• 제목/요약/키워드: Data preprocessing technique

검색결과 167건 처리시간 0.022초

우리별 1호 지구 관측 영상의 방사학적 및 기하학적 보정 (Radiometric and Geometric Correction of the KITSAT-1 CCD Earth Images)

  • 이임평;김태정
    • 대한원격탐사학회지
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    • 제12권1호
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    • pp.26-42
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    • 1996
  • CCD 지구 영상 실험 장치(CCD Earth Images Experiment, CEIE)는 우리별 1호의 탑재 체중의 하나이다. 우리별 1호가 발사된 후에 CEIE는 이제까지 약 500여장의 세계 곳곳의 지표면 영상을 촬영하였다. 내재한 방사학적(radiometric) 오차 및 기하학적(goemetric) 찌그러짐으로 인 해, 관측된 영상은 지표면의 모습과 아주 다르다. 관측된 영상을 다양한 목적의 응용을 위해 처리 하고 분석하기 전에 이러한 오차를 제거하기 위한 전처리 과정을 반드시 수행하여야 한다. 이 논 문은 우리별 1호가 관측한 영상에 방사학적 및 기하학적 보정을 수행하는 전처리 과정을 설명한 다.

깊이맵 향상을 위한 전처리 과정과 그래프 컷에 관한 연구 (A Study of the Use of step by preprocessing and Graph Cut for the exact depth map)

  • 김영섭;송응열
    • 반도체디스플레이기술학회지
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    • 제10권3호
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    • pp.99-103
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    • 2011
  • The stereoscopic vision system is the algorithm to obtain the depth of target object of stereo vision image. This paper presents an efficient disparity matching method using blue edge filter and graph cut algorithm. We do recommend the use of the simple sobel edge operator. The application of B band sobel edge operator over image demonstrates result with somewhat noisy (distinct border). The basic technique is to construct a specialized graph for the energy function to be minimized such that the minimum cut on the graph also minimizes the energy (either globally or locally). This method has the advantage of saving a lot of data. We propose a preprocessing effective stereo matching method based on sobel algorithm which uses blue edge information and the graph cut, we could obtain effective depth map.

ON A REDUCTION OF PITCH SEARCHING TIME BY PREPROCESSING IN THE CELP VOCODER

  • Kim, Daesik;Bae, Myungjin;Kim, Jongjae;Byun, Kyungjin;Han, Kichun;Yoo, Hahyoung
    • 한국음향학회:학술대회논문집
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    • 한국음향학회 1994년도 FIFTH WESTERN PACIFIC REGIONAL ACOUSTICS CONFERENCE SEOUL KOREA
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    • pp.904-911
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    • 1994
  • Code Excited Linear Prediction (CELP) speech coders exhibit good performance at data rates below 4.8 kbps. The major drawback to CELP type coders is their many computation. In this paper, we propose a new pitch search method that preserves the quality of the CELP vocoder with reducing complexity. The basic idea is to apply the preprocessing technique beforehand grasping the autocorrelation property of speech waveform. By using the proposed method, we can get approximately 77% complexity reduction in the pitch search.

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FT-NIR을 이용한 상추(Lactuca sativa L) 종자의 비파괴 선별 기술에 관한 연구 (Study on non-destructive sorting technique for lettuce(Lactuca sativa L) seed using fourier transform near-Infrared spectrometer)

  • 안치국;조병관;강점순;이강진
    • 농업과학연구
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    • 제39권1호
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    • pp.111-116
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    • 2012
  • Nondestructive evaluation of seed viability is one of the highly demanding technologies for seed production industry. Conventional seed sorting technologies, such as tetrazolium and standard germination test are destructive, time consuming, and labor intensive methods. Near infrared spectroscopy technique has shown good potential for nondestructive quality measurements for food and agricultural products. In this study, FT-NIR spectroscopy was used to classify normal and artificially aged lettuce seeds. The spectra with the range of 1100~2500 nm were scanned for lettuce seeds and analyzed using the principal component analysis(PCA) method. To classify viable seeds from nonviable seeds, a calibration modeling set was developed with a partial least square(PLS) method. The calibration model developed from PLS resulted in 98% classification accuracy with the Savitzky-Golay $1^{st}$ derivative preprocessing method. The prediction accuracy for the test data set was 93% with the MSC(Multiplicative Scatter Correction) preprocessing method. The results show that FT-NIR has good potential for discriminating non-viable lettuce seeds from viable ones.

