• 제목/요약/키워드: 3-D feature detection

검색결과 153건 처리시간 0.025초

3차원 측정 데이터와 영상 데이터를 이용한 특징 형상 검출 (Feature Detection using Measured 3D Data and Image Data)

  • 김한솔;정건화;장민호;김준호
    • 한국정밀공학회지
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    • 제30권6호
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    • pp.601-606
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    • 2013
  • 3D scanning is a technique to measure the 3D shape information of the object. Shape information obtained by 3D scanning is expressed either as point cloud or as polygon mesh type data that can be widely used in various areas such as reverse engineering and quality inspection. 3D scanning should be performed as accurate as possible since the scanned data is highly required to detect the features on an object in order to scan the shape of the object more precisely. In this study, we propose the method on finding the location of feature more accurately, based on the extended Biplane SNAKE with global optimization. In each iteration, we project the feature lines obtained by the extended Biplane SNAKE into each image plane and move the feature lines to the features on each image. We have applied this approach to real models to verify the proposed optimization algorithm.

3차원 객체 탐지를 위한 어텐션 기반 특징 융합 네트워크 (Attention based Feature-Fusion Network for 3D Object Detection)

  • 유상현;강대열;황승준;박성준;백중환
    • 한국항행학회논문지
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    • 제27권2호
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    • pp.190-196
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    • 2023
  • 최근 들어, 라이다 기술의 발전에 따라 정확한 거리 측정이 가능해지면서 라이다 기반의 3차원 객체 탐지 네트워크에 대한 관심이 증가하고 있다. 기존의 네트워크는 복셀화 및 다운샘플링 과정에서 공간적인 정보 손실이 발생해 부정확한 위치 추정 결과를 발생시킨다. 본 연구에서는 고수준 특징과 높은 위치 정확도를 동시에 획득하기 위해 어텐션 기반 융합 방식과 카메라-라이다 융합 시스템을 제안한다. 먼저, 그리드 기반의 3차원 객체 탐지 네트워크인 Voxel-RCNN 구조에 어텐션 방식을 도입함으로써, 다중 스케일의 희소 3차원 합성곱 특징을 효과적으로 융합하여 3차원 객체 탐지의 성능을 높인다. 다음으로, 거짓 양성을 제거하기 위해 3차원 객체 탐지 네트워크의 탐지 결과와 이미지상의 2차원 객체 탐지 결과를 결합하는 카메라-라이다 융합 시스템을 제안한다. 제안 알고리즘의 성능평가를 위해 자율주행 분야의 KITTI 데이터 세트를 이용하여 기존 알고리즘과의 비교 실험을 수행한다. 결과적으로, 차량 클래스에 대해 BEV 상의 2차원 객체 탐지와 3차원 객체 탐지 부분에서 성능 향상을 보였으며 특히 Voxel-RCNN보다 차량 Moderate 클래스에 대하여 정확도가 약 0.47% 향상되었다.

보청기용 범용 이어쉘을 위한 설계 파라미터에 관한 연구 (A Study on Design Parameters for Ready-made Ear Shell of Hearing Aids)

  • 에르덴바야르;전유용;박규석;송영록;이상민
    • 전기학회논문지
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    • 제60권5호
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    • pp.1055-1061
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    • 2011
  • In this study, main parameters: aperture, first bend and second bend which express a structure of ear canal are extracted in order to modeling and manufacture the ready-made ear shells of hearing aids. The proposed parameter extraction method consists of 2 important algorithms, aperture detection and feature detection. In the aperture detection algorithm, aperture of 3-D scanned virtual ear impression and parameters relating to ear shell of hearing aid are determined. The feature detection algorithm detects first bend, second bend, and related parameters. Through these two algorithms, parameters for aperture, first bend, and second bend are extracted to model the ready-made ear shell of hearing aid. The values of these extracted parameters from 36 people's right ear impression are analyzed and measured statistically. As a result of the analysis, it has been found that it is possible to classify ready-made ear shell parameters by age and size. The ready-made ear shell parameters are classified 3-size for 20 years old and 2-size for 60 years olde. Using 3D rhino program, virtual ready-made ear shell is reconstructed by parameters of every type, and simulated to model it. A final product was produced by transferring simulation result with rapid prototyping system. The modeled ready-made ear shell is evaluated with the objective and subjective method. Objective method is the comparison volume ratio and overlapped volume ratio of ear impression from randomly chosen 18 people and ready-made ear shell. And subjective method is that the final product of ready-made ear shell is used by users and the satisfaction number drawn from well fitting and comfortable testing was evaluated. In the result of the evaluation, it has been found that volume ration is 70%, big and middle size ready-made ear shell products are possible, and the satisfaction number is high.

