首页> 外国专利> METHOD AND SYSTEM FOR ORCHESTRATING MULTI-PARTY SERVICES USING SEMI-COOPERATIVE NASH EQUILIBRIUM BASED ON ARTIFICIAL INTELLIGENCE, NEURAL NETWORK MODELS, REINFORCEMENT LEARNING AND FINITE-STATE AUTOMATA

METHOD AND SYSTEM FOR ORCHESTRATING MULTI-PARTY SERVICES USING SEMI-COOPERATIVE NASH EQUILIBRIUM BASED ON ARTIFICIAL INTELLIGENCE, NEURAL NETWORK MODELS, REINFORCEMENT LEARNING AND FINITE-STATE AUTOMATA

机译:基于人工智能,神经网络模型,强化学习和有限状态自动机的半协同纳什均衡对多方服务进行编排的方法和系统

摘要

Distributing resources in a predetermined geographical area, including: retrieving a set of metrics indicative of factors of interest related to operation of the resources for at least two parties, each having a plurality of resources (S102), retrieving optimization policies indicative of preferred metric values for each party (S104), retrieving at least one model including strategies for distributing resources in the predetermined area, the at least one model based on learning from a set of scenarios for distributing resources (S106), retrieving context data from real time systems indicative of at least a present traffic situation (S108), establishing a Nash equilibrium between the metrics in the optimization policies of the at least two parties taking into account the at least one model and the context data (S110), distributing the resources in the geographical area according to the outcome of the established Nash equilibrium (S112).
机译:在预定的地理区域中分配资源,包括:检索一组指标,该指标表示与至少两个方(每个都有多个资源)的资源的操作相关的兴趣因素(S102),检索指示首选度量值的优化策略对于每一方(S104),检索至少一个模型,该模型包括用于在预定区域中分配资源的策略,该至少一个模型基于从用于分配资源的一组场景中的学习(S106),从指示指示信息的实时系统中检索上下文数据。至少当前交通状况(S108),在考虑到至少一个模型和上下文数据的情况下,在至少两个方的优化策略中的度量之间建立Nash平衡(S110),在地理区域中分配资源根据已建立的纳什均衡的结果确定面积(S112)。

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