• 제목/요약/키워드: automatic measuring system

검색결과 356건 처리시간 0.024초

다이오드 검출기를 이용한 초소형 X선관(Miniature X-ray Tube)의 반가층 측정 (HVL Measurement of the Miniature X-Ray Tube Using Diode Detector)

  • 김주혜;안소현;오윤진;지윤서;허장용;강창무;서현숙;이레나
    • 한국의학물리학회지:의학물리
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    • 제23권4호
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    • pp.279-284
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    • 2012
  • X선은 방사선 진단과 치료 분야에 있어서 다양하고 광범위하게 이용되고 있으며, 최근에는 방사선 치료용 초소형 X선관이 개발되었다. 초소형 X선관은 조사 목적 부위에 직접 삽입하여 사용되므로 제작 시준기에 따라 다양한 각도로 X선 조사가 가능하고, 검사 목적 외의 환자 피폭선량을 최소화한다. 이러한 초소형 X선관의 장점을 이용해서 X선 영상을 획득하는데 적용한다면 X선 진단 분야의 새로운 장을 열 것으로 기대된다. 하지만 초소형 X선관은 본래 치료용으로 설계되었기 때문에 진단용 장비에 적합한 시준기, 필터(added filter) 등이 필요하다. 따라서 자체 제작한 시준기와 필터를 적용하여 초소형 X선관의 빔 특성이 진단용에 적합한지 평가 하였고, 이를 위해서 다이오드 검출기를 이용하여 반가층을 측정하고 측정의 가능성을 평가하였다. 본 연구에서는 Si PIN Photodiode type인 Piranha 검출기(Piranha, RTI, Sweden)를 사용하여 필터 적용 유무에 따른 초소형 X선관의 반가층을 측정하고, 알루미늄 필터를 사용한 측정을 통하여 Piranha 검출기의 반가층 측정의 정확성을 평가하였다. 측정 결과에 따르면 초소형 X선관의 반가층은 필터의 장착에 따라 약 1.9배 증가하여 진단용 방사선 발생 장치의 적합성을 확인하였다. Piranha 검출기의 반가층 자동 측정값은 필터를 미장착한 경우에 실제 반가층 측정값에 비해 50% 높게 측정되어 적용이 불가능하나, 필터를 장착한 경우에는 실제 반가층 측정값과 약 15%의 차이로 감소되었다. 따라서 진단용 필터를 적용했을 경우는 Piranha 검출기의 반가층 자동측정이 가능하여 kV-X선 특성평가를 수월하게 수행할 것으로 기대된다.

돕슨 분광광도계(No.124)의 오존 자동관측시스템화 (Automation of Dobson Spectrophotometer(No.124) for Ozone Measurements)

  • 김준;박상서;문경정;구자호;이윤곤;;조희구
    • 대기
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    • 제17권4호
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    • pp.339-348
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    • 2007
  • Global Environment Laboratory at Yonsei University in Seoul ($37.57^{\circ}N$, $126.95^{\circ}E$) has carried out the ozone layer monitoring program in the framework of the Global Ozone Observing System of the World Meteorlogical Organization (WMO/GAW/GO3OS Station No. 252) since May of 1984. The daily measurements of total ozone and the vertical distribution of ozone amount have been made with the Dobson Spectrophotometer (No.124) on the roof of the Science Building on Yonsei campus. From 2004 through 2006, major parts of the manual operations are automated in measuring total ozone amount and vertical ozone profile through Umkehr method, and calibrating instrument by standard lamp tests with new hardware and software including step motor, rotary encoder, controller, and visual display. This system takes full advantage of Windows interface and information technology to realize adaptability to the latest Windows PC and flexible data processing system. This automatic system also utilizes card slot of desktop personal computer to control various types of boards in the driving unit for operating Dobson spectrophotometer and testing devices. Thus, by automating most of the manual work both in instrument operation and in data processing, subjective human errors and individual differences are eliminated. It is therefore found that the ozone data quality has been distinctly upgraded after automation of the Dobson instrument.