신경회로망을 이용한 측정 점으로부터 특징형상 인식 (Geometric Feature Recognition Directly from Scanned Points using Artificial Neural Networks)

  • 전용태;박세형
    • 한국정밀공학회지
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    • 제17권6호
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    • pp.176-184
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    • 2000
  • Reverse engineering (RE) is a process to create computer aided design (CAD) models from the scanned data of an existing part acquired using 3D position scanners. This paper proposes a novel methodology of extracting geometric features directly from a set of 3D scanned points, which utilizes the concepts of feature-based technology and artificial neural networks (ANNs). The use of ANN has enabled the development of a flexible feature-based RE application that can be trained to deal with various features. The following four main tasks were mainly investigated and implemented: (1) Data reduction; (2) edge detection; (3) ANN-based feature recognition; (4) feature extraction. This approach was validated with a variety of real industrial components. The test results show that the developed feature-based RE application proved to be suitable for reconstructing prismatic features such as block, pocket, step, slot, hole, and boss, which are very common and crucial in mechanical engineering products.

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Median Filtering Detection of Digital Images Using Pixel Gradients

  • RHEE, Kang Hyeon
    • IEIE Transactions on Smart Processing and Computing
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    • 제4권4호
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    • pp.195-201
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    • 2015
  • For median filtering (MF) detection in altered digital images, this paper presents a new feature vector that is formed from autoregressive (AR) coefficients via an AR model of the gradients between the neighboring row and column lines in an image. Subsequently, the defined 10-D feature vector is trained in a support vector machine (SVM) for MF detection among forged images. The MF classification is compared to the median filter residual (MFR) scheme that had the same 10-D feature vector. In the experiment, three kinds of test items are area under receiver operating characteristic (ROC) curve (AUC), classification ratio, and minimal average decision error. The performance is excellent for unaltered (ORI) or once-altered images, such as $3{\times}3$ average filtering (AVE3), QF=90 JPEG (JPG90), 90% down, and 110% up to scale (DN0.9 and Up1.1) images, versus $3{\times}3$ and $5{\times}5$ median filtering (MF3 and MF5, respectively) and MF3 and MF5 composite images (MF35). When the forged image was post-altered with AVE3, DN0.9, UP1.1 and JPG70 after MF3, MF5 and MF35, the performance of the proposed scheme is lower than the MFR scheme. In particular, the feature vector in this paper has a superior classification ratio compared to AVE3. However, in the measured performances with unaltered, once-altered and post-altered images versus MF3, MF5 and MF35, the resultant AUC by 'sensitivity' (TP: true positive rate) and '1-specificity' (FN: false negative rate) is achieved closer to 1. Thus, it is confirmed that the grade evaluation of the proposed scheme can be rated as 'Excellent (A)'.

거울 투영 이미지를 이용한 3D 얼굴 표정 변화 자동 검출 및 모델링 (Automatic 3D Facial Movement Detection from Mirror-reflected Multi-Image for Facial Expression Modeling)

  • 경규민;박민용;현창호
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2005년도 심포지엄 논문집 정보 및 제어부문
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    • pp.113-115
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    • 2005
  • This thesis presents a method for 3D modeling of facial expression from frontal and mirror-reflected multi-image. Since the proposed system uses only one camera, two mirrors, and simple mirror's property, it is robust, accurate and inexpensive. In addition, we can avoid the problem of synchronization between data among different cameras. Mirrors located near one's cheeks can reflect the side views of markers on one's face. To optimize our system, we must select feature points of face intimately associated with human's emotions. Therefore we refer to the FDP (Facial Definition Parameters) and FAP (Facial Animation Parameters) defined by MPEG-4 SNHC (Synlhetic/Natural Hybrid Coding). We put colorful dot markers on selected feature points of face to detect movement of facial deformation when subject makes variety expressions. Before computing the 3D coordinates of extracted facial feature points, we properly grouped these points according to relative part. This makes our matching process automatically. We experiment on about twenty koreans the subject of our experiment in their late twenties and early thirties. Finally, we verify the performance of the proposed method tv simulating an animation of 3D facial expression.

