• 제목/요약/키워드: Joint Detection

검색결과 404건 처리시간 0.03초

Design and Implementation of Depth Image Based Real-Time Human Detection

  • Lee, SangJun;Nguyen, Duc Dung;Jeon, Jae Wook
    • JSTS:Journal of Semiconductor Technology and Science
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    • 제14권2호
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    • pp.212-226
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    • 2014
  • This paper presents the design and implementation of a pipelined architecture and a method for real-time human detection using depth image from a Time-of-Flight (ToF) camera. In the proposed method, we use Euclidean Distance Transform (EDT) in order to extract human body location, and we then use the 1D, 2D scanning window in order to extract human joint location. The EDT-based human extraction method is robust against noise. In addition, the 1D, 2D scanning window helps extracting human joint locations easily from a distance image. The proposed method is designed using Verilog HDL (Hardware Description Language) as the dedicated hardware architecture based on pipeline architecture. We implement the dedicated hardware architecture on a Xilinx Virtex6 LX750 Field Programmable Gate Arrays (FPGA). The FPGA implementation can run 80 MHz of maximum operating frequency and show over 60fps of processing performance in the QVGA ($320{\times}240$) resolution depth image.

생체 임픽던스 측정에 의한 상지 운동 감지 시스템 (A Human Arm Movement Detection System Using Electrical Bioimpedance Measurement)

  • 김종찬;김수찬;남기창;박민용;김경환;김덕원
    • 대한전기학회논문지:시스템및제어부문D
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    • 제51권8호
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    • pp.374-379
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    • 2002
  • In this study, we developed a new human arm movement detection system using electrical bio-impedance method with several skin-electrodes. The correlation coefficients of the joint angle and the impedance change from human arm movement was obtained using a goniometer and impedance measurement system developed in this study. The correlation coefficients of the wrist and the elbow movements were 0.94 and -0.99, respectively. This system was applied to control a robotic arm by converting the measured impedance to joint angle to confirm the validity of the proposed system. In conclusion, we confirmed that this system can control the robotic arm according to arm movement without any limitation of movement. This system showed possibility that upper arm movement could be easily measured by impedance measurement system with a few skin-electrodes.

Defect Detection in Friction Stir Welding by Online Infrared Thermography

  • Kryukov, Igor;Hartmann, Michael;Bohm, Stefan;Mund, Malte;Dilger, Klaus;Fischer, Fabian
    • Journal of Welding and Joining
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    • 제32권5호
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    • pp.50-57
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    • 2014
  • Friction Stir Welding (FSW) is a complex process with several mutually interdependent parameters. A slight difference from known settings may lead to imperfections in the stirred zone. These inhomogeneities affect on the mechanical properties of the FSWed joints. In order to prevent the failure of the welded joint it is necessary to detect the most critical defects non-destructive. Especially critical defects are wormhole and lack of penetration (LOP), because of the difficulty of detection. Online thermography is used process-accompanying for defect detecting. A thermographic camera with a fixed position relating to the welding tool measures the heating-up and the cool down of the welding process. Lap joints with sound weld seam surfaces are manufactured and monitored. Different methods of evaluation of heat distribution and intensity profiles are introduced. It can be demonstrated, that it is possible to detect wormhole and lack of penetration as well as surface defects by analyzing the welding and the cooling process of friction stir welding by passive online thermography measurement. Effects of these defects on mechanical properties are shown by tensile testing.

검출 복잡도를 감소 시키는 Depth-first branch and bound 알고리즘 기반 디코더 (Depth-first branch-and-bound-based decoder with low complexity)

  • 이은주;;윤기완
    • 한국정보통신학회논문지
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    • 제13권12호
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    • pp.2525-2532
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    • 2009
  • 본 논문에서는 uncoded V-BLAST(Vertical Bell Laboratories Layered Space Time) 시스템에서 PSK 신호들을 joint-detection하기 위한 fast sphere decoder를 제안한다. 이른바 PSD라 불리는 제안된 디코더는 예비처리단계와 검색단계로 구성된다. PSD의 검색단계에서는 depth-first branch and bound 알고리즘을 통해 검출 후보가 되는 신호원들의 최상우선순위(best-first order)를 정하고 이 순위에 따라 신호를 검출하게 된다. 이 때 제안된 디코더는 최상우선순위(best-first order)를 정하는데 있어 계산복잡성을 줄이는 새로운 방법을 제안한다. 시뮬레이션 결과는 PSD에 의해 시스템의 복잡성은 줄이면서 시스템 성능은 ML과 동일하게 유지할 수 있음을 보여준다.

