• Title/Summary/Keyword: 등확률

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Compiler Analysis Framework Using SVM-Based Genetic Algorithm : Feature and Model Selection Sensitivity (SVM 기반 유전 알고리즘을 이용한 컴파일러 분석 프레임워크 : 특징 및 모델 선택 민감성)

  • Hwang, Cheol-Hun;Shin, Gun-Yoon;Kim, Dong-Wook;Han, Myung-Mook
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.30 no.4
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    • pp.537-544
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    • 2020
  • Advances in detection techniques, such as mutation and obfuscation, are being advanced with the development of malware technology. In the malware detection technology, unknown malware detection technology is important, and a method for Malware Authorship Attribution that detects an unknown malicious code by identifying the author through distributed malware is being studied. In this paper, we try to extract the compiler information affecting the binary-based author identification method and to investigate the sensitivity of feature selection, probability and non-probability models, and optimization to classification efficiency between studies. In the experiment, the feature selection method through information gain and the support vector machine, which is a non-probability model, showed high efficiency. Among the optimization studies, high classification accuracy was obtained through feature selection and model optimization through the proposed framework, and resulted in 48% feature reduction and 53 faster execution speed. Through this study, we can confirm the sensitivity of feature selection, model, and optimization methods to classification efficiency.

An Intra-Wireless Vessel Communications Using Analysis of Interference Probability between Radio Devices (무선기기간 간섭확률분석의 Intra-Wireless 선박 통신 적용)

  • Kim, Seong-Kweon;Kim, Dong Ho;Lee, Seong Ro
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.38C no.4
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    • pp.402-407
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    • 2013
  • In this paper, we consider an interference scenario and interference simulation method of intra-wireless vessel communications using SEAMCAT (Spectrum Engineering Advanced Monte-Carlo Analysis) simulator. The interference between electromagnetic equipment and low power radio apparatus can deteriorate a stability of vessel system and it is necessary to analyze the interference probability between radio devices. The proposed simulation method in the 13.56MHz ISM frequency band shows that the interference effect can be minimized when the distance between the devices is greater than 4.7m and 2.7m in case that the victim receiver (VR) are RFID and remote control(RC) toy, respectively. The proposed interference scenario and simulation method are expected to be helpful in the interference probability analysis and regulation policy in the ISM frequency band.

Development of Local Extreme Event Index by Rainfall Data Analysis - Focused on the PyeongChang River Basin (강우자료 분석을 통한 지역극한지수 개발 - 평창강 유역을 대상으로)

  • Choi, Sumin;Kim, Chang Hwan;Yeo, Chang Geon;Lee, Seung Oh
    • 한국방재학회:학술대회논문집
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    • 2011.02a
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    • pp.105-105
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    • 2011
  • 전 세계적으로 이상기후의 발생이 빈번해지고 있으며, 특히 6~9월에 강우가 집중되는 우리나라의 경우에는 예측하지 못한 강우의 발생 빈도가 점점 증가하고 있어 이로 인한 인명 및 재산 피해 또한 심각한 문제가 되고 있다. 이러한 피해를 최소화하기 위해서는, 일반적으로 발생한 강우사상이 아니라 극치의 확률로 발생한 강우사상에 대한 실질적인 연구가 우선으로 수행되어야 한다. 기존의 극한강우에 대한 연구 중 대부분은 정량적인 기준보다는 정성적인 기준을 제시하고 있으며, 최근 국외에서는 STARDEX(Goodess, 2005)와 같은 극한지수를 선정하여 경향성을 분석하는 연구도 수행되고 있다. 국내에서도 극한지수를 사용한 연구사례가 있으나(최영은, 2004, 김보경 외, 2009), 국외에서 제안된 극한지수를 우리나라에 그대로 적용한 것이며, 이외에도 확률모형을 이용한 극한기후사상의 발생빈도 분석에 관한 연구도 활발히 수행되고 있는 추세이다. 본 연구에서는 확률적으로 양적, 시간적, 공간적 측면이 동시에 극한의 값을 갖는 사상을 극치사상이라고 정의하여, 발생 가능한 강수량의 최대량으로 주로 사용되는 가능최대강수량(PMP)과는 다른 의미의 강수량으로 분석하였다. 극한강우사상의 정량적인 분석을 위해, 안성천 유역 강우관측소의 시계열 강우자료를 토대로 전체 강우사상에 대한 강우지속시간, 총 강우량 및 최대 시강우량의 95퍼센타일, 시간에 대한 누적 강우량의 25퍼센타일과 75퍼센타일의 증가율로 계산된 강우 증가율 등 4가지 요소를 제안하였다. 이 방법을 IHP 시험유역인 평창강 유역에 적용하여 그 적용성을 검토하였으며, 극치사상으로 분석된 강우사상은 각 유역별 주요하천의 상위 12개 장기 유출량의 발생일과 비교하였다. 분석 결과, 하천과의 거리가 먼 관측소일수록 최대 유출량의 발생일과 극한강우사상의 발생일에 차이가 발생했으며, 결측자료가 많은 관측소의 경우에는 인근 관측소의 자료로 보완하였을 때 높은 정확도로 분석되는 것으로 보아, 결측자료에 대한 영향과 강우 관측소와 하천과의 거리에 대한 영향이 큰 것으로 판단되었다. 향후 연구에서는 거리 및 지형에 대한 영향과 결측자료의 보완을 통해 더 정확한 분석을 수행하여, 홍수위험도의 개선 및 장기 유출분석에 기여할 수 있을 것이다.