강화된 유전알고리즘을 이용한 이중 동조 기반 퍼지 예측시스템 설계 및 응용 (Design of Fuzzy Prediction System based on Dual Tuning using Enhanced Genetic Algorithms)

  • 방영근;이철희
    • 전기학회논문지
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    • 제59권1호
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    • pp.184-191
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    • 2010
  • Many researchers have been considering genetic algorithms to system optimization problems. Especially, real-coded genetic algorithms are very effective techniques because they are simpler in coding procedures than binary-coded genetic algorithms and can reduce extra works that increase the length of chromosome for wide search space. Thus, this paper presents a fuzzy system design technique to improve the performance of the fuzzy system. The proposed system consists of two procedures. The primary tuning procedure coarsely tunes fuzzy sets of the system using the k-means clustering algorithm of which the structure is very simple, and then the secondary tuning procedure finely tunes the fuzzy sets using enhanced real-coded genetic algorithms based on the primary procedure. In addition, this paper constructs multiple fuzzy systems using a data preprocessing procedure which is contrived for reflecting various characteristics of nonlinear data. Finally, the proposed fuzzy system is applied to the field of time series prediction and the effectiveness of the proposed techniques are verified by simulations of typical time series examples.

아시아 지역 지면피복자료 비교 연구: USGS, IGBP, 그리고 UMd (A Comparison of the Land Cover Data Sets over Asian Region: USGS, IGBP, and UMd)

  • 강전호;서명석;곽종흠
    • 대기
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    • 제17권2호
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    • pp.159-169
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    • 2007
  • A comparison of the three land cover data sets (United States Geological Survey: USGS, International Geosphere Biosphere Programme: IGBP, and University of Maryland: UMd), derived from 1992-1993 Advanced Very High Resolution Radiometer(AVHRR) data sets, was performed over the Asian continent. Preprocesses such as the unification of map projection and land cover definition, were applied for the comparison of the three different land cover data sets. Overall, the agreement among the three land cover data sets was relatively high for the land covers which have a distinct phenology, such as urban, open shrubland, mixed forest, and bare ground (>45%). The ratios of triple agreement (TA), couple agreement (CA) and total disagreement (TD) among the three land cover data sets are 30.99%, 57.89% and 8.91%, respectively. The agreement ratio between USGS and IGBP is much greater (about 80%) than that (about 32%) between USGS and UMd (or IGBP and UMd). The main reasons for the relatively low agreement among the three land cover data sets are differences in 1) the number of land cover categories, 2) the basic input data sets used for the classification, 3) classification (or clustering) methodologies, and 4) level of preprocessing. The number of categories for the USGS, IGBP and UMd are 24, 17 and 14, respectively. USGS and IGBP used only the 12 monthly normalized difference vegetation index (NDVI), whereas UMd used the 12 monthly NDVI and other 29 auxiliary data derived from AVHRR 5 channels. USGS and IGBP used unsupervised clustering method, whereas UMd used the supervised technique, decision tree using the ground truth data derived from the high resolution Landsat data. The insufficient preprocessing in USGS and IGBP compared to the UMd resulted in the spatial discontinuity and misclassification.

Hyperspectral imaging technique to evaluate the firmness and the sweetness index of tomatoes

  • Rahman, Anisur;Park, Eunsoo;Bae, Hyungjin;Cho, Byoung-Kwan
    • 농업과학연구
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    • 제45권4호
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    • pp.823-837
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    • 2018
  • The objective of this study was to evaluate the firmness and the sweetness index (SI) of tomatoes with a hyperspectral imaging (HSI) technique within the wavelength range of 1000 - 1550 nm. The hyperspectral images of 95 tomatoes were acquired with a push-broom hyperspectral reflectance imaging system, from which the mean spectra of each tomato were extracted from the regions of interest. The reference firmness and sweetness index of the same sample was measured and calibrated with their corresponding spectral data by partial least squares (PLS) regression with different preprocessing methods. The calibration model developed by PLS regression based on the Savitzky-Golay second-derivative preprocessed spectra resulted in a better performance for both the firmness and the SI of the tomatoes compared to models developed by other preprocessing methods. The correlation coefficients ($R_{pred}$) were 0.82, and 0.74 with a standard error of prediction of 0.86 N, and 0.63, respectively. Then, the feature wavelengths were identified using a model-based variable selection method, i.e., variable importance in projection, from the PLS regression analyses. Finally, chemical images were derived by applying the respective regression coefficients on the spectral image in a pixel-wise manner. The resulting chemical images provided detailed information on the firmness and the SI of the tomatoes. The results show that the proposed HSI technique has potential for rapid and non-destructive evaluation of firmness and the sweetness index of tomatoes.

