• 제목/요약/키워드: Recognition Response Time

검색결과 197건 처리시간 0.021초

인공신경망을 이용한 실시간 영문인쇄체 인식 (The Real-time Printed Alphabets Recognition using Artificial Neural Networks)

  • 심성균;정원용
    • 융합신호처리학회 학술대회논문집
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    • 한국신호처리시스템학회 2001년도 하계 학술대회 논문집(KISPS SUMMER CONFERENCE 2001
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    • pp.149-152
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    • 2001
  • 본 논문은 이미 판서된 오프라인(off-line) 영문 인쇄체를 실시간으로 인식하기 위해 인공신경망의 역전파 (Backpropagation) 학습알고리즘을 적용하여 인식 시스템의 성능을 최대화하고, 양질의 특성벡터를 추출함으로서 실시간 처리가 가능하도록 처리시간을 단축시키는 것을 목적으로 하였다. 실시간 영상을 획득하고 처리하기 위한 Genesis 실시간 영상처리 보드와 이 보드를 제어하기 위한 MIL(Matrox Image Library)패키지를 이용하여 실시간 인식시스템을 구현하였고, 인공신경망의 기대값을 ASCII형태로 변환시켜 출력벡터의 차수를 감소시키는 방법을 제시함으로서 패턴의 학습과 인식처리에 소요되는 시간, 그리고 인식시스템의 성능을 비교해 보았다.

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PC User Authentication using Hand Gesture Recognition and Challenge-Response

  • Shin, Sang-Min;Kim, Minsoo
    • 한국정보기술학회 영문논문지
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    • 제8권2호
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    • pp.79-87
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    • 2018
  • The current PC user authentication uses character password based on user's knowledge. However, this can easily be exploited by password cracking or key-logging programs. In addition, the use of a difficult password and the periodic change of the password make it easy for the user to mistake exposing the password around the PC because it is difficult for the user to remember the password. In order to overcome this, we propose user gesture recognition and challenge-response authentication. We apply user's hand gesture instead of character password. In the challenge-response method, authentication is performed in the form of responding to a quiz, rather than using the same password every time. To apply the hand gesture to challenge-response authentication, the gesture is recognized and symbolized to be used in the quiz response. So we show that this method can be applied to PC user authentication.

합성곱 신경망을 사용한 임베디드 시스템에서의 실시간 손글씨 인식 (Real-Time Handwritten Letters Recognition On An Embedded Computer Using ConvNets)

  • 세피데사닷;이상훈;조남익
    • 한국방송∙미디어공학회:학술대회논문집
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    • 한국방송∙미디어공학회 2018년도 하계학술대회
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    • pp.84-87
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    • 2018
  • Handwritten letter recognition is important for numerous real-world applications and many topics like human-machine interaction, education, entertainment, and more. This paper describes the implementation of a real-time handwritten letters recognition system on a common embedded computer. Recognition is performed using a customized convolutional neural network, which was designed to work with low computational resources such as the Raspberry Pi platform. The experimental results show that the proposed real-time system achieves an outstanding performance in the accuracy rate and the response time for recognition of twenty-six handwritten letters.

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Kinect Sensor- based LMA Motion Recognition Model Development

  • Hong, Sung Hee
    • International Journal of Advanced Culture Technology
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    • 제9권3호
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    • pp.367-372
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    • 2021
  • The purpose of this study is to suggest that the movement expression activity of intellectually disabled people is effective in the learning process of LMA motion recognition based on Kinect sensor. We performed an ICT motion recognition games for intellectually disabled based on movement learning of LMA. The characteristics of the movement through Laban's LMA include the change of time in which movement occurs through the human body that recognizes space and the tension or relaxation of emotion expression. The design and implementation of the motion recognition model will be described, and the possibility of using the proposed motion recognition model is verified through a simple experiment. As a result of the experiment, 24 movement expression activities conducted through 10 learning sessions of 5 participants showed a concordance rate of 53.4% or more of the total average. Learning motion games that appear in response to changes in motion had a good effect on positive learning emotions. As a result of study, learning motion games that appear in response to changes in motion had a good effect on positive learning emotions

