• 제목/요약/키워드: Searching area

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A* 알고리즘 평가함수의 추정 부하량 변경에 관한 연구 (A Study on Changing Estimation Weights of A* Algorithm's Heuristic Function)

  • 정병두;유영근
    • 한국ITS학회 논문지
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    • 제14권3호
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    • pp.1-8
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    • 2015
  • 교통 네트워크에서 하나의 노드로부터 다른 노드로 가는 최단 경로 탐색은 탐색속도와 함께 정확성도 매우 중요시되고 있다. 기존 $A^*$ 알고리즘은 빠른 탐색속도가 큰 장점이기는 하지만, 분석네트워크가 다소 복잡하고, 링크수가 많은 대규모 네트워크에서는 최단 통행경로를 가까운 노드의 순서대로 단계적으로 찾아내는 데 정확도가 다소 낮은 약점을 갖고 있다. 따라서 본 연구에서는 $A^*$ 알고리즘의 평가함수와 알고리즘을 수정하여 정확성을 높일 수 있도록 하였다. 구체적으로는 평가함수를 선적인 개념에서 면적인 개념으로 전환하였고, 계산단계의 진행과정에서 실제 부하량이 적을수록 무조건 좋은 것이 아니라, 부하량이 커도 목표노드에 가까운 것이라면 더욱 최단경로에 유리하다는 개념을 도입한 것이다. 마지막으로 평가함수 값은 반복계산을 수행할수록 적어야 하는데, 이렇지 못할 경우, 피드백 기능을 부가하여 탐색 정확도를 높이도록 알고리즘을 수정하였다. 이렇게 개선된 알고리즘을 실제 네트워크상에서 적용해 본 결과, 유용성이 있는 것으로 밝혀졌다.

최단경로 탐색영역 축소 알고리즘 개발 (Development of Shortest Path Searching Network Reduction Algorithm)

  • 유영근
    • 한국ITS학회 논문지
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    • 제12권2호
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    • pp.12-21
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    • 2013
  • 본 연구에서는 최단경로 탐색 소요시간을 줄이기 위한 목적으로 탐색영역을 축소하는 알고리즘을 개발하였다. 개발된 알고리즘은 출발노드와 목적노드를 최소의 노드 수로 연결하면서 직선거리의 합이 최소인 임시경로를 구축하고, 구축된 임시경로의 부하량 보다 적은 부하량의 경로를 연결할 가능성이 있는 노드들을 찾는 것이다. 하나의 노드에서 출발노드까지의 직선거리와 목적노드까지의 직선거리 합이 임시경로의 부하량을 최소 가로 부하량 원단위로 나눈 값보다 적을 경우, 그 노드는 임시경로 보다 더 적은 부하량을 가질 수 있는 경로를 구성할 가능성이 있는 노드가 된다. 이와 같은 노드들만을 탐색영역으로 하면 탐색영역이 축소됨에 따라 최단경로 탐색 소요시간을 줄일 수 있게 된다. 개발된 알고리즘은 큰 탐색영역에서 출발노드와 목적노드가 가까울 경우 더욱 효과적이다.

확률적 타부 탐색 전략을 이용한 새로운 함수 최적화 방법에 관한 연구 (A Study on a New Function Optimization Method Using Probabilistic Tabu Search Strategy)

  • 김형수;황기현;박준호
    • 대한전기학회논문지:시스템및제어부문D
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    • 제50권11호
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    • pp.532-540
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    • 2001
  • In this paper, we propose a probabilistic tabu search strategy for function optimization. It is composed of two procedures, one is Basic search procedure that plays a role in local search, and the other is Restarting procedure that enables to diversify search region. In basic search procedure, we use Belief space and Near region to create neighbors. Belief space is made of high-rank neighbors to effectively restrict searching space, so it can improve searching time and local or global searching capability. When a solution is converged in a local area, Restarting procedure works to search other regions. In this time, we use Probabilistic Tabu Strategy(PTS) to adjust parameters such as a reducing rate, initial searching region etc., which makes enhance the performance of searching ability in various problems. In order to show the usefulness of the proposed method, the PTS is applied to the minimization problems such as De Jong functions, Ackley function, and Griewank functions etc., the results are compared with those of GA or EP.

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파티클군집최적화 방법을 적용한 위치관리시스템 최적 설계 (Optimal Design of Location Management Using Particle Swarm Optimization)

  • 변지환;김성수;장시환;김연수
    • 경영과학
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    • 제29권1호
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    • pp.143-152
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    • 2012
  • Location area planning (LAP) problem is to partition the cellular/mobile network into location areas with the objective of minimizing the total cost in location management. The minimum cost has two components namely location update cost and searching cost. Location update cost is incurred when the user changes itself from one location area to another in the network. The searching cost incurred when a call arrives, the search is done only in the location area to find the user. Hence, it is important to find a compromise between the location update and paging operations such that the cost of mobile terminal location tracking cost is a minimum. The complete mobile network is divided into location areas. Each location area consists of a group of cells. This partitioning problem is a difficult combinatorial optimization problem. In this paper, we use particle swarm optimization (PSO) to obtain the best/optimal group of cells for 16, 36, 49, and 64 cells network. Experimental studies illustrate that PSO is more efficient and surpasses those of precious studies for these benchmarking problems.

