• 제목/요약/키워드: Detection Rate

검색결과 4,533건 처리시간 0.142초

IEEE 802.11ac 변조 방식의 딥러닝 기반 분류 (Deep learning-based classification for IEEE 802.11ac modulation scheme detection)

  • 강석원;김민재;최승원
    • 디지털산업정보학회논문지
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    • 제16권2호
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    • pp.45-52
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    • 2020
  • This paper is focused on the modulation scheme detection of the IEEE 802.11 standard. In the IEEE 802.11ac standard, the information of the modulation scheme is indicated by the modulation coding scheme (MCS) included in the VHT-SIG-A of the preamble field. Transmitting end determines the MCS index suitable for the low signal to noise ratio (SNR) situation and transmits the data accordingly. Since data field decoding can take place only when the receiving end acquires the MCS index information of the frame. Therefore, accurate MCS detection must be guaranteed before data field decoding. However, since the MCS index information is the information obtained through preamble field decoding, the detection rate can be affected significantly in a low SNR situation. In this paper, we propose a relatively robust modulation classification method based on deep learning to solve the low detection rate problem with a conventional method caused by a low SNR.

주식시장 기술 분석 기법을 활용한 DDoS 탐지 방법 (DDoS detection method based on the technical analysis used in the stock market)

  • 윤정훈;정송
    • 한국정보통신설비학회:학술대회논문집
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    • 한국정보통신설비학회 2009년도 정보통신설비 학술대회
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    • pp.127-130
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    • 2009
  • We propose a method for detecting DDoS (Distributed Denial of Service) traffic in real-time inside the backbone network. For this purpose, we borrow the concepts of MACD (Moving Average Convergence Divergence) and RoC (Rate of Change), which are used for technical analysis in the stock market Due to the fact that the method is based on a quantitative, rather than a heuristic, detection level, DDoS traffic can be detected with greater accuracy (by reducing the false alarm ratio). Through simulation results, we show how the detection level is determined and demonstrate how much the accuracy of detection is enhanced.

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Hybrid Neural Networks for Intrusion Detection System

  • Jirapummin, Chaivat;Kanthamanon, Prasert
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2002년도 ITC-CSCC -2
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    • pp.928-931
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    • 2002
  • Network based intrusion detection system is a computer network security tool. In this paper, we present an intrusion detection system based on Self-Organizing Maps (SOM) and Resilient Propagation Neural Network (RPROP) for visualizing and classifying intrusion and normal patterns. We introduce a cluster matching equation for finding principal associated components in component planes. We apply data from The Third International Knowledge Discovery and Data Mining Tools Competition (KDD cup'99) for training and testing our prototype. From our experimental results with different network data, our scheme archives more than 90 percent detection rate, and less than 5 percent false alarm rate in one SYN flooding and two port scanning attack types.

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UWB통신 시스템을 위한 새로운 펄스생성 방법 및 수신 알고리즘 (A new algorithm of pulse generation and detection for UWB communication system)

  • 김건수;윤상훈;정정화;이경국
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2003년도 하계종합학술대회 논문집 I
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    • pp.242-245
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    • 2003
  • This paper introduces a new algorithm of pulse generation and detection for UWB communication system. The existing UWB systems using Gaussian pulse have some difficulties to cope with bandwidth limitation and frequency transition. Moreover. the system sensitivity to channel noise has made the processes of acquisition and tacking difficult. in this paper, we introduce a new pulse generation method which is able to control the bandwidth and center frequency applying modulation method. thus could improve the detection performance of receiving algorithm. Also, we made a system to search maximum perk by applying the proposed algorithm and consequently could guarantee the correct detection. By the result of simulation, when accumulate 10 times at every 2dB band shifting from 0 to 18dB on AWGN channel, we could confirm the proposed method has 97.4% PDR(Pulse Detection Rate) and 1.868% FAR(False Alarm Rate) performance at 4dB SNR and 15% transmission power threshold level.

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실시간 영상처리를 이용한 표면흠검사기 개발 (The Development of Surface Inspection System Using the Real-time Image Processing)

  • 이종학;박창현;정진양
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2000년도 제15차 학술회의논문집
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    • pp.171-171
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    • 2000
  • We have developed m innovative surface inspection system for automated quality control for steel products in POSCO. We had ever installed the various kinds of surface inspection systems, such as a linear CCD and a laser typed surface inspection systems at cold rolled strips production lines. But, these systems cannot fulfill the sufficient detection and classification rate, and real time processing performance. In order to increase detection and classification rate, we have used the Dark, Bright and Transition Field illumination and area type CCD camera, and fur the real time image processing, parallel computing has been used. In this paper, we introduced the automatic surface inspection system and real time image processing technique using the Object Detection, Defect Detection, Classification algorithms and its performance obtained at the production line.

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통계적 기법을 이용한 화자변화 검출 실험 (A Speaker Change Detection Experiment that Uses a Statistical Method)

  • 이경록;김진영
    • 음성과학
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    • 제8권4호
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    • pp.59-72
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    • 2001
  • In this paper, we experimented with speaker change detection that uses a statistical method for NOD (News On Demand) service. A specified speaker's change can find out content of each data in speech if analysed because it means change of data contents in news data. Speaker change detection acts as preprocessor that divide input speech by speaker. This is an important preprocessor phase for speaker tracking. We detected speaker change using GLR(generalized likelihood ratio) distance base division and BIC (Bayesian information criterion) base division among matrix method. An experiment verified speaker change point using BIC base division after divide by speaker unit using GLR distance base method first. In the experimental result, FAR (False Alarm Rate) was 63.29 in high noise environment and FAR was 54.28 in low noise environment in MDR (Missed Detection Rate) 15% neighborhood.

