• 제목/요약/키워드: target recognition

검색결과 728건 처리시간 0.038초

다중 채널 융합 기법을 이용한 DTV 기반 수동형 레이다의 표적 인식 방법 (Target Recognition Method of DTV-Based Passive Radar Using Multi-Channel Combining Method)

  • 설승환;최영재;최인식
    • 한국전자파학회논문지
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    • 제28권10호
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    • pp.794-801
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    • 2017
  • 본 논문에서는 DTV(Digital Television) 기반의 수동형 레이다와 다중 채널 융합 기법을 이용한 항공기 표적 인식 방법을 제안하였다. DTV에서 송신되는 다수의 채널을 융합하여 표적인식에 필요한 해상도의 HRRP(High Resolution Range Profile)를 획득하였다. HRRP는 AR(Auto Regressive) 기법 또는 제로 패딩 기법을 이용하여 획득하였다. 획득한 HRRP로부터, 경사하강법을 이용한 CLEAN 기법을 통해 산란점을 추출한 후 특성벡터를 생성하였으며, 이를 신경망 구분기에 학습시켜 표적 인식을 수행하였다. 제안된 방법의 성능을 검증하기 위하여 실제 국내에서 운용되고 있는 3개의 송신소(관악산, 용문산, 견월악)의 주파수 대역을 가정하고, 4종의 항공기 실스케일 3D 캐드 모델을 이용하여 제안된 방법과 각 송신소의 단일 채널 주파수를 이용하였을 때의 표적인식 성능을 비교하였다. 시뮬레이션 결과, 제안된 방법이 3개의 송신소 모두에서 각 송신소의 단일 채널 주파수를 이용하였을 때보다 높은 표적 인식 성능을 보였다.

적외선 레인지파인더와 CCD 카메라를 이용한 지능 휠체어용 표적 추적 시스템 (Target Tracking System for an Intelligent Wheelchair Using Infrared Range-finder and CCD Camera)

  • 하윤수;한동희
    • Journal of Advanced Marine Engineering and Technology
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    • 제29권5호
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    • pp.560-570
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    • 2005
  • In this paper, we discuss the tracking system for a wheelchair which can follow the path of a human target such as a nurse in hospital. The problem of human tracking is that it requires recognition of feature as well as the tracking of human positions. For this purpose the use of a high cost visual sensor such as laser finder or streo camera makes the tracking a high cost additional expense. This paper proposes the tracking system uses a low cost infrared range-finder and CCD camera, The Infrared range-finder and CCD camera can create a target candidate through each target recognition algorithm. and this information is fused in order to reduce the uncertainties of a target decision and correct the positional error of the human. The effectiveness of the proposed system is verified through experiments.

Automatic Person Identification using Multiple Cues

  • Swangpol, Danuwat;Chalidabhongse, Thanarat
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2005년도 ICCAS
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    • pp.1202-1205
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    • 2005
  • This paper describes a method for vision-based person identification that can detect, track, and recognize person from video using multiple cues: height and dressing colors. The method does not require constrained target's pose or fully frontal face image to identify the person. First, the system, which is connected to a pan-tilt-zoom camera, detects target using motion detection and human cardboard model. The system keeps tracking the moving target while it is trying to identify whether it is a human and identify who it is among the registered persons in the database. To segment the moving target from the background scene, we employ a version of background subtraction technique and some spatial filtering. Once the target is segmented, we then align the target with the generic human cardboard model to verify whether the detected target is a human. If the target is identified as a human, the card board model is also used to segment the body parts to obtain some salient features such as head, torso, and legs. The whole body silhouette is also analyzed to obtain the target's shape information such as height and slimness. We then use these multiple cues (at present, we uses shirt color, trousers color, and body height) to recognize the target using a supervised self-organization process. We preliminary tested the system on a set of 5 subjects with multiple clothes. The recognition rate is 100% if the person is wearing the clothes that were learned before. In case a person wears new dresses the system fail to identify. This means height is not enough to classify persons. We plan to extend the work by adding more cues such as skin color, and face recognition by utilizing the zoom capability of the camera to obtain high resolution view of face; then, evaluate the system with more subjects.

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A Method of License Plate Location and Character Recognition based on CNN

  • Fang, Wei;Yi, Weinan;Pang, Lin;Hou, Shuonan
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제14권8호
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    • pp.3488-3500
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    • 2020
  • At the present time, the economy continues to flourish, and private cars have become the means of choice for most people. Therefore, the license plate recognition technology has become an indispensable part of intelligent transportation, with research and application value. In recent years, the convolution neural network for image classification is an application of deep learning on image processing. This paper proposes a strategy to improve the YOLO model by studying the deep learning convolutional neural network (CNN) and related target detection methods, and combines the OpenCV and TensorFlow frameworks to achieve efficient recognition of license plate characters. The experimental results show that target detection method based on YOLO is beneficial to shorten the training process and achieve a good level of accuracy.

