• 제목/요약/키워드: statistical matching

검색결과 267건 처리시간 0.029초

Environmental Survey Data Analysis by Data Fusion Technique

  • 조광현;박희창
    • 한국데이터정보과학회:학술대회논문집
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    • 한국데이터정보과학회 2006년도 추계 학술발표회 논문집
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    • pp.21-27
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    • 2006
  • Data fusion is generally defined as the use of techniques that combine data from multiple sources and gather that information in order to achieve inferences. Data fusion is also called data combination or data matching. Data fusion is divided in five branch types which are exact matching, judgemental matching, probability matching, statistical matching, and data linking. Currently, Gyeongnam province is executing the social survey every year with the provincials. But, they have the limit of the analysis as execute the different survey to 3 year cycles. In this paper, we study to data fusion of environmental survey data using sas macro. We can use data fusion outputs in environmental preservation and environmental improvement.

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Local-Based Iterative Histogram Matching for Relative Radiometric Normalization

  • Seo, Dae Kyo;Eo, Yang Dam
    • 한국측량학회지
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    • 제37권5호
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    • pp.323-330
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    • 2019
  • Radiometric normalization with multi-temporal satellite images is essential for time series analysis and change detection. Generally, relative radiometric normalization, which is an image-based method, is performed, and histogram matching is a representative method for normalizing the non-linear properties. However, since it utilizes global statistical information only, local information is not considered at all. Thus, this paper proposes a histogram matching method considering local information. The proposed method divides histograms based on density, mean, and standard deviation of image intensities, and performs histogram matching locally on the sub-histogram. The matched histogram is then further partitioned and this process is performed again, iteratively, controlled with the wasserstein distance. Finally, the proposed method is compared to global histogram matching. The experimental results show that the proposed method is visually and quantitatively superior to the conventional method, which indicates the applicability of the proposed method to the radiometric normalization of multi-temporal images with non-linear properties.

Object Tracking using Adaptive Template Matching

  • Chantara, Wisarut;Mun, Ji-Hun;Shin, Dong-Won;Ho, Yo-Sung
    • IEIE Transactions on Smart Processing and Computing
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    • 제4권1호
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    • pp.1-9
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    • 2015
  • Template matching is used for many applications in image processing. One of the most researched topics is object tracking. Normalized Cross Correlation (NCC) is the basic statistical approach to match images. NCC is used for template matching or pattern recognition. A template can be considered from a reference image, and an image from a scene can be considered as a source image. The objective is to establish the correspondence between the reference and source images. The matching gives a measure of the degree of similarity between the image and the template. A problem with NCC is its high computational cost and occasional mismatching. To deal with this problem, this paper presents an algorithm based on the Sum of Squared Difference (SSD) and an adaptive template matching to enhance the quality of the template matching in object tracking. The SSD provides low computational cost, while the adaptive template matching increases the accuracy matching. The experimental results showed that the proposed algorithm is quite efficient for image matching. The effectiveness of this method is demonstrated by several situations in the results section.

고속 블록정합 움직임 추정을 위한 최적의 탐색 패턴 (Optimal Search Patterns for Fast Block Matching Motion Estimation)

  • 임동근;호요성
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2000년도 하계종합학술대회 논문집(4)
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    • pp.39-42
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    • 2000
  • Motion estimation plays an important role for video coding. In this paper, we derive optimal search patterns for fast block matching motion estimation. By analyzing the block matching algorithm as a function of block shape and size, we can find an optimal search pattern for initial motion estimation. The proposed idea, which has been verified experimentally by computer simulations, can provide an analytical basis for the current MPEG-2 proposals. In order to choose a more compact search pattern for BMA, we exploit the statistical relationship between the motion and the frame difference of each block.

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Statistical Error Compensation Techniques for Spectral Quantization

  • Choi, Seung-Ho;Kim, Hong-Kook
    • 음성과학
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    • 제11권4호
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    • pp.17-28
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    • 2004
  • In this paper, we propose a statistical approach to improve the performance of spectral quantization of speech coders. The proposed techniques compensate for the distortion in a decoded line spectrum pairs (LSP) vector based on a statistical mapping function between a decoded LSP vector and its corresponding original LSP vector. We first develop two codebook-based probabilistic matching (CBPM) methods based on linear mapping functions according to different assumption of distribution of LSP vectors. In addition, we propose an iterative procedure for the two CBPMs. We apply the proposed techniques to a predictive vector quantizer used for the IS-641 speech coder. The experimental results show that the proposed techniques reduce average spectral distortion by around 0.064dB.

