• Title/Summary/Keyword: 1968년도

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Breeding Process and Characteristics of Gopoong, a New Variety of Panax ginseng C.A. Meyer. (인삼(Panax ginseng C.A. Meyer) 신품종 고풍의 육성경과 및 생육특성)

  • Kwon, Woo-Saeng;Lee, Jang-Ho;Park, Chan-Soo;Yang, Deok-Chun
    • Journal of Ginseng Research
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    • v.27 no.2
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    • pp.86-91
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    • 2003
  • To develop a new ginseng variety with good quality and high yielding, a lot of individual ginseng plant were selected in the farmers'fields in 1968. Among them, a promising line,680-83-4, has been developed through comparative cultivation of several lines selected with pure line separation from local races in KT&C Central Research Institute, preliminary and advanced yield trials were performed fir 8 years.680-83-4 was designated as KG103, which was then registered as a new variety “Gopoong” with the regional yield and adaptation trials for 10 years (1981-1990) on December 27,2000 in Korea. Gopoong has different phenotype of a dark violet stem and dark red fruit and inverted triangle shape of berries cluster as compared with other varieties. Taproot of Gopoong was longer than local race Jakyungjong, and root yield was 4.5% higher than local race Jakyungjong. In red ginseng quality, the rates of Chun-Jeesam grade(Chun and Jee means 1 st and 2nd grade, respectively) were 16.6% and 9.4% for Gopoong and Jakyungjong, respectively. In these results, it was that Gopoong was superior ginseng line with good quality far manufacture of red ginseng.

Cinematic Method on Kihachiro Kawamoto's works (카와모토 키하치로 작품의 영화적 표현 기법)

  • Park, Gi-Ryung
    • Cartoon and Animation Studies
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    • s.25
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    • pp.65-85
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    • 2011
  • In this essay, Japanese animator Kihachiro Kawamoto's works will be analyzed. Kawamoto made Breaking of Branches is Forbidden in 1968 and was famous for puppet animation as The Demon(1972), Dojoji Temple(1976) and House of Flame(1979) used Japanese traditional elements in his works. The themes are the agony and despair of a human being, and the narrative is developed dramatically. This is possible through a variety of techniques in animation expression. For example of this are the movement of the puppets and the lighting. In the case of Kawamoto's works, above all, it can be said that the dramatic development depends on editing - the relation of each shot to the next shot. Therefore, this analysis will focus especially on the editing of The Demon, Dojoji Temple and House of Flame. Kawamoto's method of editing will be examed and the analysis will confirm that classical continuity edting by controling space and time has been used. Namely that the effect of editing enhances dramatic development of the narrative on Kawamoto's works. This study will also discuss the benefit of using cinematic methods of in animation. Eventhough it is not essential, Kawamoto chooses cinematic method editing. Through their use, he is able to absorb the audience in the traditional Japanese world which ordinarily could be too difficult to understand through puppet animation.

Evolution of Science and Technology Poles : The Case of Daedeok Science Town (과학기술거점의 진화: 대덕연구단지의 사례)

  • Song, Sung-Soo
    • Journal of Science and Technology Studies
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    • v.9 no.1
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    • pp.33-55
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    • 2009
  • This article analyzes the evolutionary process of Daedeok Science Town from the standpoint of the life of science and technology poles. It deals the theoretical discussion on the science and technology poles, and investigates the history of Daedeok Science Town dividing into the period of conception, construction, and clustering. Daedeok Science Town has been developed from research and academic city through special research parks to innovative clusters, and nowadays emphasizes networking, interaction, and commercialization. This study shows the types of science and technology poles can be analyzed by historical consideration of specific Korean case.

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A Study on the Number of Sample Units for Yield Components (I) (수량구성요소(收量構成要素)를 위(爲)한 표본수(標本數)에 대(對)한 연구(硏究) (제(第)1보(報)))

  • Oh, W.K.;Chang, S.H.;Lee, H.C.
    • Korean Journal of Soil Science and Fertilizer
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    • v.2 no.1
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    • pp.75-78
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    • 1969
  • The necessary number of hills for panicle counts have been obtained, and are more in Kangwon-Do and Chulla Nam-Do where the variability of sampling error is higher as compared to other provinces. It seems that number of samples do not depend on the latitude but on the variabilities of yield components within the province and it is considered that about 5% sampling fraction gives about 75 to 85% of relative information on the average.

