• 제목/요약/키워드: Small World Networks

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온라인 소셜 네트워크 생성 모델 (On-Line Social Network Generation Model)

  • 이강원
    • 한국정보통신학회논문지
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    • 제24권7호
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    • pp.914-924
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    • 2020
  • 본 연구에서는 소셜 네트워크를 생성 할 수 있는 인공적인 네트워크 발생 모델을 제안 하였다. 본 연구에서 제안한 발생 모델은 온라인 소셜 네트워크의 특징인 Small-World 성질과 Scale-Free 성질을 단순하게 표현하는 것에서 벗어나 모델의 두 파라메터를 적절히 조절함으로서 사용자가 원하는 다양한 위상 특성치 값들을 나타내 줄 수 있도록 하였다. 이를 위해 Preferential Attachment의 세기를 조정 할 수 있도록 파라메터 K와 군집화 계수를 적절하게 조정 할 수 있도록 파라메터 P를 도입하였다. K가 0에서 10 그리고 P가 0.3에서 0.5 사이의 조합이나 K = 0과 P = 0.9를 이용하면 소셜 네트워크의 위상적 성질을 보유하는 인공적인 네트워크를 생성할 수 있다. 이 조합 하에서는 Small-World 성질과 Scale-Free 성질이 잘 나타난다. 노드차수 분포는 Power-Law를 따른다. 또한 군집화 계수 0.130 ~ 0.238, 평균 최단거리 5.641 ~ 5.985로 나타났다. 또한 네트워크의 크기를 노드 5,000개에서 10,000개로 증가시켜도 소셜 네트워크 성질을 그대로 유지하는 것으로 나타났다.

네트워크 기반 세계종교 분석 (Analysis of the World Religions Based on Network)

  • 김학용
    • 한국콘텐츠학회논문지
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    • 제22권6호
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    • pp.24-34
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    • 2022
  • 하나의 종교를 집중적으로 본다면 신앙과 믿음의 문제이지만, 세계종교 전체를 보면 역사, 문화, 인간의 삶과 생활이 담겨진 콘텐츠가 된다. 종교를 콘텐츠로 보고 세계종교 13개를 중심으로 각 네트워크를 만들어 네트워크의 구조를 분석하였다. 13개 종교를 합쳐 전체 네트워크를 구축하였는데, 일반적인 사회네트워크와 같은 멱함수 분포를 가지는 척도없는 네트워크의 특성을 보여주었다. 세계종교 네트워크는 일반적인 척도없는 네트워크와 달리 뭉침계수 값이 매우 적었다. 이는 종교를 설명하는 용어들의 다양성의 결과라 보여 진다. 전체 네트워크에 단순하지만 핵심 네트워크를 만드는데 사용되는 K-코어 알고리즘을 적용하여 코어 네트워크를 구축하였으나 K-3를 적용했을 때는 너무 복잡하고, K-4를 적용했을 때는 너무 단순하여 유의미한 결과를 얻기 어려웠다. 뭉침계수가 낮은 네트워크에 K-코어 알고리즘을 적용하기 어려운 것으로 판단되어, 허브 노드 중심의 핵심단어 수에 따른 네트워크를 구축하여 세계종교의 특성을 분석하였다. 이외에도 세계 5대 종교 네트워크와 동아시아 종교 네트워크를 만들어 유의미한 정보를 도출하였다. 본 연구에서는 세계종교를 콘텐츠로 보고 분석하여 다양한 정보를 얻었으며, 뭉침계수 값이 적은 네트워크는 핵심단어를 기반으로 코어 네트워크를 만들어 분석하는 새로운 방법을 제시하였다.

수리계획 모형을 이용한 최적의 작은 네트워크 찾기 (Finding Optimal Small Networks by Mathematical Programming Models)

  • 최병주;이희상
    • 산업공학
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    • 제21권1호
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    • pp.1-7
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    • 2008
  • In this paper we study the Minimum Edge Addition Problem(MEAP) to decrease the diameter of a graph. MEAP can be used for improving the serviceability of telecommunication networks with a minimum investment. MEAP is an NP-hard optimization problem. We present two mathematical programming models : One is a multi-commodity flow formulation and the other is a path partition formulation. We propose a branch-and-price algorithm to solve the path partition formulation to the optimality. We develop a polynomial time column generation sub-routine conserving the mathematical structure of a sub problem for the path partition formulation. Computational experiments show that the path partition formulation is better than the multi-commodity flow formulation. The branch-and-price algorithm can find the optimal solutions for the immediate size graphs within reasonable time.

