• 제목/요약/키워드: Quality discrimination

검색결과 286건 처리시간 0.036초

고품질 기능성 물질의 품질관리를 위한 전자코 응용 (Application of Electronic Nose for Quality Control of The High Quality and Functional Components)

  • 노봉수
    • 한국작물학회:학술대회논문집
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    • 한국작물학회 2006년도 한국약용작물학회 공동춘계학술발표회
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    • pp.40-54
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    • 2006
  • It's not easy to detect the high quality and functional compounds for control quality of food materials. The electronic nose was an instrument, which comprised of an array of electronic chemical sensors with partial specificity and an appropriate pattern recognition system, capable of recognizing simple or complex odors. It can conduct fast analysis and provide simple and straightforward results and is best suited for quality control and process monitoring in the field of functional foods. Numbers of applications of an electronic nose in the functional food industry include discrimination of habitats for medicinal food materials, monitoring storage process, lipid oxidation, and quality control of food and/or processing with principal component analysis, neural network analysis and the electronic nose based on GC-SAW sensor. The electronic nose would be possibly useful for a wide variety of quality control in the functional food and plant cultivation when correlating traditional analytical instrumental data with sensory evaluation results or electronic nose data.

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기계시각을 이용한 현미의 개체 품위 판별 알고리즘 개발 (Algorithm for Discrimination of Brown Rice Kernels Using Machine Vision)

  • 노상하;황창선;이종환
    • Journal of Biosystems Engineering
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    • 제22권3호
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    • pp.295-302
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    • 1997
  • An ultimate purpose of this study was to develop an automatic system for brown rice quality inspection using image processing technique. In this study emphasis was put on developing an algorithm for discriminating the brown rice kernels depending on their external quality with a color image processing system equipped with an adaptor magnifying the input image and optical fiber for oblique lightening. Primarily, geometical and optical features of images were analyzed with paddy and the various brown rice kernel samples such as a sound, cracked, peen-transparent, green-opaque, colored, white-opaque and brokens. Secondary, geometrical and optical parameters significant for identifying each rice kernels were screened by a statistical analysis(STEPWISE and DISCRIM procedure, SAS wer. 6) and an algorithm fur on- line discrimination of the rice kernels in static state were developed, and finally its performance was evaluated. The results are summarized as follows. 1) It was ascertained that the cracked kernels can be detected when e incident angle of the oblique light is less than 2$0^{\circ}C$ but detectivity was significantly affected by the angle between the direction of the oblique light and the longitudinal axis of the rice kernel and also by the location of the embryo with respect to the oblique light. 2) The most significant Parameters which can discriminate brown rice kernels are area, length and R, B and r values among the several geometrical and optical parameters. 3) Discrimination accuracies of the algorithm were ranged from 90% to 96% for a sound, cracked, colored, broken and unhulled, about 81 % for green-transparent and white-opaque and 75 % for green-opaque, respectively.

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근적외선 분광광도법을 이용한 송이버섯의 원산지 판별 (Discrimination of Geographical Origin of Mushroom (Tricholoma matsutake) using Near Infrared Spectroscopy)

  • 이남윤;배혜리;노봉수
    • 한국식품과학회지
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    • 제38권6호
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    • pp.835-837
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    • 2006
  • 근적외선 분광광도법을 이용하여 송이버섯의 원산지 판별을 시험하였다. 259개의 국내산 시료중 256개는 국내산으로 판별하였고(98.84%) 수입산 81개중 60개는 수입산으로 판별하였으나(74.07%) 21개의 북한산은 판별하기가 모호하여 잘못 판정한 것으로 간주할 때 시료 판별의 전체정확도는 92.94%로 나타났다. MPLS에 따른 분석의 경우 상관계수는 0.84, 검량선의 표준오차는 15.10%, 예측 표준오차는 18.30% 이었다.

