• 제목/요약/키워드: human skeleton

검색결과 129건 처리시간 0.032초

Design. Synthesis and Antitumor Evaluation of Terpyridine Derivatives Containing Pyridines at 4'- Position

  • Lim, Hyun-Tae;Moon, Yoon-Soo;Zhao, Longxuan;Kim, Eun-Kyung;Kim, Tae-Hyung;Lee, Eung-Seok
    • 대한약학회:학술대회논문집
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    • 대한약학회 2002년도 Proceedings of the Convention of the Pharmaceutical Society of Korea Vol.2
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    • pp.347.3-347.3
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    • 2002
  • Recent study indicated that terpyridine and its derivatives displayed highly active antitumor properties. In this presentation. derivatives of terpyridines having three pyridine moieties at 2',4',6'-position of central pyridine skeleton were prepared, and evaluated their cytotoxicity against several human cancer cell lines and topoisomerase I inhibitory activities. Most of the prepared compounds showed strong cytotoxicity compared to doxorubicln. In addition. several compounds displayed better cytotoxicity than that of doxorubicin. In addition, several compounds displayed better cytotoxicity than that of doxorubicin. Structure-activity relationship study was perfomed to be indicated that [2.2':6',2']terpyidine skeleton is important to show strong xytotoxicity. Significant topoxicity. Significant topoisomerase I inhibitory activity was not observed for prepared compounds.

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딥러닝을 이용한 사용자 구분 및 위치추적 알고리즘 (User classification and location tracking algorithm using deep learning)

  • 박정탁;이솔;박병서;서영호
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2022년도 춘계학술대회
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    • pp.78-79
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    • 2022
  • 본 논문에서는 RGB-D 카메라를 이용하여 획득한 다수 사용자의 정규화된 스켈레톤의 신체 비율 분석을 통해 각 사용자의 구분 및 위치를 추적하는 기법을 제안한다. 이를 위해 3D 포인트 클라우드로부터 각 사용자의 3D 스켈레톤을 추출한 뒤 신체 비율 정보를 저장한다. 이후 저장된 신체 비율 정보를 전체 프레임에서 출력된 신체 비율 데이터와 유사도를 비교하여 전체 영상에서의 사용자 구분 및 위치추적 알고리즘을 제안한다.

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인체 자세 인식 딥러닝을 이용한 운동 자세 훈련 시스템 개발 (Development of exercise posture training system using deep learning for human posture recognition)

  • 장재호;지준환;김두환;최민기;윤태진
    • 한국컴퓨터정보학회:학술대회논문집
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    • 한국컴퓨터정보학회 2020년도 제62차 하계학술대회논문집 28권2호
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    • pp.289-290
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    • 2020
  • 본 논문에서는 오픈 소스인 openpose skeleton tracking 기술을 이용하여 특정 운동 동작을 영상처리 기술과 딥러닝 기술로 인체 자세에 대해서 인지와 상황 판단하여 운동 동작에 대한 인식 결과를 도출할 수 있다. 먼저 입력받은 영상을 전달받아서 딥러닝 인식 시스템를 통해 인식 결과을 추출한 뒤 비교, 분석한 후에 사전 등록된 운동 동작 명칭으로 화면에 표시하여 이용자가 정확한 동작을 취할 수 있도록 지도하는 데 활용할 수 있다. 또한, 이 기술은 행동 인식부터 얼굴 인식, 손동작 인식 등에 다양하게 활용할 수 있다.

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세 가지 주요 검도 공격 동작에서의 근-골격계 응력과 번형률 해석에 관한 연구 (A Study on the Stress and Strain Analysis of Human Muscle Skeletal Model in Kendo Three Typical Attack Motions)

  • 이중현;이영신
    • 한국정밀공학회지
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    • 제25권9호
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    • pp.126-134
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    • 2008
  • Kendo is one of the popular sports in modem life. Head, wrist and thrust attack are the fast skill to get a score on a match. Human muscle skeletal model was developed for biomechanical study. The human model was consists with 19 bone-skeleton and 122 muscles. Muscle number of upper limb, trunk and lower limb part are 28, 60, 34 respectively. Bone was modeled with 3D beam element and muscle was modeled with spar element. For upper limb muscle modelling, rectus abdominis, trapezius, deltoideus, biceps brachii, triceps brachii muscle and other main muscles were considered. Lower limb muscle was modeled with gastrocenemius, gluteus maximus, gluteus medius and related muscles. The biomechanical stress and strain analysis of human muscle was conducted by proposed human bone-muscle finite element analysis model under head, wrist and thrust attack for kendo training.

충돌안전도 해석을 위한 유아 인체모델 개발에 관한 연구 (A study on the 3Yr. old child human model for crashworthiness simulation)

  • 김헌영;김상범
    • 산업기술연구
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    • 제22권B호
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    • pp.45-50
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    • 2002
  • Airbag systems have improved the occupant safety in reducing the injuries of driver and passenger during collisions. They have occasionally caused fatalities; especially to small occupant and children. Recent airbag related fatalities of children have raised serious concerns on how to evaluate the safety of children in various crash environments. This paper present the development of the 3-year-old human model. Child human model is composed of skin, skeleton and joints. The positions of joint and mass properties of body segments are calculated from ARB(Ariticulated Rigid Body) program GEBOD. To verify the developed human model, ROM simulation and OOP simulations are conducted.

