• Title/Summary/Keyword: Self-organizing map(SOM)

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A Self-Organizing Map Neural Network Approach to Segmenting Knowledge Management Type of Venture Businesses in KOSDAG (자기조직화 지도(SOM) 인공신경망 모형을 이용한 벤쳐기업의 지식경영 유형 세분화에 관한 연구-코스닥 상장기업을 대상으로-)

  • 이건창;권순재;이광용
    • Journal of Intelligence and Information Systems
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    • v.7 no.2
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    • pp.95-115
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    • 2001
  • We propose classifying the venture firms into four types of knowledge management. For this purpose, we collected questionnaire data from 101 venture firms listed in KOSDAQ, and applied a unsupervised neural network algorithm SOM to obtain four clusters representing knowledge management types-High Tech Type, Organizational Knowledge Type, Information Technology Type, and Beginner Type. Based on the results, we conclude that the venture firms listed in KOSDAQ should first know its own knowledge management type, and then apply appropriate strategies to take advantage of the knowledge management impacts on the competitiveness.

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Sequential use of SOM, DEA and AHP method for the stepwise benchmarking of emerging technology (신흥 기술의 단계적 벤치마킹을 위한 SOM, DEA와 AHP 방법의 순차 활용)

  • Yu, Peng;Lee, Jang Hee
    • Knowledge Management Research
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    • v.13 no.5
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    • pp.43-64
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    • 2012
  • Emerging technologies have significant implications in establishing competitive advantages and are characterized by continuous rapid development. Efficient benchmarking is more and more important in the development of emerging technologies. Similar input level and importance are two necessary criteria need to be considered for emerging technology's benchmarking. In this study, we proposed a sequential use of self-organizing map(SOM), data envelopment analysis(DEA) and analytical hierarchy process(AHP) method for the stepwise benchmarking of emerging technology. The proposed method uses two-level SOM to cluster the emerging technologies with similar required input levels together, then, in each cluster, uses DEA-BCC model to evaluate the efficiencies of the emerging technologies and do tier analysis to form tiers. On each tier, AHP rating method is used to calculate each emerging technology's importance priority. The optimal benchmarking path of each cluster is established by connecting the emerging technologies with the highest importance priority. In order to validate the proposed method, we apply it to a case of biotechnology. The result shows the proposed method can overcome difficulties in benchmarking, select suitable benchmarking targets and make the benchmarking process more efficient and reasonable.

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Method of Benchmarking Route Choice Based on the Input-similarity Using DEA and SOM (DEA와 SOM을 이용한 투입 요소 유사성 기반의 벤치마킹 경로 선택 방법에 관한 연구)

  • Park, Jae-Hun;Bae, Hye-Rim;Lim, Sung-Mook
    • Journal of Korean Institute of Industrial Engineers
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    • v.36 no.1
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    • pp.32-41
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    • 2010
  • DEA(Data Envelopment Analysis) is the relative efficiency measure among homogeneous DMU(Decision- Making Units) which can be used to useful tool to improve performance through efficiency evaluation and benchmarking. However, the general case of DEA was considered as unrealistic since it consists a benchmarking regardless of DMU characteristic by input and output elements and the high efficiency gap in benchmarking for inefficient DMU. To solve this problem, stratification method for benchmarking was suggested, but simply presented benchmarking path in repeatedly applying level. In this paper, we suggest a new method that inefficient DMU can choice the optimal path to benchmark the most efficient DMU base on the similarity among the input elements. For this, we propose a route choice method that combined a stratification benchmarking algorithm and SOM (Self-Organizing Map). An implementation on real environment is also presented.

PREDICTING CORPORATE FINANCIAL CRISIS USING SOM-BASED NEUROFUZZY MODEL

  • Jieh-Haur Chen;Shang-I Lin;Jacob Chen;Pei-Fen Huang
    • International conference on construction engineering and project management
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    • 2011.02a
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    • pp.382-388
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    • 2011
  • Being aware of the risk in advance necessitates intricate processes but is feasible. Although previous studies have demonstrated high accuracy, their performance still leaves room for improvement. A self-organizing feature map (SOM) based neurofuzzy model is developed in this study to provide another alternative for forecasting corporate financial distress. The model is designed to yield high prediction accuracy, as well as reference rules for evaluating corporate financial status. As a database, the study collects all financial reports from listed construction companies during the latest decade, resulting in over 1000 effective samples. The proportion of "failed" and "non-failed" companies is approximately 1:2. Each financial report is comprised of 25 ratios which are set as the input variable s. The proposed model integrates the concepts of pattern classification, fuzzy modeling and SOM-based optimization to predict corporate financial distress. The results exhibit a high accuracy rate at 85.1%. This model outperforms previous tools. A total of 97 rules are extracted from the proposed model which can be also used as reference for construction practitioners. Users may easily identify their corporate financial status by using these rules.

