• 제목/요약/키워드: Spatial-Temporal Distribution Pattern

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EOF와 CSEOF를 이용한 한반도 강수의 변동성 분석 (Investigation of Korean Precipitation Variability using EOFs and Cyclostationary EOFs)

  • 김광섭;순밍동
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2009년도 학술발표회 초록집
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    • pp.1260-1264
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    • 2009
  • Precipitation time series is a mixture of complicate fluctuation and changes. The monthly precipitation data of 61 stations during 36 years (1973-2008) in Korea are comprehensively analyzed using the EOFs technique and CSEOFs technique respectively. The main motivation for employing this technique in the present study is to investigate the physical processes associated with the evolution of the precipitation from observation data. The twenty-five leading EOF modes account for 98.05% of the total monthly variance, and the first two modes account for 83.68% of total variation. The first mode exhibits traditional spatial pattern with annual cycle of corresponding PC time series and second mode shows strong North South gradient. In CSEOF analysis, the twenty-five leading CSEOF modes account for 98.58% of the total monthly variance, and the first two modes account for 78.69% of total variation, these first two patterns' spatial distribution show monthly spatial variation. The corresponding mode's PC time series reveals the annual cycle on a monthly time scale and long-term fluctuation and first mode's PC time series shows increasing linear trend which represents that spatial and temporal variability of first mode pattern has strengthened. Compared with the EOFs analysis, the CSEOFs analysis preferably exhibits the spatial distribution and temporal evolution characteristics and variability of Korean historical precipitation.

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Missing Pattern Analysis of the GOCI-I Optical Satellite Image Data

  • Jeon, Ho-Kun;Cho, Hong Yeon
    • Ocean and Polar Research
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    • 제44권2호
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    • pp.179-190
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    • 2022
  • Data missing in optical satellite images caused by natural variations have been a crucial barrier in observing the status of marine surfaces. Although there have been many attempts to fill the gaps of non-observation, there is little research to analyze the ratio of missing grids to overall sea grids and their seasonal patterns. This report introduces the method of quantifying the distribution of missing points and then shows how the missing points have spatial correlation and seasonal trends. Both temporal and spatial integration methods are compared to assess the effectiveness of reducing missing data. The temporal integration shows more outstanding performance than the spatial integration. Moran's I and K-function with statistical hypothesis testing show that missing grids are clustered and there is a non-random distribution from daily integration. The result of the seasonality test for Moran's I through a periodogram shows dependency on full-year, half-year, and quarter-year periods respectively. These analysis results can be used to deduce appropriate integration periods with permissible estimation errors.

환경 위성관측자료의 통계분석을 통한 동아시아 대기오염특성 연구 (Analysis of Characteristics of Air Pollution Over Asia with Satellite-derived $NO_2$ and HCHO using Statistical Methods)

  • 백강현;김재환
    • 대기
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    • 제20권4호
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    • pp.495-503
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    • 2010
  • Satellite data have an intrinsic problem due to a number of various physical parameters, which can have a similar effect on measured radiance. Most evaluations of satellite performance have relied on comparisons with limited spatial and temporal resolution of ground-based measurements such as soundings and in-situ measurements. In order to overcome this problem, a new way of satellite data evaluation is suggested with statistical tools such as empirical orthogonal function(EOF), and singular value decomposition(SVD). The EOF analyses with OMI and OMI HCHO over northeast Asia show that the spatial pattern show high correlation with population density. This suggests that human activity is a major source of as well as HCHO over this region. However, this analysis is contradictory to the previous finding with GOME HCHO that biogenic activity is the main driving mechanism(Fu et al., 2007). To verify the source of HCHO over this region, we performed the EOF analyses with vegetation and HCHO distribution. The results showed no coherence in the spatial and temporal pattern between two factors. Rather, the additional SVD analysis between $NO_2$ and HCHO shows consistency in spatial and temporal coherence. This outcome suggests that the anthropogenic emission is the main source of HCHO over the region. We speculate that the previous study appears to be due to low temporal and spatial resolution of GOME measurements or uncertainty in model input data.

Estimation of Winter Wheat Sown Area Using Temporal Characteristics of NDVI

  • Uchida, S.
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2003년도 Proceedings of ACRS 2003 ISRS
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    • pp.231-233
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    • 2003
  • Agricultural land use generally shows specific temporal characteristics of NDVI obtained from satellite data. In terms of winter wheat, a higher value compared with other land use types in May and a considerably low value in June could be discriminative features of temporal change of NDVI. In this study, the author examined methods for estimating winter wheat sown area in sub-pixel level of coarse resolution satellite data using temporal characteristics of NDVI. Application of the methods to the major grain production area in China exhibited properly a spatial distribution pattern of winter wheat sown area.

