• Title/Summary/Keyword: matching prediction

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Abrupt Noise Cancellation and Speech Restoration for Speech Enhancement (음질 개선을 위한 돌발잡음 제거와 음성복원)

  • Son BeakKwon;Hahn Minsoo
    • Proceedings of the KSPS conference
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    • 2003.10a
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    • pp.101-104
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    • 2003
  • In this paper, speech quality is improved by removing abrupt noise intervals and then substituting the gaps with estimates of the previous speech waveform. An abrupt noise detection signal has been proposed as a prediction error signal by utilizing LP coefficients of the previous frame. Abrupt noise intervals are estimated by using spectral energy. After removing estimated noise intervals, we applied several waveform substitution techniques such as zero substitution, previous frame repetition, pattern matching, and pitch waveform replication. To prove the validity of our algorithm, the LPC spectral distortion test and the recognition test are executed and, the results show that the speech quality is fairly well improved.

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Fast Block Matching Algorithm by Search Point Prediction (탐색 점 예측에 의한 고속 블록 정합 알고리즘)

  • 서은주;장언동;김동우;한재혁;송영준;안재형
    • Proceedings of the Korea Multimedia Society Conference
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    • 2000.11a
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    • pp.191-194
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    • 2000
  • 일반 적인 고속 블록 정합 알고리즘들은 현재 프레임의 탐색 블록과 참조 프레임의 탐색영역 내의 블록간 MAD(Mean Absolute Distance)를 구하여 그 값을 탐색 점으로 사용하므로 탐색 점 수만큼 MAD를 구해야 하는 단점이 있다. 이와 같은 고속 블록 정합 알고리즘들의 단점을 해결하기 위해 탐색 점 예측에 의한 고속 블록 정합 알고리즘을 제안한다. 본 논문에서는 "이웃 한 화소는 서로 간에 거의 같은 값을 지니고 있다"라는 성질을 이용하여, 이웃 한 탐색 점 두개의 MAD 평균값을 계산하여 그 값을 새로운 탐색 점으로 사용하여 탐객 하기 때문에 탐색 점 수는 DS(Diamond Search)알고리즘과 비교하여 비슷하지만, 최소 오차가 center일 때의 탐색 점을 예측에 의해 산출 하므로 총 연산량은 2Ep$N_2$만큼 크게 줄어든다. Ep는 예측 탐색 점 수를 나타내며, N은 블록의 크기를 나타낸다.

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MOTION VECTOR DETECTION ALGORITHM USING THE STEEPEST DESCENT METHOD EFFECTIVE FOR AVOIDING LOCAL SOLUTIONS

  • Konno, Yoshinori;Kasezawa, Tadashi
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2009.01a
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    • pp.460-465
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    • 2009
  • This paper presents a new algorithm that includes a mechanism to avoid local solutions in a motion vector detection method that uses the steepest descent method. Two different implementations of the algorithm are demonstrated using two major search methods for tree structures, depth first search and breadth first search. Furthermore, it is shown that by avoiding local solutions, both of these implementations are able to obtain smaller prediction errors compared to conventional motion vector detection methods using the steepest descent method, and are able to perform motion vector detection within an arbitrary upper limit on the number of computations. The effects that differences in the search order have on the effectiveness of avoiding local solutions are also presented.

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Efficient Shot Change Detection Using Clustering Method on MPEG Video Frames (MPEG 비디오 프레임에서 FCM 클러스터링 기법을 이용한 효과적인 장면 전환 검출)

  • Lim, Seong-Jae;Lee, Bae-Ho
    • Annual Conference of KIPS
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    • 2000.10a
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    • pp.751-754
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    • 2000
  • In this paper, we propose an efficient method to detect abrupt shot changes in compressed MPEG video data by using reference ratios among video frames. The reference ratios among video frames imply the degree of similarities among adjacent frames by prediction coded type of each frames. A shot change is detected if the similarity degrees of a frame and its adjacent frames are low. This paper proposes an efficient shot change detection algorithm by using Fuzzy c-means(FCM) clustering algorithm. The FCM clustering uses the shot change probabilities evaluated in the mask matching of reference ratios and difference measure values based on frame reference ratios.

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Flutter Analysis Model Tuning of KC-100 Aircraft with the Ground Vibration Test Results (지상진동시험결과를 이용한 KC-100 항공기의 플러터 해석모델 보정)

  • Paek, Seung-Kil;Choi, Yong-Joon
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2011.10a
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    • pp.191-195
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    • 2011
  • The airframe ground vibration tests were conducted on the KC-100 aircraft according to the regulation requirement, KAS 23.629(a)(2) and the modal characteristics for the target modes were measured. To make FE model tuning, a design sensitivity approach with engineering judgment was implemented using MSC/Nastran and Attune, a genetic algorithm based parameter optimization software. Based on the comparison between initial prediction and test results, design variables such as beam cross-sectional properties and spring stiffnesses were devised. As the results, the correlation of the FE model to the GVT results was made appropriately, meeting the goal of matching the target frequencies within 5%.