Damage state evaluation of experimental and simulated bolted joints using chaotic ultrasonic waves

  • Fasel, T.R.;Kennel, M.B.;Todd, M.D.;Clayton, E.H.;Park, G.
    • Smart Structures and Systems
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    • 제5권4호
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    • pp.329-344
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    • 2009
  • Ultrasonic chaotic excitations combined with sensor prediction algorithms have shown the ability to identify incipient damage (loss of preload) in a bolted joint. In this study we examine a physical experiment on a single-bolt aluminum lap joint as well as a three-dimensional physics-based simulation designed to model the behavior of guided ultrasonic waves through a similarly configured joint. A multiple bolt frame structure is also experimentally examined. In the physical experiment each signal is imparted to the structure through a macro-fiber composite (MFC) patch on one side of the lap joint and sensed using an equivalent MFC patch on the opposite side of the joint. The model applies the waveform via direct nodal displacement and 'senses' the resulting displacement using an average of the nodal strain over an area equivalent to the MFC patch. A novel statistical classification feature is developed from information theory concepts of cross-prediction and interdependence. This damage detection algorithm is used to evaluate multiple damage levels and locations.

광 통신에 이용되는 배열 수신기의 해석 (Analysis of array receivers for use in optical communication)

  • 성평식
    • 한국컴퓨터산업학회논문지
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    • 제8권3호
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    • pp.173-180
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    • 2007
  • 본 논문은 대기 공간에서 신호장과 잡음장을 처리하기 위하여 point-detector array검파 시스템을 구성한 것이다. 이것들을 이용하여 측정한 직접검파 최대출력은 이론치와 잘 일치함을 확인하였고 또한 실험치는 joint-Gaussion 이론곡선과 K-분포 곡선과도 일치 하였다.

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토크 오차 감소를 위한 디스크형 커플링을 갖는 토크센서가 내장된 로봇 관절모듈 (Joint Module with Joint Torque Sensor Having Disk-type Coupling for Torque Error Reduction)

  • 민재경;김휘수;송재복
    • 대한기계학회논문집A
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    • 제40권2호
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    • pp.133-138
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    • 2016
  • 기존에는 로봇 말단에 6축 힘/토크 센서를 부착하여 로봇의 힘제어 및 충돌감지를 수행하였지만, 이 방법은 매우 고가이고, 로봇의 몸체에서 발생한 충돌을 감지할 수 없었다. 이의 대안으로 각 관절에 관절 토크센서를 장착하였으나, 토크 측정 시에 발생하는 다양한 오차로 인하여 실제 적용에 한계가 있었다. 이러한 문제를 해결하고자 본 연구에서는 정확한 토크 측정을 위한 관절 토크센서 및 이를 포함하는 관절모듈을 개발하였다. 제안된 관절모듈은 로봇에 인가되는 모멘트 부하를 지지하고, 조립 시 발생하는 응력을 감소시키기 위하여 토크센서에 디스크형 커플링을 첨가하여 원하는 회전토크만을 효과적으로 측정할 수 있도록 하였다. 본 논문에서는 다양한 실험을 통하여 제안한 토크센서의 성능을 검증하였다.

