• Title/Summary/Keyword: Multiagents

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Intelligent Agent System by Self Organizing Neural Network

  • Cho, Young-Im
    • 제어로봇시스템학회:학술대회논문집
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    • 2005.06a
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    • pp.1468-1473
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    • 2005
  • In this paper, I proposed the INTelligent Agent System by Kohonen's Self Organizing Neural Network (INTAS). INTAS creates each user's profile from the information. Based on it, learning community grouping suitable to each individual is automatically executed by using unsupervised learning algorithm. In INTAS, grouping and learning are automatically performed on real time by multiagents, regardless of the number of learners. A new framework has been proposed to generate multiagents, and it is a feature that efficient multiagents can be executed by proposing a new negotiation mode between multiagents..

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A Personal Digital Library on a Distributed Mobile Multiagents Platform (분산 모바일 멀티에이전트 플랫폼을 이용한 사용자 기반 디지털 라이브러리 구축)

  • Cho Young Im
    • Journal of KIISE:Software and Applications
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    • v.31 no.12
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    • pp.1637-1648
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    • 2004
  • When digital libraries are developed by the traditional client/sever system using a single agent on the distributed environment, several problems occur. First, as the search method is one dimensional, the search results have little relationship to each other. Second, the results do not reflect the user's preference. Third, whenever a client connects to the server, users have to receive the certification. Therefore, the retrieval of documents is less efficient causing dissatisfaction with the system. I propose a new platform of mobile multiagents for a personal digital library to overcome these problems. To develop this new platform I combine the existing DECAF multiagents platform with the Voyager mobile ORB and propose a new negotiation algorithm and scheduling algorithm. Although there has been some research for a personal digital library, I believe there have been few studies on their integration and systemization. For searches of related information, the proposed platform could increase the relationship of search results by subdividing the related documents, which are classified by a supervised neural network. For the user's preference, as some modular clients are applied to a neural network, the search results are optimized. By combining a mobile and multiagents platform a new mobile, multiagents platform is developed in order to decrease a network burden. Furthermore, a new negotiation algorithm and a scheduling algorithm are activated for the effectiveness of PDS. The results of the simulation demonstrate that as the number of servers and agents are increased, the search time for PDS decreases while the degree of the user's satisfaction is four times greater than with the C/S model.

Evolving Cooperative Behavior of Autonomous Mobile Robots Using Genetic Programming (유전자 프로그래밍을 이용한 자율 이동 로봇군의 헙조행동 진화)

  • Cho, Dong-Yeon;Zhang, Byoung-Tak
    • Proceedings of the KIEE Conference
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    • 1998.07g
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    • pp.2197-2199
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    • 1998
  • Many multiagents cooperative problems, such as table transport problem, require several emergent behaviors and a proper coordination of these is essential for successful accompishment of the task. We study in this paper the genetic programming method, called fitness switching, to evolve cooperation strategies of robots in these kind of tasks and show simulation results to demonstrate its effectiveness.

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Grouping System for e-Learning Community(GSE): based on Intelligent Personalized Agent (온라인 학습공동체 그룹핑 시스템 개발: 지능적 에이전트 활용)

  • Kim, Myung Sook;Cho, Young Im
    • The Journal of Korean Association of Computer Education
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    • v.7 no.6
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    • pp.117-128
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    • 2004
  • Compared with traditional face-to-face instruction, online learning causes learners to experience more severe feeling of isolation and results in higher dropout rate. This is due to the lack of interaction, sense of belonging, membership, interdependency, cooperation among members and social environment that enables persistence in online learning. Therefore, it is very important for grouping e-learning community to lower the dropout rate and eliminate feeling of isolation. In this paper, the research has been done on the inclination test list to be applied for grouping the desirable learning community. And on the basis of this research, the grouping system for e-learning community(GSE) based on intelligent multi agents for an inclination test using homogeneous and heterogeneous items has been developed. GSE system has such properties that construct a personalized user profile by an agent, and then make groupings according to users' inclination. When this system was evaluated, about 88% of learners were satisfied, and they wanted the group not to be disorganized but to be maintained.

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A Study of Business Model Based on Intelligent Agents for Optimal Contract (최적의 매매계약을 위한 지능형 에이전트 기반의 비즈니스 모형에 관한 연구)

  • 정종진
    • Journal of the Korea Computer Industry Society
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    • v.5 no.1
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    • pp.131-146
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    • 2004
  • As Electronic Commerce(EC) has been emerged and has developed, many researchers have tried to establish EC framework for automated contract and negotiation using agent technologies. Traditional researches, however, often had limitations. They often enforced the user's participations during the automated contract process of agents. They also could only consider a few of the user's requirements for a specific goods and did not have supported the procedures and methodologies for making the best contract. In this paper, we propose business model on EC based on multiagents to overcome the defects of the previous researches. We apply CSP techniques to brokerage process to satisfy various preferential requirements from the user. We also propose efficient negotiation mechanism using negotiation model of game theory. The contract candidates automatically negotiate and mediate in terms of their benefits through the proposed negotiation mechanism. For the optimal brokerage and automated negotiation, the agents process activities for contract on three layers, which are called competition layer, constraint satisfaction layer and negotiation layer in the proposed model. We also design the message driven communication protocol to support the automated contract among the agents. Finally, we have implemented prototype systems applying the proposed model and have shown the various experimental results for efficiency of the proposed model.

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