• 제목/요약/키워드: Inter-clustering

검색결과 91건 처리시간 0.022초

서브클러스터링을 이용한 홀로그래픽 정보저장 시스템의 비트 에러 보정 기법 (Bit Error Reduction for Holographic Data Storage System Using Subclustering)

  • 김상훈;양현석;박영필
    • 정보저장시스템학회논문집
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    • 제6권1호
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    • pp.31-36
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    • 2010
  • Data storage related with writing and retrieving requires high storage capacity, fast transfer rate and less access time. Today any data storage system cannot satisfy these conditions, however holographic data storage system can perform faster data transfer rate because it is a page oriented memory system using volume hologram in writing and retrieving data. System can be constructed without mechanical actuating part so fast data transfer rate and high storage capacity about 1Tb/cm3 can be realized. In this research, to correct errors of binary data stored in holographic data storage system, a new method for reduction errors is suggested. First, find cluster centers using subtractive clustering algorithm then reduce intensities of pixels around cluster centers. By using this error reduction method following results are obtained ; the effect of Inter Pixel Interference noise in the holographic data storage system is decreased and the intensity profile of data page becomes uniform therefore the better data storage system can be constructed.

실루엣을 적용한 그룹탐색 최적화 데이터클러스터링 (Group Search Optimization Data Clustering Using Silhouette)

  • 김성수;백준영;강범수
    • 한국경영과학회지
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    • 제42권3호
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    • pp.25-34
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    • 2017
  • K-means is a popular and efficient data clustering method that only uses intra-cluster distance to establish a valid index with a previously fixed number of clusters. K-means is useless without a suitable number of clusters for unsupervised data. This paper aimsto propose the Group Search Optimization (GSO) using Silhouette to find the optimal data clustering solution with a number of clusters for unsupervised data. Silhouette can be used as valid index to decide the number of clusters and optimal solution by simultaneously considering intra- and inter-cluster distances. The performance of GSO using Silhouette is validated through several experiment and analysis of data sets.

퍼지컬러 모델을 이용한 컬러 데이터 클러스터링 알고리즘1 (Color Data Clustering Algorithm using Fuzzy Color Model)

  • Kim, Dae-Won;Lee, Kwang H.
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2002년도 춘계학술대회 및 임시총회
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    • pp.119-122
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    • 2002
  • The research Interest of this paper is focused on the efficient clustering task for an arbitrary color data. In order to tackle this problem, we have tiled to model the inherent uncertainty and vagueness of color data using fuzzy color model. By laking a fuzzy approach to color modeling, we could make a soft decision for the vague regions between neighboring colors. The proposed fuzzy color model defined a three dimensional fuzzy color ball and color membership computation method with the two inter-color distance measures. With the fuzzy color model, we developed a new fuzzy clustering algorithm for an efficient partition of color data. Each fuzzy cluster set has a cluster prototype which is represented by fuzzy color centroid.

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점진적 개념학습의 클러스터 응집도 개선 (The Study on Improvement of Cohesion of Clustering in Incremental Concept Learning)

  • 백혜정;박영택
    • 정보처리학회논문지B
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    • 제10B권3호
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    • pp.297-304
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    • 2003
  • 요즘, 인터넷 등장 이후 폭발적으로 증대되는 웹 정보를 효율적으로 사용하기 위한 시스템들이 요구되고 있다. 이러한 요구를 해결하기 위해 개발된 시스템들은 서비스 정보의 질을 향상시키기 위하여 클러스터링 기법을 이용하고 있다. 클러스터링은 무질서한 데이터들의 상호 연관관계를 정의하고 이를 통하여 보다 체계적으로 데이터를 군집화하는 것이다. 클러스터링을 이용한 시스템은 비슷한 내용을 묶어 사용자에게 제공함으로, 사용자는 보다 효율적으로 정보를 파악할 수 있다. 그래서 이전 연구에서 대량의 데이터를 효율적으로 클러스터링 하기 위하여 통합 클러스터링 방식을 제안하였다. 이 방식은 COBWEB 알고리즘을 이용하여 초기 클러스터를 생성한 후 Etzioni 알고리즘을 이용하여 클러스터링을 생성하는 방식이다. 본 논문은 이러한 기존의 통합 클러스터링 방식의 정확성과 효율성을 높이기 위하여, 다음 두 가지 방식을 제안한다. 첫째, 클러스터할 데이터의 속성의 가중치클 고려한 클러스터링 방식을 제안한다. 둘째, 기존의 클러스터링 방식의 효율성을 지원하기 위하여, 초기 클러스터를 생성하는 평가 함수를 재정의한다. 본 논문에서 제안하는 클러스터링 방식은 방대한 양의 데이터를 효율적으로 처리 할 수 있으며 데이터의 입력 순서의 의존도를 줄여, 데이터를 효과적으로 클러스터, 양질의 사용자 프로파일 구축에 도움을 주게 된다.

