• 제목/요약/키워드: 논리규칙

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A Fuzzy-based Network Intrusion Detection System Through sessionization (세션화 방식을 통한 퍼지기반 네트워크 침입탐지시스템)

  • Park, Ju-Gi;Choi, Eun-Bok
    • Journal of the Korea Society of Computer and Information
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    • v.12 no.1 s.45
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    • pp.127-135
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    • 2007
  • As the Internet is used widely, criminal offense that use computer is increasing, and an information security technology to remove this crime is becoming competitive power of the country. In this paper, we suggest network-based intrusion detection system that use fuzzy expert system. This system can decide quick intrusion decision from attack pattern applying fuzzy rule through the packet classification method that is done similarity of protocol and fixed time interval. Proposed system uses fuzzy logic to detect attack from network traffic, and gets analysis result that is automated through fuzzy reasoning. In present network environment that must handle mass traffic, this system can reduce time and expense of security

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Propositions and Judgments in the Intuitionistic Type Theory (직관주의적 유형론에서의 명제와 판단)

  • Chung, In-Kyo
    • Korean Journal of Logic
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    • v.14 no.2
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    • pp.39-76
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    • 2011
  • We explain some basic elements of Martin-L$\ddot{o}$f's type theory and examine the distinction between propositions and judgments. In section 1, we introduce the problem. In section 2, we explain the concept of proposition in the intuitionistic type theory as a development of the intuitionistic conception of proposition. In section 3, we explain the concept of judgment in the intuitionistic type theory. In section 4, we explain some basic inference rules and examine a particular derivation in the theory. In section 5, we examine one route from the Fregean distinction between propositions and judgments to the distinction between them in the intuitionistic type theory, paying attention to the alleged necessity for introducing different forms of judgments.

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A Fuzzy Agent System to Control the State Transition for an Autonomous Decision Making on Taxi Driving (택시 운행 중 상태변화에 대한 자율적 의사결정을 위한 퍼지 에이전트)

  • Lim, Chun-Kyu;Kang, Byung-Wook
    • The KIPS Transactions:PartB
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    • v.12B no.4 s.100
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    • pp.413-420
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    • 2005
  • In this paper, we apply software agents, which use fuzzy logic and make autonomous decisions according to state transitions, to car driving environment. We carry out an experiment on artificial intelligent car driving in terms of real-time reactive agents. Inference techniques for constructing real-time reactive agents consider the settings with max-product inference, n-fuzzy rules, and n-associatives ($A_l,\;B_l),\;{\ldots}(A_n,\;B_n$). Then we perform defuzzification processes, extract a central value, and work out inference processes.

A Study on Minimization Algorithm for ESOP of Multiple - Valued Function (다치 논리 함수의 ESOP 최소화 알고리즘에 관한 연구)

  • Song, Hong-Bok
    • The Transactions of the Korea Information Processing Society
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    • v.4 no.7
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    • pp.1851-1864
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    • 1997
  • This paper presents an algorithm simplifying the ESOP function by several rules. The algorithm is repeatedly performing operations based on the state of each terms by the product transformation operation of two functions and thus it is simplifying the ESOP function through the reduction of the product terms. Through the minimization of the product terms of the multi-valued input binary multi-output function, an optimization of the input has been done using EXOR PLA with input decoder. The algorithm when applied to four valued arithmetic circuit has been used for a EXOR logic circuit design and the two bits input decoder has been used for a EXOR-PLA design. It has been found from a computer simulation(IBM PC486) that the suggested algorithm can reduce the product terms of the output function remarkably regardless of the number of input variables when the variable AND-EXOR PLA is applied to the poperation circuit.

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A Study on Implementation and Applying Relationship Ontology System Using RDF/OWL Object Property (RDF/OWL의 객체속성을 이용한 관계온톨로지 시스템 구축과 활용에 관한 연구)

  • Kang, Hyen-Min
    • Journal of the Korean Society for information Management
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    • v.27 no.4
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    • pp.219-237
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    • 2010
  • This study proposes a 'Bibliographic Universe Relationship Vocabulary'(burv) using the RDF/OWL Object Property under the SPO predicate logic according to the relationship type among all entities of bibliographic universe and implemented a 'relationship ontology system' to establish a new cataloging business domain called 'Relationship Description Cataloging' based on the ontology.

A Study for Autonomous Intelligence of Computer-Generated Forces (가상군(Computer-Generated Forces)의 자율지능화 방안 연구)

  • Han, Chang-Hee;Cho, Jun-Ho;Lee, Sung-Ki
    • Journal of the Korea Society for Simulation
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    • v.20 no.1
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    • pp.69-77
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    • 2011
  • Modeling and Simulation(M&S) technology gets an attention from various parts such as industry and military. Especially, military uses the technology to cope with a different situation from the one in the Cold War and maximize the effect of training against the cost in the new environment. In order for the training based on M&S technology to be effective, the situations of a battlefield and a combat must be more realistically simulated. For this, a technique development on Computer-Generated Forces(CGF) which represents a unit's simulation logic and a human's simulated behaviors is focused. The CGF simulating a human's behaviors can be used in representing an enemy force, experimenting behaviors in a future war, and developing a new combat idea. This paper describes a methodology to accomplish Computer-Generated Forces' autonomous intelligence. It explains the process of applying a task behavior list based on the METT+T element onto CGFs. On the other hand, in the domain knowledge of military field manual, fuzzy facts such as "fast" and "sufficient" whose real values should be decided by domain experts can be easily found. In order to efficiently implement military simulation logics involved with such subjectivity, using a fuzzy inference methodology can be effective. In this study, a fuzzy inference methodology is also applied.

