• Title/Summary/Keyword: AI CCTV

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AI-Based Intelligent CCTV Detection Performance Improvement (AI 기반 지능형 CCTV 이상행위 탐지 성능 개선 방안)

  • Dongju Ryu;Kim Seung Hee
    • Convergence Security Journal
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    • v.23 no.5
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    • pp.117-123
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    • 2023
  • Recently, as the demand for Generative Artificial Intelligence (AI) and artificial intelligence has increased, the seriousness of misuse and abuse has emerged. However, intelligent CCTV, which maximizes detection of abnormal behavior, is of great help to prevent crime in the military and police. AI performs learning as taught by humans and then proceeds with self-learning. Since AI makes judgments according to the learned results, it is necessary to clearly understand the characteristics of learning. However, it is often difficult to visually judge strange and abnormal behaviors that are ambiguous even for humans to judge. It is very difficult to learn this with the eyes of artificial intelligence, and the result of learning is very many False Positive, False Negative, and True Negative. In response, this paper presented standards and methods for clarifying the learning of AI's strange and abnormal behaviors, and presented learning measures to maximize the judgment ability of intelligent CCTV's False Positive, False Negative, and True Negative. Through this paper, it is expected that the artificial intelligence engine performance of intelligent CCTV currently in use can be maximized, and the ratio of False Positive and False Negative can be minimized..

A Study on the Application Model of AI Convergence Services Using CCTV Video for the Advancement of Retail Marketing (리테일 마케팅 고도화를 위한 CCTV 영상 데이터 기반의 AI 융합 응용 서비스 활용 모델 연구)

  • Kim, Jong-Yul;Kim, Hyuk-Jung
    • Journal of Digital Convergence
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    • v.19 no.5
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    • pp.197-205
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    • 2021
  • Recently, the retail industry has been increasingly demanding information technology convergence and utilization to respond to various external environmental threats such as COVID-19 and to be competitive using AI technologies, but there is a very lack of research and application services. This study is a CCTV video data-driven AI application case study, using CCTV image data collection in retail space, object detection and tracking AI model, time series database to store real-time tracked objects and tracking data, heatmap to analyze congestion and interest in retail space, social access zone.We present the orientation and verify its usability in the direction designed through practical implementation.

A study on AI upscaling algorithms suitable for facial recognition (얼굴 인식에 적합한 AI 업스케일링 알고리즘에 관한 연구)

  • Doo-il Kwak;Kwang-Young Park
    • Proceedings of the Korea Information Processing Society Conference
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    • 2023.05a
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    • pp.598-600
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    • 2023
  • CCTV가 범죄 예방 및 수사에 사용되는데, 수사를 위해 저화질 CCTV 영상에서 특정인의 얼굴 인식엔 어려움을 겪어 CCTV 본연의 역할의 희석된다. 따라서 본 논문은 저화질 영상을 고화질로 변환하여 얼굴 인식의 정확성을 높일 수 있는 알고리즘을 연구하는 것을 목적으로 한다. 기존에 연구된 인공지능 기반의 업스케일링 알고리즘을 분석하여 K-FACE 데이터셋에 적절한 모델을 제안한다. 이를 위해 2020년 이전과 이후의 AI 업스케일링 관련 연구를 비교 분석한다. 향후 제시된 모델을 대상으로 동일한 환경내에서 K-FACE 데이터셋을 학습시켜 통일된 기준의 지표 산출이 필요하다.

A Study on AI-Dirven Audience Measurement Analysis Using CCTV (CCTV를 활용한 AI-Dirven Audience Measurement 분석 연구)

  • Byeong-ju Park;Ji-yoo Lee
    • Proceedings of the Korea Information Processing Society Conference
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    • 2023.11a
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    • pp.949-950
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    • 2023
  • 본 연구는 AI 기술을 활용하여 CCTV(Closed-Circuit Television)영상 데이터를 분석하고, 실시간으로 고객을 측정하고 분석하는 방법에 대한 연구이다. 이러한 AI-Dirven Audience Measurement는 마케팅, 이벤트 기획 등에서 응용 가능성을 지니고 있다. 매장에 설치된 CCTV를 통해 데이터를 수집하고 수집된 데이터를 통해 입장한 고객의 성별과 나이를 예측한다. 이에 본 연구를 통해 기업의 마케팅 전략의 최적화 및 이벤트 기획 등 활용할 수 있고 고객의 행동 및 성향 분석을 통해 시설의 구조 및 레이아웃 개선 등을 위한 설계 개선에도 기여할 것으로 기대된다.

Artificial intelligence (AI) parking control solution using CCTV to solve multi-family housing parking problems (다세대주택 주차 문제 해소를 위한 CCTV를 활용한 인공지능(AI) 주차관제 솔루션)

  • Choi, Kyu-Min;Kim, Yu-Min;Shin, Jun-Pyo;Kim, Jung-Hyeon;Kwak, Min-Hyuk;Kim, Byung-Wan;Lee, Byong-Kwon
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2021.07a
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    • pp.273-275
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    • 2021
  • 본 논문에서는 기존 스마트주차관제 시스템의 한계로 인해 주차 관제의 사각지대에 있는 다세대 주택 주차 문제를 해결하는 솔루션을 제안한다. 기존 스마트 주차관제는 센서 기반의 고비용의 장비 및 시공비가 소요되며, 이러한 특성으로 인해 다세대 주택에 적용이 어렵다. 해당 문제를 해결하기 위해 본 논문은 기존 설비인 CCTV를 활용한 스마트 주차 관제 시스템을 제안하며, 해당 솔루션은 텐서플로 cnn중 알씨엔엔 RPN을 적용하여 차량 객체 인식 및 주차 공간 객체 인식을 구현하였으며, 다세대 주택 주변 CCTV 영상을 OpenCV를 활용하여 능동적이며 저비용의 스마트 주차 관제 방식을 구현하였으며 CCTV의 특성상 외곡되는 이미지를 OpenCV 이미지 변형을 통해 외곡 이미지를 복원하여 인식률을 높였다.