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Investigation on Characteristics of Summertime Extreme Temperature Events Occurred in South Korea Using Self-Organizing Map (자기조직화지도(Self-Organizing Map)를 이용한 최근 우리나라 여름철 극한온도 특성 분류)

  • Lim, Won-Il;Seo, Kyong-Hwan
    • Atmosphere
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    • v.28 no.3
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    • pp.305-315
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    • 2018
  • This study investigates the characteristic spatial patterns and dynamic processes associated with the summertime extreme temperature events in South Korea during the last 20 years (1995~2014) using Self-Organizing Map (SOM). The classified SOM patterns commonly have high temperature and anticyclonic circulation anomalies over South Korea. The two major teleconnection patterns are identified: one is from the subtropical western North Pacific (WNP) affecting to the north and the other is from the North Atlantic (NA) affecting downstream region. The meridional teleconnection pattern is related to the forcing of positive sea surface temperature (SST) anomaly over the WNP. The northward propagating Rossby wave generates the East Asia-Pacific (EAP) pattern to form an anticyclonic circulation anomaly over South Korea. On the other hand, NA SST anomalies generate an eastward Rossby wave train across the Eurasian continent, leading to the development of an anticyclonic circulation anomaly over South Korea. The EAP pattern occurs more frequently in July and August, whereas the midlatitude teleconnection pattern associated with NA SST anomalies develops more frequently in early summer (June).

Improved Fast SOM learning algorithm without cross-over (뒤틀림 현상이 없는 FSOM 학습 알고리즘)

  • Jung, Sun-Jung;Jung, Soon-Ho
    • Proceedings of the Korea Information Processing Society Conference
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    • 2001.04b
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    • pp.1029-1032
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    • 2001
  • 자기구성 특징지도(Self-Organizing feature Map : SOM) 및 $L^*$ 등의 자가 학습 신경망의 알고리즘들은 학습 결과 중에 바람직하지 못한 뒤틀림 현상(cross-over)을 생성하게 되므로 재학습으로 인한 전반적인 학습 시간의 지연을 초래한다. 이 논문에서는 비교적 학습 속도가 빠른 $L^*$의 점증적 학습 구조를 기본으로 하여 뒤틀림 현상 방지를 목적으로 초기 학습 단계에서 학습 가중치들의 노드들을 재조정하는 개선된 알고리즘을 제안한다. 이러한 알고리즘의 실험 결과는 모두 정상적인 학습 결과를 보이고 학습의 시행 착오적인 재실행이 없으므로 전반적인 학습 속도는 기존의 알고리즘보다 빠르게 됨을 보인다.

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The Model Considered with the Effect of Emotion Change (감정변화가 행동에 미치는 영향을 고려한 모델)

  • 김병관;김성주;조현찬;전홍태
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2003.05a
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    • pp.69-72
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    • 2003
  • 사람은 이성과 감정을 가지고 있어, 동일한 환경 조건하에서도 감정에 따라 조금은 다른 행동을 보인다. 그러므로 아무리 정교한 행동을 할 수 있는 에이전트를 만든다 하더라고 로봇이 자체의 내부 감정을 동반하지 않으면, 능동적으로 상호 작용을 할 수 있는 에이전트를 구성할 수 없다 볼 수 있다. 본 논문에서는 감독학습, SOM(self-organizing Map) 그리고 fuzzy controller를 통해서, 주어진 환경에서 학습된 행동을 함에 있어서 감정의 변화를 고려해, 감정의 요소가 행동에 영향을 미치는 에이전트를 모델링하고자 한다. 또한 감정을 가진 모델을 통해 최종적으로 사람과 상호행동하는 모델에 대한 가능성을 제시하고자 한다.