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인간 친화적 설계 시스템을 위한 디지털 인체 모델 구성 연구 (Digital Human Modeling for Human-centered CAD System)

  • 정문기;이건우;조현덕;김태우;;이상헌
    • 한국CDE학회논문집
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    • 제12권6호
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    • pp.429-440
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    • 2007
  • The purpose of this research is to develop the Human-centered CAD system in which human factors can be considered during the design stage. For this system there are several issues to research, like the digital human modeling technology, the definition of interactions between human and product, the simulation of human motion when using the product, and the bio-mechanical analysis of human, etc. This paper introduces how to construct the kinematical structure of the digital human model. For our digital human model H-ANIM, the international specification of humanoid animation is referenced. And we added the skeleton geometry and the skin surfaces to our model. And it can manipulate its joints by forward kinematics. Also the IKAN inverse kinematics algorithm is adopted to support the posture prediction of the digital human model in the product environment. All of these ideas are implemented using CAD API so that we can apply these functions to the current commercial CAD systems. In this manner, the human factor issues can be effectively taken into account at the early design phase and the costs of bio-mechanical evaluation will be significantly reduced.

Motion Capture of the Human Body Using Multiple Depth Sensors

  • Kim, Yejin;Baek, Seongmin;Bae, Byung-Chull
    • ETRI Journal
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    • 제39권2호
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    • pp.181-190
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    • 2017
  • The movements of the human body are difficult to capture owing to the complexity of the three-dimensional skeleton model and occlusion problems. In this paper, we propose a motion capture system that tracks dynamic human motions in real time. Without using external markers, the proposed system adopts multiple depth sensors (Microsoft Kinect) to overcome the occlusion and body rotation problems. To combine the joint data retrieved from the multiple sensors, our calibration process samples a point cloud from depth images and unifies the coordinate systems in point clouds into a single coordinate system via the iterative closest point method. Using noisy skeletal data from sensors, a posture reconstruction method is introduced to estimate the optimal joint positions for consistent motion generation. Based on the high tracking accuracy of the proposed system, we demonstrate that our system is applicable to various motion-based training programs in dance and Taekwondo.

Robust 2D human upper-body pose estimation with fully convolutional network

  • Lee, Seunghee;Koo, Jungmo;Kim, Jinki;Myung, Hyun
    • Advances in robotics research
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    • 제2권2호
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    • pp.129-140
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    • 2018
  • With the increasing demand for the development of human pose estimation, such as human-computer interaction and human activity recognition, there have been numerous approaches to detect the 2D poses of people in images more efficiently. Despite many years of human pose estimation research, the estimation of human poses with images remains difficult to produce satisfactory results. In this study, we propose a robust 2D human body pose estimation method using an RGB camera sensor. Our pose estimation method is efficient and cost-effective since the use of RGB camera sensor is economically beneficial compared to more commonly used high-priced sensors. For the estimation of upper-body joint positions, semantic segmentation with a fully convolutional network was exploited. From acquired RGB images, joint heatmaps accurately estimate the coordinates of the location of each joint. The network architecture was designed to learn and detect the locations of joints via the sequential prediction processing method. Our proposed method was tested and validated for efficient estimation of the human upper-body pose. The obtained results reveal the potential of a simple RGB camera sensor for human pose estimation applications.

PoseNet과 GRU를 이용한 Skeleton Keypoints 기반 낙상 감지 (Human Skeleton Keypoints based Fall Detection using GRU)

  • 강윤규;강희용;원달수
    • 한국산학기술학회논문지
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    • 제22권2호
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    • pp.127-133
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    • 2021
  • 낙상 판단을 위한 최근 발표되는 연구는 RNN(Recurrent Neural Network)을 이용한 낙상 동작 특징 분석과 동작 분류에 집중되어 있다. 웨어러블 센서를 기반으로 한 접근 방식은 높은 탐지율을 제공하나 사용자의 착용 불편으로 보편화 되지 못했고 최근 영상이나 이미지 기반에 딥러닝 접근방식을 이용한 낙상 감지방법이 소개 되었다. 본 논문은 2D RGB 저가 카메라에서 얻은 영상을 PoseNet을 이용해 추출한 인체 골격 키포인트(Keypoints) 정보로 머리와 어깨의 키포인트들의 위치와 위치 변화 가속도를 추정함으로써 낙상 판단의 정확도를 높이기 위한 감지 방법을 연구하였다. 특히 낙상 후 자세 특징 추출을 기반으로 Convolutional Neural Networks 중 Gated Recurrent Unit 기법을 사용하는 비전 기반 낙상 감지 솔루션을 제안한다. 인체 골격 특징 추출을 위해 공개 데이터 세트를 사용하였고, 동작분류 정확도를 높이는 기법으로 코, 좌우 눈 그리고 양쪽 귀를 포함하는 머리와 어깨를 하나의 세그먼트로 하는 특징 추출 방법을 적용해, 세그먼트의 하강 속도와 17개의 인체 골격 키포인트가 구성하는 바운딩 박스(Bounding Box)의 높이 대 폭의 비율을 융합하여 실험을 하였다. 제안한 방법은 기존 원시골격 데이터 사용 기법보다 낙상 탐지에 보다 효과적이며 실험환경에서 약 99.8%의 성공률을 보였다.

Shock Graph for Representation and Modeling of Posture

  • Tahir, Nooritawati Md.;Hussain, Aini;Abdul Samad, Salina;Husain, Hafizah
    • ETRI Journal
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    • 제29권4호
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    • pp.507-515
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    • 2007
  • Skeleton transform of which the medial axis transform is the most popular has been proposed as a useful shape abstraction tool for the representation and modeling of human posture. This paper explains this proposition with a description of the areas in which skeletons could serve to enable the representation of shapes. We present algorithms for two-dimensional posture modeling using the developed simplified shock graph (SSG). The efficacy of SSG extracted feature vectors as shape descriptors are also evaluated using three different classifiers, namely, decision tree, multilayer perceptron, and support vector machine. The paper concludes with a discussion of the issues involved in using shock graphs to model and classify human postures.

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