Intelligent Healthcare Service Provisioning Using Ontology with Low-Level Sensory Data

  • Khattak, Asad Masood;Pervez, Zeeshan;Lee, Sung-Young;Lee, Young-Koo
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제5권11호
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    • pp.2016-2034
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    • 2011
  • Ubiquitous Healthcare (u-Healthcare) is the intelligent delivery of healthcare services to users anytime and anywhere. To provide robust healthcare services, recognition of patient daily life activities is required. Context information in combination with user real-time daily life activities can help in the provision of more personalized services, service suggestions, and changes in system behavior based on user profile for better healthcare services. In this paper, we focus on the intelligent manipulation of activities using the Context-aware Activity Manipulation Engine (CAME) core of the Human Activity Recognition Engine (HARE). The activities are recognized using video-based, wearable sensor-based, and location-based activity recognition engines. An ontology-based activity fusion with subject profile information for personalized system response is achieved. CAME receives real-time low level activities and infers higher level activities, situation analysis, personalized service suggestions, and makes appropriate decisions. A two-phase filtering technique is applied for intelligent processing of information (represented in ontology) and making appropriate decisions based on rules (incorporating expert knowledge). The experimental results for intelligent processing of activity information showed relatively better accuracy. Moreover, CAME is extended with activity filters and T-Box inference that resulted in better accuracy and response time in comparison to initial results of CAME.

Using Hierarchical Performance Modeling to Determine Bottleneck in Pattern Recognition in a Radar System

  • Alsheikhy, Ahmed;Almutiry, Muhannad
    • International Journal of Computer Science & Network Security
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    • 제22권3호
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    • pp.292-302
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    • 2022
  • The radar tomographic imaging is based on the Radar Cross-Section "RCS" of the materials of a shape under examination and investigation. The RCS varies as the conductivity and permittivity of a target, where the target has a different material profile than other background objects in a scene. In this research paper, we use Hierarchical Performance Modeling "HPM" and a framework developed earlier to determine/spot bottleneck(s) for pattern recognition of materials using a combination of the Single Layer Perceptron (SLP) technique and tomographic images in radar systems. HPM provides mathematical equations which create Objective Functions "OFs" to find an average performance metric such as throughput or response time. Herein, response time is used as the performance metric and during the estimation of it, bottlenecks are found with the help of OFs. The obtained results indicate that processing images consumes around 90% of the execution time.

청각 단어 재인에서 나타난 한국어 단어길이 효과 (The Korean Word Length Effect on Auditory Word Recognition)

  • 최원일;남기춘
    • 대한음성학회:학술대회논문집
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    • 대한음성학회 2002년도 11월 학술대회지
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    • pp.137-140
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    • 2002
  • This study was conducted to examine the korean word length effects on auditory word recognition. Linguistically, word length can be defined by several sublexical units such as letters, phonemes, syllables, and so on. In order to investigate which units are used in auditory word recognition, lexical decision task was used. Experiment 1 and 2 showed that syllable length affected response time, and syllable length interacted with word frequency. As a result, in recognizing auditory word syllable length was important variable.

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CCTV 영상 정보와 재난재해 인식 및 실시간 위기 대응 시스템의 융합에 관한 연구 (Research on the Convergence of CCTV Video Information with Disaster Recognition and Real-time Crisis Response System)

