• Title/Summary/Keyword: 프로파일분류

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A Decoding Program of MPEG TS Packet and A Restoring Program of Data Information (MPEG TS 패킷 분류 프로그램과 데이터 정보의 복원 프로그램)

  • Jung, Myung-Su;Sonh, Seung-Il
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • v.9 no.1
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    • pp.646-650
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    • 2005
  • 요즘 아날로그 방송에서 디지털 방송시대로 변화함에 따라 디지털 방송기술이 많이 발전되었다. 디지털 방송은 방송국으로부터 만들어지는 영상, 음성, 데이터 스트림들이 MPEG을 통해 효율적으로 압축하고 동기식으로 패킷화되어서 MPEG TS 패킷형식으로 서비스 이용자에게 위성 또는 지상파를 통해 전송되어진다. 방송되어지는 데이터 정보는 물론 그 외의 비관련 데이터도 제공되어짐으로써 서비스 이용범위도 많이 늘어나고 특히 기존의 영상과 음성위주의 방송과는 달리 사업자와 이용자간의 쌍방향으로 데이터를 송수신할 수 있는 기술이 고부가가치 사업으로 대두되고 있다. 디지털 방송을 수신해서 보기 위해서는 튜너로부터 수신되어 디지털화된 MPEG TS 패킷들을 분류해주는 과정이 필요하다. 본 연구에서는 실제 디지털 방송되었던 패킷 파일을 가지고 분류하였다. 영상 스트림과 음성 스트림을 분류하고 데이터 스트림을 분리하였다. 그리고 데이터 방송 규격의 데이터 스트림 파일을 별도로 입력하여 데이터를 분류하였다. 프로그램은 Microsoft visual c++6.0을 사용하여 구현하였다.

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A Study on Improving the Performance of Document Classification Using the Context of Terms (용어의 문맥활용을 통한 문헌 자동 분류의 성능 향상에 관한 연구)

  • Song, Sung-Jeon;Chung, Young-Mee
    • Journal of the Korean Society for information Management
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    • v.29 no.2
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    • pp.205-224
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    • 2012
  • One of the limitations of BOW method is that each term is recognized only by its form, failing to represent the term's meaning or thematic background. To overcome the limitation, different profiles for each term were defined by thematic categories depending on contextual characteristics. In this study, a specific term was used as a classification feature based on its meaning or thematic background through the process of comparing the context in those profiles with the occurrences in an actual document. The experiment was conducted in three phases; term weighting, ensemble classifier implementation, and feature selection. The classification performance was enhanced in all the phases with the ensemble classifier showing the highest performance score. Also, the outcome showed that the proposed method was effective in reducing the performance bias caused by the total number of learning documents.

Tyue Classification of Korean Characters Considering Relative Type Size (유형의 상대적 크기를 고려한 한글문자의 유형 분류)

  • Kim, Pyeoung-Kee
    • Journal of the Korea Society of Computer and Information
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    • v.11 no.6 s.44
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    • pp.99-106
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    • 2006
  • Type classification is a very needed step in recognizing huge character set language such as korean characters. Since most previous researches are based on the composition rule of Korean characters, it has been difficult to correctly classify composite vowel characters and problem space was not divided equally for the lack of classification of last consonant which is relatively bigger than other graphemes. In this paper, I Propose a new type classification method in which horizontal vowel is extracted before vortical vowel and last consonants are further classified into one of five small groups based on horizontal projection profile. The new method uses 19 character types which is more stable than previous 6 types or 15 types. Through experiments on 1.000 frequently used character sets and 30.614 characters scanned from several magazines, I showed that the proposed method is more useful classifying Korean characters of huge set.

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A Study on the Quantification of Assessment Category of Roughness of Discontinuity of Rock Mass Classification Using Delphi method (델파이방법을 이용한 암반분류법의 불연속면 거칠기 평가분류 정량화에 관한 연구)

  • Kim, Byung-Ryeol;Lee, Seung-Joong;Choi, Sung-Oong
    • Tunnel and Underground Space
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    • v.25 no.2
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    • pp.210-219
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    • 2015
  • This paper describes a new quantitative process for evaluating the roughness of discontinuity, which is suggested as a qualitative criteria in RMR or Q-system. For this purpose, the Delphi method which is one of the surveying methods was introduced. The selected panels were asked to evaluate the roughness of discontinuities on the Web which was hosted by authors in advance. A total of 3 surveys were performed using JRCs suggested by Barton and Choubey as well as Ai generated by the Monte Carlo simulations. After each survey, the results were provided to all panels for comparing their decisions to others. As surveys proceeded, better consensus and convergence were achieved. With a good agreement of panels on roughness classification, the quantitative criteria for roughness of discontinuity in RMR and Q-system was established in this study.

Identifying Latent Classes in Adolescent's Self-Determination Motivation and Testing Determinants of Classes (자기결정성 이론에 따른 학습동기 변화의 잠재프로파일 분류 및 영향요인 검증)

  • Choi, Hyunju;Cho, Minhee
    • Korean Journal of School Psychology
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    • v.11 no.1
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    • pp.253-274
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    • 2014
  • The present study classified groups based on latent profile of self-determination motivation(amotivation, external motivation, intrinsic motivation), and examined the determinants for each group. The data was collected through panel data of Korea Education Longitudinal Study(KELS), total 5,459 participants who answered questionnaires of self-determination motivation of two times both second grade of middle school and second grade of high school. To identify the change motivational type, standardized residual was conducted using SPSS 17.0., and the latent classes for the change of motivational type was investigated using M-Plus in the frame work of Latent Profile Analysis(LPA). The results indicated that five groups(increase of self-determination, self-determination maintenance, self-determination developmental delay, elf-determination confusion, decrease of self-determination group) were classified based on latent profile. In addition, parental control, academic self-concept, teacher-student relationship, test anxiety, avoidance orientation, gender, father's education, and income were significantly related to each group. Lastly, the implications for directions of the adolescent counseling, limitations and future research are discussed.

