• 제목/요약/키워드: Objects Recognition

검색결과 929건 처리시간 0.027초

기준점과 크기를 사용한 객체 인식 시스템 향상 (Enhanced Object Recognition System using Reference Point and Size)

  • 이태환;이유진
    • 전기전자학회논문지
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    • 제22권2호
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    • pp.350-355
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    • 2018
  • 본 논문에서는 영상 내에서의 객체를 기준점을 사용하여 크기에 따라 분류할 수 있는 시스템을 제안한다. 본 논문에선 객체를 샘플로 하여 연구를 진행하였다. 제안된 시스템은 휴대폰 카메라를 이용하여 획득한 영상에서 객체를 크기 별로 인식해서 그 종류를 파악하고 분류한다. 기존의 객체 인식 시스템들은 객체의 크기만을 이용해서 해당 객체를 분류하였다. 그러한 시스템들은 일정한 거리를 두어 획득한 영상이 아니면 거리에 따라 객체의 크기가 달라져 오류가 발생하는 단점이 있다. 이에 본 논문에서 제안하는 객체 인식 시스템은 이러한 기존의 객체 인식 시스템의 한계를 극복하고자 영상의 왼쪽 상단에 기준점을 두어 그 기준점과 객체의 크기를 비교하여 거리에 상관없이 객체를 분류할 수 있다.

CONSIDERATION OF THE RELATION BETWEEN DISTANCE AND CHANGE OF PANEL COLOR BASED ON AERIAL PERSPECTIVE

  • Horiuchi, Hitoshi;Kaneko, Satoru;Sato, Mie;Ozaki, Koichi;Kasuga, Masao
    • 한국방송∙미디어공학회:학술대회논문집
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    • 한국방송공학회 2009년도 IWAIT
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    • pp.695-698
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    • 2009
  • Three-dimensional (3D) shape recognition and distance recognition methods utilizing monocular camera systems have been required for field of virtual-reality, computer graphics, measurement technology and robot technology. There have been many studies regarding 3D shape and distance recognition based on geometric and optical information, and it is now possible to accurately measure the geometric information of an object at short range distances. However, these methods cannot currently be applied to long range objects. In the field of virtual-reality, all visual objects must be presented at widely varying ranges, even though some objects will be hazed over. In order to achieve distance recognition from a landscape image, we focused on the use of aerial perspective to simulate a type of depth perception and investigated the relationship between distance and color perception. The applicability of our proposed method was demonstrated in experimental results.

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곡선 조각의 군집화에 의한 둥근 물체의 효과적인 인식 (An efficient recognition of round objects using the curve segment grouping)

  • 성효경;최흥문
    • 전자공학회논문지C
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    • 제34C권9호
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    • pp.77-83
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    • 1997
  • Based on the curve segment grouping, an efficient recognition of round objects form partially occuluded round boundaries is proposed. Curve segments are extracted from an image using a criterion based on the intra-segment curvature and local contrast. During the curve segment extraction the boundaries of pratially occluding and occuluded objects are segmented to different curve segments. The extracted segments of constant intra-segment curvature are grouped to different curve segments. The extracted segments of constant intra-segment curvature are grouped nto a round boundary by the proposed grouping algorithm using inter-segment curvature which gives the relatinships among the curve segments of the same round boundary. The 1st and the 2nd order moments are used for the parameter estimation of the best fitted ellipse with round boundary, and then recognition is perfomed based on the estimated parameters. The proposed scheme processes in segment unit and is more efficient in computational complexity and memory requirements those that of the conventional scheme which processed in pixel units. Experimental results show that the proposed technique is very efficient in recognizing the round object sfrom the real images with apples and pumpkins.

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Photon Counting Linear Discriminant Analysis with Integral Imaging for Occluded Target Recognition

  • Yeom, Seok-Won;Javidi, Bahram
    • Journal of the Optical Society of Korea
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    • 제12권2호
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    • pp.88-92
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    • 2008
  • This paper discusses a photon-counting linear discriminant analysis (LDA) with computational integral imaging (II). The computational II method reconstructs three-dimensional (3D) objects on the reconstruction planes located at arbitrary depth-levels. A maximum likelihood estimation (MLE) can be used to estimate the Poisson parameters of photon counts in the reconstruction space. The photon-counting LDA combined with the computational II method is developed in order to classify partially occluded objects with photon-limited images. Unknown targets are classified with the estimated Poisson parameters while reconstructed irradiance images are trained. It is shown that a low number of photons are sufficient to classify occluded objects with the proposed method.

3차원 거리 측정 장치를 이용한 물체 인식 (Object Recognition using 3D Depth Measurement System.)

  • 김성찬;고수홍;김형석
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2006년도 하계종합학술대회
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    • pp.941-942
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    • 2006
  • A depth measurement system to recognize 3D shape of objects using single camera, line laser and a rotating mirror has been investigated. The camera and the light source are fixed, facing the rotating mirror. The laser light is reflected by the mirror and projected to the scene objects whose locations are to be determined. The camera detects the laser light location on object surfaces through the same mirror. The scan over the area to be measured is done by mirror rotation. The Segmentation process of object recognition is performed using the depth data of restored 3D data. The Object recognition domain can be reduced by separating area of interest objects from complex background.

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Image Processing for Video Images of Buoy Motion

  • Kim, Baeck-Oon;Cho, Hong-Yeon
    • Ocean Science Journal
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    • 제40권4호
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    • pp.213-220
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    • 2005
  • In this paper, image processing technique that reduces video images of buoy motion to yield time series of image coordinates of buoy objects will be investigated. The buoy motion images are noisy due to time-varying brightness as well as non-uniform background illumination. The occurrence of boats, wakes, and wind-induced white caps interferes significantly in recognition of buoy objects. Thus, semi-automated procedures consisting of object recognition and image measurement aspects will be conducted. These offer more satisfactory results than a manual process. Spectral analysis shows that the image coordinates of buoy objects represent wave motion well, indicating its usefulness in the analysis of wave characteristics.