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DNA barcoding of Raptor carcass collected in the Paju city, Korea (파주시에서 수집한 폐사체 맹금류의 DNA 바코드 연구)

  • Jin, Seon-Deok;Paik, In-Hwan;Lee, Soo-Young;Han, Gap-Soo;Yu, Jae-Pyoung;Paek, Woon-Kee
    • Korean Journal of Environment and Ecology
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    • v.28 no.5
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    • pp.523-530
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    • 2014
  • One juvenile raptor which was not able to be identified due to its head damage was discovered on a roadside in Janggok-ri, Jori-eup, Paju on 28th June, 2011. The species was identified by DNA barcoding. After polymerase chain reaction (PCR) of the mitochondrial cytochrome c oxidase subunit I gene (COI), we obtained 695 bp sequences. We analyzed the obtained COI sequence with similar sequences from the BOLD systems and BLAST of the NCBI Genbank, and discovered that its sequence showed 100 % similarity values with the one of the five gray-faced buzzards which were previously researched. In addition, it was confirmed to be a female through sex determination using DNA. Such results are important information as it confirms the breeding of the gray-faced buzzards for the first time in 43 years since its breeding was last recorded in 1968, in Paju. Wildlife rescue center needs to work with adjacent consigned registration and preservation institutions when carcass of wild animals is collected or DNA samples are obtained for more accurate both species and sex identification through a systematic management system in the future. Furthermore, the obtained DNA sample of the gray-faced buzzard and COI gene, DNA barcode, could be used as reference standards for similar researches in the future.

ON THE MORPHOLOGY OF LARVAL AND YOUNG STAGES OF CHAMICHTHYS DOLICHOGNATHUS HILGENDORF (점망둑 Chasmichthys dolichognathus HILGENDORF의 자치어기의 형태)

  • KIM Yong Uk
    • Korean Journal of Fisheries and Aquatic Sciences
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    • v.8 no.4
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    • pp.225-233
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    • 1975
  • Morphological changes of early post-larval and young stages of Chasmichthys dolichognathus HILGEnDORF (Family Gobiidae) have been studied based on the samples of 953 individuals collected in June 1968, July 1969 and July 1971. Particular emphasis was paid on the development of fin rays, chromatophore patterns and ventral fins. The primordial fin rays of the first dorsal fin appear in the post-larvae of around 8.0 mm in total length, and dorsal fin fully develops in the larvae of around 9.2 mm. In the early young stages of 17.0 mm in total length fin rays have completely developed. According to chromatophore patterns the larvae are grouped into three successive groups. The larvae at the early stages of 6.3-14.2 mm have melanophores on the whole dorsal surface, the posterior ventro-lateral part of the tail and the basal part of the caudal fin. In the later larval stages of 17.0-24.4 mm a group of melanophores are added on medio-lateral part of the tail. These melanophores extend anteriorly and eventually cover the medio-lateral part of the whole body. In the early young stages of 97.2-34.8 mm the chromatophores cover the whole body surface in cloudy and H-shaped patterns. The chromatophore patterns of this stage are distinctive as generic characters of the fish. Fin membranes of the ventral fin appear in the post-larval stage (ca. 7.4 mm), and the primordial fin rays develop in the late post-larval stages (ca. 14.2 mm). The fin rays develop into a complete sucker in the young fish stage of around 30.0 mm in total length.

