• Title/Summary/Keyword: 표적탐지

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Estimating Characteristic Data of Target Acquisition Systems for Simulation Analysis (모의 분석을 위한 표적 획득 체계의 특성 데이터 산출)

  • Tae Yoon Kim;Sang Woo Han;Seung Man Kwon
    • Journal of the Korea Society for Simulation
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    • v.32 no.1
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    • pp.45-54
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    • 2023
  • Under combat simulation environment when inputting the detection performance data of the real system into the simulated object the given data affects the simulation analysis result. ACQUIRE-Target Task Performance Metric (TTPM)-Target Angular Size (TAS) model is used as a target acquisition model to simulate the detection ability of entities in the main combat simulation tool. This model estimates the decomposition curve of the object sensor and output the detection distance according to the target type. However, it is not easy to apply the performance of the new detection object that the user wants to input to the target acquisition model. Users want to input the detection distance into the target acquisition model, but the target acquisition model requires sensor decomposition curve data according to encounter conditions. In this paper, we propose a method of inversely deriving the sensor decomposition curve data of the target acquisition model by taking the detection distance to the target as an input. Here, the sensor decomposition curve data simultaneously satisfies each detection distance for three types of targets: personnel, ground vehicles, and aircraft. Finally, the detection distance of various reconnaissance equipment is applied to the detection object, and the detection effect according to the reconnaissance equipment is analyzed.

Study of Improvement of GMTI Performance Using DPCA and ATI (DPCA-ATI 결합을 이용한 GMTI 성능 향상에 대한 연구)

  • Lee, Myung-Jun;Lee, Seung-Jae;Lim, Byoung-Gyun;Oh, Tae-Bong;Kim, Kyung-Tae
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.29 no.2
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    • pp.83-92
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    • 2018
  • Using ground moving target indicators equipped with synthetic aperture radars for locating moving targets within a wide background clutter in a short time is an excellent method for monitoring traffic. Although the displaced phase center antenna (DPCA) technique and along track interferometry (ATI) are real time methods with low computational complexity, they are essential for reducing cases of false alarm that can result in poor performance. In this paper, we propose two detection methods using DPCA and ATI-the parallel fusion method and serial fusion method. Simulation results demonstrate that the proposed detection methods are characterized by low probability of false alarm along with good performance. In particular, the serial fusion method possesses high detection probability along with low probability of false alarm (1/5th of the false alarm probability of the DPCA technique).

A Design of Position Tracking System for Moving Targets with Ultra-Acoustic Sensor (초음파 센서를 이용한 이동표적 위치추적 시스템 설계)

  • Lim, Joong-Soo
    • Proceedings of the KAIS Fall Conference
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    • 2008.11a
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    • pp.188-190
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    • 2008
  • 본 논문에서는 초음파 센서를 이용하여 이동하는 표적의 위치를 실시간으로 추적하는 위치추적 시스템을 개발하였다. 위치 추적 시스템은 4 개의 초음파 센서를 이용해서 각 센서에서 탐지되는 표적까지의 거리 정보를 이용하여 이동하는 표적의 위치좌표(x,y)를 구하였다. 특히 초음파 센서가 가지고 있는 빔폭 특성을 고려하여 4 개 센서 중 2개 센서에만 표적이 탐지될 경우 표적의 위치를 최적화하는 방안을 제시하였으며 개발된 알고리즘을 하드웨어에 장착하어 감시시스템이 실시간 양호하게 구동하는것을 확인하였다.

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Optimization of the Validation Region for Target Tracking Using an Adaptive Detection Threshold (탐지문턱값 적응기법을 이용한 표적추적 유효화 영역의 최적화)

  • Choe, Seong-Rin;Kim, Yong-Sik;Hong, Geum-Sik
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.30 no.2
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    • pp.75-82
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    • 2002
  • It is useful to detect the tracking error with an optimal view in the presence of measurement origin uncertainty. In this paper, after the investigation of the targer error dependent on the detection threshold as well as the detection and false alarm probabilities in a clutter environment, a new algorothm that optimizes the threshold of validation region for target trackinf is proposed. The performance of the algorithm is demonstrated through computer simulations.

Performance Enhancement of Virtual War Field Simulator for Future Autonomous Unmanned System (미래 자율무인체계를 위한 가상 전장 환경 시뮬레이터 성능 개선)

  • Lee, Jun Pyo;Kim, Sang Hee;Park, Jin-Yang
    • Journal of the Korea Society of Computer and Information
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    • v.18 no.10
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    • pp.109-119
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    • 2013
  • An unmanned ground vehicle(UGV) today plays a significant role in both civilian and military areas. Predominantly these systems are used to replace humans in hazardous situations. To take unmanned ground vehicles systems to the next level and increase their capabilities and the range of missions they are able to perform in the combat field, new technologies are needed in the area of command and control. For this reason, we present war field simulator based on information fusion technology to efficiently control UGV. In this paper, we present the war field simulator which is made of critical components, that is, simulation controller, virtual image viewer, and remote control device to efficiently control UGV in the future combat fields. In our information fusion technology, improved methods of target detection, recognition, and location are proposed. In addition, time reduction method of target detection is also proposed. In the consequence of the operation test, we expect that our war field simulator based on information fusion technology plays an important role in the future military operation significantly.

