• 제목/요약/키워드: Weak Classification

검색결과 167건 처리시간 0.019초

대학기록관 사진 아카이브를 위한 정보구조 모형 제안 (The Development of the Model of Information Structure for Photo Archives in University Archives)

  • 이혜원;한승희
    • 한국기록관리학회지
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    • 제23권1호
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    • pp.101-126
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    • 2023
  • 대학의 사진기록은 대학의 정체성을 확립하고 역사적 증거를 제공하는 매우 가치 있는 기록의 유형 중 하나이나, 텍스트와 달리 의미전달의 취약성을 갖고 있으므로 사진기록의 정보가 포괄적으로 기술되지 않으면 이용자의 검색과 활용이 어렵다. 본 연구에서는 대학기록관 사진 아카이브를 위해 사진기록의 분류체계를 구조화하고, 분류 내의 카테고리 특성을 반영한 메타데이터 셋 개발을 시도하였다. 이를 위해 국내와 미국 대학기록관의 사진기록 분류체계와 메타데이터 요소를 분석하고, 정보구조 모형을 제안하였다. 본 연구에서 제안한 정보구조 모형을 통해 대학기록관 사진기록의 데이터 품질을 향상시킬 수 있으며, 이용자에게는 사진기록에 대한 풍부한 디스커버리를 지원할 수 있다.

Effect of Particle Pre-Treatment on Properties of Jatropha Fruit Hulls Particleboard

  • Iswanto, Apri Heri;Febrianto, Fauzi;Hadi, Yusuf Sudo;Ruhendi, Surdiding;Hermawan, Dede;Fatriasari, Widya
    • Journal of the Korean Wood Science and Technology
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    • 제46권2호
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    • pp.155-165
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    • 2018
  • The objective of the research was to evaluate the effect of particle pre-treatment on physical, mechanical, and durability of jatropha fruit hulls (JFH) particleboard. The pre-treatments included were immersing in cold water, hot water, and acetic acid solution. After each treatment, the particles were dried up to 3% moisture content. Urea-formaldehyde (UF) resin was used to fabricate particleboards with board size, thickness and density target of 25 cm by 25 cm, 0.80 cm, and $0.70g/cm^3$, respectively. Board pressed at $130^{\circ}C$ for 10 minutes, and $25kg/cm^2$ pressure. The evaluation of particleboard followed the JIS A 5908-2003. Whilist their resistance to subterranean termite test (mass loss, mortality, antifeedant value and feeding rate) refers to the Indonesian standard (SNI 01.7207-2006). The physical and mechanical properties of particleboards showed that all pre-treatments decreased the pH of particles. Overall, all particle immersing treatments resulted of better physical and mechanical properties of particleboard than those of untreated ones. The acetic acid treatment resulted the best physical and mechanical properties of particleboard. Based on the mass loss of JFH particleboard, hot water and acetic acid treated particleboards were classified into weak resistance to subterranean attack. The other two treatments were classified into very weak resistance. Hot water treated particleboard provided the highest mortality and antifeedant as much as 87.40% and 34.20%, respectively. Based on antifeedant classification, hot water treated particleboards were classified into moderately strong resistance, while other treatments were categorized into weak resistance. The lowest feeding rate value ($45.30{\mu}g/termite/day$) was attained by hot water treatment.

New Approach to Two-wheeler Detection using Correlation Coefficient based on Histogram of Oriented Gradients

  • Lee, Yeunghak;Shim, Jaechang
    • Journal of Multimedia Information System
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    • 제3권4호
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    • pp.119-128
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    • 2016
  • This study aims to suggest a new algorithm for detecting two-wheelers on road that have various shapes according to the viewing angle for vision based intelligent vehicles. This article describes a new approach to two-wheelers detection algorithm riding on people based on modified Histogram of Oriented Gradients (HOG) using correlation coefficient (CC). The CC between two local area variables, in which one is the person riding a bike and other is its background, can represent correlation relation. First, we extract edge vectors using HOG which includes gradient information and differential magnitude as cell based. And then, the value, which is calculated by the CC between the area of each cell and one of two-wheelers, can be extracted as the weighting factor in process for normalizing the modified HOG cell. This paper applied the Adaboost algorithm to make a strong classification from weak classification. In this experiment, we can get the result that the detection rate of the proposed method is higher than that of the traditional method.