DTV 필드테스트를 위한 통합 측정 및 분석 시스템 개발 (Development of an Integrated Measurement and Analysis System for DTV Field Test)

  • 김영민;서영우;목하균;권태훈;이상길
    • 방송공학회논문지
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    • 제10권4호통권29호
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    • pp.599-609
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    • 2005
  • DTV 필드테스트를 위해서는 다양한 계측장비와 운용장비를 통한 매우 많은 측정항목의 측정이 필요하다. 따라서 한 지역을 측정하는데 많은 시간이 소요될 뿐 아니라 측정자의 숙련도에 따라 측정결과의 정확도와 신뢰도가 떨어질 수 있다. 또한, 매체에 따라서는 수 천 지점 이상의 측정을 하게 되는데 이들 측정결과에 대한 체계적인 관리가 절실하다 본 논문에서는 이러한 문제들을 해결하기 위해 다양한 계측장비와 운용장비를 체계적으로 관리하고, 측정절차를 일반화하며 측정결과 데이터를 데이터베이스화하여 측정결과를 용이하게 파악할 수 있는 통합 측정 시스템을 제안한다. 제안된 시스템은 DTV 뿐만 아니라 DMB, DAB 등의 다른 디지털 신호 측정에도 활용할 수 있으며, 실제로 KBS에서 실시한 DTV 필드테스트에 적용하여 기존의 수동측정 시스템보다 정확성과 시간의 효율성 면에서 우수함을 증명하였다.

A New Method for Measuring the Dose Distribution of the Radiotherapy Domain using the IP

  • Homma, Mitsuhiko;Tabushi, Katsuyoshi;Obata, Yasunori;Tamiya, Tadashi;Koyama, Shuji;Kurooka, Masahiko;Shimomura, Kouhei;Ishigaki, Takeo
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2002년도 Proceedings
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    • pp.237-240
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    • 2002
  • Knowing the dose distribution in a tissue is as important as being able to measure exposure or absorbed dose in radiotherapy. Since the Dry Imager spread, the wet type automatic processor is no longer used. Furthermore, the waste fluid after film development process brings about a serious problem for prevention of pollution. Therefore, we have developed a measurement method for the dose distribution (CR dosimetry) in the phantom based on the imaging plate (IP) of the computed radiography (CR). The IP was applied for the dose measurement as a dosimeter instead of the film used for film dosimetry. The data from the irradiated IP were processed by a personal computer with 10 bits and were depicted as absorbed dose distributions in the phantom. The image of the dose distribution was obtained from the CR system using the DICOM form. The CR dosimetry is an application of CR system currently employed in medical examinations to dosimetry in radiotherapy. A dose distribution can be easily shown by the Dose Distribution Depiction System we developed this time. Moreover, the measurement method is simpler and a result is obtained more quickly compared with film dosimetry.

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바이모달 트램용 직렬형 하이브리드 추진시스템 개발 (Development of a Series Hybrid Propulsion System for Bimodal Tram)

  • 배창한;이강원;목재균;유두영;배종민
    • 전력전자학회논문지
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    • 제16권5호
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    • pp.494-502
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    • 2011
  • 바이모달 저상굴절 트램은 자동운전으로 일반도로와 전용구간을 주행할 수 있는 고무차륜방식의 저상굴절 차량으로서, 철도의 정시성과 버스의 접근성을 동시에 구현할 수 있는 신교통수단이다. 바이모달 트램은 전자기 궤도를 사용한 자동운전, 전차륜 조향과 함께 CNG 엔진과 리튬 폴리머 배터리 팩을 사용한 친환경 직렬형 하이브리드 추진시스템을 사용한다. 본 논문에서는 바이모달 트램의 직렬형 하이브리드 추진시스템 개발에 대해 기술하고 시험선및 일반도로에서 수행된 시험 결과를 분석한다. 또한 바이모달 트램 추진장치의 튜닝 및 시험데이터 취득을 위해 개발된 계측장비의 구성 및 동작방식에 대해 설명한다. 시작차량에 설치된 계측장비의 데이터를 기초로 전용 시험 선과 일반도로에서 주행시 직렬형 하이브리드 추진시스템의 동작을 확인하며, 차량의 연비 및 엔진 효율을 계산한다.

