• 제목/요약/키워드: Human Information

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2D Human Pose Estimation based on Object Detection using RGB-D information

  • Park, Seohee;Ji, Myunggeun;Chun, Junchul
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제12권2호
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    • pp.800-816
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    • 2018
  • In recent years, video surveillance research has been able to recognize various behaviors of pedestrians and analyze the overall situation of objects by combining image analysis technology and deep learning method. Human Activity Recognition (HAR), which is important issue in video surveillance research, is a field to detect abnormal behavior of pedestrians in CCTV environment. In order to recognize human behavior, it is necessary to detect the human in the image and to estimate the pose from the detected human. In this paper, we propose a novel approach for 2D Human Pose Estimation based on object detection using RGB-D information. By adding depth information to the RGB information that has some limitation in detecting object due to lack of topological information, we can improve the detecting accuracy. Subsequently, the rescaled region of the detected object is applied to ConVol.utional Pose Machines (CPM) which is a sequential prediction structure based on ConVol.utional Neural Network. We utilize CPM to generate belief maps to predict the positions of keypoint representing human body parts and to estimate human pose by detecting 14 key body points. From the experimental results, we can prove that the proposed method detects target objects robustly in occlusion. It is also possible to perform 2D human pose estimation by providing an accurately detected region as an input of the CPM. As for the future work, we will estimate the 3D human pose by mapping the 2D coordinate information on the body part onto the 3D space. Consequently, we can provide useful human behavior information in the research of HAR.

다중 시점 영상 시퀀스를 이용한 강인한 행동 인식 (Robust Action Recognition Using Multiple View Image Sequences)

  • 아마드;이성환
    • 한국정보과학회:학술대회논문집
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    • 한국정보과학회 2006년도 가을 학술발표논문집 Vol.33 No.2 (B)
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    • pp.509-514
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    • 2006
  • Human action recognition is an active research area in computer vision. In this paper, we present a robust method for human action recognition by using combined information of human body shape and motion information with multiple views image sequence. The principal component analysis is used to extract the shape feature of human body and multiple block motion of the human body is used to extract the motion features of human. This combined information with multiple view sequences enhances the recognition of human action. We represent each action using a set of hidden Markov model and we model each action by multiple views. This characterizes the human action recognition from arbitrary view information. Several daily actions of elderly persons are modeled and tested by using this approach and they are correctly classified, which indicate the robustness of our method.

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A Framework for Human Motion Segmentation Based on Multiple Information of Motion Data

  • Zan, Xiaofei;Liu, Weibin;Xing, Weiwei
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제13권9호
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    • pp.4624-4644
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    • 2019
  • With the development of films, games and animation industry, analysis and reuse of human motion capture data become more and more important. Human motion segmentation, which divides a long motion sequence into different types of fragments, is a key part of mocap-based techniques. However, most of the segmentation methods only take into account low-level physical information (motion characteristics) or high-level data information (statistical characteristics) of motion data. They cannot use the data information fully. In this paper, we propose an unsupervised framework using both low-level physical information and high-level data information of human motion data to solve the human segmentation problem. First, we introduce the algorithm of CFSFDP and optimize it to carry out initial segmentation and obtain a good result quickly. Second, we use the ACA method to perform optimized segmentation for improving the result of segmentation. The experiments demonstrate that our framework has an excellent performance.

REPEATOME: A Database for Repeat Element Comparative Analysis in Human and Chimpanzee

  • Woo, Tae-Ha;Hong, Tae-Hui;Kim, Sang-Soo;Chung, Won-Hyong;Kang, Hyo-Jin;Kim, Chang-Bae;Seo, Jung-Min
    • Genomics & Informatics
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    • 제5권4호
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    • pp.179-187
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    • 2007
  • An increasing number of primate genomes are being sequenced. A direct comparison of repeat elements in human genes and their corresponding chimpanzee orthologs will not only give information on their evolution, but also shed light on the major evolutionary events that shaped our species. We have developed REPEATOME to enable visualization and subsequent comparisons of human and chimpanzee repeat elements. REPEATOME (http://www.repeatome.org/) provides easy access to a complete repeat element map of the human genome, as well as repeat element-associated information. It provides a convenient and effective way to access the repeat elements within or spanning the functional regions in human and chimpanzee genome sequences. REPEATOME includes information to compare repeat elements and gene structures of human genes and their counterparts in chimpanzee. This database can be accessed using comparative search options such as intersection, union, and difference to find lineage-specific or common repeat elements. REPEATOME allows researchers to perform visualization and comparative analysis of repeat elements in human and chimpanzee.