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Pivot Nonlinearity in Disk Drive Rotary Actuator : Measurement and Modeling (HDD 회전형구동장치의 피봇비선형성 측정 및 모델링)

  • 박재흥;변용규;장흥성;노광춘
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1996.11a
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    • pp.419-424
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    • 1996
  • As track density increases, the effects of nonlinearity in pivot bearing of hard disk drive on the servo performance are becoming more important in considering the range of inertia force and the input torque during settling and tracking mode. Recently, an increasing attention is given to more precise experimental observations and modelings of pivot nonlinearity for achieving higher performance of servo control. In this paper, we propose a new model that shows an improved prediction of the pivot nonlinearity than existing preload-plus-two-slope model at matching simulations and experimental results in both time and frequency domains. Experimental measurements are carried out to validate and identify the specific nonlinearity presents in the pivot bearing when its in fine motion. Using the experimental results new model along with the existing one are characterized and compared for relevancies.

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Guitar Tab Digit Recognition and Play using Prototype based Classification

  • Baek, Byung-Hyun;Lee, Hyun-Jong;Hwang, Doosung
    • Journal of the Korea Society of Computer and Information
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    • v.21 no.9
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    • pp.19-25
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    • 2016
  • This paper is to recognize and play tab chords from guitar musical sheets. The musical chord area of an input image is segmented by changing the image in saturation and applying the Grabcut algorithm. Based on a template matching, our approach detects tab starting sections on a segmented musical area. The virtual block method is introduced to search blanks over chord lines and extract tab fret segments, which doesn't cause the computation loss to remove tab lines. In the experimental tests, the prototype based classification outperforms Bayesian method and the nearest neighbor rule with the whole set of training data and its performance is similar to that of the support vector machine. The experimental result shows that the prediction rate is about 99.0% and the number of selected prototypes is below 3.0%.

A Study on Object Tracking Using Block Matching Algorithm with Motion Prediction (움직임 예측을 통한 블록정합 추적기법 연구)

  • Kwon, Yong-il;Jeong, Choong-heui
    • Annual Conference of KIPS
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    • 2013.05a
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    • pp.317-318
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    • 2013
  • 블록정합을 이용한 객체 추적 시 다른 물체에 의한 부분적인 가림이나 잡음 등이 발생할 경우, 추적 성능이 매우 저하될 수 있다. 이는 단순히 두 영상의 밝기를 블록 단위로 비교하여 이동 위치를 판단하기 때문이다. 본 논문에서는 상기 문제점을 해결하기 위해, 객체의 움직임을 예측할 수 있는 필터를 적용한다. 예측된 위치와 가까운 곳에서 계산된 유사도에는 보다 높은 가중치를 곱하여 블록정합을 수행한다. 필터를 통해 예측된 객체 이동은 과거의 움직임을 반영하고 있으므로 일시적인 외란에 대해 추적 능력을 강인하게 한다.

The Extraction Method of Spacial Element Cost based on the Quantity Take-Off and Bill of Quantity (건설공사의 수량산출서 및 산출내역서 기반 공간별/부위별 공사비 추출방법에 관한 연구)

  • Nam, Dong-hee;Kim, Hyung-Jin
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2021.11a
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    • pp.232-233
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    • 2021
  • As construction projects become larger and more complex in the construction environment, and as the Building Information Model(BIM) is technically introduced, the demand for construction costs in units of space is increasing. Cost estimating of spacial element can reduce the error in cost prediction method based on cost of work type and to utilize the construction cost data for each space in the design phase. The purpose of this study is to extract spatial statements by utilizing spacial information of quantitative statements based on items that are common elements of the Quantity Take-Off and Bill of Quantity.

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Real-Time Instance Segmentation Method Based on Location Attention

  • Li Liu;Yuqi Kong
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.18 no.9
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    • pp.2483-2494
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    • 2024
  • Instance segmentation is a challenging research in the field of computer vision, which combines the prediction results of object detection and semantic segmentation to provide richer image feature information. Focusing on the instance segmentation in the street scene, the real-time instance segmentation method based on SOLOv2 is proposed in this paper. First, a cross-stage fusion backbone network based on position attention is designed to increase the model accuracy and reduce the computational effort. Then, the loss of shallow location information is decreased by integrating two-way feature pyramid networks. Meanwhile, cross-stage mask feature fusion is designed to resolve the small objects missed segmentation. Finally, the adaptive minimum loss matching method is proposed to decrease the loss of segmentation accuracy due to object occlusion in the image. Compared with other mainstream methods, our method meets the real-time segmentation requirements and achieves competitive performance in segmentation accuracy.