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Clinical Analysis of Tissue Biopsy Under Fiberoptic Bronchoscopy (기관지내시경하에 시행한 조직생검에 대한 고찰)

  • 고건성;유장열;박석근;조태권;노관택;김홍기
    • Proceedings of the KOR-BRONCHOESO Conference
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    • 1978.06a
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    • pp.5.1-5
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    • 1978
  • Since Ikeda in traduced flexible fiberoptic bronchoscope in 1968, use of bronchoscopy was expanded rapidly. Wide use of flexible bronchoscopy enabled us to get tissue diagnosis with more ease and safety. Authors analyzed 71 cases of tissue biopsy of 233 bronchoscopies from June '76 to. Jan. '78 and concluded as following : 1. 233 bronchoscopies af 20 Month duration, cases which needed tissue biopsy were 71 cases (30.5%). 2. Chief complaints af above cases are coughing, dyspnea, sputum, chest pain, hemoptysis in frequency. 3. Biopsy sites were as following in frequency: Rt.upper lobe, Lt. main bronchus, Lt. upper lobe, Rt. main bronchus, Lt. lower lobe. 4. The final diagnosis of biopsied cases were cancer 80%, tuberculosis 15%, and malignant mesothelioma, anthracosis, aspergillosis, were one case each. 5. Among 57 case of lung cancer, biopsy confirmed cases were 36 cases (63%). 6. Pathologic finding of 36 case of Biopsy confirmed lung cancer was as following: Squamous cell ca : 64% Anaplastic ca : 25% Adeno ca : 2.8% Unclassified: 2.8% 7. Bronchographies were done in 36cases (51%), one quarter of cases before biopsy, and three quarters of cases after biopsy. 8. Cytology was requested in 76% of cases with following results; PAP class V 15%, class IV 7.5%, class III 1.8%.

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Topic Model Analysis of Research Themes and Trends in the Journal of Economic and Environmental Geology (기계학습 기반 토픽모델링을 이용한 학술지 "자원환경지질"의 연구주제 분류 및 연구동향 분석)

  • Kim, Taeyong;Park, Hyemin;Heo, Junyong;Yang, Minjune
    • Economic and Environmental Geology
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    • v.54 no.3
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    • pp.353-364
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    • 2021
  • Since the mid-twentieth century, geology has gradually evolved as an interdisciplinary context in South Korea. The journal of Economic and Environmental Geology (EEG) has a long history of over 52 years and published interdisciplinary articles based on geology. In this study, we performed a literature review using topic modeling based on Latent Dirichlet Allocation (LDA), an unsupervised machine learning model, to identify geological topics, historical trends (classic topics and emerging topics), and association by analyzing titles, keywords, and abstracts of 2,571 publications in EEG during 1968-2020. The results showed that 8 topics ('petrology and geochemistry', 'hydrology and hydrogeology', 'economic geology', 'volcanology', 'soil contaminant and remediation', 'general and structural geology', 'geophysics and geophysical exploration', and 'clay mineral') were identified in the EEG. Before 1994, classic topics ('economic geology', 'volcanology', and 'general and structure geology') were dominant research trends. After 1994, emerging topics ('hydrology and hydrogeology', 'soil contaminant and remediation', 'clay mineral') have arisen, and its portion has gradually increased. The result of association analysis showed that EEG tends to be more comprehensive based on 'economic geology'. Our results provide understanding of how geological research topics branch out and merge with other fields using a useful literature review tool for geological research in South Korea.

Corporate Default Prediction Model Using Deep Learning Time Series Algorithm, RNN and LSTM (딥러닝 시계열 알고리즘 적용한 기업부도예측모형 유용성 검증)