국소 구문 관계 및 의미 공기 정보에 기반한 명사 의미 모호성 해소 (Word Sense Disambiguation Based on Local Syntactic Relations and Sense Co-occurrence Information)

  • 김영길;홍문표;김창현;서영애;양성일;류철;황은하;최승권;박상규
    • 한국정보과학회 언어공학연구회:학술대회논문집(한글 및 한국어 정보처리)
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    • 한국정보과학회언어공학연구회 2002년도 제14회 한글 및 한국어 정보처리 학술대회
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    • pp.184-188
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    • 2002
  • 본 논문에서는 단순히 주변에 위치하는 어휘들간의 문맥 공기 정보를 이용하는 방식과는 달리 국소 구문 관계 및 의미 공기 정보에 기반한 명사 의미 모호성 해소 방안을 제안한다. 기존의 WSD 방법은 구조 분석의 어려움으로 인하여 문장의 구문 관계를 충분히 고려하지 못하고 주변 어휘들과의 공기 관계로 그 의미를 파악하려 했다. 그러나 본 논문에서는 동사구의 논항 의미 관계뿐만 아니라 명사구내에서의 의미 관계도 고려한 국소 구문관계를 고려한 명사 의미 모호성 해소 방법을 제안한다. 이 때, 명사들의 의미는 자동번역 시스템의 목적에 맞게 공기(co-occurrence)하는 동사들에 따라 분류하였다. 그리고 한중 자동 번역 지식으로 사용되는 명사 의미 코드가 부착된 74,880 의미 격틀의 의미 공기정보를 이용하였으며 형태소 태깅된 말뭉치로부터 의미모호성이 발생하지 않게 의미 공기정보 및 명사구 의미 공기 정보를 자동으로 추출하였다. 실험 결과, 의미 모호성이 발생하는 명사들에 대해서 83.9%의 의미 모호성 해소 정확률을 보였다.

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Safety Assessment in Operation of Human-centered Robots - An Information-theoretic Approach

  • Choi, Gi-Heung
    • International Journal of Safety
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    • 제5권2호
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    • pp.12-17
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    • 2006
  • Operations of human-centered robot, in general, facilitates the creation of new process that may potentially harm the human operators. Design of safety-guaranteed operation of human-centered robots is, therefore, important since it determines the ultimate outcomes of operations involving safety of human operators. This study discusses the application of information-theoretic measures to safety assessment of human-centered robotic operations. Some examples are given.

Verb Pattern Based Korean-Chinese Machine Translation System

  • Kim, Changhyun;Kim, Young-Kil;Hong, Munpyo;Seo, Young-Ae;Yang, Sung-Il;Park, Sung-Kwon
    • 한국언어정보학회:학술대회논문집
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    • 한국언어정보학회 2002년도 Language, Information, and Computation Proceedings of The 16th Pacific Asia Conference
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    • pp.157-165
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    • 2002
  • This paper describes our ongoing Korean-Chinese machine translation system, which is based on verb patterns. A verb pattern consists of a source language pattern part for analysis and a target language pattern part for generation. Knowledge description on lexical level makes it easy to achieve accurate analyses and natural, correct generation. These features are very important and effective in machine translation between languages with quite different linguistic structures including Korean and Chinese. We performed a preliminary evaluation of our current system and reported the result in the paper.

