grow to infinity and a 0, in the sense of minimizing the total number of occupied servers in steady state. In addition, we study by simulations various versions of GRAND and observe the dependence of convergence speed and steady-state performance on the number of zero-servers. (ProQuest: ... denotes formulae and/or non-USASCII text omitted; see image).We consider a service system model primarily motivated by the problem of efficient assignment of virtual machines to physical host machines in a network cloud, so that the number of occupied hosts is minimized.There are multiple types of arriving customers, where a customer's mean service time depends on its type. There is an infinite number of servers. Multiple customers can be placed for service into one server, subject to general "packing" constraints. Service times of different customers are independent, even if served simultaneously by the same server. Each new arriving customer is placed for service immediately, either into a server already serving other customers (as long as packing constraints are not violated) or into an idle server. After a service completion, each customer leaves its server and the system. We propose an extremely simple and easily implementable customer placement algorithm, called Greedy-Random (GRAND). It places each arriving customer uniformly at random into either one of the already occupied servers (subject to packing constraints) or one of the so-called zero-servers, which are empty servers designated to be available to new arrivals. One instance of GRAND, called GRAND(...), where ... is a parameter, is such that the number of zero-servers at any given time ... is ..., where ... is the current total number of customers in the system. We prove that GRAND(...) with ... is asymptotically optimal, as the customer arrival rates grow to infinity and ..., in the sense of minimizing the total number of occupied servers in steady state. In addition, we study by simulations various versions of GRAND and observe the dependence of convergence speed and steady-state performance on the number of zero-servers. |
| Author | Stolyar, Alexander L. Zhong, Yuan |
| Author_xml | – sequence: 1 givenname: Alexander L. surname: Stolyar fullname: Stolyar, Alexander L. email: stolyar@research.bell-labs.com organization: Bell Labs, Alcatel-Lucent – sequence: 2 givenname: Yuan surname: Zhong fullname: Zhong, Yuan organization: Columbia University |
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| Cites_doi | 10.1239/jap/1175267175 10.1137/080736831 10.1287/opre.1110.0960 10.2307/1426976 10.1239/jap/1014842828 10.1023/B:QUES.0000046581.34849.cf 10.1214/aoap/1177005872 10.1145/1120582.1120583 10.1287/opre.2013.1184 10.2307/1427309 10.1017/CBO9780511804441 10.1109/INFCOM.2013.6566847 |
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| Keywords | Fluid limit Cloud computing Infinite server system Greedy random algorithm 90B15 Virtual machine Queueing networks 60K25 Stochastic bin packing |
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| References | Stolyar (CR15) 2013; 61 Kelly (CR10) 1986; 18 CR6 CR8 CR7 CR9 CR16 Zachary (CR17) 2000; 37 CR13 CR12 Kelly (CR11) 1991; 1 Boyd, Vandenberghe (CR3) 2004 Stolyar, Tezcan (CR14) 2011; 59 Csirik, Johnson, Kenyon, Orlin, Shor, Weber (CR4) 2006; 53 Burman (CR2) 1981; 13 Zachary (CR18) 2007; 44 Gamarnik (CR5) 2004; 48 Bansal, Caprara, Sviridenko (CR1) 2009; 39 AL Stolyar (9414_CR14) 2011; 59 9414_CR9 J Csirik (9414_CR4) 2006; 53 9414_CR8 9414_CR7 9414_CR6 9414_CR12 S Zachary (9414_CR18) 2007; 44 DY Burman (9414_CR2) 1981; 13 9414_CR13 FP Kelly (9414_CR10) 1986; 18 FP Kelly (9414_CR11) 1991; 1 9414_CR16 N Bansal (9414_CR1) 2009; 39 S Zachary (9414_CR17) 2000; 37 D Gamarnik (9414_CR5) 2004; 48 S Boyd (9414_CR3) 2004 AL Stolyar (9414_CR15) 2013; 61 |
