• Title/Summary/Keyword: Processing Accuracy

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Training-Free Fuzzy Logic Based Human Activity Recognition

  • Kim, Eunju;Helal, Sumi
    • Journal of Information Processing Systems
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    • v.10 no.3
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    • pp.335-354
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    • 2014
  • The accuracy of training-based activity recognition depends on the training procedure and the extent to which the training dataset comprehensively represents the activity and its varieties. Additionally, training incurs substantial cost and effort in the process of collecting training data. To address these limitations, we have developed a training-free activity recognition approach based on a fuzzy logic algorithm that utilizes a generic activity model and an associated activity semantic knowledge. The approach is validated through experimentation with real activity datasets. Results show that the fuzzy logic based algorithms exhibit comparable or better accuracy than other training-based approaches.

A Chi-Square-Based Decision for Real-Time Malware Detection Using PE-File Features

  • Belaoued, Mohamed;Mazouzi, Smaine
    • Journal of Information Processing Systems
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    • v.12 no.4
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    • pp.644-660
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    • 2016
  • The real-time detection of malware remains an open issue, since most of the existing approaches for malware categorization focus on improving the accuracy rather than the detection time. Therefore, finding a proper balance between these two characteristics is very important, especially for such sensitive systems. In this paper, we present a fast portable executable (PE) malware detection system, which is based on the analysis of the set of Application Programming Interfaces (APIs) called by a program and some technical PE features (TPFs). We used an efficient feature selection method, which first selects the most relevant APIs and TPFs using the chi-square ($KHI^2$) measure, and then the Phi (${\varphi}$) coefficient was used to classify the features in different subsets, based on their relevance. We evaluated our method using different classifiers trained on different combinations of feature subsets. We obtained very satisfying results with more than 98% accuracy. Our system is adequate for real-time detection since it is able to categorize a file (Malware or Benign) in 0.09 seconds.

High Speed/Accuracy Tension Control for Continuous Processing Line of Steel Plant (제철 냉연 라인 연속 공정 시스템의 고속.고정도 장력 제어)

  • Park, Il-Young;Lee, Jeong-Uk;Kim, Young-Gyun;Choi, Chang-Ho;Kim, Gun-Young;Lee, Chang-Hwan
    • Proceedings of the KIEE Conference
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    • 1998.07f
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    • pp.1996-1998
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    • 1998
  • This paper deals with the tension control of continuous processing line for steel plant. In order to improve the tension control performance, tension control is included in POR. FF compensation is applied to get the same speed characteristics during acceleration and deceleration period. In simulation roll diameter variation and inertia variation are considered. It becomes clear that the proposed tension control system has high accuracy performance.

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A Study on Image Processing for the Accuracy Improvement of 3D Recovery (3차원 복원 정밀도 향상을 위한 영상처리 연구)

  • Lee, Suk-Yun;Jang, Seok-Woo
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2012.01a
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    • pp.193-195
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    • 2012
  • 본 논문에서는 구조광 3차원 시스템을 위하여 영상처리를 하여 3차원 정밀도를 높이는 방법을 제안한다. 구조광 기반의 3차원 시스템은 투사된 패턴을 특징점으로 하기 때문에 프로젝터와 카메라 사이에 정확한 대응점을 획득해야만 3차원 복원 신뢰성을 높일 수 있다. 그러나 환경에 따라 정확한 대응점 획득이 어려운 점이 많다. 실제 환경에서 물체들은 물체의 재질과 물체 표면의 색상 등의 이유로 서로 다른 반사율을 가지고 있어 여러 물체들이 혼재 되어 있는 환경에서 각각 물체에 투사된 패턴을 정확히 구별하는 일은 어려운 일이다. 따라서 패턴을 획득한 2차원 영상을 개선하여 패턴을 정확히 구별하여 프로젝터와 카메라 간의 화소 대응점의 정확도를 높여야만 3차원 복원 데이터의 신뢰도를 높일 수 있다. 따라서 본 논문에서는 노이즈 제거 및 다양한 영상처리를 통하여 2차원 영상들에서 패턴을 정확히 구분하도록 하여 화소 대응점의 정확도를 높임으로써 최종적으로 3차원 정밀도를 개선할 수 있는 방법을 제공한다.

