• Title/Summary/Keyword: 다중방법론

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Cyber Security Management of Small and Medium-sized Enterprises with Consideration of Business Management Environment (중소기업의 기업경영 환경을 고려한 사이버 보안 관리)

  • Chun, Yong-Tae
    • Korean Security Journal
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    • no.59
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    • pp.9-35
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    • 2019
  • Until now, a lot of research on cyber security have been tried, but there have been few studies on overall relationships, including internal factors and external factors. Therefore, this study examined cyber security management considering not only internal elements of SMEs but also corporate management environment. The first qualitative analysis and the second quantitative analysis were conducted through mixed method research. Qualitative analysis was conducted through a semi-structured interview method, and three themes were found: insufficient cyber security management system, internal noncooperation for cyber security, and problems derived from decision-making system. In the quantitative analysis, multiple regression analysis was conducted on the data obtained through the questionnaire. The perception of cyber threats and internal support among independent variables positively influenced the cyber security management system or the dependent variable. Through this study, internal variables had a causal impact on the cyber security management system rather than external environment variables. This implies that the variables related to the organizational culture such as employees' perception are important. These results are expected to provide practical significance for enhancing the cyber security management system in SMEs.

A Methodology for Automatic Multi-Categorization of Single-Categorized Documents (단일 카테고리 문서의 다중 카테고리 자동확장 방법론)

  • Hong, Jin-Sung;Kim, Namgyu;Lee, Sangwon
    • Journal of Intelligence and Information Systems
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    • v.20 no.3
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    • pp.77-92
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    • 2014
  • Recently, numerous documents including unstructured data and text have been created due to the rapid increase in the usage of social media and the Internet. Each document is usually provided with a specific category for the convenience of the users. In the past, the categorization was performed manually. However, in the case of manual categorization, not only can the accuracy of the categorization be not guaranteed but the categorization also requires a large amount of time and huge costs. Many studies have been conducted towards the automatic creation of categories to solve the limitations of manual categorization. Unfortunately, most of these methods cannot be applied to categorizing complex documents with multiple topics because the methods work by assuming that one document can be categorized into one category only. In order to overcome this limitation, some studies have attempted to categorize each document into multiple categories. However, they are also limited in that their learning process involves training using a multi-categorized document set. These methods therefore cannot be applied to multi-categorization of most documents unless multi-categorized training sets are provided. To overcome the limitation of the requirement of a multi-categorized training set by traditional multi-categorization algorithms, we propose a new methodology that can extend a category of a single-categorized document to multiple categorizes by analyzing relationships among categories, topics, and documents. First, we attempt to find the relationship between documents and topics by using the result of topic analysis for single-categorized documents. Second, we construct a correspondence table between topics and categories by investigating the relationship between them. Finally, we calculate the matching scores for each document to multiple categories. The results imply that a document can be classified into a certain category if and only if the matching score is higher than the predefined threshold. For example, we can classify a certain document into three categories that have larger matching scores than the predefined threshold. The main contribution of our study is that our methodology can improve the applicability of traditional multi-category classifiers by generating multi-categorized documents from single-categorized documents. Additionally, we propose a module for verifying the accuracy of the proposed methodology. For performance evaluation, we performed intensive experiments with news articles. News articles are clearly categorized based on the theme, whereas the use of vulgar language and slang is smaller than other usual text document. We collected news articles from July 2012 to June 2013. The articles exhibit large variations in terms of the number of types of categories. This is because readers have different levels of interest in each category. Additionally, the result is also attributed to the differences in the frequency of the events in each category. In order to minimize the distortion of the result from the number of articles in different categories, we extracted 3,000 articles equally from each of the eight categories. Therefore, the total number of articles used in our experiments was 24,000. The eight categories were "IT Science," "Economy," "Society," "Life and Culture," "World," "Sports," "Entertainment," and "Politics." By using the news articles that we collected, we calculated the document/category correspondence scores by utilizing topic/category and document/topics correspondence scores. The document/category correspondence score can be said to indicate the degree of correspondence of each document to a certain category. As a result, we could present two additional categories for each of the 23,089 documents. Precision, recall, and F-score were revealed to be 0.605, 0.629, and 0.617 respectively when only the top 1 predicted category was evaluated, whereas they were revealed to be 0.838, 0.290, and 0.431 when the top 1 - 3 predicted categories were considered. It was very interesting to find a large variation between the scores of the eight categories on precision, recall, and F-score.

