• 제목/요약/키워드: Potential Mapping

검색결과 375건 처리시간 0.029초

Augmented reality and dynamic infrared thermography for perforator mapping in the anterolateral thigh

  • Cifuentes, Ignacio Javier;Dagnino, Bruno Leonardo;Salisbury, Maria Carolina;Perez, Maria Eliana;Ortega, Claudia;Maldonado, Daniela
    • Archives of Plastic Surgery
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    • 제45권3호
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    • pp.284-288
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    • 2018
  • Dynamic infrared thermography (DIRT) has been used for the preoperative mapping of cutaneous perforators. This technique has shown a positive correlation with intraoperative findings. Our aim was to evaluate the accuracy of perforator mapping with DIRT and augmented reality using a portable projector. For this purpose, three volunteers had both of their anterolateral thighs assessed for the presence and location of cutaneous perforators using DIRT. The obtained image of these "hotspots" was projected back onto the thigh and the presence of Doppler signals within a 10-cm diameter from the midpoint between the lateral patella and the anterior superior iliac spine was assessed using a handheld Doppler device. Hotspots were identified in all six anterolateral thighs and were successfully projected onto the skin. The median number of perforators identified within the area of interest was 5 (range, 3-8) and the median time needed to identify them was 3.5 minutes (range, 3.3-4.0 minutes). Every hotspot was correlated to a Doppler sound signal. In conclusion, augmented reality can be a reliable method for transferring the location of perforators identified by DIRT onto the thigh, facilitating its assessment and yielding a reliable map of potential perforators for flap raising.

GIS 기반 산사태 예측모형의 적용성 평가 (Evaluation of GIS-based Landslide Hazard Mapping)

  • 오경두;홍일표;전병호;안원식;이미영
    • 한국수자원학회논문집
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    • 제39권1호
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    • pp.23-33
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    • 2006
  • 본 연구에서는 국내에서 발생했던 산사태에 대한 사례연구를 통하여 GIS 기반의 산사태 예측모형 SINMAP의 적용성을 검토하였다. 사례연구의 대상지역은 서울에서 남쪽으로 78km 정도 떨어진 곳에 위치한 용인시 이동면 덕성리 소재 달봉산으로 1991년 집중호우기간 동안에 많은 산사태가 발생하였다. 이 지역에 대하여 SINMAP을 적용하여 당시 산사태지도와 비교 분석한 결과 대부분의 산사태를 성공적으로 예측하였다. 또한 본 연구에서는 SINMAP 모형의 적용에 필요한 3가지 매개변수인 흙의 내부마찰각, 점착력, T/R 산사태 예측에 미치는 영향과 적정범위에 대하여 검토하였다 본 연구를 통하여 SINMAP은 사면 경사가 급하고 토층의 두께가 얕은 국내산지의 산사태 위험도를 예비적으로 평가하는 유용한 도구가 될 수 있는 것으로 보인다.

Mapping Poverty Distribution of Urban Area using VIIRS Nighttime Light Satellite Imageries in D.I Yogyakarta, Indonesia

  • KHAIRUNNISAH;Arie Wahyu WIJAYANTO;Setia, PRAMANA
    • Asian Journal of Business Environment
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    • 제13권2호
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    • pp.9-20
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    • 2023
  • Purpose: This study aims to map the spatial distribution of poverty using nighttime light satellite images as a proxy indicator of economic activities and infrastructure distribution in D.I Yogyakarta, Indonesia. Research design, data, and methodology: This study uses official poverty statistics (National Socio-economic Survey (SUSENAS) and Poverty Database 2015) to compare satellite imagery's ability to identify poor urban areas in D.I Yogyakarta. National Socioeconomic Survey (SUSENAS), as poverty statistics at the macro level, uses expenditure to determine the poor in a region. Poverty Database 2015 (BDT 2015), as poverty statistics at the micro-level, uses asset ownership to determine the poor population in an area. Pearson correlation is used to identify the correlation among variables and construct a Support Vector Regression (SVR) model to estimate the poverty level at a granular level of 1 km x 1 km. Results: It is found that macro poverty level and moderate annual nighttime light intensity have a Pearson correlation of 74 percent. It is more significant than micro poverty, with the Pearson correlation being 49 percent in 2015. The SVR prediction model can achieve the root mean squared error (RMSE) of up to 8.48 percent on SUSENAS 2020 poverty data.Conclusion: Nighttime light satellite imagery data has potential benefits as alternative data to support regional poverty mapping, especially in urban areas. Using satellite imagery data is better at predicting regional poverty based on expenditure than asset ownership at the micro-level. Light intensity at night can better describe the use of electricity consumption for economic activities at night, which is captured in spending on electricity financing compared to asset ownership.