도축장 출하차량 이동의 사회연결망 특성 분석 (Properties of a Social Network Topology of Livestock Movements to Slaughterhouse in Korea)

  • 박혁;배선학;박선일
    • 한국임상수의학회지
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    • 제33권5호
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    • pp.278-285
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    • 2016
  • Epidemiological studies have shown the association between transportation of live animals and the potential transmission of infectious disease between premises. This finding was also observed in the 2014-2015 foot-and-mouth disease (FMD) outbreak in Korea. Furthermore, slaughterhouses played a key role in the global spread of the FMD virus during the epidemic. In this context, in-depth knowledge of the structure of direct and indirect contact between slaughterhouses is paramount for understanding the dynamics of FMD transmission. But the social network structure of vehicle movements to slaughterhouses in Korea remains unclear. Hence, the aim of this study was to configure a social network topology of vehicle movements between slaughterhouses for a better understanding of how they are potentially connected, and to explore whether FMD outbreaks can be explained by the network properties constructed in the study. We created five monthly directed networks based on the frequency and chronology of on- and off-slaughterhouse vehicle movements. For the monthly network, a node represented a slaughterhouse, and an edge (or link) denoted vehicle movement between two slaughterhouses. Movement data were retrieved from the national Korean Animal Health Integrated System (KAHIS) database, which tracks the routes of individual vehicle movements using a global positioning system (GPS). Electronic registration of livestock movements has been a mandatory requirement since 2013 to ensure traceability of such movements. For each of the five studied networks, the network structures were characterized by small-world properties, with a short mean distance, a high clustering coefficient, and a short diameter. In addition, a strongly connected component was observed in each of the created networks, and this giant component included 94.4% to 100% of all network nodes. The characteristic hub-and-spoke type of structure was not identified. Such a structural vulnerability in the network suggests that once an infectious disease (such as FMD) is introduced in a random slaughterhouse within the cohesive component, it can spread to every other slaughterhouse in the component. From an epidemiological perspective, for disease management, empirically derived small-world networks could inform decision-makers on the higher potential for a large FMD epidemic within the livestock industry, and could provide insights into the rapid-transmission dynamics of the disease across long distances, despite a standstill of animal movements during the epidemic, given a single incursion of infection in any slaughterhouse in the country.

Communication Pattern Based Key Establishment Scheme in Heterogeneous Wireless Sensor Networks

  • Kim, Daehee;Kim, Dongwan;An, Sunshin
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제10권3호
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    • pp.1249-1272
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    • 2016
  • In this paper, we propose a symmetric key establishment scheme for wireless sensor networks which tries to minimize the resource usage while satisfying the security requirements. This is accomplished by taking advantage of the communication pattern of wireless sensor networks and adopting heterogeneous wireless sensor networks. By considering the unique communication pattern of wireless sensor networks due to the nature of information gathering from the physical world, the number of keys to be established is minimized and, consequently, the overhead spent for establishing keys decreases. With heterogeneous wireless sensor networks, we can build a hybrid scheme where a small number of powerful nodes do more works than a large number of resource-constrained nodes to provide enhanced security service such as broadcast authentication and reduce the burden of resource-limited nodes. In addition, an on-demand key establishment scheme is introduced to support extra communications and optimize the resource usage. Our performance analysis shows that the proposed scheme is very efficient and highly scalable in terms of storage, communication and computation overhead. Furthermore, our proposed scheme not only satisfies the security requirements but also provides resilience to several attacks.

Toward Practical Augmentation of Raman Spectra for Deep Learning Classification of Contamination in HDD

  • Seksan Laitrakun;Somrudee Deepaisarn;Sarun Gulyanon;Chayud Srisumarnk;Nattapol Chiewnawintawat;Angkoon Angkoonsawaengsuk;Pakorn Opaprakasit;Jirawan Jindakaew;Narisara Jaikaew
    • Journal of information and communication convergence engineering
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    • 제21권3호
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    • pp.208-215
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    • 2023
  • Deep learning techniques provide powerful solutions to several pattern-recognition problems, including Raman spectral classification. However, these networks require large amounts of labeled data to perform well. Labeled data, which are typically obtained in a laboratory, can potentially be alleviated by data augmentation. This study investigated various data augmentation techniques and applied multiple deep learning methods to Raman spectral classification. Raman spectra yield fingerprint-like information about chemical compositions, but are prone to noise when the particles of the material are small. Five augmentation models were investigated to build robust deep learning classifiers: weighted sums of spectral signals, imitated chemical backgrounds, extended multiplicative signal augmentation, and generated Gaussian and Poisson-distributed noise. We compared the performance of nine state-of-the-art convolutional neural networks with all the augmentation techniques. The LeNet5 models with background noise augmentation yielded the highest accuracy when tested on real-world Raman spectral classification at 88.33% accuracy. A class activation map of the model was generated to provide a qualitative observation of the results.