| References_xml | – volume: 44 start-page: 238 year: 2007 end-page: 248 ident: CR18 article-title: A note on insensitivity in stochastic networks publication-title: J. Appl. Probab. doi: 10.1239/jap/1175267175 – volume: 39 start-page: 1256 issue: 4 year: 2009 end-page: 1278 ident: CR1 article-title: A new approximation method for set covering problems, with applications to multidimensional bin packing publication-title: SIAM J. Comput. doi: 10.1137/080736831 – volume: 59 start-page: 1427 issue: 6 year: 2011 end-page: 1444 ident: CR14 article-title: Shadow routing based control of flexible multi-server pools in overload publication-title: Oper. Res. doi: 10.1287/opre.1110.0960 – ident: CR16 – volume: 13 start-page: 846 issue: 4 year: 1981 end-page: 859 ident: CR2 article-title: Insensitivity in queueing systems publication-title: Adv. Appl. Probab. doi: 10.2307/1426976 – ident: CR12 – ident: CR13 – ident: CR9 – volume: 37 start-page: 685 issue: 3 year: 2000 end-page: 695 ident: CR17 article-title: Dynamics of large uncontrolled loss networks publication-title: J. Appl. Probab. doi: 10.1239/jap/1014842828 – ident: CR6 – volume: 48 start-page: 339 year: 2004 end-page: 363 ident: CR5 article-title: Stochastic bandwidth packing process: stability conditions via Lyapunov function technique publication-title: Queueing Syst doi: 10.1023/B:QUES.0000046581.34849.cf – ident: CR7 – ident: CR8 – volume: 1 start-page: 319 issue: 3 year: 1991 end-page: 378 ident: CR11 article-title: Loss networks publication-title: Ann. Appl. Probab. doi: 10.1214/aoap/1177005872 – volume: 53 start-page: 1 year: 2006 end-page: 65 ident: CR4 article-title: On the sum-of-squares algorithm for bin packing publication-title: JACM doi: 10.1145/1120582.1120583 – volume: 61 start-page: 1200 issue: 5 year: 2013 end-page: 1217 ident: CR15 article-title: An infinite server system with general packing constraints publication-title: Oper. Res. doi: 10.1287/opre.2013.1184 – volume: 18 start-page: 473 year: 1986 end-page: 505 ident: CR10 article-title: Blocking probabilities in large circuit-switched networks publication-title: Adv. Appl. Probab. doi: 10.2307/1427309 – year: 2004 ident: CR3 publication-title: Convex Optimization doi: 10.1017/CBO9780511804441 – ident: 9414_CR12 – volume: 39 start-page: 1256 issue: 4 year: 2009 ident: 9414_CR1 publication-title: SIAM J. Comput. doi: 10.1137/080736831 – ident: 9414_CR7 doi: 10.1109/INFCOM.2013.6566847 – ident: 9414_CR13 – ident: 9414_CR16 – volume-title: Convex Optimization year: 2004 ident: 9414_CR3 doi: 10.1017/CBO9780511804441 – volume: 61 start-page: 1200 issue: 5 year: 2013 ident: 9414_CR15 publication-title: Oper. Res. doi: 10.1287/opre.2013.1184 – volume: 59 start-page: 1427 issue: 6 year: 2011 ident: 9414_CR14 publication-title: Oper. Res. doi: 10.1287/opre.1110.0960 – volume: 53 start-page: 1 year: 2006 ident: 9414_CR4 publication-title: JACM doi: 10.1145/1120582.1120583 – volume: 37 start-page: 685 issue: 3 year: 2000 ident: 9414_CR17 publication-title: J. Appl. Probab. doi: 10.1239/jap/1014842828 – volume: 13 start-page: 846 issue: 4 year: 1981 ident: 9414_CR2 publication-title: Adv. Appl. Probab. doi: 10.2307/1426976 – volume: 18 start-page: 473 year: 1986 ident: 9414_CR10 publication-title: Adv. Appl. Probab. doi: 10.2307/1427309 – volume: 44 start-page: 238 year: 2007 ident: 9414_CR18 publication-title: J. Appl. Probab. doi: 10.1239/jap/1175267175 – volume: 1 start-page: 319 issue: 3 year: 1991 ident: 9414_CR11 publication-title: Ann. Appl. Probab. doi: 10.1214/aoap/1177005872 – volume: 48 start-page: 339 year: 2004 ident: 9414_CR5 publication-title: Queueing Syst doi: 10.1023/B:QUES.0000046581.34849.cf – ident: 9414_CR8 – ident: 9414_CR9 – ident: 9414_CR6 |
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| SubjectTerms | Algorithms Arrivals Asymptotic methods Asymptotic properties Business and Management Cloud computing Clouds Computer Communication Networks Control Customer services Customers Greedy algorithms Networks Operations Research/Decision Theory Optimization Packaging Packing problem Probability Theory and Stochastic Processes Queuing theory Servers Simulation Studies Supply Chain Management Systems Theory |
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