• Title/Summary/Keyword: object-based video coding

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Moving Object Segmentation for MPEG-4 Object-based Coding (MPEG-4객체 분할 코팅을 위한 움직임 객체 분할)

  • Kim, Jun-Ki;Chang, Jun;Lee, Ho-Suk
    • Proceedings of the Korean Information Science Society Conference
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    • 2001.10b
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    • pp.385-387
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    • 2001
  • 비디오 객체 분할은 MPEG-4와 같은 객체 기반 코딩 단계를 위한 중요한 구성 요소이다. 새로운 MPEG-4 비디오 표준은 움직임 객체의 모양 정보를 고려하여 높은 효율의 부호화 뿐만 아니라 움직임 객체에 대한 내용기반 기능의 부호화를 수행한다. 본 논문은 비디오 시퀀스에서 움직임 객체 분할을 위한 새로운 알고리즘과 VOP(Video Object Plane) 추출 방법을 소개한다. 본 알고리즘은 첫 번째 프레임을 기준영상으로 설정한 후 두 개의 연속된 프레임 사이의 차이 값으로부터 시작된다. 즉 차이영상을 추출한 후 차이영상에 Canny 에지를 적용하고 다음 프레임의 영상에 Canny 에지와 morphologic일 연산을 적용하여 정확한 움직임 객체 에지(Moving Object Edge)를 생성한다. 이후 생성된 에지를 이용하여 VOP를 추출한다. VOP 추출 단계에서 더욱 정확한 움직임 객체 에지를 얻기 위하여 morphological 연산을 수행하였다.

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Implementation of A Multimedia Streaming System using MPEG-4 (MPEG-4 표준을 이용한 멀티미디어 스트리밍 시스템 구현)

  • 임동근;이정우;김선태;마평수;호요성
    • Journal of Broadcast Engineering
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    • v.6 no.3
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    • pp.215-224
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    • 2001
  • In recent days, research activities on multimedia services mainly focus on the multiplexing system with timing synchromization for media components, such as video, audio and text. The MPEG-4 standard emphasizes object-based coding which includes analysis and understanding of the Image content. Since in MPEG-4 we can define objects and encode them independently, we can manipulate and display each object for different applications. This feature of MPEG-4 is also vero useful for multimedia services, such as video streaming cia different network channels, digital versatile disc, internet TV, video E-mail, and so on. In this Paper, we implement a multimedia streaming system which is compliant with the MPEG-4 system and the MP4 file format.

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Using a Multi-Faced Technique SPFACS Video Object Design Analysis of The AAM Algorithm Applies Smile Detection (다면기법 SPFACS 영상객체를 이용한 AAM 알고리즘 적용 미소검출 설계 분석)

  • Choi, Byungkwan
    • Journal of Korea Society of Digital Industry and Information Management
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    • v.11 no.3
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    • pp.99-112
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    • 2015
  • Digital imaging technology has advanced beyond the limits of the multimedia industry IT convergence, and to develop a complex industry, particularly in the field of object recognition, face smart-phones associated with various Application technology are being actively researched. Recently, face recognition technology is evolving into an intelligent object recognition through image recognition technology, detection technology, the detection object recognition through image recognition processing techniques applied technology is applied to the IP camera through the 3D image object recognition technology Face Recognition been actively studied. In this paper, we first look at the essential human factor, technical factors and trends about the technology of the human object recognition based SPFACS(Smile Progress Facial Action Coding System)study measures the smile detection technology recognizes multi-faceted object recognition. Study Method: 1)Human cognitive skills necessary to analyze the 3D object imaging system was designed. 2)3D object recognition, face detection parameter identification and optimal measurement method using the AAM algorithm inside the proposals and 3)Face recognition objects (Face recognition Technology) to apply the result to the recognition of the person's teeth area detecting expression recognition demonstrated by the effect of extracting the feature points.

Moving Object Detection and Tracking in Multi-view Compressed Domain (비디오 압축 도메인에서 다시점 카메라 기반 이동체 검출 및 추적)

  • Lee, Bong-Ryul;Shin, Youn-Chul;Park, Joo-Heon;Lee, Myeong-Jin
    • Journal of Advanced Navigation Technology
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    • v.17 no.1
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    • pp.98-106
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    • 2013
  • In this paper, we propose a moving object detection and tracking method for multi-view camera environment. Based on the similarity and characteristics of motion vectors and coding block modes extracted from compressed bitstreams, validation of moving blocks, labeling of the validated blocks, and merging of neighboring blobs are performed. To continuously track objects for temporary stop, crossing, and overlapping events, a window based object updating algorithm is proposed for single- and multi-view environments. Object detection and tracking could be performed with an acceptable level of performance without decoding of video bitstreams for normal, temporary stop, crossing, and overlapping cases. The rates of detection and tracking are over 89% and 84% in multi-view environment, respectively. The rates for multi-view environment are improved by 6% and 7% compared to those of single-view environment.

ASM Algorithm Applid to Image Object spFACS Study on Face Recognition (영상객체 spFACS ASM 알고리즘을 적용한 얼굴인식에 관한 연구)

  • Choi, Byungkwan
    • Journal of Korea Society of Digital Industry and Information Management
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    • v.12 no.4
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    • pp.1-12
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    • 2016
  • Digital imaging technology has developed into a state-of-the-art IT convergence, composite industry beyond the limits of the multimedia industry, especially in the field of smart object recognition, face - Application developed various techniques have been actively studied in conjunction with the phone. Recently, face recognition technology through the object recognition technology and evolved into intelligent video detection recognition technology, image recognition technology object detection recognition process applies to skills through is applied to the IP camera, the image object recognition technology with face recognition and active research have. In this paper, we first propose the necessary technical elements of the human factor technology trends and look at the human object recognition based spFACS (Smile Progress Facial Action Coding System) for detecting smiles study plan of the image recognition technology recognizes objects. Study scheme 1). ASM algorithm. By suggesting ways to effectively evaluate psychological research skills through the image object 2). By applying the result via the face recognition object to the tooth area it is detected in accordance with the recognized facial expression recognition of a person demonstrated the effect of extracting the feature points.