  • Cha, Sungjae;Kang, Jungseok
    • Journal of Intelligence and Information Systems
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    • v.24 no.4
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    • pp.1-32
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    • 2018
  • In addition to stakeholders including managers, employees, creditors, and investors of bankrupt companies, corporate defaults have a ripple effect on the local and national economy. Before the Asian financial crisis, the Korean government only analyzed SMEs and tried to improve the forecasting power of a default prediction model, rather than developing various corporate default models. As a result, even large corporations called 'chaebol enterprises' become bankrupt. Even after that, the analysis of past corporate defaults has been focused on specific variables, and when the government restructured immediately after the global financial crisis, they only focused on certain main variables such as 'debt ratio'. A multifaceted study of corporate default prediction models is essential to ensure diverse interests, to avoid situations like the 'Lehman Brothers Case' of the global financial crisis, to avoid total collapse in a single moment. The key variables used in corporate defaults vary over time. This is confirmed by Beaver (1967, 1968) and Altman's (1968) analysis that Deakins'(1972) study shows that the major factors affecting corporate failure have changed. In Grice's (2001) study, the importance of predictive variables was also found through Zmijewski's (1984) and Ohlson's (1980) models. However, the studies that have been carried out in the past use static models. Most of them do not consider the changes that occur in the course of time. Therefore, in order to construct consistent prediction models, it is necessary to compensate the time-dependent bias by means of a time series analysis algorithm reflecting dynamic change. Based on the global financial crisis, which has had a significant impact on Korea, this study is conducted using 10 years of annual corporate data from 2000 to 2009. Data are divided into training data, validation data, and test data respectively, and are divided into 7, 2, and 1 years respectively. In order to construct a consistent bankruptcy model in the flow of time change, we first train a time series deep learning algorithm model using the data before the financial crisis (2000~2006). The parameter tuning of the existing model and the deep learning time series algorithm is conducted with validation data including the financial crisis period (2007~2008). As a result, we construct a model that shows similar pattern to the results of the learning data and shows excellent prediction power. After that, each bankruptcy prediction model is restructured by integrating the learning data and validation data again (2000 ~ 2008), applying the optimal parameters as in the previous validation. Finally, each corporate default prediction model is evaluated and compared using test data (2009) based on the trained models over nine years. Then, the usefulness of the corporate default prediction model based on the deep learning time series algorithm is proved. In addition, by adding the Lasso regression analysis to the existing methods (multiple discriminant analysis, logit model) which select the variables, it is proved that the deep learning time series algorithm model based on the three bundles of variables is useful for robust corporate default prediction. The definition of bankruptcy used is the same as that of Lee (2015). Independent variables include financial information such as financial ratios used in previous studies. Multivariate discriminant analysis, logit model, and Lasso regression model are used to select the optimal variable group. The influence of the Multivariate discriminant analysis model proposed by Altman (1968), the Logit model proposed by Ohlson (1980), the non-time series machine learning algorithms, and the deep learning time series algorithms are compared. In the case of corporate data, there are limitations of 'nonlinear variables', 'multi-collinearity' of variables, and 'lack of data'. While the logit model is nonlinear, the Lasso regression model solves the multi-collinearity problem, and the deep learning time series algorithm using the variable data generation method complements the lack of data. Big Data Technology, a leading technology in the future, is moving from simple human analysis, to automated AI analysis, and finally towards future intertwined AI applications. Although the study of the corporate default prediction model using the time series algorithm is still in its early stages, deep learning algorithm is much faster than regression analysis at corporate default prediction modeling. Also, it is more effective on prediction power. Through the Fourth Industrial Revolution, the current government and other overseas governments are working hard to integrate the system in everyday life of their nation and society. Yet the field of deep learning time series research for the financial industry is still insufficient. This is an initial study on deep learning time series algorithm analysis of corporate defaults. Therefore it is hoped that it will be used as a comparative analysis data for non-specialists who start a study combining financial data and deep learning time series algorithm.

Cell Culture Models of Human Norovirus: the End of the Beginning? (인간노로바이러스의 세포배양 기술개발 : 새로운 시작?)

  • Nguyen, Minh Tue;Park, Mi-Kyung;Ha, Sangdo;Choi, In-Soo;Choi, Changsun;Myoung, Jinjong
    • Microbiology and Biotechnology Letters
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    • v.45 no.2
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    • pp.93-100
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    • 2017
  • Human norovirus (hNoV) infection accounts for the vast majority of virus-mediated gastroenteritis cases worldwide. It causes self-limiting acute illnesses in healthy individuals lasting for a few days, however, in immunocompromised patients, hNoV can establish chronic and potentially fatal infections. Since its discovery in 1968, much effort had been made to develop cell culture and animal infection models to no avail. Only recently, some promising breakthroughs in the development of in vitro infection models have been made. Here, we will contrast and compare those models and discuss what further needs to be done to develop a reliable and robust cell culture model.