New Method for Combined Quantitative Assessment of Air-Trapping and Emphysema on Chest Computed Tomography in Chronic Obstructive Pulmonary Disease: Comparison with Parametric Response Mapping

  • Hye Jeon Hwang;Joon Beom Seo;Sang Min Lee;Namkug Kim;Jaeyoun Yi;Jae Seung Lee;Sei Won Lee;Yeon-Mok Oh;Sang-Do Lee
    • Korean Journal of Radiology
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    • 제22권10호
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    • pp.1719-1729
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    • 2021
  • Objective: Emphysema and small-airway disease are the two major components of chronic obstructive pulmonary disease (COPD). We propose a novel method of quantitative computed tomography (CT) emphysema air-trapping composite (EAtC) mapping to assess each COPD component. We analyzed the potential use of this method for assessing lung function in patients with COPD. Materials and Methods: A total of 584 patients with COPD underwent inspiration and expiration CTs. Using pairwise analysis of inspiration and expiration CTs with non-rigid registration, EAtC mapping classified lung parenchyma into three areas: Normal, functional air trapping (fAT), and emphysema (Emph). We defined fAT as the area with a density change of less than 60 Hounsfield units (HU) between inspiration and expiration CTs among areas with a density less than -856 HU on inspiration CT. The volume fraction of each area was compared with clinical parameters and pulmonary function tests (PFTs). The results were compared with those of parametric response mapping (PRM) analysis. Results: The relative volumes of the EAtC classes differed according to the Global Initiative for Chronic Obstructive Lung Disease stages (p < 0.001). Each class showed moderate correlations with forced expiratory volume in 1 second (FEV1) and FEV1/forced vital capacity (FVC) (r = -0.659-0.674, p < 0.001). Both fAT and Emph were significant predictors of FEV1 and FEV1/FVC (R2 = 0.352 and 0.488, respectively; p < 0.001). fAT was a significant predictor of mean forced expiratory flow between 25% and 75% and residual volume/total vital capacity (R2 = 0.264 and 0.233, respectively; p < 0.001), while Emph and age were significant predictors of carbon monoxide diffusing capacity (R2 = 0.303; p < 0.001). fAT showed better correlations with PFTs than with small-airway disease on PRM. Conclusion: The proposed quantitative CT EAtC mapping provides comprehensive lung functional information on each disease component of COPD, which may serve as an imaging biomarker of lung function.

폐광 부지의 재해 및 오염대 조사관련 물리탐사자료의 고찰 (Case Studies of Geophysical Mapping of Hazard and Contaminated Zones in Abandoned Mine Lands)

  • 심민섭;주현태;김관수;김지수
    • 지질공학
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    • 제24권4호
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    • pp.525-534
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    • 2014
  • 폐광 부지에서 발생하는 대표적인 환경 문제는 산성으로 오염된 지표수와 지하수, 적재된 폐광석 및 광미, 채굴 활동으로 야기된 지반침하 현상을 들 수 있다. 이 논문은 광해 유형에 따라 재해 및 오염영역을 효율적으로 탐지했던 지구물리탐사방법들을 고찰하는데 있다. 시험 자료로서 토양오염, 산성광산배수, 지반침하, 인공차수막 파손 및 광미/폐광석 적치장을 각각 대표하는 네 개의 폐광 부지를 선택하였다. 자료 검증을 위해 물리탐사자료는 자료의 유형에 따라 시추자료(코어 샘플, 물리검층, 토모그래피 등)와 물 자료(수소이온농도, 전기전도도, 중금속원소 등)와 비교하였다. 토양오염 탐지에 있어서 낮은 전기비저항 이상대는 특히 구리, 납, 아연의 중금속 농도가 높은 지역과 부합된다. 산성광산배수의 유동 경로는 자연전위 곡선에서 음의 전위 이상대, 전기비저항자료에서의 저비저항 이상대, 지하레이더 자료에서의 얕은 투과깊이 영역으로 탐지되었다. 채굴적은 전기비저항 단면에서의 저비저항 이상대, 탄성파토모그래피에서 낮은 속도 영역, 물리검층곡선의 복합해석으로 특징되며, 정확한 위치는 코어자료와 시추공영상자료에서 잘 확인되었다. 침출수 유동을 차단하기 위해 설치된 인공차수막의 파손 구간은 전기비저항 자료에서의 국부적인 이상대로 정확히 탐지되며 매립된 폐석더미는 고비저항 이상대와 저속도 이상대로 특징된다.