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가정생활 정보화 콘텐츠 구성과 전문 직업 개발을 위한 연구 : 생활과학 전공자의 정보화 요구 실태분석을 통하여 (Research on the Contents Construction for the Information-oriented Family Life and Development of Professional Occupations : Based on the Analysis of the Present Condition of Information Needs among the Human Ecology Majors)

  • 윤소영
    • 가정과삶의질연구
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    • 제21권3호
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    • pp.75-85
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    • 2003
  • This study is aimed at sowing two purposes. The first is to analyze the real condition and demand of profession development from the human ecology majors. The second is to develop necessary methods in which ordinary people can collect necessary information about family life. Related questionnaire was distributed to 147 the human ecology majors, and analysis was performed on the several web sites providing with information related to family life. Web sites such as“www.yahoo.com”and“www.naver.com”were included in the analysis. Questionnaire consisted of questions about whether the students majoring in the human ecology were familiar with the information-related terms or futuristics-related books, and whether they have ever taken the related courses in college. The results of analysis are as follows: First, analysis shows that the present level of the human ecology majors' information orientation and networking experiences is extremely low. Secondly, according to the analysis on whether they have optimistic or pessimistic attitude toward the contemporay informatized society, the human ecology majors have rather optimistic attitude in group while having pessimistic one individually. As to their response to the question about whether informatized society is connected with industrial society or not, the human ecology majors are divided in neatly equal ratio. Thirdly, analysis of the human ecology majors' understanding of profession relevant to their major indicates that they have high level of perception and information about the professions of fashion designing, traditional garment designing, nutrition counselling or consumer counselling. On the other hand, they are not familiar with the information about professions such as professional QR Programming, eating habit-related information business and family welfare. Lastly, level of web sites supplying information about family life is fragmentary. Especially, probe into the directories providing with necessary information of family life subdivided into special areal of life shows that they lack systematic organization making more convenient consumer use.

인간의 지각적인 시스템을 기반으로 한 연속된 영상 내에서의 움직임 영역 결정 및 추적 (Object Motion Detection and Tracking Based on Human Perception System)

  • 정미영;최석림
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2003년도 하계종합학술대회 논문집 Ⅳ
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    • pp.2120-2123
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    • 2003
  • This paper presents the moving object detection and tracking algorithm using edge information base on human perceptual system The human visual system recognizes shapes and objects easily and rapidly. It's believed that perceptual organization plays on important role in human perception. It presents edge model(GCS) base on extracted feature by perceptual organization principal and extract edge information by definition of the edge model. Through such human perception system I have introduced the technique in which the computers would recognize the moving object from the edge information just like humans would recognize the moving object precisely.

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개체명 구성 원리를 이용한 교사학습 기반의 한국어 개체명 인식 (Korean Named Entity Recognition Based on Supervised Learning Using Named Entily Construction Principles)

  • 황이규;이현숙;정의석;윤보현;박상규
    • 한국정보과학회 언어공학연구회:학술대회논문집(한글 및 한국어 정보처리)
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    • 한국정보과학회언어공학연구회 2002년도 제14회 한글 및 한국어 정보처리 학술대회
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    • pp.111-117
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    • 2002
  • 개체명 인식은 질의응답(QA), 정보 주줄(IE), 텍스트 마이닝 시스템의 성능 향상에 중요한 역할을 담당한다. 이 논문에서는 교사학습 기반의 한국어 개체명 인식에 대해 설명한다. 한국어에서 많은 개체명들이 하나 이상의 단어로 구성되어 있으며, 개체명을 구성하는 단어 사이에는 의존 관계가 존재하고, 개체명과 개체명 주위의 단어 사이에도 문맥적 의존관계를 가지고 있다. 본 논문에서는 가변길이의 개체명과 주변 문맥의 학습을 위해 트라이그램을 이용한 HMM을 사용하였으며, 자료 부족 문제를 해소하기 위해 어휘 기반이 아닌 부개체 유형 기반의 학습을 수행하였다. 학습된 개체명 인식 시스템을 이용하여 경제 분야의 신문 기사에 대한 실험 결과, 84.4%의 정확률과 90.9%의 재현률을 보였다.

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