• 제목/요약/키워드: 군집성

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Design of customized product recommendation model on correlation analysis when using electronic commerce (전자상거래 이용시 연관성 분석을 통한 맞춤형 상품추천 모델 설계)

  • Yang, MingFei;Park, Kiyong;Choi, Sang-Hyun
    • Journal of the Korea Convergence Society
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    • v.13 no.3
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    • pp.203-216
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    • 2022
  • In the recent business environment, purchase patterns are changing around the influence of COVID-19 and the online market. This study analyzed cluster and correlation analysis based on purchase and product information. The cluster analysis of new methods was attempted by creating customer, product, and cross-bonding clusters. The cross-bonding cluster analysis was performed based on the results of each cluster analysis. As a result of the correlation analysis, it was analyzed that more association rules were derived from a cross-bonding cluster, and the overlap rate was less. The cross-bonding cluster was found to be highly efficient. The cross-bonding cluster is the most suitable model for recommending products according to customer needs. The cross-bonding cluster model can save time and provide useful information to consumers. It is expected to bring positive effects such as increasing sales for the company.

Analysis of Seasonal Variation Effect of the Traffic Accidents on Freeway (고속도로 교통사고의 계절성 검증과 요인분석 (중부고속도로 사례를 중심으로))

  • 이용택;김양지;김대현;임강원
    • Journal of Korean Society of Transportation
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    • v.18 no.5
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    • pp.7-16
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    • 2000
  • This paper is focused on verifying time-space repetition of the highway accident and finding the their causes and deterrents. We classify all months into several seasonal groups, develop the model for each seasonal group and analyze the results of these models for Joong-bu highway. The existence of seasonal effect is verified by the analysis or self-organizing map and the accident indices. Agglomerative hierarchical cluster analysis which is used to decide the seasonal groups in accordance with accident patterns, winter group, spring-fall group. and summer group. The accident features of winter group are that the accident rate is high but the severity rate is low. while those of summer group are that the accident rate is low but the severity rate is high. Also, the regression model which is developed to identify the accident Pattern or each seasonal group represents that the season-related factors, such as the amount of rainfall, the amount of snowfall, days of rainfall, days of snowfall etc. are strongly related to the accident pattern of evert seasonal group and among these factors the traffic volume, amount of rainfall. the amount of snowfall and days of freezing importantly affect the local accident Pattern. So, seasonal effect should be considered to the identification of high-risk road section. the development of descriptive and Predictive accident model, the resource allocation model of accident in order to make safety management plan efficient.

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Characteristics of Heterotrophic Bacteria and Their Relationships with Environmental Parameters in Naktong Estuary (낙동강 하구 생태계의 종속영양세균의 특성 및 환경요인과의 관계)

  • 권오섭;하영칠
    • Korean Journal of Microbiology
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    • v.26 no.3
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    • pp.256-261
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    • 1988
  • Samples from Naktong Estuary had been taken for the characterization of heterotrophic bacterial communities and of the effects of environmental factors on their distribution in estuarine ecosystem. Bacterial communities isolated from seawater region were composed of more euryhalone groups than those from freshwater region, and the bacterial communities of summer were composed of more eurythermal groups than those of winter. Bacterial commnities became more diverse by the input of allochthonous bacteria from terrestrial and freshwater ecosystem, but less diverse by worse environmental conditions such as nutrient load, high salinity, low temperature, and so on.

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Improving Clustered Sense Labels for Word Sense Disambiguation (단어 의미 모호성 해소를 위한 군집화된 의미 어휘의 품질 향상)

  • Jeongyeon Park;Hyeong Jin Shin;Jae Sung Lee
    • Annual Conference on Human and Language Technology
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    • 2022.10a
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    • pp.268-271
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    • 2022
  • 단어 의미 모호성 해소는 동형이의어의 의미를 문맥에 맞게 결정하는 일이다. 최근 연구에서는 희소 데이터 처리를 위해 시소러스를 사용해 의미 어휘를 압축하고 사용하는 방법이 좋은 성능을 보였다[1]. 본 연구에서는 시소러스 없이 군집화 알고리즘으로 의미 어휘를 압축하는 방법의 성능 향상을 위해 두 가지 방법을 제안한다. 첫째, 의미적으로 유사한 의미 어휘 집합인 범주(category) 정보를 군집화를 위한 초기 군집 생성에 사용한다. 둘째, 다양하고 많은 문맥 정보를 학습해 만들어진 품질 좋은 벡터를 군집화에 사용한다. 영어데이터인 SemCor 데이터를 학습하고 Senseval, Semeval 5개 데이터로 평가한 결과, 제안한 방법의 평균 성능이 기존 연구보다 1.5%p 높은 F1 70.6%를 달성했다.

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Clustering load patterns recorded from advanced metering infrastructure (AMI로부터 측정된 전력사용데이터에 대한 군집 분석)

  • Ann, Hyojung;Lim, Yaeji
    • The Korean Journal of Applied Statistics
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    • v.34 no.6
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    • pp.969-977
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    • 2021
  • We cluster the electricity consumption of households in A-apartment in Seoul, Korea using Hierarchical K-means clustering algorithm. The data is recorded from the advanced metering infrastructure (AMI), and we focus on the electricity consumption during evening weekdays in summer. Compare to the conventional clustering algorithms, Hierarchical K-means clustering algorithm is recently applied to the electricity usage data, and it can identify usage patterns while reducing dimension. We apply Hierarchical K-means algorithm to the AMI data, and compare the results based on the various clustering validity indexes. The results show that the electricity usage patterns are well-identified, and it is expected to be utilized as a major basis for future applications in various fields.