Two-wheeler Detection System using Histogram of Oriented Gradients based on Local Correlation Coefficients and Curvature

  • Lee, Yeunghak;Kim, Taesun;Shim, Jaechang
    • Journal of Multimedia Information System
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    • 제2권4호
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    • pp.303-310
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    • 2015
  • Vulnerable road users such as bike, motorcycle, small automobiles, and etc. are easily attacked or threatened with bigger vehicles than them. So this paper suggests a new approach two-wheelers detection system riding on people based on modified histogram of oriented gradients (HOGs) which is weighted by curvature and local correlation coefficient. This correlation coefficient between two variables, in which one is the person riding a bike and other is its background, can represent correlation relation. First, we extract edge vectors using the curvature of Gaussian and Histogram of Oriented Gradients (HOG) which includes gradient information and differential magnitude as cell based. And then, the value, which is calculated by the correlation coefficient between the area of each cell and one of bike, can be used as the weighting factor in process for normalizing the HOG cell. This paper applied the Adaboost algorithm to make a strong classification from weak classification. The experimental results validate the effectiveness of our proposed algorithm show higher than that of the traditional method and under challenging, such as various two-wheeler postures, complex background, and even conclusion.

The Relationship between Sensory Processing Abilities and Gross and Fine Motor Capabilities of Children with Cerebral Palsy

  • Park, Myoung-Ok
    • 대한물리의학회지
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    • 제12권2호
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    • pp.67-74
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    • 2017
  • PURPOSE: The purpose of this study was to investigate the difference and relationship between sensory processing abilities, gross motor and fine motor capabilities in children with cerebral palsy. METHODS: 104 children with cerebral palsy participated in the study. Sensory processing abilities of the subjects were measured by Short Sensory Profile (SSP). Gross and fine motor abilities were each measured using the Gross Motor Function Classification System (GMFCS) and Manual Ability Classification System (MACS), respectively. RESULTS: There were significant correlations between SSP level and GMFCS (R=.72, p<.00) or MACS (R=.77, p<.00) levels. Significant differences were showed each gross motor (p=.01) and fine motor level (p=.00) among sensory processing level of children. In addition, sub-items of sensory processing as Tactile sensitivity, Movement sensitivity, Auditory filtering and Low energy/Weak were significantly were showed significant correlations gross motor and fine motor level (p=.01). Also, multiple regression result was showed that as MACS level and GMFCS level were higher, the SSP total score was higher all of participants (adjusted $R^2=.62$). CONCLUSION: Sensory processing abilities of children with cerebral palsy were related with gross motor and fine motor capabilities. Also gross motor and fine motor capabilities are as higher, the sensory processing skill was well of cerebral palsy.

IAD 기반 패킷 마킹과 유무선 트래픽 분류를 통한 무선 DDoS 공격 탐지 및 차단 기법 (Wireless DDoS Attack Detection and Prevention Mechanism using Packet Marking and Traffic Classification on Integrated Access Device)

  • 조제경;이형우;박영준
    • 한국콘텐츠학회논문지
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    • 제8권6호
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    • pp.54-65
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    • 2008
  • 무선 네트워크 환경에서 DDoS 공격이 수행될 경우 기존 유선 네트워크 환경보다 공격 패턴에 대한 탐지 및 공격지 역추적이 어렵다는 문제점을 보인다. 특히 무선 네트워크 환경에서는 사용자 인증 공격 및 패킷 스니핑 공격에 취약점을 보이고 있어 이에 대한 대응 기술이 연구되어야 한다. 최근 유무선 라우팅 기능과 함께 VoIP 통신 기능 등을 통합하여 지원하는 Integrated Access Device(IAD)가 개발되어 널리 배포되며 기존의 AP 기능을 대체하고 있다. 따라서 IAD 기반 무선 네트워크 환경에서도 유무선 트래픽에 대한 분류와 실시간 공격 탐지 기능이 제공되어야 한다. 본 연구에서는 AirSensor를 이용하여 IAD에 접속한 무선 네트워크 클라이언트 정보를 수집하며 무선 클라이언트의 공격 패킷에 대해 사전 차단 기능을 수행하도록 하였다. 또한 IAD에 수신된 패킷에 대해 W-TMS 시스템과 연동하여 DDoS 공격 트래픽을 판단하도록 하였고 이를 직접 차단하여 안정적으로 IAD 기반 무선 네트워크 서비스를 이용할 수 있도록 하였다.