Inter-frame vertex selection algorithm for lossy coding of shapes in video sequences (동영상에서의 모양 정보 부호화를 위한 정점 선택 알고리즘)

  • Suh, Jong-Yeul;Kim, Kyong-Joong;Kang, Moon-Gi
    • Journal of the Institute of Electronics Engineers of Korea SP
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    • v.37 no.4
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    • pp.35-45
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    • 2000
  • The vertex-based boundary encoding scheme is widely used in object-based video coding area and computer graphics due to its scalability with natural looking approximation. Existing single framebased vertex encoding algorithm is not efficient for temporally correlated video sequences because it does not remove temporal redundancy. In the proposed method, a vertex point is selected from not only the boundary points of the current frame but also the vertex points of the previous frame to remove temporal redundancy of shape information in video sequences. The problem of selecting optimal vertex points is modeled as finding shortest path in the directed acyclic graph with weight The boundary is approximated by a polygon which can be encoded with the smallest number of bits for maximum distortion. The temporal redundancy between two successive frames is efficiently removed with the proposed scheme, resulting in lower bit-rate than the conventional algorithms.

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Depth Map Pre-processing using Gaussian Mixture Model and Mean Shift Filter (혼합 가우시안 모델과 민쉬프트 필터를 이용한 깊이 맵 부호화 전처리 기법)

  • Park, Sung-Hee;Yoo, Ji-Sang
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.15 no.5
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    • pp.1155-1163
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    • 2011
  • In this paper, we propose a new pre-processing algorithm applied to depth map to improve the coding efficiency. Now, 3DV/FTV group in the MPEG is working for standard of 3DVC(3D video coding), but compression method for depth map images are not confirmed yet. In the proposed algorithm, after dividing the histogram distribution of a given depth map by EM clustering method based on GMM, we classify the depth map into several layered images. Then, we apply different mean shift filter to each classified image according to the existence of background or foreground in it. In other words, we try to maximize the coding efficiency while keeping the boundary of each object and taking average operation toward inner field of the boundary. The experiments are performed with many test images and the results show that the proposed algorithm achieves bits reduction of 19% ~ 20% and computation time is also reduced.

Deep-learning based Object Detection in Thermal Video Using Compressed-Domain Information (열영상에서 압축 도메인 정보를 이용한 딥러닝 기반 객체 탐지 방법)

  • Byeon, JooHyung;Nam, Gunook;Park, Jangsoo;Lee, Jongseok;Sim, Donggyu
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2018.11a
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    • pp.160-162
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    • 2018
  • 본 논문에서는 압축 영역에서 열 영상을 이용한 딥러닝 기반의 객체 검출 방법을 제안한다. 비디오 압축 표준인 High Efficiency Video Coding(HEVC)를 이용하여 부보화된 비트스트림으로부터 Intra Prediction Mode(IPM), Prediction Unit Size(PUS), Transform Unit Size(TUS)를 추출하고 3 채널 영상으로 변환하고 객체 검출 네트워크인 YOLO 에 입력으로 넣어주어 최종적으로 객체의 위치 및 객체의 종류를 예측한다. 실험결과로써 복원된 열 영상과 검출된 결과를 주관적으로 보여줌으로써 압축영역에서 열영상을 이용한 객체 검출이 가능함을 보인다.

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Object based Video Compression (물체 기반 비디오 압축)

  • Kim, MyungJun;Lee, Yung-Lyul
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2020.07a
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    • pp.550-552
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    • 2020
  • 본 논문에서는 YOLO(You Only Look Once) 사물 인식 알고리즘을 활용하여 영상 압축에 적용한다. YOLO 는 물체의 일반화된 특징을 학습한 뉴럴 네트워크이다. 영상을 압축하는 동시에 YOLO 를 활용하여, 영상 내의 사물을 인식한다. 사물이 인식된 영역을 영상 압축을 할 때, 더 구체적으로 예측을 하는 방법을 제안한다. 본 논문에서 제안하는 방법은 QP(Quantization Parameter)를 조절하여, YOLO 로부터 인식된 사물을 더 정교하게 사물을 부호화/복호화한다. VVC(Versatile Video Coding) 기반에서 Rate-Control 를 사용하며, QP 를 조절한다. QP 는 CTU-Level 단위로 조절하며, 사물이 포함된 CTU 는 더 낮은 QP 를 바탕으로 효율적인 화질을 가져온다. 본 논문에서 제안하는 방법은 VVC 기반으로 한 Rate-Control 보다 주관적 화질이 선명한 것으로 보인다.

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An Automatic Segmentation Method for Video Object Plane Generation (비디오 객체 생성을 위한 자동 영상 분할 방법)

  • 최재각;김문철;이명호;안치득;김성대
    • Journal of Broadcast Engineering
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    • v.2 no.2
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    • pp.146-155
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    • 1997
  • The new video coding standard Iv1PEG-4 is enabling content-based functionalities. It requires a prior decomposition of sequences into video object planes (VOP's) so that each VOP represents moving objets. This paper addresses an image segmentation method for separating moving objects from still background (non-moving area) in video sequences using a statistical hypothesis test. In the proposed method. three consecutive image frames are exploited and a hypothesis testing is performed by comparing two means from two consecutive difference images. which results in a T-test. This hypothesis test yields a change detection mask that indicates moving areas (foreground) and non-moving areas (background), Moreover. an effective method for extracting

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