공정측정데이터의 비선형표현과 전처리를 활용한 분류기반 진단 (Diagnostic Classification Based on Nonlinear Representation and Filtering of Process Measurement Data)

  • 조현우
    • 한국산학기술학회논문지
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    • 제16권5호
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    • pp.3000-3005
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    • 2015
  • 신뢰할 수 있는 공정 감시와 진단은 생산 공정의 안전과 최종제품의 품질을 보장이라는 관점에서 중요하다. 공정진단의 목적은 특정한 공정 이상의 원인을 밝혀내는 것이다. 본 연구에서는 분류기법에 기반한 공정진단 체계를 제시한다. 여기서는 공정데이터를 비선형 데이터 표현기법을 통해 변환함으로써 데이터의 크기를 줄이며 효율적인 데이터 표현이 가능하다. 추가적인 단계로서 공정 데이터의 전처리 과정을 통해 진단에 무관한 공정 패턴을 제거하고 진단 성능을 높이고자 한다. 진단 성능을 평가하기 위해 회분식 공정에 대한 사례연구를 수행한 결과 기존 선형 진단 방법론 및 전처리 과정이 없는 방법론에 비해 향상된 진단 결과를 얻을 수 있었다.

딥러닝을 활용한 설비 이상 탐지 및 성능 분석 (Anomaly Detection and Performance Analysis using Deep Learning)

  • 황주효;진교홍
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2021년도 추계학술대회
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    • pp.78-81
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    • 2021
  • 스마트공장 구축사업을 통해 제조업의 생산설비에 센서가 설치되고 각종 공정데이터를 실시간으로 수집할 수 있게 되었다. 이를 통해 제조공정의 설비이상으로 인한 생산중단을 줄이기 위해 실시간 설비 이상 탐지에 대한 연구가 활발히 진행되고 있다. 본 논문에서는 생산설비의 이상탐지를 위해 제조데이터를 딥러닝 모델인 Autoencoder(AE), VAE(Variational Autoencoder), AAE(Adversarial Autoencoder)에 적용하여 그 결과를 도출하였다. 제조데이터는 단순 이동 평균 기법과 전처리 과정을 거쳐 입력데이터로 사용하였으며, 단순이동평균 기법의 윈도우 크기와 AE 모델의 특징벡터 크기에 따른 성능분석을 실시하였다.

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계층적 깊이 영상으로 표현된 다시점 영상에 대한 H.264 부호화 기술 (H.264 Encoding Technique of Multi-view Image expressed by Layered Depth Image)

  • 김민태;지인호
    • 한국인터넷방송통신학회논문지
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    • 제10권1호
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    • pp.81-90
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    • 2010
  • 본 논문에서는 계층적 깊이 영상을 H.264 기술로 부호화 시켜 압축된 데이터 크기를 확인하고, 복원된 각 영상의 품질 성능을 알아보았다. 3차원 워핑된 계층적 깊이 영상을 임계값에 따라 조정해 가면서 Filling 보간 실험을 하고 H.264 부호화 시켜 압축된 데이터 크기를 측정하였다. H.264/AVC 기술은 쉽게 비디오와 관련된 콘텐트에 대한 H.264 기술로 확장 될 수 있다. 그래서 깊이 정보를 포함하는 다시점 영상을 효과적으로 압축할 수 있는 계층적 깊이 영상 구조라는 새로운 콘텐트에 적용하는 방법을 제안하였다. 다시점 비디오 영상의 방대한 데이터 양을 감소시키며, 고품질의 영상을 제공하고, 에러 복원 기능이 강화되는 장점도 가지고 있다.