• Title/Summary/Keyword: Feature Value Voting

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Improving the Performance of a Fast Text Classifier with Document-side Feature Selection (문서측 자질선정을 이용한 고속 문서분류기의 성능향상에 관한 연구)

  • Lee, Jae-Yun
    • Journal of Information Management
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    • v.36 no.4
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    • pp.51-69
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    • 2005
  • High-speed classification method becomes an important research issue in text categorization systems. A fast text categorization technique, named feature value voting, is introduced recently on the text categorization problems. But the classification accuracy of this technique is not good as its classification speed. We present a novel approach for feature selection, named document-side feature selection, and apply it to feature value voting method. In this approach, there is no feature selection process in learning phase; but realtime feature selection is executed in classification phase. Our results show that feature value voting with document-side feature selection can allow fast and accurate text classification system, which seems to be competitive in classification performance with Support Vector Machines, the state-of-the-art text categorization algorithms.

A Fast Text Classifier with feature Value Voting and Document-Side Feature Selection (자질값투표 기법과 문서측 자질 선정을 이용한 고속 문서 분류기)

  • Lee, Jae-Yun
    • Proceedings of the Korean Society for Information Management Conference
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    • 2005.08a
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    • pp.71-78
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    • 2005
  • 빠르면서도 정확한 문서 자동분류를 위해서 자질값투표 기법과 문서측 자질선정 방식의 결합을 제안하였다. 자질값은 미리 학습된 분류자질과 분류범주간의 연관성을 뜻하는 것으로서, 자질값투표 기법은 분류대상 문서에 나타난 자질들의 자질값을 후보범주마다 합산하여 가장 높은 범주로 분류하는 것이다. 문서측 자질선정은 일반적인 분류자질선정과 달리 학습집단이 아닌 분류대상 문서의 자질 중 일부만을 선택하여 분류에 이용하는 방식이다. 이들을 결합하여 사용한 결과 실험환경에서는 나이브베이즈 분류기만큼 간단하고 빠르면서 SVM 분류기보다 좋은 성능을 보였다.

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Recognition of Printed and Handwritten Numerals Using Multiple Features and Modularized Neural Networks (다중 특징과 모듈화된 신경회로망을 이용한 인쇄 및 필기체 혼용 숫자 인식)

  • 류강수;김우태;진성일
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.32B no.10
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    • pp.1347-1357
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    • 1995
  • In this paper, we describe a modularized neuroclassifier for enhancing the recognition accuracy of mixed printed and handwritten numerals. This classifier combines four modularized subclassifiers using multi-layer perceptron module. The input of each subclassifier is comprised of a group of specialized feature sets. On applying this method to combining several subclassifiers for unconstrained handwritten numerals, the experimental result shows that the performance of individual subclassifier can be improved. In winner-take-all voting method, the result of subclassifier having the highest RF value is selected as the output. The generality of this classifier is tested with 1,080 printed and 3,000 handwritten numerals that was not shown in training the neural networks. Experimental results show 98.2% recognition rate. The typical recognition test with a threshold value(RF=1.5) has shown 97% recognition, 1% substitution and 2% rejection rates.

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A Decision Making Tool for Decentralized Autonomous Organization (탈중앙화된 자율 조직 의사결정을 위한 도구)

  • Lee, Yosep;Park, Young B.
    • Journal of the Semiconductor & Display Technology
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    • v.19 no.2
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    • pp.1-10
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    • 2020
  • Blockchain enabled Decentralized Autonomous Organization (DAO), a new form of organization with conveying its core value - trust. Token holders who are participating DAO's governance share their thoughts, information, and ideas in online forum. But it is problem that chronological form of DAO's online forum makes token holders hard to find crucial information, meaning that many of them might not understand what is happening discussion. In this paper, we studied not only a decision making process which feature is iteration, visualization, and applicable to DAO with 6 steps in total but also a decision making tool which is based on the process of this paper. The tool has features to help participants such as voting model, visualization features which gives guidance to them for their decision during the process. Our experiment showed that the process and tool is somewhat reasonable, and the information during the process is effective for participants. This work is expected to be applied to current DAOs to make a decision among the token holders.