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Analysis of Temporal and Spatial Variation of Precipitable Water Vapor According to Path of Typhoon EWINIAR using GPS Permanent Stations

  • Won, Jihye;Kim, Dusik
    • Journal of Positioning, Navigation, and Timing
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    • 제4권2호
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    • pp.87-95
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    • 2015
  • In this study, the temporal and spatial variation in precipitable water vapor (PWV) was analyzed for typhoon Ewiniar which had made landfall in the Korean peninsula in 2006. To make a contour map of PWV, zenith total delay (ZTD) was calculated using about 60 GPS permanent stations in Korea, and the pressure and temperature data of nearby AWS stations were interpolated and applied to the equation for calculating the PWV. While Typhoon Ewiniar was migrating north from the southern coast to the eastern coast of Korea, the PWV migrated showing a spatial distribution similar to that of rainfall. Also, the fluctuating pattern of the normalized PWV was analyzed, and the moving speed of the PWV was estimated using the delay time of the increase/decrease pattern in the eight-test stations. The result indicated that the moving speed of the PWV was about 35 km/h, which was similar to the average moving speed of the typhoon (38.9 km/h).

시공간 분석 기반 연쇄 범죄 거점 위치 예측 알고리즘 (Base Location Prediction Algorithm of Serial Crimes based on the Spatio-Temporal Analysis)

  • 홍동숙;김정준;강홍구;이기영;서종수;한기준
    • 한국공간정보시스템학회 논문지
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    • 제10권2호
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    • pp.63-79
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    • 2008
  • 고급 GIS 및 복잡한 공간 분석 기술이 발전함에 따라 다양한 의사 결정 지원 시스템에서 지리적 혹은 공간적 문제 해결을 위한 고급 지식을 지원하기 위해 더욱 강력한 기술이 필요하게 되었다. 또한, 법집행 기관 및 수사 기관 등을 중심으로 효율적인 수사 및 향후 범죄 예방을 위해 과학 수사, 법 과학에 관한 연구의 필요성이 증대되고 있다. 특히, 연쇄 범죄의 공간적 패턴을 분석함으로써 범죄자의 거점 위치를 예측하기 위한 지리적 프로파일링(Geographic Profiling)에 대한 연구가 활발하다. 그러나, 기존의 지리적 프로파일링 연구에서는 공간적 패턴 분석을 위해 단순히 통계적 방법만을 사용하고 있고, 연쇄 범죄에 대한 다양한 공간적, 시간적 분석 기술을 지원하지 않으므로 거점 예측시 낮은 정확도를 보인다. 그러므로, 본 논문에서는 범행 위치의 공간적 분포와 범죄 발생의 시간적 분포 특성에 따라 연쇄 범죄의 시공간 패턴을 유형화하고, 이를 기반으로 연쇄 범죄의 거점 위치를 보다 정확하게 예측하는 알고리즘으로 STA-BLP(Spatio-Temporal Analysis based Base Location Prediction)을 제안한다. STA-BLP는 하나의 거점으로부터 특정 방향을 선호하여 이동하며 발생되는 연쇄 범죄의 비등방성 패턴을 고려하고, 동일한 경로에 대한 반복 이동에 대한 범죄자의 학습 효과를 고려함으로써 예측 정확도를 개선시킨다. 또한, 다수의 군집화된 범행 위치들로부터 각 군집에 소속된 범행 위치들에 대한 지역적 거점 위치 예측과 모든 범행 위치에 대한 전역적 거점 위치 예측을 통해 거점이 다수 존재하는 연쇄 범죄의 경우에도 보다 정확한 예측을 수행한다. 마지막으로 다양한 실험을 통해 기존에 제시된 알고리즘과 STA-BLP의 예측 정확도를 비교하여 제안 알고리즘의 우수성을 입증하였다.

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도시 지역 트윗 데이터의 시간대별 공간분포 특성 - 부산광역시를 사례로 - (A Study on the Spatial Patterns of Tweet Data for Urban Areas by Time - A Case of Busan City -)

