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Programming environment for distributed applications design in artificialintelligence,

机译:人工智能中分布式应用程序设计的编程环境,

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Abstract: Complex applications in artificial intelligence need a multiple representation of knowledge and tasks in terms of abstraction levels and points of view. The integration of numerous resources (knowledge-based systems, real-time systems, data bases, etc.), often geographically distributed on different machines connected into a network, is moreover a necessity for the development of real scale systems. The distributed artificial intelligence (DAI) approach is thus becoming important to solve problems in complex situations. There are several currents in DAI research and we are involved in the design of DAI programming platforms for large and complex real-world problem solving systems. Blackboard systems constitute the earlier architecture. It is based on a shared memory which permits the communication among a collection of specialists and an external and unique control structure. Blackboard architectures have been extended, especially to introduce parallelism. Multi-agent architectures are based on coordinated agents (problem-solvers) communicating most of the time via message passing. A solution is found through the cooperation between several agents, each of them being in charge of a specific task, but no one having sufficient resources to obtain a solution. Coordination, cooperation, knowledge, goal, plan, exchanges are then necessary to reach a global solution. Our own research is along this last line. The current presentation describes Multi-Agent Problem Solver (MAPS) which is an agent-oriented language for a DAI system design embedded in a full programming environment. An agent is conceived as an autonomous entity with specific goals, roles, skills, and resources. Knowledge (descriptive and operative) is distributed among agents organized into networks (agents communicate through message sending). Agents are moreover geographically distributed and run in a parallel mode. Our purpose is to build a powerful environment for DAI applications design that not only solve large problems, but also help in the formulation, description, and decomposition of a problem in terms of groups of intelligent agents. Several applications have been developed with MAPS in Computer Vision (KISS system), biomedical diagnosis (KIDS system), and speech understanding. The KISS system is presented to illustrate MAPS potentialities.!12
机译:摘要:人工智能中的复杂应用程序需要在抽象级别和观点方面对知识和任务进行多重表示。此外,集成各种资源(基于知识的系统,实时系统,数据库等),这些资源通常在地理上分布在连接到网络的不同机器上,这对于开发实际规模的系统是必不可少的。因此,分布式人工智能(DAI)方法对于解决复杂情况下的问题变得越来越重要。 DAI研究有几种最新形式,我们参与了大型和复杂的实际问题解决系统的DAI编程平台的设计。黑板系统构成了较早的体系结构。它基于共享存储器,该共享存储器允许专家集合与外部唯一控制结构之间的通信。黑板体系结构已得到扩展,尤其是引入了并行性。多主体体系结构基于协调的主体(问题解决者)在大多数时间通过消息传递进行通信。通过几个代理之间的合作找到了解决方案,每个代理负责一个特定的任务,但是没有人拥有足够的资源来获取解决方案。为了达成全球解决方案,必须进行协调,合作,知识,目标,计划,交流。我们自己的研究遵循的是最后一条路线。当前的演示文稿描述了多代理问题解决器(MAPS),它是用于嵌入在完整编程环境中的DAI系统设计的面向代理的语言。代理被视为具有特定目标,角色,技能和资源的自治实体。知识(描述性和操作性)在组织成网络的代理程序之间分发(代理程序通过消息发送进行通信)。而且,代理在地理上分布并以并行模式运行。我们的目的是为DAI应用程序设计构建一个强大的环境,该环境不仅可以解决大问题,而且可以帮助根据智能代理组来制定,描述和分解问题。 MAPS已在计算机视觉(KISS系统),生物医学诊断(KIDS系统)和语音理解中开发了几种应用程序。介绍了KISS系统以说明MAPS的潜力。!12

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