Hough 변환을 이용한 캐드 기반 삼차원 물체 인식 (CAD-Based 3-D Object Recognition Using Hough Transform)

  • Ja Seong Ku;Sang Uk Lee
    • 전자공학회논문지B
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    • 제32B권9호
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    • pp.1171-1180
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    • 1995
  • In this paper, we present a 3-D object recognition system in which the 3-D Hough transform domain is employed to represent the 3-D objects. In object modeling step, the features for recognition are extracted from the CAD models of objects to be recognized. Since the approach is based on the CAD models, the accuracy and flexibility are greatly improved. In matching stage, the sensed image is compared with the stored model, which is assumed to yield a distortion (location and orientation) in the 3-D Hough transform domain. The high dimensional (6-D) parameter space, which defines the distortion, is decomposed into the low dimensional space for an efficient recognition. At first we decompose the distortion parameter into the rotation parameter and the translation parameter, and the rotation parameter is further decomposed into the viewing direction and the rotational angle. Since we use the 3-D Hough transform domain of the input images directly, the sensitivity to the noise and the high computational complexity could be significantly alleviated. The results show that the proposed 3-D object recognition system provides a satisfactory performance on the real range images.

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딥러닝 모델을 이용한 비전이미지 내의 대상체 분류에 관한 연구 (A Study on The Classification of Target-objects with The Deep-learning Model in The Vision-images)

  • 조영준;김종원
    • 한국산학기술학회논문지
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    • 제22권2호
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    • pp.20-25
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    • 2021
  • 본 논문은 Deep-learning 기반의 검출모델을 이용하여 연속적으로 입력되는 비디오 이미지 내의 해당 대상체를 의미별로 분류해야하는 문제에 대한 구현방법에 관한 논문이다. 기존의 대상체 검출모델은 Deep-learning 기반의 검출모델로서 유사한 대상체 분류를 위해서는 방대한 DATA의 수집과 기계학습과정을 통해서 가능했다. 대상체 검출모델의 구조개선을 통한 유사물체의 인식 및 분류를 위하여 기존의 검출모델을 이용한 분류 문제를 분석하고 처리구조를 변경하여 개선된 비전처리 모듈개발을 통해 이를 기존 인식모델에 접목함으로써 대상체에 대한 인식모델을 구현하였으며, 대상체의 분류를 위하여 검출모델의 구조변경을 통해 고유성과 유사성을 정의하고 이를 검출모델에 적용하였다. 실제 축구경기 영상을 이용하여 대상체의 특징점을 분류의 기준으로 설정하여 실시간으로 분류문제를 해결하여 인식모델의 활용성 검증을 통해 산업에서의 활용도를 확인하였다. 기존의 검출모델과 새롭게 구성한 인식모델을 활용하여 실시간 이미지를 색상과 강도의 구분이 용이한 HSV의 칼라공간으로 변환하는 비전기술을 이용하여 기존모델과 비교 검증하였고, 조도 및 노이즈 환경에서도 높은 검출률을 확보할 수 있는 실시간 환경의 인식모델 최적화를 위한 선행연구를 수행하였다.

수정 합성 HMT를 이용한 왜곡불변 패턴 인식 (Distortion invariant pattern recognition using Modified synthetic HMT)

  • 현영길;김종찬;김정우;도양회;김수중
    • 한국통신학회논문지
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    • 제24권7B호
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    • pp.1361-1369
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    • 1999
  • 다중 물체의 왜곡불변 인식을 위하여 수정합성형태소를 이용한 HMT를 제안하였다. HMT에서 중요한 문제 중의 하나는 오인식을 줄이고 다양한 모양의 왜곡된 물체를 검출하기 위하여 필요한 최적의 형태소를 결정하는 것이다. 제안된 형태소 합성방법은 이런 문제를 해결하는데 적절하다. 한 방법은 집합이론만을 이용하여 참영상의 형태소를 다단계로 합성하는 것이고, 다른 한 방법은 집합이론과 SDF합성법을 이용하여 참영상과 거짓영상의 형태소를 다단계로 합성하는 것이다. 시뮬레이션을 통하여 제안된 방법이 동일 집단의 왜곡된 물체를 인식하고, 다른 집단의 유사한 물체를 구분하여 인식할 수 있음을 확인하였다.

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입력 조건에 따른 지능센서의 대상물 인식능력 분석( I ) (Analysis of the Recognition Ability of Objects for the Smart Sensor According to the Input Condition Changing ( I ))

  • 황성연;홍동표;채희창
    • 한국정밀공학회지
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    • 제19권1호
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    • pp.48-55
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    • 2002
  • This paper deals with the sensing ability of the smart sensor that has the sensing ability to distinguish materials according to the input condition changing. This is a study of dynamic characteristics of sensor. We have developed a new signal processing method that can distinguish among different materials. The smart sensor was developed for recognition of materials. Experiments and analysis were executed to estimate ability to recognize objects according to the input condition. First, we developed the advanced smart sensor. Second, we developed the new method, which has the capability sensing of different materials. Dynamic characteristics of the smart sensor were evaluated relatively through a new $R_{SAI}$ method. According to frequency changing, influence of the smart sensor are evaluated through a new recognition index ($R_{SAI}$) that ratio of sensing ability index. Applications of this method are for finding abnormal conditions of objects (auto-manufacturing), feeling of objects (medical product), robotics, safely diagnosis of structure, etc.