Determination of Germination Quality of Cucumber (Cucumis Sativus) Seed by LED-Induced Hyperspectral Reflectance Imaging

  • Mo, Changyeun;Lim, Jongguk;Lee, Kangjin;Kang, Sukwon;Kim, Moon S.;Kim, Giyoung;Cho, Byoung-Kwan
    • Journal of Biosystems Engineering
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    • 제38권4호
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    • pp.318-326
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    • 2013
  • Purpose: We developed a viability evaluation method for cucumber (Cucumis sativus) seed using hyperspectral reflectance imaging. Methods: Reflectance spectra of cucumber seeds in the 400 to 1000 nm range were collected from hyperspectral reflectance images obtained using blue, green, and red LED illumination. A partial least squares-discriminant analysis (PLS-DA) was developed to predict viable and non-viable seeds. Various ranges of spectra induced by four types of LEDs (Blue, Green, Red, and RGB) were investigated to develop the classification models. Results: PLS-DA models for spectra in the 600 to 700 nm range showed 98.5% discrimination accuracy for both viable and non-viable seeds. Using images based on the PLS-DA model, the discrimination accuracy for viable and non-viable seeds was 100% and 99%, respectively Conclusions: Hyperspectral reflectance images made using LED light can be used to select high quality cucumber seeds.

헬스케어 서비스 리뷰를 활용한 서비스 품질 차원 별 중요 단어 파악 방안 (Keyword identifications on dimensions for service quality of Healthcare providers)

  • 이홍주
    • 지식경영연구
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    • 제19권4호
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    • pp.171-185
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    • 2018
  • Studies on online review have carried out analysis of the rating and topic as a whole. However, it is necessary to analyze opinions on various dimensions of service quality. This study classifies reviews of healthcare services into service quality dimensions, and proposes a method to identify words that are mainly referred to in each dimension. Service quality was based on the dimensions provided by SERVQUAL, and patient reviews have collected from NHSChoice. The 2,000 sentences sampled were classified into service quality dimension of SERVQUAL and a method of extracting important keywords from sentences by service quality dimension was suggested. The RAKE algorithm is used to extract key words from a single document and an index is considered to consider frequently used words in various documents. Since we need to identify key words in various reviews, we have considered frequency and discrimination (IDF) at the same time, rather than identifying key words based only on the RAKE score. In SERVQUAL dimension, we identified the words that patients mentioned mainly, and also identified the words that patients mainly refer to by review rating.

동적 관심영역 코딩을 위한 효율적인 관심영역 코드블록 판별 알고리듬 (An Eefficient ROI Code Block Discrimination Algorithm for Dynamic ROI Coding)

  • 강기준;안병태
    • 한국멀티미디어학회논문지
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    • 제11권1호
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    • pp.13-22
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    • 2008
  • 본 논문에서는 동적 관심영역 코딩을 위한 효율적인 관심영역 코드블록 판별 알고리듬을 제안한다. 제안한 알고리듬은 관심영역 코드블록 판별 시간을 줄이기 위하여 관심영역 모양의 특징을 고려하여 일부 마스크 정보만으로 관심영역의 포함율을 계산하고, 포함율과 관심영역 임계값에 의해 관심영역 코드블록 유무를 판별한다. 그리고 판별 알고리듬은 관심영역 임계값을 조절함으로서 관심영역 코드블록 내의 배경 웨이블릿 계수의 우선적 처리와 손실 부분을 조절도 할 수 있었다. 제안한 방법의 유효성을 나타내기 위해 기존의 방법들과 비교 실험을 통해 제안한 방법이 기존의 방법에 비해 품질과 속도 면에 있어서 우수함을 확인하였다.

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SPOT/VEGETATION 영상을 이용한 눈과 구름의 분류 알고리즘 (SPOT/VEGETATION-based Algorithm for the Discrimination of Cloud and Snow)

  • 한경수;김영섭
    • 대한원격탐사학회지
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    • 제20권4호
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    • pp.235-244
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    • 2004
  • 본 연구는 SPOT-4 위성의 VEGETATION-1 센서의 가시 채널, 근적외 채널, 단파 적외채널 자료를 이용하여 눈과 구름을 구별하기 위해 새롭게 제시된 알고리즘을 평가하기 위한 것이다. 눈과 구름의 마스크를 위해 전통적으로 이용되고 있는 임계치 방법들은 본 연구에서 좋은 결과를 보여 주지 못하였다 따라서 K-means 군집화 방법이 이러한 임계치 방법 대신 본 연구에서 사용되었다. 군집화에서는 두 임계치 알고리즘을 통합하여 적설과 구름을 그룹화 시켜 동시에 추출한 화소들을 적용하였다. 이것은 전체 영상을 군집화에 적용시킬 때와 비교해 군집화의 과정을 단순화시키고 나아가 정확도를 향상시킬 수 있다. 본 연구는 이러한 과정을 통해 얻어진 결과를 임계치 방법이 적용되었을 때의 결과와 비교함과 동시에 VEGETATION 자료의 분별능력을 평가하였다. 본 연구에서 제시한 방법을 이용하였을 때, 구름과 눈의 분별 능력은 상당히 향상되었다. 분별 오차는 임계치 방법을 사용하였을 때 보다 구름에 대해 19.4% 적설에 대해 9.7% 정도 감소하였다.