On Developing The Intellingent contro System of a Robot Manupulator by Fussion of Fuzzy Logic and Neural Network (퍼지논리와 신경망 융합에 의한 로보트매니퓰레이터의 지능형제어 시스템 개발)

  • 김용호;전홍태
    • Journal of the Korean Institute of Intelligent Systems
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    • v.5 no.1
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    • pp.52-64
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    • 1995
  • Robot manipulator is a highly nonlinear-time varying system. Therefore, a lot of control theory has been applied to the system. Robot manipulator has two types of control; one is path planning, another is path tracking. In this paper, we select the path tracking, and for this purpose, propose the intelligent control¬ler which is combined with fuzzy logic and neural network. The fuzzy logic provides an inference morphorlogy that enables approximate human reasoning to apply to knowledge-based systems, and also provides a mathematical strength to capture the uncertainties associated with human cognitive processes like thinking and reasoning. Based on this fuzzy logic, the fuzzy logic controller(FLC) provides a means of converhng a linguistic control strategy based on expert knowledge into automahc control strategy. But the construction of rule-base for a nonlinear hme-varying system such as robot, becomes much more com¬plicated because of model uncertainty and parameter variations. To cope with these problems, a auto-tuning method of the fuzzy rule-base is required. In this paper, the GA-based Fuzzy-Neural control system combining Fuzzy-Neural control theory with the genetic algorithm(GA), that is known to be very effective in the optimization problem, will be proposed. The effectiveness of the proposed control system will be demonstrated by computer simulations using a two degree of freedom robot manipulator.

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A implementation and evaluation of Rule-Based Reverse-Engineering Tool (규칙기반 역공학 도구의 구현 및 평가)

  • Bae Jin Young
    • Journal of the Korea Society of Computer and Information
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    • v.9 no.3
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    • pp.135-141
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    • 2004
  • With the diversified and enlarged softwares, the issue of software maintenance became more complex and difficult and consequently, the cost of software maintenance took up the highest portion in the software life cycle. We design Reverse Engineering Tool for software restructuring environment to object-oriented system. We design Rule - Based Reverse - Engineering using Class Information. We allow the maintainer to use interactive query by using Prolog language. We use similarity formula, which is based on relationship between variables and functions, in class extraction and restructuring method in order to extract most appropriate class. The visibility of the extracted class can be identified automatically. Also, we allow the maintainer to use query by using logical language. So We can help the practical maintenance. Therefore, The purpose of this paper is to suggest reverse engineering tool and evaluation reverse engineering tool.

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Efficieint Combination of OWL-DL and SWRL for Maintaining Decidability (추론을 위한 OWL-DL과 SWRL의 효율적 결합)

  • Seo, Eun-Seok;Park, Jun-Sang;Park, Young-Tack
    • Proceedings of the Korean Information Science Society Conference
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    • 2006.10b
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    • pp.372-377
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    • 2006
  • 유비쿼터스 컴퓨팅 시대의 도래와 시맨틱 웹에 대한 관심이 높아짐에 따라 관련 기술인 온톨로지와 이를 이용한 추론 기술에 대한 요구가 증가하고 있다. 따라서, 추론이 가능한 시맨틱 웹 기반의 모델링과 추론에 대한 연구가 필요하다. 모델링을 위해 사용되는 OWL-DL과 임의의 사용자 규칙을 표현하는 SWRL은 각각 W3C의 표준안으로서, 유비쿼터스 컴퓨팅 환경에 효율적으로 자동적인 개인화 서비스[1][2]를 제공하는데 있어서 적합하다. 그러나 OWL-DL과 SWRL의 단순한 결합은 질의응답(Query Answering)에 대한 처리가 비결정 가능한(undecidable) 문제를 야기한다. 본 논문에서는, 비결정가능성 문제의 원인인 무한반복의 가능성을 제거하기 위한 블록(blocking) 방법을 제안한다. OWL-DL이 지닌 서술논리(Description Logic)의 표현력을 유지하고, 그에 따른 추론의 질적인 성능을 유지하는 범위에서 블록방법을 사용하여 결정 가능한 질의응답을 수행하는데 궁극적인 목적을 두고 있다. OWL-DL의 TBox에 위치하는 존재 정량자(Existential Quantifier)를 대체하고 ABox에 삽입하여, 무한반복의 가능성을 없애는 해결 방법을 제시한다. 실험은 비결정가능성 문제를 DL-Safe 규칙을 통해 해결한 KAON2와 비교하여 진행한다.

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Restructuring a Feed-forward Neural Network Using Hidden Knowledge Analysis (학습된 지식의 분석을 통한 신경망 재구성 방법)

  • Kim, Hyeon-Cheol
    • Journal of KIISE:Software and Applications
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    • v.29 no.5
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    • pp.289-294
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    • 2002
  • It is known that restructuring feed-forward neural network affects generalization capability and efficiency of the network. In this paper, we introduce a new approach to restructure a neural network using abstraction of the hidden knowledge that the network has teamed. This method involves extracting local rules from non-input nodes and aggregation of the rules into global rule base. The extracted local rules are used for pruning unnecessary connections of local nodes and the aggregation eliminates any possible redundancies arid inconsistencies among local rule-based structures. Final network is generated by the global rule-based structure. Complexity of the final network is much reduced, compared to a fully-connected neural network and generalization capability is improved. Empirical results are also shown.