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Fish Distribution and Management Strategy for Improve Biodiversity in Created Wetlands Located at Nakdong River Basin (낙동강 신규조성 습지의 어류 분포와 종다양성 증진을 위한 관리방안)

  • Choi, Jong Yun;Kim, Seong-Ki;Park, Jung-Soo;Kim, Jeong-Cheol;Yoon, Jong-Hak
    • Korean Journal of Environment and Ecology
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    • v.32 no.3
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    • pp.274-288
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    • 2018
  • This study investigated the environmental factors and fish assemblage in 42 wetlands between spring and autumn of 2017 to evaluate the fish distribution and deduce the management strategy for improving biodiversity in created wetlands located at the Nakdong River basin. The investigation identified a total of 30 fish species and found that the most of wetlands were dominated by exotic fishes such as Micropterus salmoides and Lepomis macrochirus. Fish species such as Rhinogobius brunneus, Opsariichthys uncirostris amurensis, Zacco platypus were less abundant in the area with high density of Micropterus salmoides (static area) because they preferred the environment with active water flow. The pattern analysis of fish distribution in each wetland using the self-organizing map (SOM) showed a total of 24 variables (14 fish species and 10 environmental variables). The comparison of variables indicated that the distribution of fish species varied according to water depth and plant cover rate and was less affected by water temperature, pH, and dissolved oxygen. The plant cover rate was strongly associated with high fish density and species diversity. However, wetlands with low plant biomass had diversity and density of fish species. The results showed that the microhabitat structure, created by macrophytes, was an important factor in determining the diversity and abundance of fish communities because the different species compositions of macrophytes supported diverse fish species in these habitats. Based on the results of this study, we conclude that macrophytes are the key components of lentic freshwater ecosystem heterogeneity, and the inclusion of diverse plant species in wetland construction or restoration schemes will result in ecologically healthy food webs.

Sparse Document Data Clustering Using Factor Score and Self Organizing Maps (인자점수와 자기조직화지도를 이용한 희소한 문서데이터의 군집화)

  • Jun, Sung-Hae
    • Journal of the Korean Institute of Intelligent Systems
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    • v.22 no.2
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    • pp.205-211
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    • 2012
  • The retrieved documents have to be transformed into proper data structure for the clustering algorithms of statistics and machine learning. A popular data structure for document clustering is document-term matrix. This matrix has the occurred frequency value of a term in each document. There is a sparsity problem in this matrix because most frequencies of the matrix are 0 values. This problem affects the clustering performance. The sparseness of document-term matrix decreases the performance of clustering result. So, this research uses the factor score by factor analysis to solve the sparsity problem in document clustering. The document-term matrix is transformed to document-factor score matrix using factor scores in this paper. Also, the document-factor score matrix is used as input data for document clustering. To compare the clustering performances between document-term matrix and document-factor score matrix, this research applies two typed matrices to self organizing map (SOM) clustering.

Analysis of Non-Point Source Pollution Discharge Characteristics in Leisure Facilities Areas for Pattern Classification (패턴분류를 위한 위락시설지역의 비점오염원 유출특성분석)

  • Kim, Yong-Gu;Jin, Young-Hoon;Park, Sung-Chun;Kim, Jung-Min
    • Journal of Korea Water Resources Association
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    • v.43 no.12
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    • pp.1029-1038
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    • 2010
  • In meteorology Korea has 2/3 of rain of annual total rainfall at the month of Jun through Sept and it has possibility to have serious flood damage because geographically it is composed of mountainous area with steep slope which account for 70% of its country. Also, the increase of impervious layer due to industrialization and urbanization causes direct runoff, which deteriorates contamination of rivers by moving the contaminated material on the surface at the beginning of rain. In particular, the area of leisure facilities needs the management of water quality absolutely because dense population requires space of park function and place to relax and increases moving capability of non-point pollution source. For disposition of rainfall & runoff, the standard of initial rainfall, which is to be used for the computation of disposition volume, is significant factors for the runoff study of non-point pollution source, Until now, a great deal of study has been done by many researchers. However, it is the current reality that the characteristics of runoff varies according to land protection comprising river basin and the standard of initial rainfall by each researcher is not clearly defined yet. Therefore, in this research, it is suggested that, with the introduction of SOM (Self-Organizing Map), the standard of initial rainfall be determined after analyzing each sectional data by executing pattern classification about runoff and water quality data measured at the test river basin for this research.