  • 구자용
    • 지적과 국토정보
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    • 제46권2호
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    • pp.269-281
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    • 2016
  • 최근 공간 정보 분야에서 소셜 미디어와 같은 공간 빅 데이터의 분석과 처리에 많은 관심이 집중되고 있다. 본 연구에서는 공간 빅 데이터 분석의 한 사례로서 트윗 데이터가 가지고 있는 위치 정보와 시간 정보를 바탕으로 시간대별로 공간분포를 분석하고 그 특성을 파악하였다. 부산시 지역의 트윗 데이터를 수집하고, 시간대별 공간분석을 통하여 그 특성을 파악하여, 그 지역의 토지이용 특성과 비교하였다. 부산시 지역의 트윗 데이터를 시간대에 따라 평일 주간, 평일 야간, 휴일 주간, 휴일 야간으로 구분하고, 각 시간대별로 공간적 분포 특성을 파악하여, 공간적으로 집중된 지역의 토지이용 특성과 비교하였다. 본 연구의 결과 트윗 데이터는 시간대에 따라 공간분포가 다르게 나타나고 있으며, 이는 그 지역의 일상생활 패턴과 토지이용 특성을 어느 정도 반영하고 있었다. 본 연구에서는 공간정보 분야에서 트윗 데이터와 같은 소셜 미디어 자료의 분석을 통한 활용 가능성을 제시하였다. 향후 토지 계획이나 도시 계획 등의 분야에서 다양한 소셜 미디어 자료를 활용할 수 있을 것으로 전망된다.

음장의 공간 복소 포락: 정의와 특성 (Spatial Complex Envelope of Acoustic Field : Its Definition and Characteristics)

  • 박춘수;김양한
    • 한국소음진동공학회논문집
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    • 제17권8호
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    • pp.693-700
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    • 2007
  • We can predict spatial acoustic pressure distribution on the plane of interest by using acoustic holography. However, the information embedded in the distribution plot is usually much more than what we need: for example, source locations and their overall propagation pattern. One possible candidate to solve the problem is complex envelope analysis. Complex envelope analysis extracts slowly-varying envelope signal from a band signal. We have attempted to extend this method to space domain so that we can have spatial information that we need. We have to modulate two dimensional data for obtaining spatial envelope. Although spatial modulation basically follows the same concept that is used in time domain, the algorithm for the spatial modulation turns out to be different from temporal modulation. We briefly describe temporal complex envelope analysis and extend it to spatial envelope of 2-D acoustic field by introducing geometric transformation. In the end, the results of applying the spatial envelope to the holography are envisaged and verified.

통계적 공간상세화 기법의 시공간적 강우분포 재현성 비교평가 (Comparative Evaluation of Reproducibility for Spatio-temporal Rainfall Distribution Downscaled Using Different Statistical Methods)

  • 정임국;황세운;조재필
    • 한국농공학회논문집
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    • 제65권1호
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    • pp.1-13
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    • 2023
  • Various techniques for bias correction and statistical downscaling have been developed to overcome the limitations related to the spatial and temporal resolution and error of climate change scenario data required in various applied research fields including agriculture and water resources. In this study, the characteristics of three different statistical dowscaling methods (i.e., SQM, SDQDM, and BCSA) provided by AIMS were summarized, and climate change scenarios produced by applying each method were comparatively evaluated. In order to compare the average rainfall characteristics of the past period, an index representing the average rainfall characteristics was used, and the reproducibility of extreme weather conditions was evaluated through the abnormal climate-related index. The reproducibility comparison of spatial distribution and variability was compared through variogram and pattern identification of spatial distribution using the average value of the index of the past period. For temporal reproducibility comparison, the raw data and each detailing technique were compared using the transition probability. The results of the study are presented by quantitatively evaluating the strengths and weaknesses of each method. Through comparison of statistical techniques, we expect that the strengths and weaknesses of each detailing technique can be represented, and the most appropriate statistical detailing technique can be advised for the relevant research.

SATELLITE-MEASURED TEMPORAL AND SPATIAL VARIABILITY OF TOKACHI RIVER PLUME

  • Lihan, Tukimat;Saitoh, Sei-Ichi;Iida, Takahiro;Matsuoka, Atsushi;Hirawake, Toru;Iida, Kohji
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2006년도 Proceedings of ISRS 2006 PORSEC Volume I
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    • pp.118-121
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    • 2006
  • Variations in the extent and dispersal of river plume are important in the study of coastal environment. The objectives of this study are to examine relationship between satellite detected plume area and river discharge and to clarify the temporal and spatial dynamic of plume from Tokachi River, Hokaido, Japan. We used 1.1 km spatial resolution of SeaWiFS normalized water-leaving radiance (nLw) images from 1998 to 2002. Supervised maximum likelihood classification was implemented to define classes of surface water optical properties. Satellite observed plume area was correlated to the amount of river discharge from April to October. First mode (44% of variance) of EOF analysis shows the turbid plume distribution resulting from re-suspension by strong wind mixing along the coast during winter. This mode also shows plume distribution along-shelf direction in spring and late summer. Second mode (17% of variance) shows spring pattern across-shelf direction due to strong discharge of snow melting water.

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