다중 지구과학자료를 이용한 GIS 기반 공간통합과 통계량 분석 : 광물 부존 예상도 작성을 위한 사례 연구 (GIS-based Spatial Integration and Statistical Analysis using Multiple Geoscience Data Sets : A Case Study for Mineral Potential Mapping)

  • 이기원;박노욱;권병두;지광훈
    • 대한원격탐사학회지
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    • 제15권2호
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    • pp.91-105
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    • 1999
  • 최근 다중 지질정보의 통합적 해석은 GIS의 중요한 응용 분야중 하나로 인식되고 있다. 공간통합을 위하여 지구통계학적 방법들이 개발되어 있지만, 통합결과와 입력 주제도들 사이의 관계에 대한 통계적, 정량적 분석방법론의 개발은 아직까지 체계적으로 정립되어 있지 못한 상황이다. 본 연구에서는 지질도, 지화학자료, 항공지구물리자료, 지형자료 및 원격탐사 영상등 다양한 지질정보등이 보고된 옥동지역을 대상으로 하여 광물 부존 예상도 작성 사례연구를 수행하여 기존에 이용되고 있는 여러 공간 통합 방법중 확실인자 (Certainty Factor: CF) 추정방법과 다변량 통계 분석방법중 하나인 주성분분석을 시험적인 통합방법으로 우선적으로 적용한 뒤, 입력 자료와 통합결과에 대한 정량적인 통계량 정보를 추출하고자 하였다. 입력 주제도와 통합 결과사이의 관계 규명에는 통계 분할표를 이용한 통계처리를 편의 분석에는 잭나이프 방법을 적용하였다. 통합정보에 대한 통계량 분석을 통하여, 통합 결과와 입력자료 사이의 정량적 관계를 추출할 수 있었으며, 부가적으로 입력자료의 상태수준에 대한 판단정보를 얻을 수 있었다. 이러한 결과는 GIS 관점에서 통합결과 해석에 중요한 결정보조자료로 활용될 수 있으며, 복잡한 다중정보를 다루는데 공간 통합문제에서도 입력정보 검증을 위한 일반적일 처리과정으로도 발전할 수 있을 것으로 생각된다.

지리정보시스템(GIS) 및 Weight of Evidence 기법을 이용한 강릉지역의 퇴적기원의 비금속 광상부존가능성 분석 (Sedimentary type Non-Metallic Mineral Potential Analysis using GIS and Weight of Evidence Model in the Gangreung Area)

  • 이사로;오현주;민경덕
    • Spatial Information Research
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    • 제14권1호
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    • pp.129-150
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    • 2006
  • 본 연구에서는 GIS 및 확률 기법을 이용하여 광상의 위치와 지질, 지화학 및 지구물리 자료들 간의 상관관계를 분석하고, 광상부존가능도(Mineral potential map) 작성 및 검증을 수행하였다. 연구지역은 1:25만 강릉도폭지역 a이며, 구축된 데이터베이스 자료는 1:25만 광상분포도, 지화학도, 지질도, 부우게 중력이상도, 자력이상도이다. 본 연구에 사용된 광상은 퇴적기원의 비금속광상(고령토, 도석, 규석, 운모, 연옥, 석회석, 납석)이다. 원소별 지화학도 작성은 채취된 각 시료 3,595개의 원소별 분석치를 이용하여 IDW 보간법으로 만들었다. 구축된 지화학도는 Al, Alkalinity, As, Ba, Ca, Cd, Co, Cr, Cu, Fe, K, Li, Mg, Mn, Mo, Na, Ni, Pb, Si, Sr, V, W, Zn, $Cl^-,\;F^-,\;{NO_2}^-,\;{NO_3}^-,\;{PO_4}^{3-},\;{SO_4}^{2-}$, pH, Eh 및 Conductivity로 총 32개이다. 이러한 광상과 관련 요인들 간의 상관관계는 확률기법인 weight of evidence를 적용하여 계산하였고, 이를 바탕으로 광상부존가능도를 작성하였다. 광상부존가능도는 wieght of evidence의 W+와 W- 값을 GIS 중첩분석에 적용하여 작성하였다. 계산된 광상부존가능지수는 기존 광상부존가능성을 정량적으로 설명하고 표현하며 검증할 수 있는 값이다. 각 기법을 이용하여 작성한 광상부존가능도의 검증결과는 85.66%의 정확도를 나타내었다.