Requirements Redundancy and Inconsistency Analysis for Use Case Modeling (유스케이스 모델링을 위한 요구사항 중복 및 불일치 분석)

  • 최진재;황선영
    • Journal of KIISE:Software and Applications
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    • v.31 no.7
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    • pp.869-882
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    • 2004
  • This paper proposes an effective method to create logically consistent and structured requirement model by applying consistency control approach of the formal method to the use-case modeling. This method integrates the multi-perspective scattered requirement segments that may overlap and conflict each other into a structured requirement model. The model structure can be analyzed based on context goal and concerned area overlap analysis. The model consistency can be achieved by using specification overlap-based consistency checking method as an integration vehicle. An experimental application to case study shows that the Proposed method can successfully identify requirement overlaps and inconsistency. It can also transfer multi-viewpoint requirement segments into a consistently integrated use-case model to clarify software behaviors and functionality This method helps users to enhance capability to identify specification inconsistency in the use-case modeling at the early stage of software engineering development. The proposed approach can also facilitate communication between users and developers to ensure customer satisfaction.

Assessing Spatial Uncertainty Distributions in Classification of Remote Sensing Imagery using Spatial Statistics (공간 통계를 이용한 원격탐사 화상 분류의 공간적 불확실성 분포 추정)

  • Park No-Wook;Chi Kwang-Hoon;Kwon Byung-Doo
    • Korean Journal of Remote Sensing
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    • v.20 no.6
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    • pp.383-396
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    • 2004
  • The application of spatial statistics to obtain the spatial uncertainty distributions in classification of remote sensing images is investigated in this paper. Two quantitative methods are presented for describing two kinds of uncertainty; one related to class assignment and the other related to the connection of reference samples. Three quantitative indices are addressed for the first category of uncertainty. Geostatistical simulation is applied both to integrate the exhaustive classification results with the sparse reference samples and to obtain the spatial uncertainty or accuracy distributions connected to those reference samples. To illustrate the proposed methods and to discuss the operational issues, the experiment was done on a multi-sensor remote sensing data set for supervised land-cover classification. As an experimental result, the two quantitative methods presented in this paper could provide additional information for interpreting and evaluating the classification results and more experiments should be carried out for verifying the presented methods.

Earthwork Planning via Reinforcement Learning with Heterogeneous Construction Equipment (강화학습을 이용한 이종 장비 토목 공정 계획)

  • Ji, Min-Gi;Park, Jun-Keon;Kim, Do-Hyeong;Jung, Yo-Han;Park, Jin-Kyoo;Moon, Il-Chul
    • Journal of the Korea Society for Simulation
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    • v.27 no.1
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    • pp.1-13
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    • 2018
  • Earthwork planning is one of the critical issues in a construction process management. For the construction process management, there are some different approaches such as optimizing construction with either mathematical methodologies or heuristics with simulations. This paper propose a simulated earthwork scenario and an optimal path for the simulation using a reinforcement learning. For reinforcement learning, we use two different Markov decision process, or MDP, formulations with interacting excavator agent and truck agent, sequenced learning, and independent learning. The simulation result shows that two different formulations can reach the optimal planning for a simulated earthwork scenario. This planning could be a basis for an automatic construction management.

Deinterleaving of Multiple Radar Pulse Sequences Using Genetic Algorithm (유전자 알고리즘을 이용한 다중 레이더 펄스열 분리)

  • 이상열;윤기천
    • Journal of the Institute of Electronics Engineers of Korea SP
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    • v.40 no.6
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    • pp.98-105
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    • 2003
  • We propose a new technique of deinterleaving multiple radar pulse sequences by means of genetic algorithm for threat identification in electronic warfare(EW) system. The conventional approaches based on histogram or continuous wavelet transform are so deterministic that they are subject to failing in detection of individual signal characteristics under real EW signal environment that suffers frequent signal missing, noise, and counter-EW signal. The proposed algorithm utilizes the probabilistic optimization procedure of genetic algorithm. This method, a time-of-arrival(TOA) only strategy, constructs an initial chromosome set using the difference of TOA. To evaluate the fitness of each gene, the defined pulse phase is considered. Since it is rare to meet with a single radar at a moment in EW field of combat, multiple solutions are to be derived in the final stage. Therefore it is designed to terminate genetic process at the prematured generation followed by a chromosome grouping. Experimental results for simulated and real radar signals show the improved performance in estimating both the number of radar and the pulse repetition interval.

A Study on Operation of Reservoir using Artificial Neural Networks (인공신경망을 통한 댐 운영 문제 연구)