윤곽선의 신뢰도를 고려한 2차원 적외선 영상 기반의 3차원 목표물 인식 기법 (A 2D FLIR Image-based 3D Target Recognition using Degree of Reliability of Contour)

  • 이훈철;이청우;배성준;이광연;김성대
    • 한국통신학회논문지
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    • 제24권12B호
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    • pp.2359-2368
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    • 1999
  • 본 논문에서는 2차원 영상을 기반으로 3차원 목표물을 인식하는 기법의 한 예로서 적외선 영상으로부터 추출된 물체의 모양 정보와 모양 정보의 신뢰도를 이용해서 지상에서 지상용 차량을 인식하는 기법(ground-to-ground vehicle recognition)을 제안한다. 우선 목표물 추출과정에서 얻어진 마스크의 윤곽선 상에 있는 점들 중 에지 경사도의 크기와 밝기값이 일정한 값 이상이 되는 점들을 신뢰도가 높은 점이라고 정의하고 신뢰도가 높은 점들을 연결해서 신뢰도가 높은 부분 윤곽선(sub-contour)을 추출한다. 모델로부터 입력 영상의 신뢰도가 높은 윤곽선에 해당되는 윤곽선을 선택한 후 각각 해당되는 윤곽선들은 이산 정현 변환(Discrete Sine Transform)을 사용해서 특징값을 계산한 다음 서로 비교한다. 실험 결과 영상 분할이 불완전한 경우 신뢰도를 이용한 방법이 그렇지 않은 방법보다 더 나은 결과를 보였다.

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변형에 의한 필기체 한글의 생성과 이를 이용한 한글 문자인식 시스템의 정량적 평가 (Automatic Generation of Handwritten Hangul Character Images and Its Application to the Evaluation of Hangul Character Recognition Systems)

  • 박상태;방승양
    • 전자공학회논문지B
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    • 제30B권3호
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    • pp.50-59
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    • 1993
  • There is basic problem with the current evaluation method for character recognition systems. The current method evaluates the average recognition rate by applying the test data to the target system. The average recognition rate tells no more than and no less than the overall performance and it depends on the data. In this paper we propose a testing method which will analyze the target system and point out its strong points and weak points. This can be made possible through using the data which are generated cy distorting the standard character images according to a carefully controlled manner. This paper will describe how to automatically generate such distorted images. Also we will show the method is actually effective and useful by applying it to evaluating existing recognition algorithms.

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위치기반 감시 서비스를 위한 이동 객체 추적 및 인식 (Moving Target Tracking and Recognition for Location Based Surveillance Service)

  • 김현;박찬호;우종우;두석배
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2008년도 하계종합학술대회
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    • pp.1211-1212
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    • 2008
  • In this paper, we propose image process modeling as a part of location based surveillance system for unauthorized target recognition and tracking in harbor, airport, military zone. For this, we compress and store background image in lower resolution and perform object extraction and motion tracking by using sobel edge detection and difference picture method between real images and a background image. In addition to, we use Independent Component Analysis Neural Network for moving target recognition. Experiments are performed for object extraction and tracking of moving targets on road by using static camera in 20m height building and it shows the robust results.

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이동물체의 광학적 인식을 위한 합성 HMT (Synthetic hit-miss transform for optical recognition of a moving target)

  • 김종찬;김정우;이하운;도양회;김수중
    • 전자공학회논문지D
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    • 제35D권3호
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    • pp.82-90
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    • 1998
  • A hit-miss transform(HMT) using synthetic structuring elements(SE's) for optical recognition of a moving target is proposed. A moving target which was obtained from a fixed view point has objects. In proposed HMT, SE's are synthesized by using SDF(synthetic discriminant function) algorithm for efficient recognitionof various shapes of true class objects in noisy and cluttered scene. The synthetic hit SE and the synthetic miss SE are composed of SDF of hit SE's and miss SE's for each true class object. Simulation results show the proposed method can be used for the recognition of various shapes of the true class with one one HMT operation.

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능동소나 표적인식을 위한 시뮬레이터 (Simulator for Active Sonar Target Recognition)

  • 석종원;김태환;배건성
    • 한국정보통신학회논문지
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    • 제16권10호
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    • pp.2137-2142
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    • 2012
  • 수중환경 하에서 표적을 탐지하고 식별하는 문제는 군사적인 목적은 물론 비군사적 목적으로도 많은 연구가 수행되어 왔다. 수중환경에서의 수중음향 신호가 시간 공간적으로 특성이 변화하며 천해 다중경로 환경을 반영하는 복잡한 특성을 보이는 점으로 인해 능동 표적인식 기술은 매우 어려운 기술로 여겨져 왔다. 또한 실제 데이터 수집의 어려움이 따르게 된다. 본 논문에서는 수중환경 하에서 능동 표적신호를 합성, 특징추출 및 표적식별을 수행할 수 있는 시뮬레이터를 구현하였다. 표적신호의 합성에는 하이라이트 모델과 3차원 모델을 사용하였으며, 표적신호의 식별을 위해서는 다중각도에 기반한 은닉 마코프모델을 사용하였다.

Siamese 네트워크 기반 SAR 표적영상 간 유사도 분석 (Similarity Analysis Between SAR Target Images Based on Siamese Network)

  • 박지훈
    • 한국군사과학기술학회지
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    • 제25권5호
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    • pp.462-475
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    • 2022
  • Different from the field of electro-optical(EO) image analysis, there has been less interest in similarity metrics between synthetic aperture radar(SAR) target images. A reliable and objective similarity analysis for SAR target images is expected to enable the verification of the SAR measurement process or provide the guidelines of target CAD modeling that can be used for simulating realistic SAR target images. For this purpose, this paper presents a similarity analysis method based on the siamese network that quantifies the subjective assessment through the distance learning of similar and dissimilar SAR target image pairs. The proposed method is applied to MSTAR SAR target images of slightly different depression angles and the resultant metrics are compared and analyzed with qualitative evaluation. Since the image similarity is somewhat related to recognition performance, the capacity of the proposed method for target recognition is further checked experimentally with the confusion matrix.