Development of Automatic Peach Grading System using NIR Spectroscopy

  • Lee, Kang-J.;Choi, Kyu H.;Choi, Dong S.
    • 한국근적외분광분석학회:학술대회논문집
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    • 한국근적외분광분석학회 2001년도 NIR-2001
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    • pp.1267-1267
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    • 2001
  • The existing fruit sorter has the method of tilting tray and extracting fruits by the action of solenoid or springs. In peaches, the most sort processing is supported by man because the sorter make fatal damage to peaches. In order to sustain commodity and quality of peach non-destructive, non-contact and real time based sorter was needed. This study was performed to develop peach sorter using near-infrared spectroscopy in real time and nondestructively. The prototype was developed to decrease internal and external damage of peach caused by the sorter, which had a way of extracting tray with it. To decrease positioning error of measuring sugar contents in peaches, fiber optic with two direction diverged was developed and attached to the prototype. The program for sorting and operating the prototype was developed using visual basic 6.0 language to measure several quality index such as chlorophyll, some defect, sugar contents. The all sorting result was saved to return farmers for being index of good quality production. Using the prototype, program and MLR(multiple linear regression) model, it was possible to estimate sugar content of peaches with the determination coefficient of 0.71 and SEC of 0.42bx using 16 wavelengths. The developed MLR model had determination coefficient of 0.69, and SEP of 0.49bx, it was better result than single point measurement of 1999's. The peach sweetness grading system based on NIR reflectance method, which consists of photodiode-array sensor, quartz-halogen lamp and fiber optic diverged two bundles for transmitting the light and detecting the reflected light, was developed and evaluated. It was possible to predict the soluble solid contents of peaches in real time and nondestructively using the system which had the accuracy of 91 percentage and the capacity of 7,200 peaches per an hour for grading 2 classes by sugar contents. Draining is one of important factors for production peaches having good qualities. The reason why one farm's product belows others could be estimated for bad draining, over-much nitrogen fertilizer, soil characteristics, etc. After this, the report saved by the peach grading system will have to be good materials to farmers for production high quality peaches. They could share the result or compare with others and diagnose their cultural practice.

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키워드 자동 생성에 대한 새로운 접근법: 역 벡터공간모델을 이용한 키워드 할당 방법 (A New Approach to Automatic Keyword Generation Using Inverse Vector Space Model)