  • Kim, Seok Hyeon;Hwang, SoonHo;Jun, SangMin;Kim, Kyeung;Kang, Moon Seong
    • Proceedings of the Korea Water Resources Association Conference
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    • 2019.05a
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    • pp.403-403
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    • 2019
  • 수자원을 효율적으로 관리하고 사용하는 것은 확보한 수자원을 확보한 목표에 맞게 시,공간적으로 적절하게 분배 시키는 것이다. 따라서 저수지 운영의 최종 목표는 댐 건설 목적에 따라 확보된 물을 유입량, 저수량, 용수 수요등을 감안하여 댐 운영 목표에 맞게 최적으로 적절한 양의 물을 적절한 시기에 방류하는 것이다.(손덕환, 2004) 현재 댐군의 운영방법은 확정론적인 방법과 추계학적인 방법이 주로 이용되고 있으나 본 연구에서는 최근 연구가 많이 이루어지고 있는 인공신경망을 적용하여 운영방법으로써의 적용성을 검토하고자한다. 연구대상지로는 수력발전소가 포함된 한강의 충주 다목적댐을 선정하였다. 인공신경망은 입력층에서 출력층사이에 은닉층이 존재하는 다중신경망을 활용하였으며 출력층은 방류량으로 설정하여 발전방류와 수문방류를 구분하여 설정하였다. 방류량 결정을 위한 입력층 구성은 선행 연구들을 참고하여 예측 유입량, 현재 수위, 발전량, 용수 수요량 등을 설정하여 입력층으로 구성하였다. 학습기간의 방류량 자료를 학습하고 검정기간을 통해 실제 이루어진 방류량과 모의된 방류량의 차이를 비교, 분석하여 댐 운영방법으로써의 인공신경망의 적용성을 검토하고자하였다.

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Development of the Real-Time Multiplex Channel Media Player to Heighten the Dramatic Effect of an Advertisement (광고 효과 증대를 위한 실시간 다중 채널 미디어 재생기의 개발)

  • Kim, Sung-Ho
    • The Journal of the Korea Contents Association
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    • v.11 no.1
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    • pp.50-55
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    • 2011
  • This paper describes methodology which enables user in order to play multiplex channel media at realtime to augment a various advertisement effect efficiently. This method implemented from the computer environment where DirectX SDK, DirectShow and MS Visual Studio 2008 etc. are established. This media player have or hide the menu interface for reads the media. The experimental data which are used in the media player is mostly video. We added the area where has the function of Banner Ticker and GIF Animation in the media player in order augmenting an advertisement effect. All medias come to separate with video and audio by Splitter. Then that respectively execute Decoder and Render. Also the media player are possible video mixing using an alpha channel. This paper used VMR-9 of DirectShow for this. The player which sees to use multiplex channel, to remake the various medias simultaneously. Therefore, this player which sees advertisement effect of the form which is various positively in the users, has the advantage which is the possibility to recognize. This paper use tried the media player using experimental data and compare the existing media player and the media player which proposes from functional differences for an advertisement effect.

Modeling and Simulation for Anti-submarine HVU Escort Mission (대 잠수함 HVU 호위 임무 분석 모델링 및 시뮬레이션)

  • Park, Kang-Moon;Lee, Eun-Bog;Shin, Suk-Hoon;Han, Seungjin;Chi, Sung-Do
    • Journal of the Korea Society for Simulation
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    • v.23 no.4
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    • pp.75-83
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    • 2014
  • Most warship combat systems inquire human operator to control several sensor and another equipments as well as decision-modeling. For this reason, many researches with multi-agent based M&S (Modeling and Simulation) have been increasingly conducted. However there cannot find any researches of M&S based analysis for anti-submarine warfare that requires a high level of mission complexity between multiple platforms. In this research, we have been developed various combat platform models such as warship, submarine and helicopter, etc. In order to apply the multi-agent-based M&S technology to the anti-submarine warfare i.e. a HVU (High Value Unit) escort mission scenario. Then we have successfully analyzed the measures of effectiveness according to the different tactics and different situations. In future, the defence engineer maybe employ our methodology and tools to analyze actual tactical problem by simply inserting actual data into our agent model.

Long-Term Performance Evaluation of Scheduling Disciplines in OFDMA Multi-Rate Video Multicast Transmission (OFDMA 다중률 비디오 멀티캐스트 전송에서 스케줄링 방식의 장기적 성능 평가)

  • Hong, Jin Pyo;Han, Minkyu
    • Journal of KIISE
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    • v.43 no.2
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    • pp.246-255
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    • 2016
  • The orthogonal frequency-division multiple access (OFDMA) systems are well suited to multi-rate multicast transmission, as they allow flexible resource allocation across both frequency and time, and provide adaptive modulation and coding schemes. Unlike layered video coding, the multiple description coding (MDC) enables flexible decomposition of the raw video stream into two or more substreams. The quality of the video stream is expected to be roughly proportional to data rate sustained by the receiver. This paper describes a mathematical model of resource allocation and throughput in the multi-rate video multicast for the OFDMA wireless and mobile networks. The impact on mean opinion score (MOS), as a measurement of user-perceived quality (by employing a variety of scheduling disciplines) is discussed in terms of utility maximization and proportional fairness. We propose a pruning algorithm to ensure a minimum video quality even for a subset of users at the resource limitation, and show the optimal number of substreams and their rates can sustain.