직업성 전자장 노출과 백혈병 발생에 관한 메타분석 (Relationship between Occupational Electromagnetic Field Exposure and Leukemia : A Meta-Analysis)

  • 김윤신;송혜향;홍승철;조용성
    • Journal of Preventive Medicine and Public Health
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    • 제33권1호
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    • pp.125-133
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    • 2000
  • Objectives : This study uses meta-analysis methodology to examine the statistical consistency and importance of random variation among results of epidemiologic studies of occupational electromagnetic field exposure and leukemia. Methods : Studies for this meta-analysis were identified from previous reviews and by asking researcher active in this field for recommendations. Overall, 27 studies of occupational electromagnetic field exposures and leukemia were reviewed. A variety of meta-analysis statistical methods have been used to assess combined effects, to identify heterogeneity, and to provide a single summary risk estimate based on a set of simiar epidemiologic studies. In this study, classification of exposure metircs on occupational epidemiologic studies are reported for (1) job classification (20 individual studies); (2) leukemia subtypes (13 individual studies); and (3) country (27 individual studies). Results : Results of this study, an inverse-variance weighted pooling of all the data leads to a small but significant elevation in risk of f 1% (OR=1.11, 95% CI : $1.06\sim1.16$) among 27 occupational epidemiologic studies. Publication bias was assessed by the 'fail-safe n' that may be not influence for all combined results exception a few categories, ie, 'power station operators' and 'electric utility workers' by job classification on occupational study. And ail combined odds ratio results were similar for fixed-effects models and random-effects models, with slightly higher risk estimates for the random-effects model in situations where there was significant heterogeneity, ie, Q-statistic significant (p<.05). Conclusions : We found a small elevation in risk of leukemia, but the ubiquitous nature of exposure to electromagnetic fields from workplace makes even a weak association a public health issue of substantial power to influence the present overall conclusion about relationship between electromagnetic fields exposure and leukemia.

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엔트로피 시계열 데이터 추출과 순환 신경망을 이용한 IoT 악성코드 탐지와 패밀리 분류 (IoT Malware Detection and Family Classification Using Entropy Time Series Data Extraction and Recurrent Neural Networks)

  • 김영호;이현종;황두성
    • 정보처리학회논문지:소프트웨어 및 데이터공학
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    • 제11권5호
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    • pp.197-202
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    • 2022
  • IoT (Internet of Things) 장치는 취약한 아이디/비밀번호 사용, 인증되지 않은 펌웨어 업데이트 등 많은 보안 취약점을 보여 악성코드의 공격 대상이 되고 있다. 그러나 CPU 구조의 다양성으로 인해 악성코드 분석 환경 설정과 특징 설계에 어려움이 있다. 본 논문에서는 CPU 구조와 독립된 악성코드의 특징 표현을 위해 실행 파일의 바이트 순서를 이용한 시계열 특징을 설계하고 순환 신경망을 통해 분석한다. 제안하는 특징은 바이트 순서의 부분 엔트로피 계산과 선형 보간을 통한 고정 길이의 시계열 패턴이다. 추출된 특징의 시계열 변화는 RNN과 LSTM으로 학습시켜 분석한다. 실험에서 IoT 악성코드 탐지는 높은 성능을 보였지만, 패밀리 분류는 비교적 성능이 낮았다. 악성코드 패밀리별 엔트로피 패턴을 시각화하여 비교했을 때 Tsunami와 Gafgyt 패밀리가 유사한 패턴을 나타내 분류 성능이 낮아진 것으로 분석되었다. 제안된 악성코드 특징의 데이터 간 시계열 변화 학습에 RNN보다 LSTM이 더 적합하다.

EEG Feature Classification Based on Grip Strength for BCI Applications

  • Kim, Dong-Eun;Yu, Je-Hun;Sim, Kwee-Bo
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제15권4호
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    • pp.277-282
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    • 2015
  • Braincomputer interface (BCI) technology is making advances in the field of humancomputer interaction (HCI). To improve the BCI technology, we study the changes in the electroencephalogram (EEG) signals for six levels of grip strength: 10%, 20%, 40%, 50%, 70%, and 80% of the maximum voluntary contraction (MVC). The measured EEG data are categorized into three classes: Weak, Medium, and Strong. Features are then extracted using power spectrum analysis and multiclass-common spatial pattern (multiclass-CSP). Feature datasets are classified using a support vector machine (SVM). The accuracy rate is higher for the Strong class than the other classes.

로봇과 인간의 상호작용을 위한 얼굴 표정 인식 및 얼굴 표정 생성 기법 (Recognition and Generation of Facial Expression for Human-Robot Interaction)

  • 정성욱;김도윤;정명진;김도형
    • 제어로봇시스템학회논문지
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    • 제12권3호
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    • pp.255-263
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    • 2006
  • In the last decade, face analysis, e.g. face detection, face recognition, facial expression recognition, is a very lively and expanding research field. As computer animated agents and robots bring a social dimension to human computer interaction, interest in this research field is increasing rapidly. In this paper, we introduce an artificial emotion mimic system which can recognize human facial expressions and also generate the recognized facial expression. In order to recognize human facial expression in real-time, we propose a facial expression classification method that is performed by weak classifiers obtained by using new rectangular feature types. In addition, we make the artificial facial expression using the developed robotic system based on biological observation. Finally, experimental results of facial expression recognition and generation are shown for the validity of our robotic system.