  • 조원진;노상규;윤지영;박진수
    • Asia pacific journal of information systems
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    • 제21권1호
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    • pp.103-122
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    • 2011
  • Recently, numerous documents have been made available electronically. Internet search engines and digital libraries commonly return query results containing hundreds or even thousands of documents. In this situation, it is virtually impossible for users to examine complete documents to determine whether they might be useful for them. For this reason, some on-line documents are accompanied by a list of keywords specified by the authors in an effort to guide the users by facilitating the filtering process. In this way, a set of keywords is often considered a condensed version of the whole document and therefore plays an important role for document retrieval, Web page retrieval, document clustering, summarization, text mining, and so on. Since many academic journals ask the authors to provide a list of five or six keywords on the first page of an article, keywords are most familiar in the context of journal articles. However, many other types of documents could not benefit from the use of keywords, including Web pages, email messages, news reports, magazine articles, and business papers. Although the potential benefit is large, the implementation itself is the obstacle; manually assigning keywords to all documents is a daunting task, or even impractical in that it is extremely tedious and time-consuming requiring a certain level of domain knowledge. Therefore, it is highly desirable to automate the keyword generation process. There are mainly two approaches to achieving this aim: keyword assignment approach and keyword extraction approach. Both approaches use machine learning methods and require, for training purposes, a set of documents with keywords already attached. In the former approach, there is a given set of vocabulary, and the aim is to match them to the texts. In other words, the keywords assignment approach seeks to select the words from a controlled vocabulary that best describes a document. Although this approach is domain dependent and is not easy to transfer and expand, it can generate implicit keywords that do not appear in a document. On the other hand, in the latter approach, the aim is to extract keywords with respect to their relevance in the text without prior vocabulary. In this approach, automatic keyword generation is treated as a classification task, and keywords are commonly extracted based on supervised learning techniques. Thus, keyword extraction algorithms classify candidate keywords in a document into positive or negative examples. Several systems such as Extractor and Kea were developed using keyword extraction approach. Most indicative words in a document are selected as keywords for that document and as a result, keywords extraction is limited to terms that appear in the document. Therefore, keywords extraction cannot generate implicit keywords that are not included in a document. According to the experiment results of Turney, about 64% to 90% of keywords assigned by the authors can be found in the full text of an article. Inversely, it also means that 10% to 36% of the keywords assigned by the authors do not appear in the article, which cannot be generated through keyword extraction algorithms. Our preliminary experiment result also shows that 37% of keywords assigned by the authors are not included in the full text. This is the reason why we have decided to adopt the keyword assignment approach. In this paper, we propose a new approach for automatic keyword assignment namely IVSM(Inverse Vector Space Model). The model is based on a vector space model. which is a conventional information retrieval model that represents documents and queries by vectors in a multidimensional space. IVSM generates an appropriate keyword set for a specific document by measuring the distance between the document and the keyword sets. The keyword assignment process of IVSM is as follows: (1) calculating the vector length of each keyword set based on each keyword weight; (2) preprocessing and parsing a target document that does not have keywords; (3) calculating the vector length of the target document based on the term frequency; (4) measuring the cosine similarity between each keyword set and the target document; and (5) generating keywords that have high similarity scores. Two keyword generation systems were implemented applying IVSM: IVSM system for Web-based community service and stand-alone IVSM system. Firstly, the IVSM system is implemented in a community service for sharing knowledge and opinions on current trends such as fashion, movies, social problems, and health information. The stand-alone IVSM system is dedicated to generating keywords for academic papers, and, indeed, it has been tested through a number of academic papers including those published by the Korean Association of Shipping and Logistics, the Korea Research Academy of Distribution Information, the Korea Logistics Society, the Korea Logistics Research Association, and the Korea Port Economic Association. We measured the performance of IVSM by the number of matches between the IVSM-generated keywords and the author-assigned keywords. According to our experiment, the precisions of IVSM applied to Web-based community service and academic journals were 0.75 and 0.71, respectively. The performance of both systems is much better than that of baseline systems that generate keywords based on simple probability. Also, IVSM shows comparable performance to Extractor that is a representative system of keyword extraction approach developed by Turney. As electronic documents increase, we expect that IVSM proposed in this paper can be applied to many electronic documents in Web-based community and digital library.

반려동물용 자동 사료급식기의 비용효율적 사료 중량 예측을 위한 딥러닝 방법 (A Deep Learning Method for Cost-Effective Feed Weight Prediction of Automatic Feeder for Companion Animals)

  • 김회정;전예진;이승현;권오병
    • 지능정보연구
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    • 제28권2호
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    • pp.263-278
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    • 2022
  • 최근 IoT 기술의 발달로 외출 중에도 반려동물에 급여하도록 자동 사료급식기가 유통되고 있다. 그러나 자동급식에서 중요한 중량을 측정하는 저울 방식은 쉽게 고장이 나고, 3D카메라 방식은 비용이 든다는 단점이 있으며, 2D카메라 방식은 중량 측정의 정확도가 떨어진다. 특히 사료가 복합된 경우 중량 측정 문제는 더욱 어려워질 수 있다. 따라서 본 연구의 목적은 2D카메라를 사용하면서도 중량을 정확하게 추정할 수 있는 딥러닝 접근법을 제안하는 것이다. 이를 위해 다양한 합성곱 신경망을 이용하였으며, 그중 ResNet101 기반 모델이 3.06 gram의 평균 절대 오차와 3.40%의 평균 절대비 오차를 기록하며 가장 우수한 성능을 보였다. 본 연구의 결과로 사료와 같이 규격화된 물체의 중량을 확보가 용이한 2D 이미지를 통해서만 예측할 필요가 있을 경우 유용한 정보로 활용될 수 있다.