감시정찰 센서네트워크의 표적 탐지 및 식별 알고리즘에 관한 연구

  • Sim, Hyeon-Min;Kim, Tae-Bok;Kim, Lee-Hyeong;Gang, Tae-In
    • Proceedings of the Korea Inteligent Information System Society Conference
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    • 2007.11a
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    • pp.324-328
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    • 2007
  • 본 논문은 감시정찰 센서네트워크에서 센서노드의 주요 기능인 표적의 탐지 및 식별을 위한 알고리즘을 제안한다. 감시정찰 센서네트워크에서 각 센서노드는 노드의 크기 및 센서, 프로세서, 네트워크, 전원 등의 자원의 제약이 있기 때문에 침입하는 적의 탐지 및 종류 식별을 위해서는 효율적인 알고리즘의 선정과 최적화가 요구된다. 본 논문에서는 음향, 진동, PIR, 자기 센서 등을 이용하여 사람, 차량 및 궤도 차량의 침입을 탐지하기 위한 적응 임계값 알고리즘과 그 종류를 식별하기 위한 최대우도추정 기법, k-최근접 이웃 추정 기법에 기반한 표적의 탐지 및 식별 알고리즘을 제안한다. 실험결과 음향 및 진동 센서에 의한 차량의 탐지, PIR 센서에 의한 사람의 탐지가 가능함을 확인할 수 있었으며 주파수 특징점을 이용하여 차량과 궤도차량의 종류식별이 가능함을 확인할 수 있었다.

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Improving target recognition of active sonar multi-layer processor through deep learning of a small amounts of imbalanced data (소수 불균형 데이터의 심층학습을 통한 능동소나 다층처리기의 표적 인식성 개선)

  • Young-Woo Ryu;Jeong-Goo Kim
    • The Journal of the Acoustical Society of Korea
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    • v.43 no.2
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    • pp.225-233
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    • 2024
  • Active sonar transmits sound waves to detect covertly maneuvering underwater objects and detects the signals reflected back from the target. However, in addition to the target's echo, the active sonar's received signal is mixed with seafloor, sea surface reverberation, biological noise, and other noise, making target recognition difficult. Conventional techniques for detecting signals above a threshold not only cause false detections or miss targets depending on the set threshold, but also have the problem of having to set an appropriate threshold for various underwater environments. To overcome this, research has been conducted on automatic calculation of threshold values through techniques such as Constant False Alarm Rate (CFAR) and application of advanced tracking filters and association techniques, but there are limitations in environments where a significant number of detections occur. As deep learning technology has recently developed, efforts have been made to apply it in the field of underwater target detection, but it is very difficult to acquire active sonar data for discriminator learning, so not only is the data rare, but there are only a very small number of targets and a relatively large number of non-targets. There are difficulties due to the imbalance of data. In this paper, the image of the energy distribution of the detection signal is used, and a classifier is learned in a way that takes into account the imbalance of the data to distinguish between targets and non-targets and added to the existing technique. Through the proposed technique, target misclassification was minimized and non-targets were eliminated, making target recognition easier for active sonar operators. And the effectiveness of the proposed technique was verified through sea experiment data obtained in the East Sea.

The Target Detection and Classification Method Using SURF Feature Points and Image Displacement in Infrared Images (적외선 영상에서 변위추정 및 SURF 특징을 이용한 표적 탐지 분류 기법)

  • Kim, Jae-Hyup;Choi, Bong-Joon;Chun, Seung-Woo;Lee, Jong-Min;Moon, Young-Shik
    • Journal of the Korea Society of Computer and Information
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    • v.19 no.11
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    • pp.43-52
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    • 2014
  • In this paper, we propose the target detection method using image displacement, and classification method using SURF(Speeded Up Robust Features) feature points and BAS(Beam Angle Statistics) in infrared images. The SURF method that is a typical correspondence matching method in the area of image processing has been widely used, because it is significantly faster than the SIFT(Scale Invariant Feature Transform) method, and produces a similar performance. In addition, in most SURF based object recognition method, it consists of feature point extraction and matching process. In proposed method, it detects the target area using the displacement, and target classification is performed by using the geometry of SURF feature points. The proposed method was applied to the unmanned target detection/recognition system. The experimental results in virtual images and real images, we have approximately 73~85% of the classification performance.

A study on the improvement of robust automatic initiated tracking on narrowband target (협대역표적 추적자동개시의 견실성 향상에 대한 연구)

  • Kim, Seong-Weon;Cho, Hyeon-Deok;Kwon, Taek-Ik
    • The Journal of the Acoustical Society of Korea
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    • v.39 no.6
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    • pp.549-558
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    • 2020
  • In this paper, the method is discussed such that the robustness of automatic initiated narrowband target tracking is improved in passive sonar. In the case of automatic tracking initiation as target in passive sonar, due to a number of clutter, the clutter is initiated as target and tracked which prohibits the operation capability. The associated probability and information entropy of measurements, extracted from detection data, is calculated to keep going on automatic target initiation and tracking of true target, but reduce the automatic initiation and tracking of clutter. If the association probability and information entropy of the extracted measurements is satisfied for the predefined conditions, the procedure of automatic initiation begins. Using sea-trial data, simulations are executed and the results from the proposed method indicate that it keeps the automatic target initiation and tracking of true target and suppresses the automatic target initiation and tracking of clutters in contrary to the conventional method.

A Study on Radar Received Power based on Target Observing Position (표적 관측 위치에 따른 레이더 수신 전력에 관한 연구)

  • Park, Tae-Yong;Lee, Yura
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.18 no.12
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    • pp.3063-3068
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    • 2014
  • Since the RCS(Radar Cross Section) of target is important factor to determine radar performance, it is important to locate radar where large RCS is observed. However, the distance between the target and the radar is an important factor of the received power, as well as RCS. In this paper, it is calculated that received power from ballistic missile to radar based on different observed position and it is studied that to place radar for high detection efficiency.