Gene Screening and Clustering of Yeast Microarray Gene Expression Data (효모 마이크로어레이 유전자 발현 데이터에 대한 유전자 선별 및 군집분석)

  • Lee, Kyung-A;Kim, Tae-Houn;Kim, Jae-Hee
    • The Korean Journal of Applied Statistics
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    • v.24 no.6
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    • pp.1077-1094
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    • 2011
  • We accomplish clustering analyses for yeast cell cycle microarray expression data. To reflect the characteristics of a time-course data, we screen the genes using the test statistics with Fourier coefficients applying a FDR procedure. We compare the results done by model-based clustering, K-means, PAM, SOM, hierarchical Ward method and Fuzzy method with the yeast data. As the validity measure for clustering results, connectivity, Dunn index and silhouette values are computed and compared. A biological interpretation with GO analysis is also included.

A Design of Clustering Classification Systems using Satellite Remote Sensing Images Based on Design Patterns (디자인 패턴을 적용한 위성영상처리를 위한 군집화 분류시스템의 설계)

  • Kim, Dong-Yeon;Kim, Jin-Il
    • The KIPS Transactions:PartB
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    • v.9B no.3
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    • pp.319-326
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    • 2002
  • In this paper, we have designed and implemented cluttering classification systems- unsupervised classifiers-for the processing of satellite remote sensing images. Implemented systems adopt various design patterns which include a factory pattern and a strategy pattern to support various satellite images'formats and to design compatible systems. The clustering systems consist of sequential clustering, K-Means clustering, ISODATA clustering and Fuzzy C-Means clustering classifiers. The systems are tested by using a Landsat TM satellite image for the classification input. As results, these clustering systems are well designed to extract sample data for the classification of satellite images of which there is no previous knowledge. The systems can be provided with real-time base clustering tools, compatibilities and components' reusabilities as well.

The Gram-Stain Characteristics of the Bacterial Community as a Function of the Dynamics of Organic Debris in a Hypereutrophic Lake (과 부영양형 호수의 유기물 변동에 따른 박테리아 군집의 그램 염색 특성)

  • Kang, Hun
    • 한국해양학회지
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    • v.24 no.3
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    • pp.148-156
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    • 1989
  • This investigation was performed in eutrophic lake within the framework of a series of studies to evaluate the significance of gram reaction for both bacterioplankton and attached bacteria in the dynamics of organic materials at various aquatic ecosystems. In Lake Kasumigaura as a representative of the highly eutrophic freshwater environments, the gram-stain characteristics of the bacterial community changed with the influx of pulses of phytoplankton, as those in the meso trophic environments. The predominency of the gram-negative forms in the bacterial community was about 57% for bacterioplankton and about 53% for attached bacteria. The statistical analysis of the difference of these two distributions showed that these communites were different. Both gram-negative and gram-positive bacteria attached to particles were shown to effect the formation and degradation of particulate organic matter. Gram-negative bacteria plankton participate exclusively in the dynamics of dissolved organic matter.

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Word Clustering Scheme for Twitter Sentiment Analysis Based on POS (트위터 감정 분석을 위한 POS 기반의 단어 군집화 기법)

  • Kim, Se-Jun;Lim, Hwan-Hee;Lee, Byung-Jun;Kim, Kyung-Tae;Youn, Hee-Yong
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2019.01a
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    • pp.31-32
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    • 2019
  • 본 논문에서는 최근 빅데이터 활용 분야의 큰 이슈인 트위터 메시지의 효율적인 감정 분석을 위한 POS 기반의 단어 군집화 기법을 제안하였다. 기존에 군집화를 통한 다양한 텍스트 감정 분석 기법이 제시되어 왔으나, 군집화 된 기능과 분류 결과 간의 관련성에 대한 연구는 미흡하였다. 또한 모든 단어에 대한 감정 분석은 노이즈로 작용될 수 있는 단어로 인해 정확도가 감소할 수 있다. 본 논문에서는 이를 해결하기 위하여 Chi Square 기법을 통하여 분석 결과에 영향을 미치는 단어에 가중치를 부여함으로써 정확도를 향상시킨다.

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Cluster Analysis of Precipitation Data Using Multi-Objective Genetic Algorithms (다목적 유전자 알고리즘을 이용한 강우자료의 군집해석)

  • Kim Taesoon;Heo Jun-Haeng
    • Proceedings of the Korea Water Resources Association Conference
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    • 2005.05b
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    • pp.558-561
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    • 2005
  • 강우자료의 빈도해석을 위해서 널리 사용되고 있는 지점빈도해석기법은, 우리나라와 같이 구축된 강우자료의 자료년수가 충분하지 못한 경우에 신뢰도가 떨어지는 결과를 가져올 수 있다. 이런 단점을 극복하기 위해서, 최근에는 수문학적인 성질이 서로 비슷한 지점을 하나의 지역으로 설정해서 빈도해석을 실시하는, 지역빈도해석기법이 널리 사용되고 있다. 본 논문에서는 지역빈도해석에 사용되는 군집해석(cluster analysis)에 관한 연구로서, 다목적 유전자알고리즘을 이용해서 군의 개수와 군집도간의 상호관계를 밝혀내고 이를 지역빈도해석에 적용해서 군집해석의 효율성 및 적용성을 높이고자 한 연구이다.

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