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ROI Detection by Genetic Algorithm Based on Probability Map (확률맵 기반 유전자 알고리즘에 의한 ROI 검출)

  • Park, Hee-Jung
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.11 no.8
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    • pp.3028-3035
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    • 2010
  • This paper propose a genetic method based on probability map to detect region of the lips on a natural image with the faces. The method has many solutions in order to detect regions such as the lips instead of one optimal solution of existing methods. To do this, it represents a pair of spatial coordinates as a chromosome, and introduces genetic operations like conservation interval, the number of generations and non-overlapping selection. By using the probability map of the HS in HSV color space, it increases adaptability to similar color that is a property of genetic algorithm. In our experiments, the optimal value of the important parameter $\beta$ was analyzed, which was used as the condition of an ending function and affected performance of the proposed algorithm. Also the algorithm was analyzed on what performance it has when its mating methods are different. The results of the experiment showed that our algorithm could be flexibly adapted for detecting other ROIs.

Activity Recognition based on Multi-modal Sensors using Dynamic Bayesian Networks (동적 베이지안 네트워크를 이용한 델티모달센서기반 사용자 행동인식)

  • Yang, Sung-Ihk;Hong, Jin-Hyuk;Cho, Sung-Bae
    • Journal of KIISE:Computing Practices and Letters
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    • v.15 no.1
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    • pp.72-76
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    • 2009
  • Recently, as the interest of ubiquitous computing has been increased there has been lots of research about recognizing human activities to provide services in this environment. Especially, in mobile environment, contrary to the conventional vision based recognition researches, lots of researches are sensor based recognition. In this paper we propose to recognize the user's activity with multi-modal sensors using hierarchical dynamic Bayesian networks. Dynamic Bayesian networks are trained by the OVR(One-Versus-Rest) strategy. The inferring part of this network uses less calculation cost by selecting the activity with the higher percentage of the result of a simpler Bayesian network. For the experiment, we used an accelerometer and a physiological sensor recognizing eight kinds of activities, and as a result of the experiment we gain 97.4% of accuracy recognizing the user's activity.

Factors Affecting Medical Service Utilization of Disabled (장애인의 의료이용에 영향을 미치는 요인)

  • Hwang, Hong-Gu;Jung, Hyun-Sik
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.18 no.5
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    • pp.219-225
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    • 2017
  • This article examined the condition of medical service utilization and the usage degree for the disabled in Korea, and analyzed factors affecting medical service utilization. This paper offers data for improving the health of disabled Korea residents and for enhancing medical service utilization. We analyzed data for disabled residents aged 19 from the 6th Korea National Health and Nutrition Examination Survey. Results found significant effects depending on gender, age, average monthly income, types of disorders, disability rating, and status of smoking. Concerning gender, men had a higher probability of lacking medical treatment compared with women, had increased probability of having a disability, and smokers had a higher probability of lacking treatment compared with nonsmokers. Therefore, for resolving medically untreated disabled Korean residents, government needs to improve the policy system and to managethe inequality of handicapped welfare work.