자동 임계점 탐색 알고리즘과 통계적 투영 분석을 이용한 얼굴 분할 (Face seqmentation using automatic searching algorithm of thresholding value and statistical projection analysis)

  • 김장원;이흥복;김창석
    • 한국통신학회논문지
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    • 제21권8호
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    • pp.1874-1884
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    • 1996
  • In this paper, we proposed automatic searching algorithm of thresholding value using multilevel thresholding for face segmentation from input bust image effectively. The proposed algorithm extracted the thresholding value of brightness that is formed background region, face region and hair region without illumination, background and face size from input image. The statistical projection analysis project the brightness of multilevel thresholding image into horizontal and vertical direction and decide the thresholding value of face. And the algorithm extracted elliptical type block of face from input image in order to reduce the back ground region and hair region efficiently. The proposed algorithm can reduce searching area of feature extraction and processing time for face recognication.

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APPLICATION OF SPATIAL METADATA STANDARDS FOR CATALOG WEB SERVICES IN KOREA

  • Yom, Jae-Hong;Kyoung, Min-Ju;Jeong, Jang-Yoon;Lee, Dong-Cheon
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2007년도 Proceedings of ISRS 2007
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    • pp.430-433
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    • 2007
  • Spatial information has recently been recognized as one of the major subjects of interest in information technology. With increasing variety and quantity of spatial data on the web, searching and maintaining these data are becoming a much focussed area of research. Interoperability is the key technology in solving the complexities of spatial data in web services. The problem of maintenance and searching of spatial data in an interoperable web service environment can be solved by establishing standardized metadata of spatial information. Then using the standardized metadata, catalog web services can be deployed for autonomous searching and binding of spatial data. This study investigates the international standard for spatial data metadata(ISO/TC211 19115) and deployed catalog web service based on this metadata. Various heterogeneous spatial data of Seoul Metropolitan region were then used for experimental implementation of catalog web service.

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정수-화소만을 이용한 1/4-화소 단위 고속 움직임 추정 (Sub-Pixel Motion Estimation by Using Only integ-Pixel)

  • 조효문;박동균;조상복
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2007년도 하계종합학술대회 논문집
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    • pp.383-384
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    • 2007
  • In this paper, we propose the new and simple method for sub-pixel block search algorithm by only using integer-pixel for motion estimation and compensation. In many papers, the fast search block match algorithms based on TSS have been proposed. However, these methods could be achieved a little reduction of the computational complexity. All of searching points by 1/4-pixel have own predicted integer-pixel SAD array. Therefor, if we know initial nine SAD values by integer, which is on the searching area of the reference frame, then we can find optimal searching point by 1/4-pixel, directly.

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네트워크 보안을 위한 강력한 문자열 매칭 알고리즘 (Robust Quick String Matching Algorithm for Network Security)

  • 이종욱;박찬길
    • 디지털산업정보학회논문지
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    • 제9권4호
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    • pp.135-141
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    • 2013
  • String matching is one of the key algorithms in network security and many areas could be benefit from a faster string matching algorithm. Based on the most efficient string matching algorithm in sual applications, the Boyer-Moore (BM) algorithm, a novel algorithm called RQS is proposed. RQS utilizes an improved bad character heuristic to achieve bigger shift value area and an enhanced good suffix heuristic to dramatically improve the worst case performance. The two heuristics combined with a novel determinant condition to switch between them enable RQS achieve a higher performance than BM both under normal and worst case situation. The experimental results reveal that RQS appears efficient than BM many times in worst case, and the longer the pattern, the bigger the performance improvement. The performance of RQS is 7.57~36.34% higher than BM in English text searching, 16.26~26.18% higher than BM in uniformly random text searching, and 9.77% higher than BM in the real world Snort pattern set searching.

민감도가 고려된 알고리듬을 이용한 최적화 방법에 관한 연구 (A Study on the Optimization Method using the Genetic Algorithm with Sensitivity Analysis)

  • 이재관;신효철
    • 대한기계학회논문집A
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    • 제24권6호
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    • pp.1529-1539
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    • 2000
  • A newly developed optimization method which uses the genetic algorithm combined with the sensitivity analysis is presented in this paper. The genetic algorithm is a probabilistic method, searching the optimum at several points simultaneously, requiring only the values of the object and constraint functions. It has therefore more chances to find global solution and can be applied various problems. Nevertheless, it has such shortcomings that even it approaches the optimum rapidly in the early stage, it slows down afterward and it can't consider the constraints explicitly. It is only because it can't search the local area near the current points. The traditional method, on the other hand, using sensitivity analysis is of great advantage in searching the near optimum. Thus the combination of the two techniques makes use of the individual advantages, that is, the superiority both in global searching by the genetic algorithm and in local searching by the sensitivity analysis. Application of the method to the several test functions verifies that the method suggested is very efficient and powerful to find the global solutions, and that the constraints can be considered properly.