Performance of APACHE IV in Medical Intensive Care Unit Patients: Comparisons with APACHE II, SAPS 3, and MPM0 III

  • Ko, Mihye;Shim, Miyoung;Lee, Sang-Min;Kim, Yujin;Yoon, Soyoung
    • Acute and Critical Care
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    • 제33권4호
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    • pp.216-221
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    • 2018
  • Background: In this study, we analyze the performance of the Acute Physiology and Chronic Health Evaluation (APACHE) II, APACHE IV, Simplified Acute Physiology Score (SAPS) 3, and Mortality Probability Model $(MPM)_0$ III in order to determine which system best implements data related to the severity of medical intensive care unit (ICU) patients. Methods: The present study was a retrospective investigation analyzing the discrimination and calibration of APACHE II, APACHE IV, SAPS 3, and $MPM_0$ III when used to evaluate medical ICU patients. Data were collected for 788 patients admitted to the ICU from January 1, 2015 to December 31, 2015. All patients were aged 18 years or older with ICU stays of at least 24 hours. The discrimination abilities of the three systems were evaluated using c-statistics, while calibration was evaluated by the Hosmer-Lemeshow test. A severity correction model was created using logistics regression analysis. Results: For the APACHE IV, SAPS 3, $MPM_0$ III, and APACHE II systems, the area under the receiver operating characteristic curves was 0.745 for APACHE IV, resulting in the highest discrimination among all four scoring systems. The value was 0.729 for APACHE II, 0.700 for SAP 3, and 0.670 for $MPM_0$ III. All severity scoring systems showed good calibrations: APACHE II (chi-square, 12.540; P=0.129), APACHE IV (chi-square, 6.959; P=0.541), SAPS 3 (chi-square, 9.290; P=0.318), and $MPM_0$ III (chi-square, 11.128; P=0.133). Conclusions: APACHE IV provided the best discrimination and calibration abilities and was useful for quality assessment and predicting mortality in medical ICU patients.

학교시설 임대형민자사업의 평가기준 개선연구 (A Study on School Facilities Build Transfer Lease Project - Centering on the improvement of the assessment -)

  • 권병구;이재림;조진일
    • 교육녹색환경연구
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    • 제7권2호
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    • pp.30-46
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    • 2008
  • In this study, were prepared after statistical analysis was conducted of assessment items and marks distribution for the selection of executors of the BTL project. When tests of the degree of dispersion and degree of appropriateness for each assessment item were analyzed, it was found that the degree of dispersion among assessment points has the power of discrimination since it is highly marked in the design field and operation management field. In contrast, 'business management plan' and 'investment composition for economic quality assessment' have a low level of the power of discrimination since points given to them have smaller difference between business projects.

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영상처리를 이용한 현미의 온라인 품위판정 알고리즘 (On-line Inspection Algorithm of Brown Rice Using Image Processing)

  • 김태민;노상하
    • Journal of Biosystems Engineering
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    • 제35권2호
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    • pp.138-145
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    • 2010
  • An on-line algorithm that discriminates brown rice kernels on their echelon feeder using color image processing is presented for quality inspection. A rapid color image segmentation algorithm based on Bayesian clustering method was developed by means of the look-up table which was made from the significant clusters selected by experts. A robust estimation method was presented to improve the stability of color clusters. Discriminant analysis of color distributions was employed to distinguish nine types of brown rice kernels. Discrimination accuracies of the on-line discrimination algorithm were ranged from 72% to 85% for the sound, cracked, green-transparent and green-opaque, greater than 93% for colored, red, and unhulled, about 92% for white-opaque and 67% for chalky, respectively.