  • 김기봉;금기문;장창복
    • 한국융합학회논문지
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    • 제8권3호
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    • pp.15-22
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    • 2017
  • 최첨단 과학기술 시대를 맞아 사람들은 재난재해 예경보 시스템 및 재난재해 대응 시스템들이 잘 갖추어져 있다고 믿고 있으나 세월호 사건 등에서 알 수 있듯이 현실에서는 제대로 된 재난재해 예경보 및 대응 시스템이 갖추어져 있지 않은 상황이다. 기존의 재난재해 예경보 시스템의 경우 대부분 효율성이 낮은 센서 정보를 기반으로 하고 있으며, 영상 정보는 모니터링 요원에 의해 수동적으로 감시되고 있다. 또한 인식된 재난 재해에 대해서도 어떻게 대응하고 처리할 것인지에 대한 대응 시스템과의 연계가 미흡하다. 이에 따라 본 논문에서 CCTV 영상정보를 기반으로 특정 재난재해의 발생여부 및 정도를 최대한 빠르고 정확하게 인식하고 위기대응 매뉴얼에 근거하여 이를 모든 관련부처나 담당자들에게 자동으로 통보함으로써 효과적인 위기대응이 가능한 CCTV 기반 재난재해 인식 및 실시간 위기 대응 기술을 제안한다.

FRS-OCC: Face Recognition System for Surveillance Based on Occlusion Invariant Technique

  • Abbas, Qaisar
    • International Journal of Computer Science & Network Security
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    • 제21권8호
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    • pp.288-296
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    • 2021
  • Automated face recognition in a runtime environment is gaining more and more important in the fields of surveillance and urban security. This is a difficult task keeping in mind the constantly volatile image landscape with varying features and attributes. For a system to be beneficial in industrial settings, it is pertinent that its efficiency isn't compromised when running on roads, intersections, and busy streets. However, recognition in such uncontrolled circumstances is a major problem in real-life applications. In this paper, the main problem of face recognition in which full face is not visible (Occlusion). This is a common occurrence as any person can change his features by wearing a scarf, sunglass or by merely growing a mustache or beard. Such types of discrepancies in facial appearance are frequently stumbled upon in an uncontrolled circumstance and possibly will be a reason to the security systems which are based upon face recognition. These types of variations are very common in a real-life environment. It has been analyzed that it has been studied less in literature but now researchers have a major focus on this type of variation. Existing state-of-the-art techniques suffer from several limitations. Most significant amongst them are low level of usability and poor response time in case of any calamity. In this paper, an improved face recognition system is developed to solve the problem of occlusion known as FRS-OCC. To build the FRS-OCC system, the color and texture features are used and then an incremental learning algorithm (Learn++) to select more informative features. Afterward, the trained stack-based autoencoder (SAE) deep learning algorithm is used to recognize a human face. Overall, the FRS-OCC system is used to introduce such algorithms which enhance the response time to guarantee a benchmark quality of service in any situation. To test and evaluate the performance of the proposed FRS-OCC system, the AR face dataset is utilized. On average, the FRS-OCC system is outperformed and achieved SE of 98.82%, SP of 98.49%, AC of 98.76% and AUC of 0.9995 compared to other state-of-the-art methods. The obtained results indicate that the FRS-OCC system can be used in any surveillance application.

음성인식용 인터페이스의 사용편의성 평가 방법론 (A Usability Evaluation Method for Speech Recognition Interfaces)

  • 한성호;김범수
    • 대한인간공학회지
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    • 제18권3호
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    • pp.105-125
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    • 1999
  • As speech is the human being's most natural communication medium, using it gives many advantages. Currently, most user interfaces of a computer are using a mouse/keyboard type but the interface using speech recognition is expected to replace them or at least be used as a tool for supporting it. Despite the advantages, the speech recognition interface is not that popular because of technical difficulties such as recognition accuracy and slow response time to name a few. Nevertheless, it is important to optimize the human-computer system performance by improving the usability. This paper presents a set of guidelines for designing speech recognition interfaces and provides a method for evaluating the usability. A total of 113 guidelines are suggested to improve the usability of speech-recognition interfaces. The evaluation method consists of four major procedures: user interface evaluation; function evaluation; vocabulary estimation; and recognition speed/accuracy evaluation. Each procedure is described along with proper techniques for efficient evaluation.

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