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한의 종양학 연구 분야에서의 Propensity Score Matching Method 적용에 대한 문헌 고찰 (A Literature Review on the Application of the Propensity Score Matching Method in the Field of Asian Oncology)

  • 김동현;김종희;유화승;박소정
    • 대한암한의학회지
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    • 제27권1호
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    • pp.25-36
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    • 2022
  • The Randomized Control Trial (RCT) is the most well-established and widely used statistical methodology in clinical research; however, applying thorough RCT to cancer patients presents challenges such as ethical concerns, high costs, short clinical periods, and limitations in collecting various side effects. To address this issue, the propensity score matching method, which takes advantage of the benefits of observational research while compensating for the drawbacks of randomized control trials, is used in a variety of fields. In recent years, 28 studies on the effectiveness of Korean medicine on tumors have been conducted abroad using the Propensity Score Matching Method, but none have been conducted in Korea. The majority of studies have focused on liver cancer, colon cancer, lung cancer, and stomach cancer, with endpoints such as survival time, incidence rate, quality of life, and treatment outcomes revealing statistical differences in how Korean medicine intervention affects treatment outcomes. As a result, well-established studies using the propensity matching score methodology should be useful in evaluating the impact of Korean medicine in oncology treatments.

Street Fashion Information Analysis System Design Using Data Fusion

  • Park, Hee-Chang;Park, Hye-Won
    • 한국데이터정보과학회:학술대회논문집
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    • 한국데이터정보과학회 2005년도 추계학술대회
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    • pp.35-45
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    • 2005
  • Data fusion is method to combination data. The purpose of this study is to design and implementation for street fashion information analysis system using data fusion. It can offer variety and actually information because it can fuse image data and survey data for street fashion. Data fusion method exists exact matching method, judgemental matching method, probability matching method, statistical matching method, data linking method, etc. In this study, we use exact matching method. Our system can be visual information analysis of customer's viewpoint because it can analyze both each data and fused data for image data and survey data.

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블록 매칭 기반 영상 스테가노그래피의 삽입 용량 개선을 위한 통계적 접근 방법 (A Statistical Approach for Improving the Embedding Capacity of Block Matching based Image Steganography)

  • 김재영;박한훈;박종일
    • 방송공학회논문지
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    • 제22권5호
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    • pp.643-651
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    • 2017
  • 스테가노그래피는 정보 은닉 기법중의 하나로, 제 3자에 의해 은닉 정보의 존재를 알지 못하게 방지한다는 점에서 정보의 해독을 막기 위한 암호 기법과는 구별된다. 본 논문에서는 영상을 미디어로 사용하는 영상 스테가노그래피 방법으로, 블록 매칭을 이용하여 이산웨이블릿 변환 영역에 정보를 삽입하는 새로운 스테가노그래피 방법을 제안한다. 제안 방법은 블록 매칭 후보군 블록의 불균등한 사용으로 인해서 발생하는 삽입 용량의 손실을 개선하여 고용량의 영상 정보를 삽입할 수 있다. 이를 위해, 블록 내부의 분산값을 고려하여 고주파수 성분을 갖는 후보군 블록은 최대한 보존하고, 저주파수 성분의 후보군 블록의 수는 k-평균 군집화 알고리즘을 이용한 압축을 통해 줄인다. 제안된 방법을 통해 기존 블록 매칭 기반 스테가노그래피 방법과 유사한 PSNR을 갖는 비밀 영상의 추출이 가능하면서 동시에 고용량의 영상 정보 삽입이 가능한 것을 확인할 수 있었다.

사회연결망분석을 이용한 잡매칭함수 분석 (Job-Matching Function Analysis Using Social Network Analysis)

  • 조장식;박성익
    • Communications for Statistical Applications and Methods
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    • 제18권6호
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    • pp.675-685
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    • 2011
  • 본 연구는 구직자의 구직희망조건과 구인기업의 구인조건을 동시에 고려하여 특정 구직자가 특정 기업에 잡매칭될 가능성을 판단할 수 있는 잡매칭 함수를 제안하였다. 그리고 사회연결망분석(social network analysis)을 이용하여 구직자와 구인기업간의 상호작용의 가능성을의미하는 연결정도 중심성을 분석하였다. 분석결과는 다음과 같다. 첫째, 연결정도는 일부의 구직자 또는 구인기업에게 심하게 편중되어 있음을 알 수 있다. 그리고 전혀 매칭되지 않는 구직자와 구인기업의 수도 다수인 것으로 나타났다. 둘째, 의사결정나무 분석 결과에 의하면, 구직자 특성들 중 연결정도 중심성에 가장 많은 영향을 미친 특성은 성별이었고, 그 다음으로 연령, 학력 등의 순으로 나타났다. 그리고 구인기업특성들 중 연결정도 중심성에 가장 많은 영향을 미친 특성은 제시임금이었고, 그 다음으로 업종, 기업규모의 순으로 나타났다.