Exploration of PIM based similarity measures as association rule thresholds (확률적 흥미도를 이용한 유사성 측도의 연관성 평가 기준)

  • Park, Hee Chang
    • Journal of the Korean Data and Information Science Society
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    • v.23 no.6
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    • pp.1127-1135
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    • 2012
  • Association rule mining is the method to quantify the relationship between each set of items in a large database. One of the well-studied problems in data mining is exploration for association rules. There are three primary quality measures for association rule, support and confidence and lift. We generate some association rules using confidence. Confidence is the most important measure of these measures, but it is an asymmetric measure and has only positive value. Thus we can face with difficult problems in generation of association rules. In this paper we apply the similarity measures by probabilistic interestingness measure to find a solution to this problem. The comparative studies with support, two confidences, lift, and some similarity measures by probabilistic interestingness measure are shown by numerical example. As the result, we knew that the similarity measures by probabilistic interestingness measure could be seen the degree of association same as confidence. And we could confirm the direction of association because they had the sign of their values.

QoS-guaranteed Routing for Wireless Sensor Networks (무선 센서 네트워크를 위한 QoS 보장 라우팅)

  • Heo, Jun-Young
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.11 no.6
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    • pp.23-29
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    • 2011
  • In some applications of wireless sensor networks, requirements such as energy efficiency, real-time, and reliable delivery need to be considered. In this paper, we propose a novel routing algorithm for wireless sensor networks. It provides real-time, reliable delivery of a packet, while considering energy awareness. In the proposed algorithm, a node estimates the energy cost, delay and reliability of a path to the sink node, based only on information from neighboring nodes. Then, it calculates the probability of selecting a path, using the estimates. When packet forwarding is required, it randomly selects the next node. A path with lower energy cost is likely to be selected, because the probability is inversely proportional to the energy cost to the sink node. To achieve real-time delivery, only paths that may deliver a packet in time are selected. To achieve reliability, it may send a redundant packet via an alternate path, but only if it is a source of a packet. Experimental results show that the proposed algorithm is suitable for providing energy efficient, real-time, reliable communications.

Approximate System Reliability Analysis Under Multiple Time Varying Loads (복합 하중하에서의 구조물 체계 신뢰도 해석)

  • 김상효
    • Computational Structural Engineering
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    • v.1 no.2
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    • pp.101-109
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    • 1988
  • The evaluation of the system reliability is generally quite difficult and costly as the structure becomes large and complex, especially when it is subjected to multiple time varying loads, and for redundant structures which have many possible modes of failur, e.g., system collapse through the formation of plastic hinge mechanisms. In reality most loadings acting on the structures are random in intensity as well as in occurrence time and duration. To include the load variability in time, the loads are described in terms of stochastic processes. Based on a tri-modal upper bound, a point estimate for the system reliability has been developed for more accuracy without extensive computational effort. This tri-modal point estimate also ensures the continuity of the system reliability function, which is a necessary condition in many nonlinear programming techniques. In addition, the Load Coincidence method, by which the combined effect of time varying loads are taken into account, has been modified to suitable for cases with an always-on load.

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A Study on the Characteristics of Opinion Retrieval Using Term Statistical Analysis in Opinion Documents (의견 문서의 단어 통계 분석을 통한 의견 검색 특성에 관한 연구)

  • Han, Kyoung-Soo
    • Journal of the Korea Society of Computer and Information
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    • v.15 no.11
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    • pp.21-29
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    • 2010
  • Opinion retrieval which searches the opinions expressed in documents by users cannot outperform significantly yet traditional topical retrieval which searches the facts. Therefore, the focus of this paper is to identify the statistical characteristics which can be applied to opinion retrieval by comparing and analyzing the term statistics of opinion and non-opinion documents in the blog domain. The TREC Blogs06 collection and 150 TREC topics are used in the experiments. The difference between term probability distributions in opinion documents is measured by JS divergence, and the difference according to the topic types and topic domains is also investigated. Moreover, the term probabilities of opinion terms are analyzed comparatively. The main findings of this study include the following: it is necessary to consider the topic-specific characteristics for the opinion detection; it is effective to extract positive and negative opinion terms according to the topics; the topic types are complementary to the topic domains; and special attention has to be given to the usage of the positive opinion terms.