농업용저수지의 실시간 수위 보정을 위한 Hampel Filter의 최적 Window Size 분석 (Analysis of the Optimal Window Size of Hampel Filter for Calibration of Real-time Water Level in Agricultural Reservoirs)

  • 주동혁;나라;김하영;최규훈;권재환;유승환
    • 한국농공학회논문집
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    • 제64권3호
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    • pp.9-24
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    • 2022
  • Currently, a vast amount of hydrologic data is accumulated in real-time through automatic water level measuring instruments in agricultural reservoirs. At the same time, false and missing data points are also increasing. The applicability and reliability of quality control of hydrological data must be secured for efficient agricultural water management through calculation of water supply and disaster management. Considering the characteristics of irregularities in hydrological data caused by irrigation water usage and rainfall pattern, the Korea Rural Community Corporation is currently applying the Hampel filter as a water level data quality management method. This method uses window size as a key parameter, and if window size is large, distortion of data may occur and if window size is small, many outliers are not removed which reduces the reliability of the corrected data. Thus, selection of the optimal window size for individual reservoir is required. To ensure reliability, we compared and analyzed the RMSE (Root Mean Square Error) and NSE (Nash-Sutcliffe model efficiency coefficient) of the corrected data and the daily water level of the RIMS (Rural Infrastructure Management System) data, and the automatic outlier detection standards used by the Ministry of Environment. To select the optimal window size, we used the classification performance evaluation index of the error matrix and the rainfall data of the irrigation period, showing the optimal values at 3 h. The efficient reservoir automatic calibration technique can reduce manpower and time required for manual calibration, and is expected to improve the reliability of water level data and the value of water resources.

시계열 해수면온도 산출을 위한 이어도 종합해양과학기지 열적외선 관측 시스템 구축 (Establishment of Thermal Infrared Observation System on Ieodo Ocean Research Station for Time-series Sea Surface Temperature Extraction)

  • 강기묵;김덕진;황지환;최창현;남성현;김성중;조양기;변도성;이주영
    • 한국해양학회지:바다
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    • 제22권3호
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    • pp.57-68
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    • 2017
  • 이어도 종합해양과학기지(IORS, Ieodo Ocean Research Station) 주변 해역은 시 공간적으로 해양 환경 변화가 심하여, 해양-대기교환 과정을 비롯하여 해양 생태계와 기후 변화 연구에 필수적인 해수면온도(SST, Sea surface temperature) 자료의 지속적인 측정이 요구되는 해역이다. 본 연구에서는 이어도 종합해양과학기지에 열적외선 센서를 이용하여 해수면온도 연속 관측이 가능한 시스템을 구축하였다. 자동 대기 보정 및 해양 조건에 따른 방사율 계산이 가능한 해수면온도 추출 알고리즘을 개발하였고, 현장측정 해수면온도 자료와의 비교 및 검증을 통해 정확도를 평가하였다. 2015년 5월 17일부터 26일, 그리고 2016년 7월 15일부터 18일까지 기지에 체류하는 동안 열적외선 관측 시스템으로 측정된 해수면온도와 기지 부착 CT (Conductivity-Temperature) 및 튜브 부착 수온 센서들을 이용하여 현장에서 측정된 해수면온도 시계열을 비교하여 상호상관계수0.72-0.85, 평균제곱근 편차 $0.37-0.90^{\circ}C$의 정확도를 얻었다. 이 시스템은 이어도 종합해양과학기지뿐만 아니라 신안 가거초 및 옹진 소청초 등의 다른 종합해양과학기지에도 쉽게 구축이 가능한 시스템으로써 향후 발사될 인공위성의 해수면온도 산출알고리즘 개발의 테스트사이트나 검보정사이트로 활용될 수 있을 것으로 기대할 수 있다.