Efficient and Secure Routing Protocol forWireless Sensor Networks through SNR Based Dynamic Clustering Mechanisms

  • Ganesh, Subramanian;Amutha, Ramachandran
    • Journal of Communications and Networks
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    • 제15권4호
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    • pp.422-429
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    • 2013
  • Advances in wireless sensor network (WSN) technology have enabled small and low-cost sensors with the capability of sensing various types of physical and environmental conditions, data processing, and wireless communication. In the WSN, the sensor nodes have a limited transmission range and their processing and storage capabilities as well as their energy resources are limited. A triple umpiring system has already been proved for its better performance in WSNs. The clustering technique is effective in prolonging the lifetime of the WSN. In this study, we have modified the ad-hoc on demand distance vector routing by incorporating signal-to-noise ratio (SNR) based dynamic clustering. The proposed scheme, which is an efficient and secure routing protocol for wireless sensor networks through SNR-based dynamic clustering (ESRPSDC) mechanisms, can partition the nodes into clusters and select the cluster head (CH) among the nodes based on the energy, and non CH nodes join with a specific CH based on the SNR values. Error recovery has been implemented during the inter-cluster routing in order to avoid end-to-end error recovery. Security has been achieved by isolating the malicious nodes using sink-based routing pattern analysis. Extensive investigation studies using a global mobile simulator have shown that this hybrid ESRP significantly improves the energy efficiency and packet reception rate as compared with the SNR unaware routing algorithms such as the low energy aware adaptive clustering hierarchy and power efficient gathering in sensor information systems.

휴리스틱 진화에 기반한 효율적 클러스터링 알고리즘 (An Efficient Clustering Algorithm based on Heuristic Evolution)

  • 류정우;강명구;김명원
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제29권1_2호
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    • pp.80-90
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    • 2002
  • 클러스터링이란 한 군집에 포함된 데이터들 간의 유사한 성질을 갖도록 데이터들을 묶는 것으로 패턴인식, 영상처리 등의 공학 분야에 널리 적용되고 있을 뿐만 아니라, 최근 많은 관심의 대상이 되고 있는 데이터 마이닝의 주요 기술로서 활발히 응용되고 있다. 클러스터링에 있어서 K-means나 FCM(Fuzzy C-means)와 같은 기존의 알고리즘들은 지역적 최적해에 수렴하는 것과 사전에 클러스터 개수를 미리 결정해야 하는 문제점을 개선하였으며, 클러스터링의 특성을 분산도와 분리도로 정의하였다. 분산도는 임의의 클러스터의 중심으로부터 포함된 데이터들이 어느 정도 흩어져 있는지를 나타내는 척도인 반면, 분리도는 임의의 데이터와 모든 클러스터 중심간의 거리의 비율로서 얻어지는 소속정도를 고려하여 클러스터 중심간의 거리를 나타내는 척도이다. 이 두 척도를 이용하여 자동으로 적절한 클러스터 개수를 결정하게 하였다. 또한 진화알고리즘의 문제점인 탐색공간의 확대에 따른 수행시간의 증가는 휴리스틱 연산을 적용함으로써 크게 개선하였다. 제안한 알고리즘의 성능 및 타당성을 보이기 위해 이차원과 다차원 실험데이타를 사용하여 실험한 결과 제안한 알고리즘의 성능이 우수함을 나타내었다.

A Novel Multi-Path Routing Algorithm Based on Clustering for Wireless Mesh Networks

  • Liu, Chun-Xiao;Zhang, Yan;Xu, E;Yang, Yu-Qiang;Zhao, Xu-Hui
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제8권4호
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    • pp.1256-1275
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    • 2014
  • As one of the new self-organizing and self-configuration broadband networks, wireless mesh networks are being increasingly attractive. In order to solve the load balancing problem in wireless mesh networks, this paper proposes a novel multi-path routing algorithm based on clustering (Cluster_MMesh) for wireless mesh networks. In the clustering stage, on the basis of the maximum connectivity clustering algorithm and k-hop clustering algorithm, according to the idea of maximum connectivity, a new concept of node connectivity degree is proposed in this paper, which can make the selection of cluster head more simple and reasonable. While clustering, the node which has less expected load in the candidate border gateway node set will be selected as the border gateway node. In the multi-path routing establishment stage, we use the intra-clustering multi-path routing algorithm and inter-clustering multi-path routing algorithm to establish multi-path routing from the source node to the destination node. At last, in the traffic allocation stage, we will use the virtual disjoint multi-path model (Vdmp) to allocate the network traffic. Simulation results show that the Cluster_MMesh routing algorithm can help increase the packet delivery rate, reduce the average end to end delay, and improve the network performance.

