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Service Composition in Stochastic Settings

机译:随机环境中的服务组合

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摘要

With the growth of the Internet-of-Things and online Web services, more services with more capabilities are available to us. The ability to generate new, more useful services from existing ones has been the focus of much research for over a decade. The goal is, given a specification of the behavior of the target service, to build a controller, known as an orchestrator, that uses existing services to satisfy the requirements of the target service. The model of services and requirements used in most work is that of a finite state machine. This implies that the specification can either be satisfied or not, with no middle ground. This is a major drawback, since often an exact solution cannot be obtained. In this paper we study a simple stochastic model for service composition: we annotate the target service with probabilities describing the likelihood of requesting each action in a state, and rewards for being able to execute actions. We show how to solve the resulting problem by solving a certain Markov Decision Process (MDP) derived from the service and requirement specifications. The solution to this MDP induces an orchestrator that coincides with the exact solution if a composition exists. Otherwise it provides an approximate solution that maximizes the expected sum of values of user requests that can be serviced. The model studied although simple shades light on composition in stochastic settings and indeed we discuss several possible extensions.
机译:随着物联网和在线Web服务的增长,我们可以使用更多具有更多功能的服务。从现有服务中生成新的,更有用的服务的能力一直是十多年来研究的重点。目标是给定目标服务的行为规范,以构建一个称为协调器的控制器,该控制器使用现有服务来满足目标服务的需求。大多数工作中使用的服务和需求模型是有限状态机的模型。这意味着该规范可以满足或不满足,没有中间立场。这是一个主要缺点,因为通常无法获得精确的解决方案。在本文中,我们研究了一种简单的用于服务组合的随机模型:我们用目标概率来注释目标服务,这些概率描述了在状态下请求每个动作的可能性,并为能够执行动作提供了奖励。我们展示了如何通过解决从服务和需求规范派生的特定马尔可夫决策过程(MDP)来解决由此产生的问题。如果存在某种成分,则此MDP的解决方案会导致协调器与确切的解决方案一致。否则,它将提供一个近似的解决方案,该解决方案可以使可以提供服务的用户请求的期望值的总和最大化。该模型进行了研究,尽管简单的阴影在随机环境下影响了合成,实际上我们讨论了几种可能的扩展。

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