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모바일 디바이스를 이용한 3차원 특징점 추출 기법 (3D feature point extraction technique using a mobile device)

  • 김진겸;서영호
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2022년도 추계학술대회
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    • pp.256-257
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    • 2022
  • 본 논문에서는 단일 모바일 디바이스의 움직임을 통해 3차원 특징점을 추출하는 방법에 대해 소개한다. 단안 카메라를 이용해 카메라 움직임에 따라 2D 영상을 획득하고 Baseline을 추정한다. 특징점 기반의 스테레오 매칭을 진행한다. 특징점과 디스크립터를 획득하고 특징점을 매칭한다. 매칭된 특징점을 이용해 디스패리티를 계산하고 깊이값을 생성한다. 3차원 특징점은 카메라 움직임에 따라 업데이트 된다. 마지막으로 장면 전환 검출을 이용하여 장면 전환시 특징점을 리셋한다. 위 과정을 통해 특징점 데이터베이스에 평균 73.5%의 저장공간 추가 확보를 할 수 있다. TUM Dataset의 Depth Ground truth 값과 RGB 영상으로 제안한 알고리즘을 적용하여 3차원 특징점 결과와 비교하여 평균 26.88mm의 거리 차이가 나는것을 확인하였다.

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전동휠체어 주행안전을 위한 3차원 깊이카메라 기반 장애물검출 (3D Depth Camera-based Obstacle Detection in the Active Safety System of an Electric Wheelchair)

  • 서준호;김창원
    • 제어로봇시스템학회논문지
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    • 제22권7호
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    • pp.552-556
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    • 2016
  • Obstacle detection is a key feature in the safe driving control of electric wheelchairs. The suggested obstacle detection algorithm was designed to provide obstacle avoidance direction and detect the existence of cliffs. By means of this information, the wheelchair can determine where to steer and whether to stop or go. A 3D depth camera (Microsoft KINECT) is used to scan the 3D point data of the scene, extract information on obstacles, and produce a steering direction for obstacle avoidance. To be specific, ground detection is applied to extract the obstacle candidates from the scanned data and the candidates are projected onto a 2D map. The 2D map provides discretized information of the extracted obstacles to decide on the avoidance direction (left or right) of the wheelchair. As an additional function, cliff detection is developed. By defining the "cliffband," the ratio of the predefined band area and the detected area within the band area, the cliff detection algorithm can decide if a cliff is in front of the wheelchair. Vehicle tests were carried out by applying the algorithm to the electric wheelchair. Additionally, detailed functions of obstacle detection, such as providing avoidance direction and detecting the existence of cliffs, were demonstrated.

게임 캐릭터를 위한 폴리곤 모델 단순화 방법 (Polygonal Model Simplification Method for Game Character)

  • 이창훈;조성언;김태훈
    • 한국항행학회논문지
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    • 제13권1호
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    • pp.142-150
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    • 2009
  • 컴퓨터 게임에서 사용하는 복잡한 3차원 캐릭터 모델을 단순한 모델로 만드는 것은 매우 중요하다. 제안 방법은 3차원 게임 캐릭터에서 특징선을 추출하여 모델을 단순화 시키는 새로운 방법에 대해 제안한다. 주어진 3차원 캐릭터 모델은 텍스처 정보를 포함하고 있다. 3차원 캐릭터 모델에서의 텍스처 및 곡률의 변동을 이용해서 2차원 맵인 모델특징맵(Model Feature Map)을 생성한다. 모델특징맵은 곡률 맵(curvature map)과 텍스처 맵(texture map)으로부터 생성되며, 본 맵을 통해 에지 추출 기법을 이용하여 특징선을 추출한다. 모델특징맵은 표준 영상처리툴을 이용해 쉽게 편집할 수 있다. 실험을 통하여 본 알고리즘의 효율성을 보여주며, 실험은 얼굴 캐릭터에 한정하지 않는다.

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