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Privacy Inferences and Performance Analysis of Open Source IPS/IDS to Secure IoT-Based WBAN

  • Amjad, Ali;Maruf, Pasha;Rabbiah, Zaheer;Faiz, Jillani;Urooj, Pasha
    • International Journal of Computer Science & Network Security
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    • 제22권12호
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    • pp.1-12
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    • 2022
  • Besides unexpected growth perceived by IoT's, the variety and volume of threats have increased tremendously, making it a necessity to introduce intrusion detections systems for prevention and detection of such threats. But Intrusion Detection and Prevention System (IDPS) inside the IoT network yet introduces some unique challenges due to their unique characteristics, such as privacy inference, performance, and detection rate and their frequency in the dynamic networks. Our research is focused on the privacy inferences of existing intrusion prevention and detection system approaches. We also tackle the problem of providing unified a solution to implement the open-source IDPS in the IoT architecture for assessing the performance of IDS by calculating; usage consumption and detection rate. The proposed scheme is considered to help implement the human health monitoring system in IoT networks

환경변화에 강인한 눈 검출 알고리즘 성능향상 연구 (Performance Improvement for Robust Eye Detection Algorithm under Environmental Changes)

  • 하진관;문현준
    • 디지털융복합연구
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    • 제14권10호
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    • pp.271-276
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    • 2016
  • 본 논문에서는 조명 및 Pose 등의 다양한 환경변화에 강인한 얼굴 및 눈 검출 알고리즘을 제안한다. 일반적으로 눈 검출은 얼굴검출과 동시에 수행되며 조명 및 Pose의 변화에 따라 검출 성능에 영향을 준다. 본 논문에서는 Modified Census Transform 알고리즘 사용하여 환경변화에 강인한 얼굴검출을 수행한다. 눈은 얼굴영역의 중요한 특징으로 주변의 조명 변화 및 안경 등의 다양한 요인으로 검출 성능의 저하 요인이 된다. 이러한 문제점의 해결을 위하여 Gabor transformation과 Feature from Accelerated Segment Test 알고리즘 기반의 눈 검출 알고리즘을 제안한다. 제안된 얼굴검출 알고리즘은 27.4ms의 검출속도와 98.4%의 검출율을 보이며, 눈 검출 알고리즘의 경우 36.3ms의 검출속도와 96.4%의 검출율을 보이는 것을 확인하였다.

적외선 센서 기반의 사람/차량 탐지 적응 알고리즘 (An Adaptive Person/Vehicle Detection Algorithm for PIR Sensor)

  • 김영만;박장호;김이형;박홍재
    • 한국정보과학회논문지:컴퓨팅의 실제 및 레터
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    • 제15권8호
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    • pp.577-581
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    • 2009
  • 최근 유비쿼터스 컴퓨팅과 유비쿼터스 네트워크를 활용하여 새로운 서비스들을 개발하려는 노력이 활발히 진행 중이며, 이에 관련된 기술의 중요성도 급증하고 있다. 특히 감시정찰 센서네트워크의 핵심 구성요소인 저가의 경량 센서노드에서 측정한 미가공 데이터(raw data)를 사용하여 침입 물체의 실시간 탐지, 식별, 추적 및 예측하기 위한 디지털 신호처리 기술은 주요 기술 중 하나이다. 본 논문에서는 감시정찰 센서네트워크의 핵심 구성요소인 센서노드의 적외선 센서에서 측정한 척외선 미가공 데이터를 사용하여 사람과 차량을 탐지할 수 있는 디지털 신호처리 알고리즘을 설계 및 구현한다. 알고리즘의 주 목표는 감사정찰용 센서노드의 탐지 신뢰성을 높이기 위하여 높은 침입물체 탐지 성공률(success rate)과 낮은 허위신고(false alarm) 횟수를 갖도록 하는 것이다. 성능평가 결과에 의하면 제안한 APIDA 알고리즘은 평지일 경우 90% 이상의 탐지 성공률과 2회 이하의 허위신고 횟수를 가지는 것을 확인할 수 있었다.

외래내원 여성의 적극적 유방암 조기검진행위 영향 요인 (Factors Affecting Active Early Detection Behaviors of Breast Cancer in Outpatients)

  • 이창현;김현주;김영임
    • 여성건강간호학회지
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    • 제16권2호
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    • pp.126-136
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    • 2010
  • Purpose: This study was done to evaluate factors affecting active early detection behaviors of breast cancer and performance rate of breast self examination (BSE), physical examination and mammography. Methods: The participants were 264 women from an outpatient breast clinic of a university hospital and materials were collected from March 2007 to February 2008 using a structured questionnaire. The data were analyzed using $x^2$ test, logistic analysis. Results: The rate for BSE was 58.3%, for physical examination, 55.3% and for mammography experience, 63.4%. Women with all of these active early detection behaviors accounted for 31.8% of the participants. Various factors such as age, income, marital status, and menopause showed increased significant performance rate. The explanation power of logistic model was 48.5%, and was significant for age, income and health belief. Factors related to high performance rate were being over 40 years of age, high income and high health belief score. Conclusion: Active early detection behaviors were not high in spite of marked increases in breast cancer incidence. Encouragement for women practicing early detection behavior is important, but there is also a need to develop interest and support for the low performance group. More sustained education and public relations are needed to further improve active early detection behavior.