산화아연(Zinc oxide) 나노입자와 은나노 와이어(Silver nanowire)를 함유한 Poly(vinylidene fluoride) 복합나노섬유 제조 및 동작 센서로의 적용 가능성 탐색 (Fabrication of Poly(Vinylidene Fluoride) Nanocomposite Fibers Containing Zinc Oxide Nanoparticles and Silver Nanowires and their Application in Textile Sensors for Motion Detection and Monitoring)

  • 양혁주;이승신
    • 한국의류학회지
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    • 제47권3호
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    • pp.577-592
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    • 2023
  • In this study, nanofiber-based textile sensors were developed for motion detection and monitoring. Poly(vinylidene fluoride) (PVDF) nanofibers containing zinc oxide (ZnO) nanoparticles and silver nanowires (AgNW) were fabricated using electrospinning. PVDF was chosen as a piezoelectric polymer, zinc oxide as a piezoelectric ceramic, and AgNW as a metal to improve electric conductivity. The PVDF/ZnO/AgNW nanocomposite fibers were used to develop a textile sensor, which was then incorporated into an elbow band to develop a wearable smart band. Changes in the output voltage and peak-to-peak voltage (Vp-p) generated by the joint's flexion and extension were investigated using a dummy elbow. The β-phase crystallinity of pure PVDF nanofibers was 58% when analyzed using Fourier transform infrared spectroscopy; however, the β-phase crystallinity increased to 70% in PVDF nanofibers containing ZnO and to 78% in PVDF nanocomposite fibers containing both ZnO and AgNW. The textile sensor's output voltage values varied with joint-bending angle; upon increasing the joint angle from 45° to 90° to 150°, the Vp-p value increased from 0.321 Vp-p to 0.542 Vp-p to 0.660 Vp-p respectively. This suggests that the textile sensor can be used to detect and monitor body movements.

Joint Reasoning of Real-time Visual Risk Zone Identification and Numeric Checking for Construction Safety Management

  • Ali, Ahmed Khairadeen;Khan, Numan;Lee, Do Yeop;Park, Chansik
    • 국제학술발표논문집
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    • The 8th International Conference on Construction Engineering and Project Management
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    • pp.313-322
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    • 2020
  • The recognition of the risk hazards is a vital step to effectively prevent accidents on a construction site. The advanced development in computer vision systems and the availability of the large visual database related to construction site made it possible to take quick action in the event of human error and disaster situations that may occur during management supervision. Therefore, it is necessary to analyze the risk factors that need to be managed at the construction site and review appropriate and effective technical methods for each risk factor. This research focuses on analyzing Occupational Safety and Health Agency (OSHA) related to risk zone identification rules that can be adopted by the image recognition technology and classify their risk factors depending on the effective technical method. Therefore, this research developed a pattern-oriented classification of OSHA rules that can employ a large scale of safety hazard recognition. This research uses joint reasoning of risk zone Identification and numeric input by utilizing a stereo camera integrated with an image detection algorithm such as (YOLOv3) and Pyramid Stereo Matching Network (PSMNet). The research result identifies risk zones and raises alarm if a target object enters this zone. It also determines numerical information of a target, which recognizes the length, spacing, and angle of the target. Applying image detection joint logic algorithms might leverage the speed and accuracy of hazard detection due to merging more than one factor to prevent accidents in the job site.

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Supervised learning-based DDoS attacks detection: Tuning hyperparameters

  • Kim, Meejoung
    • ETRI Journal
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    • 제41권5호
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    • pp.560-573
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    • 2019
  • Two supervised learning algorithms, a basic neural network and a long short-term memory recurrent neural network, are applied to traffic including DDoS attacks. The joint effects of preprocessing methods and hyperparameters for machine learning on performance are investigated. Values representing attack characteristics are extracted from datasets and preprocessed by two methods. Binary classification and two optimizers are used. Some hyperparameters are obtained exhaustively for fast and accurate detection, while others are fixed with constants to account for performance and data characteristics. An experiment is performed via TensorFlow on three traffic datasets. Three scenarios are considered to investigate the effects of learning former traffic on sequential traffic analysis and the effects of learning one dataset on application to another dataset, and determine whether the algorithms can be used for recent attack traffic. Experimental results show that the used preprocessing methods, neural network architectures and hyperparameters, and the optimizers are appropriate for DDoS attack detection. The obtained results provide a criterion for the detection accuracy of attacks.