Design of Personalized Learning Profile based Leaner's Cognitive Ability (학습자의 인지능력 기반 개인화 학습 프로파일 설계)

  • Ji, Hye-Sung;Lim, Heui-Seok;Park, Ki-Nam
    • Proceedings of the Korea Information Processing Society Conference
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    • 2013.11a
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    • pp.983-985
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    • 2013
  • 본 논문에서는 학습자의 인지능력을 진단하고 이를 기반으로 하는 학습자 프로파일에 대하여 제안한다. 기존의 인지능력 측정방법으로는 알기 어려운 학습자의 세부적인 학습 능력을 적용한 학습자 프로파일은 지능형 튜터링 시스템의 최종적인 목표인 개개인의 맞춤형 학습 제공을 목적으로 학습자의 인지능력 측정 및 패턴분류를 통해 세부적인 학습자의 인지능력 측정하고 이를 기반으로 학습자 프로파일을 설계하였다.

A Transformation Technique of PIM to PSM based on UML Profiles for Mobile Applications (UML 프로파일에 기반한 모바일 어플리케이션의 PIM/PSM 변환 기법)

  • Choi, Yun-Seok
    • Journal of the Korea Society of Computer and Information
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    • v.17 no.6
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    • pp.131-144
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    • 2012
  • MDD is suitable to satisfy constraints of development of mobile applications. So, there are various studies about applying MDD to the developments of mobile application but systematic development methods about UML profile for PIM/PSM of mobile applications and model transformation techniques are needed. This paper suggests that a development technique about UML profile for PIM/PSM of mobile applications and a model transformation techniques with the profiles. We classify stereotypes by the characteristics of mobile application to compose profiles and suggest development guidelines of profiles for PIM/PSM. On the suggested model transformation process, the PIM with the profiles is transformed to the intial PSM with the mapping rules and the PSM is transformed to the refined PSM with templates which reflected detailed information of a mobile platform. We developed a location based service mobile application with the suggested techniques on the Android platform and compared with other techniques to validate usefulness of the suggested techniques.

Ensemble Model using Multiple Profiles for Analytical Classification of Threat Intelligence (보안 인텔리전트 유형 분류를 위한 다중 프로파일링 앙상블 모델)

  • Kim, Young Soo
    • The Journal of the Korea Contents Association
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    • v.17 no.3
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    • pp.231-237
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    • 2017
  • Threat intelligences collected from cyber incident sharing system and security events collected from Security Information & Event Management system are analyzed and coped with expanding malicious code rapidly with the advent of big data. Analytical classification of the threat intelligence in cyber incidents requires various features of cyber observable. Therefore it is necessary to improve classification accuracy of the similarity by using multi-profile which is classified as the same features of cyber observables. We propose a multi-profile ensemble model performed similarity analysis on cyber incident of threat intelligence based on both attack types and cyber observables that can enhance the accuracy of the classification. We see a potential improvement of the cyber incident analysis system, which enhance the accuracy of the classification. Implementation of our suggested technique in a computer network offers the ability to classify and detect similar cyber incident of those not detected by other mechanisms.

Video Data Classification based on a Video Feature Profile (특성정보 프로파일에 기반한 동영상 데이터 분류)

  • Son Jeong-Sik;Chang Joong-Hyuk;Lee Won-Suk
    • The KIPS Transactions:PartD
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    • v.12D no.1 s.97
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    • pp.31-42
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    • 2005
  • Generally, conventional video searching or classification methods are based on its meta-data. However, it is almost Impossible to represent the precise information of a video data by its meta-data. Therefore, a processing method of video data that is based on its meta-data has a limitation to be efficiently applied in application fields. In this paper, for efficient classification of video data, a classification method of video data that is based on its low-level data is proposed. The proposed method extracts the characteristics of video data from the given video data by clustering process, and makes the profile of the video data. Subsequently. the similarity between the profile and video data to be classified is computed by a comparing process of the profile and the video data. Based on the similarity. the video data is classified properly. Furthermore, in order to improve the performance of the comparing process, generating and comparing techniques of integrated profile are presented. A comparing technique based on a differentiated weight to improve a result of a comparing Process Is also Presented. Finally, the performance of the proposed method is verified through a series of experiments using various video data.

Decision Method of Importance of E-Mail based on User Profiles (사용자 프로파일에 기반한 전자 메일의 중요도 결정)

  • Lee, Samuel Sang-Kon
    • The KIPS Transactions:PartB
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    • v.15B no.5
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    • pp.493-500
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    • 2008
  • Although modern day people gather many data from the network, the users want only the information needed. Using this technology, the users can extract on the data that satisfy the query. As the previous studies use the single data in the document, frequency of the data for example, it cannot be considered as the effective data clustering method. What is needed is the effective clustering technology that can process the electronic network documents such as the e-mail or XML that contain the tags of various formats. This paper describes the study of extracting the information from the user query based on the multi-attributes. It proposes a method of extracting the data such as the sender, text type, time limit syntax in the text, and title from the e-mail and using such data for filtering. It also describes the experiment to verify that the multi-attribute based clustering method is more accurate than the existing clustering methods using only the word frequency.