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지리정보시스템을 이용한 우리나라 인공함양 개발 유망지역 분석 (Site Prioritization for Artificial Recharge in Korea using GIS Mapping)

  • 서정아;김용철;김진삼;김용제
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제16권6호
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    • pp.66-78
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    • 2011
  • It is getting difficult to manage water resources in South Korea because more than half of annual precipitation is concentrated in the summer season and its intensity is increasing due to global warming and climate change. Artificial recharge schemes such as well recharge of surface water and roof-top rainwater harvesting can be a useful method to manage water resources in Korea. In this study, potential artificial recharge site is evaluated using geographic information system with hydrogeological and social factors. The hydrogeological factors include annual precipitation, geological classification based on geological map, specific capacity and depth to water level of national groundwater monitoring wells. These factors were selected to evaluate potential artificial recharge site because annual precipitation is closely related to source water availability for artificial recharge, geological features and specific capacity are related to injection capacity and depth to water is related to storage capacity of the subsurface medium. In addition to those hydrogeological factors, social aspect was taken into consideration by selecting the areas that is not serviced by national water works and have been suffered from drought. These factors are graded into five rates and integrated together in the GIS system resulting in spatial distribution of artificial recharge potential. Cheongsong, Yeongdeok in Gyeongsangbuk-do and Hadong in Gyeongsangnam-do, and Suncheon in Jeollanam-do were proven as favorable areas for applying artificial recharge schemes. Although the potential map for artificial recharge in South Korea developed in this study need to be improved by using other scientific factors such as evaporation and topographical features, and other social factors such as water-curtain cultivation area, hot spring resorts and industrial area where groundwater level is severely lowered, it can be used in a rough site-selection, preliminary and/or feasibility study for artificial recharge.

A Statistical Analysis of JERS L-band SAR Backscatter and Coherence Data for Forest Type Discrimination

  • Zhu Cheng;Myeong Soo-Jeong
    • 대한원격탐사학회지
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    • 제22권1호
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    • pp.25-40
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    • 2006
  • Synthetic aperture radar (SAR) from satellites provides the opportunity to regularly incorporate microwave information into forest classification. Radar backscatter can improve classification accuracy, and SAR interferometry could provide improved thematic information through the use of coherence. This research examined the potential of using multi-temporal JERS-l SAR (L band) backscatter information and interferometry in distinguishing forest classes of mountainous areas in the Northeastern U.S. for future forest mapping and monitoring. Raw image data from a pair of images were processed to produce coherence and backscatter data. To improve the geometric characteristics of both the coherence and the backscatter images, this study used the interferometric techniques. It was necessary to radiometrically correct radar backscatter to account for the effect of topography. This study developed a simplified method of radiometric correction for SAR imagery over the hilly terrain, and compared the forest-type discriminatory powers of the radar backscatter, the multi-temporal backscatter, the coherence, and the backscatter combined with the coherence. Statistical analysis showed that the method of radiometric correction has a substantial potential in separating forest types, and the coherence produced from an interferometric pair of images also showed a potential for distinguishing forest classes even though heavily forested conditions and long time separation of the images had limitations in the ability to get a high quality coherence. The method of combining the backscatter images from two different dates and the coherence in a multivariate approach in identifying forest types showed some potential. However, multi-temporal analysis of the backscatter was inconclusive because leaves were not the primary scatterers of a forest canopy at the L-band wavelengths. Further research in forest classification is suggested using diverse band width SAR imagery and fusing with other imagery source.

Application of Statistical and Machine Learning Techniques for Habitat Potential Mapping of Siberian Roe Deer in South Korea

  • Lee, Saro;Rezaie, Fatemeh
    • Proceedings of the National Institute of Ecology of the Republic of Korea
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    • 제2권1호
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    • pp.1-14
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    • 2021
  • The study has been carried out with an objective to prepare Siberian roe deer habitat potential maps in South Korea based on three geographic information system-based models including frequency ratio (FR) as a bivariate statistical approach as well as convolutional neural network (CNN) and long short-term memory (LSTM) as machine learning algorithms. According to field observations, 741 locations were reported as roe deer's habitat preferences. The dataset were divided with a proportion of 70:30 for constructing models and validation purposes. Through FR model, a total of 10 influential factors were opted for the modelling process, namely altitude, valley depth, slope height, topographic position index (TPI), topographic wetness index (TWI), normalized difference water index, drainage density, road density, radar intensity, and morphological feature. The results of variable importance analysis determined that TPI, TWI, altitude and valley depth have higher impact on predicting. Furthermore, the area under the receiver operating characteristic (ROC) curve was applied to assess the prediction accuracies of three models. The results showed that all the models almost have similar performances, but LSTM model had relatively higher prediction ability in comparison to FR and CNN models with the accuracy of 76% and 73% during the training and validation process. The obtained map of LSTM model was categorized into five classes of potentiality including very low, low, moderate, high and very high with proportions of 19.70%, 19.81%, 19.31%, 19.86%, and 21.31%, respectively. The resultant potential maps may be valuable to monitor and preserve the Siberian roe deer habitats.