내부 알파탄소간 거리와 비네-코시 거리를 사용한 대규모 단백질 조각 라이브러리 구성 (Construction of Large Library of Protein Fragments Using Inter Alpha-carbon Distance and Binet-Cauchy Distance)

  • 지상문
    • 한국정보통신학회논문지
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    • 제19권12호
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    • pp.3011-3016
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    • 2015
  • 단백질의 삼차원 구조를 단백질의 국부적 구조인 단백질 조각의 일차원적 나열로 표현하면, 단백질 구조의 분석, 모델링, 탐색, 예측 등에 효과적으로 응용될 수 있다. 본 논문에서는 자연 상태의 단백질 구조를 정확하게 나타낼 수 있는 단백질 조각 라이브러리를 구성하기 위하여, 대규모 단백질 구조 자료를 이용 할 수 있는 거리 척도들의 효과적인 조합을 조사하였다. 단백질 조각 라이브러리를 구성하기 위해 군집화를 사용하였다. 초기 군집화 단계에서는 가장 계산량이 작은 내부 알파탄소간 거리를 사용하였고, 군집의 확장단계에서는 내부 알파탄소간 거리, 비네-코시거리와 평균 제곱근 오차를 조합하여 사용하였다. 제안한 거리 척도의 조합으로 대규모 자료를 이용하여 단백질 조각 라이브러리를 구성하였다. 구성된 라이브러리를 사용하여 단백질 구조를 나타내는 실험에서 작은 평균 제곱근 오차가 발생함을 확인하였다.

Practical Data Transmission in Cluster-Based Sensor Networks

  • Kim, Dae-Young;Cho, Jin-Sung;Jeong, Byeong-Soo
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제4권3호
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    • pp.224-242
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    • 2010
  • Data routing in wireless sensor networks must be energy-efficient because tiny sensor nodes have limited power. A cluster-based hierarchical routing is known to be more efficient than a flat routing because only cluster-heads communicate with a sink node. Existing hierarchical routings, however, assume unrealistically large radio transmission ranges for sensor nodes so they cannot be employed in real environments. In this paper, by considering the practical transmission ranges of the sensor nodes, we propose a clustering and routing method for hierarchical sensor networks: First, we provide the optimal ratio of cluster-heads for the clustering. Second, we propose a d-hop clustering scheme. It expands the range of clusters to d-hops calculated by the ratio of cluster-heads. Third, we present an intra-cluster routing in which sensor nodes reach their cluster-heads within d-hops. Finally, an inter-clustering routing is presented to route data from cluster-heads to a sink node using multiple hops because cluster-heads cannot communicate with a sink node directly. The efficiency of the proposed clustering and routing method is validated through extensive simulations.

Mobility-Based Clustering Algorithm for Multimedia Broadcasting over IEEE 802.11p-LTE-enabled VANET

  • Syfullah, Mohammad;Lim, Joanne Mun-Yee;Siaw, Fei Lu
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제13권3호
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    • pp.1213-1237
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    • 2019
  • Vehicular Ad-hoc Network (VANET) facilities envision future Intelligent Transporting Systems (ITSs) by providing inter-vehicle communication for metrics such as road surveillance, traffic information, and road condition. In recent years, vehicle manufacturers, researchers and academicians have devoted significant attention to vehicular communication technology because of its highly dynamic connectivity and self-organized, decentralized networking characteristics. However, due to VANET's high mobility, dynamic network topology and low communication coverage, dissemination of large data packets (e.g. multimedia content) is challenging. Clustering enhances network performance by maintaining communication link stability, sharing network resources and efficiently using bandwidth among nodes. This paper proposes a mobility-based, multi-hop clustering algorithm, (MBCA) for multimedia content broadcasting over an IEEE 802.11p-LTE-enabled hybrid VANET architecture. The OMNeT++ network simulator and a SUMO traffic generator are used to simulate a network scenario. The simulation results indicate that the proposed clustering algorithm over a hybrid VANET architecture improves the overall network stability and performance, resulting in an overall 20% increased cluster head duration, 20% increased cluster member duration, lower cluster overhead, 15% improved data packet delivery ratio and lower network delay from the referenced schemes [46], [47] and [50] during multimedia content dissemination over VANET.