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2.4/5GHz Dual-Band RF Design and Implementation and Performance Evaluation (2.4/5GHz 이중대역 RF 설계 및 구현과 성능 평가)

  • Byung-Ik Jung;Gyeong-Hyu Seok
    • The Journal of the Korea institute of electronic communication sciences
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    • v.18 no.5
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    • pp.755-760
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    • 2023
  • In this paper, the 2.4/5GHz dual band was used to ensure the reliability and stability of the wireless AV surveillance system using the existing 2.4GHz band. The proposed system supports dynamic channel allocation and channel change technology to avoid interference from other signals (Wifi, Bluetooth, etc.), reduces maintenance costs incurred when building wireless CCTV, and can be linked with existing wired CCTV. The service area of the A/V surveillance system used can be expanded.

Development for Analysis Service of Crowd Density in CCTV Video using YOLOv4 (YOLOv4를 이용한 CCTV 영상 내 군중 밀집도 분석 서비스 개발)

  • Seung-Yeon Hwang;Jeong-Joon Kim
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.24 no.3
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    • pp.177-182
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    • 2024
  • In this paper, the purpose of this paper is to predict and prevent the risk of crowd concentration in advance for possible future crowd accidents based on the Itaewon crush accident in Korea on October 29, 2022. In the case of a single CCTV, the administrator can determine the current situation in real time, but since the screen cannot be seen throughout the day, objects are detected using YOLOv4, which learns images taken with CCTV angle, and safety accidents due to crowd concentration are prevented by notification when the number of clusters exceeds. The reason for using the YOLO v4 model is that it improves with higher accuracy and faster speed than the previous YOLO model, making object detection techniques easier. This service will go through the process of testing with CCTV image data registered on the AI-Hub site. Currently, CCTVs have increased exponentially in Korea, and if they are applied to actual CCTVs, it is expected that various accidents, including accidents caused by crowd concentration in the future, can be prevented.

Analysis of Utilization Status and Limitations of Intelligent CCTV for Safety Management at Construction Sites (건설현장 안전관리를 위한 지능형 CCTV의 활용 현황 및 한계 분석)

  • Kim, Jae-Min;Yu, Jung-Ho
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2023.05a
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    • pp.203-204
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    • 2023
  • The construction industry is a hazardous environment in which many field workers work. Therefore, there is a limit to the safety manager's grasp of all situations. In order to solve these problems, the application of automatic control technology in connection with AI and CCTV is being introduced, and the development of intelligent CCTV to reduce the safety accident rate is actively progressing. This study seeks to present future directions by identifying the current status of intelligent CCTV developed to reduce the safety accident rate at construction sites and analyzing its limitations. Through this, the range of accident prevention types of the safety control system at the construction site will be confirmed and the need for future intelligent CCTV function development will be suggested.

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Development of AI Detection Model based on CCTV Image for Underground Utility Tunnel (지하공동구의 CCTV 영상 기반 AI 연기 감지 모델 개발)

  • Kim, Jeongsoo;Park, Sangmi;Hong, Changhee;Park, Seunghwa;Lee, Jaewook
    • Journal of the Society of Disaster Information
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    • v.18 no.2
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    • pp.364-373
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    • 2022
  • Purpose: The purpose of this paper is to develope smoke detection using AI model for detecting the initial fire in underground utility tunnels using CCTV Method: To improve detection performance of smoke which is high irregular, a deep learning model for fire detection was trained to optimize smoke detection. Also, several approaches such as dataset cleansing and gradient exploding release were applied to enhance model, and compared with results of those. Result: Results show the proposed approaches can improve the model performance, and the final model has good prediction capability according to several indexes such as mAP. However, the final model has low false negative but high false positive capacities. Conclusion: The present model can apply to smoke detection in underground utility tunnel, fixing the defect by linking between the model and the utility tunnel control system.

농장탐방 - 봉골농장(산란계)

  • Im, Seol-Hui
    • KOREAN POULTRY JOURNAL
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    • v.49 no.11
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    • pp.156-159
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    • 2017
  • 정부에서는 고병원성 조류인플루엔자(AI) 방역 종합대책으로 5,000여 양계농장에 CCTV를 설치한다는 내용을 발표했다. 이에 본지는 CCTV와 함께 현대화된 시설을 갖추고 있는 경기 김포시에 위치한 봉골농장(사장 윤용광)을 방문했다. 봉골농장은 김포채란지부에서 '시설이 잘 되어있는 농장'으로 추천할 만큼 현대화, 자동화되어 있을 뿐 아니라, 중추, 계분 사업을 함께 진행하고 있다.