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Online Blind Channel Normalization Using BPF-Based Modulation Frequency Filtering

  • Lee, Yun-Kyung;Jung, Ho-Young;Park, Jeon Gue
    • ETRI Journal
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    • v.38 no.6
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    • pp.1190-1196
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    • 2016
  • We propose a new bandpass filter (BPF)-based online channel normalization method to dynamically suppress channel distortion when the speech and channel noise components are unknown. In this method, an adaptive modulation frequency filter is used to perform channel normalization, whereas conventional modulation filtering methods apply the same filter form to each utterance. In this paper, we only normalize the two mel frequency cepstral coefficients (C0 and C1) with large dynamic ranges; the computational complexity is thus decreased, and channel normalization accuracy is improved. Additionally, to update the filter weights dynamically, we normalize the learning rates using the dimensional power of each frame. Our speech recognition experiments using the proposed BPF-based blind channel normalization method show that this approach effectively removes channel distortion and results in only a minor decline in accuracy when online channel normalization processing is used instead of batch processing

Context Aware System based on Bayesian Network driven Context Reasoning and Ontology Context Modeling

  • Ko, Kwang-Eun;Sim, Kwee-Bo
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.8 no.4
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    • pp.254-259
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    • 2008
  • Uncertainty of result of context awareness always exists in any context-awareness computing. This falling-off in accuracy of context awareness result is mostly caused by the imperfectness and incompleteness of sensed data, because of this reasons, we must improve the accuracy of context awareness. In this article, we propose a novel approach to model the uncertain context by using ontology and context reasoning method based on Bayesian Network. Our context aware processing is divided into two parts; context modeling and context reasoning. The context modeling is based on ontology for facilitating knowledge reuse and sharing. The ontology facilitates the share and reuse of information over similar domains of not only the logical knowledge but also the uncertain knowledge. Also the ontology can be used to structure learning for Bayesian network. The context reasoning is based on Bayesian Networks for probabilistic inference to solve the uncertain reasoning in context-aware processing problem in a flexible and adaptive situation.

Accyracy and Efficienty for Compution of Noncentral $X^2$ Probabilities (비중심카이제곱분포 확률계산의 비교)

  • Gu, Son-Hee
    • The Transactions of the Korea Information Processing Society
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    • v.4 no.2
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    • pp.483-490
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    • 1997
  • The evalution of the cumulative distridution function of the noncentral $X^2$ distribution required in approxi-mate determination of the $X^2$ test. Many approximations to the cumulative distribution function of the noncentral $X^2$ distribution have been suggested. However, in selecting an approximations both simplicity and accuracy should be considered. In this note we compared various approximations in terms of accuracy and efficiency.

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Study on Highly Accuracy Quality Evaluation of Spot Weld by use of Image Processing Technique

    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.5 no.4
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    • pp.38-46
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    • 1996
  • This paper discusses the feasibility of Ultrasonic Nondestructive Evaluation (UNDE) technique for sport weld quality. Ultrasonic c-scan image assisted by image processing technique was used for Nondestructive Evaluation(NDE) of spot weld quality. Ultrasonic testing results obtained were confirmed and compared by Optical Microscope and SAM(Scanning Acoustic Mircroscope) observation of the spot-weld cross section, The results show that the nugget dinameter can be successfully measured with the accuracy of 0.5mm. It was ascertained that ultrasonic c-scan technique is very effective method for the sake of the approach to the quantitative measurement of nugget diameter and the discrimination of the corona bond from nugget. Additional support for the above conclusions is provided by the results for galvanized steel. The ultrasonic results for galvanized welds generally correspond to the results for uncoated steel. Finally, it was found that the above-mentioned technique can be sufficiently applied to NDE method for securing the Quality Assurance(QA) of spot welded products in production line.

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Iris Recognition Using Ridgelets

  • Birgale, Lenina;Kokare, Manesh
    • Journal of Information Processing Systems
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    • v.8 no.3
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    • pp.445-458
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    • 2012
  • Image feature extraction is one of the basic works for biometric analysis. This paper presents the novel concept of application of ridgelets for iris recognition systems. Ridgelet transforms are the combination of Radon transforms and Wavelet transforms. They are suitable for extracting the abundantly present textural data that is in an iris. The technique proposed here uses the ridgelets to form an iris signature and to represent the iris. This paper contributes towards creating an improved iris recognition system. There is a reduction in the feature vector size, which is 1X4 in size. The False Acceptance Rate (FAR) and False Rejection Rate (FRR) were also reduced and the accuracy increased. The proposed method also avoids the iris normalization process that is traditionally used in iris recognition systems. Experimental results indicate that the proposed method achieves an accuracy of 99.82%, 0.1309% FAR, and 0.0434% FRR.

Development of Automatic Inspection System for Altitude and Length Measurement of ALC Block (ALC 블록의 높이와 길이 측정을 위한 자동 비전 검사 시스템 개발)

  • Eom, Ju-Jin;Huh, Kyung-Moo
    • Proceedings of the KIEE Conference
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    • 2003.11c
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    • pp.661-664
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    • 2003
  • This paper presents a computer image processing system, which inspects the measurement of the ALC block on a real-time basis. The Image processing system was established with a CCD camera, an image grabber, and a personal computer without using assembled measurement equipment. The image obtained by the system was analyzed by a devised algorithm, specially designed for the enhanced measurement accuracy. From the experimental results, we could find that the required measurement accuracy specification is sufficiently satisfied using our proposed method.

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