펴지추론과 다항식에 기초한 활성노드를 가진 자기구성네트윅크 (Self-organizing Networks with Activation Nodes Based on Fuzzy Inference and Polynomial Function)

  • 김동원;오성권
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2000년도 제15차 학술회의논문집
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    • pp.15-15
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    • 2000
  • In the past couple of years, there has been increasing interest in the fusion of neural networks and fuzzy logic. Most of the existing fused models have been proposed to implement different types of fuzzy reasoning mechanisms and inevitably they suffer from the dimensionality problem when dealing with complex real-world problem. To overcome the problem, we propose the self-organizing networks with activation nodes based on fuzzy inference and polynomial function. The proposed model consists of two parts, one is fuzzy nodes which each node is operated as a small fuzzy system with fuzzy implication rules, and its fuzzy system operates with Gaussian or triangular MF in Premise part and constant or regression polynomials in consequence part. the other is polynomial nodes which several types of high-order polynomials such as linear, quadratic, and cubic form are used and are connected as various kinds of multi-variable inputs. To demonstrate the effectiveness of the proposed method, time series data for gas furnace process has been applied.

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Topological and Statistical Analysis for the High-Voltage Transmission Networks in the Korean Power Grid

  • Kang, Seok-Gu;Yoon, Sung-Guk
    • 한국통신학회논문지
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    • 제42권4호
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    • pp.923-931
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    • 2017
  • A power grid is one of the most complex networks and is critical infrastructure for society. To understand the characteristics of a power grid, complex network analysis has been used from the early 2000s mainly for US and European power grids. However, since the power grids of different countries might have different structures, the Korean power grid needs to be examined through complex network analysis. This paper performs the analysis for the Korean power grid, especially for high-voltage transmission networks. In addition, statistical and small-world characteristics for the Korean power grid are analyzed. Generally, the Korean power grid has similar characteristics to other power grids, but some characteristics differ because the Korean power grid is concentrated in the capital area.

방송위성망간 주파수 공유에 관한 연구 (A study on the frequency sharing among broadcasting satellite networks)

  • 박주홍;성향숙
    • 한국통신학회논문지
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    • 제29권2A호
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    • pp.174-180
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    • 2004
  • 2000년에 개최된 세계전파통신회의(WRC)에서 1지역(유럽, 아랍 및 아프리카 지역) 및 3지역(아시아 및 오세아니아 지역)의 방송위성계획이 개정됨에 따라, 국제전기통신연합(ITU)에서는 방송위성계획과 관련된 전파규칙의 규제 절차와 공유 기준을 검토하기로 하였다. 따라서 본 연구에서는 우리나라의 방송위성망을 중심으로 위성방송 수신안테나 크기와 편파에 따른 방송위성망의 주파수(11/12GHz대역) 및 제도 공유 문제를 분석하였다. 분석 결과 향후 우리나라에서 동경113$^{\circ}$에 방송위성을 추가로 운용하게 되면 현재 운용중인 116$^{\circ}$의 위성방송에 심각한 간섭을 줄 수 있음을 알 수 있었다. 그러나 방송위성계획을 토대로 위성 간격을 6$^{\circ}$간격으로 유지할 경우 작은 안테나 (45cm) 사용에 의한 간섭은 크게 문제가 되지 않는다는 것을 알 수 있었다.

독거노인 모니터링 시스템을 위한 저전력 센서 네트워크 설계 및 에너지 소모 모델을 이용 검증 (Design and Verification using Energy Consumption Model of Low Power Sensor Network for Monitoring System for Elderly Living Alone)

  • 김용중;정경권
    • 전기전자학회논문지
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    • 제13권3호
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    • pp.39-46
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    • 2009
  • 무선 센서 네트워크는 무선 네트워크 기능이 있는 소형 장치로 구성된다. 실제 현장에서 센서 네트워크의 응용 영역을 증가시키기 위해서는 에너지 소모를 최소화 하는 것이 가장 큰 문제이다. 그러므로 센서 네트워크의 평가를 위해서 정확한 에너지 모델이 필요하다. 본 논문에서는 센서 네트워크의 전력 소모를 분석한다. 전력 소모 모델을 개발하기 위해서 TelosB를 기반으로 하는 상용 제품인 Kmote의 전력 특성을 측정한다. 제안한 모델로부터 PIR 센서를 이용하는 인체 감지 응용에서 건전지를 사용하는 센서 노드는 약 6.9개월의 수명을 예상할 수 있다. 이러한 결과를 바탕으로 독거노인 모니터링 시스템에 적용 가능함을 확인하였다.

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