• 제목/요약/키워드: Structural Best management practice

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한국의 경사지 밭의 토양 및 물의 보전 관리 전략 (Management Strategies to Conserve Soil and Water Qualities in the Sloping Uplands in Korea)

  • 양재이;유진희;김시주;정덕영
    • 농업과학연구
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    • 제37권3호
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    • pp.435-449
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    • 2010
  • Soils in the sloping uplands in Korea are subject to intensive land use with high input of agrochemicals and are vulnerable to soil erosion. Development of the environmentally sound land management strategy is essential for a sustainable production system in the sloping upland. This report addresses the status of upland agriculture and the best management practices for the uplands toward the sustainable agriculture. More than 60% of Korean lands are forest and only 21% are cultivating paddy and upland. Uplands are about 7% of the total lands and about 62% of the uplands are in the slopes higher than 7%. Due to the site-specificity of the upland, many managerial and environmental problems are occurring, such as severe erosion, shallow surface soils with rocky fragments, and loadings of non-point source (NPS) contaminants into the watershed. Based on the field trials, most of the sloping uplands were classified as Suitability Class III-V and the major limiting factor was slope and rock fragments. Due to this, soils were over-applied with N fertilizer, even though N rate was the recommendation. This resulted in decreases in yield, degradation of soil quality and increases in N loading to the leachate. Various case studies drew management practices toward sustainable production systems. The suggested BMP on the managerial, vegetative, and structural options were to practice buffer strips along the edges of fields and streams, winter cover crop, contour and mulching farming, detention weir, diversion drains, grassed waterway, and slope arrangement. With these options, conservation effects such as reductions in raindrop impact, flow velocity, runoff and sediment loss, and rill and gully erosion were observed. The proper management practice is a key element of the conservation of the soil and water in the sloping upland.

기업의 공급사슬관리실행의 영향요인: 정보공유와 성과를 중심으로 (Factors Affecting Corporations Practice of Supply Chain Management: With a Focus on Information Sharing and Performances)

  • 나상균;왕건신
    • 대한안전경영과학회지
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    • 제14권3호
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    • pp.193-205
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    • 2012
  • Since manufacturing and supplying corporations today come to view their practice of SCM as important, it becomes essential to analyze and control the structural relationship between the information sharing among corporations and the performances resulting from their practice of SCM. It is thus the purpose of this paper to examine the factors that may prompt corporations to implement SCM by means of analyses into the relationship between information sharing and practice of SCM which corporations should lay stress on as well as the relationship between financial and non-financial performances of corporations. The findings of the study can be summed up as follows: First, as for the relationship between information sharing among and practice of SCM by corporations, information sharing among corporations turned out to affect such factors of implementing their SCM as trust, commitment mutual dependence. Consequently, corporations are requested to endeavor to implement SCM itself faithfully if they really aim to achieve their performances by practice of SCM and, at the same time, to make efforts to obtain understanding and support for information sharing among themselves. Second, from the analysis of the relationship between SCM and financial as well as non-financial performances of corporations, it was found that trust, a factor of SCM practice, had influence upon non-financial performances of corporations, but not upon their financial performances, while commitment and mutual dependence affected both financial and non-financial achievements of corporations. Therefore, it was made clear from the analysis that the decision and systematic control of SCM activities which best suit to a corporation play an important role in improving its financial and non-financial performances, because they greatly depend on the implementing extent of SCM factors such as trust, commitment and mutual dependence among corporations.

우수유출저감 시설의 최적위치 결정 (Optimal Location of Best Management Practices for Storm Water Runoff Reduction)

  • 장수형;이지호;유철상;한수희;김상단
    • 한국물환경학회지
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    • 제24권2호
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    • pp.180-184
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    • 2008
  • A distributed hydrologic model of an urban drainage area on Bugok drainage area in Oncheon stream was developed and combined with a optimization method to determine the optimal location and number of best management practices (BMPs) for storm water runoff reduction. This model is based on the SCS-CN method and integrated with a distributed hydrologic network model of the drainage area using system of 4,211 hydrologic response units (HRUs). Optimal location is found by locating HRU combination that leads to a maximum reduction in peak flow at the drainage outlet in this model. The results of this study indicate the optimal locations and numbers of BMPs, however, for more exact application of this model, project cost and SCS-CN reduction rate of structural facilities such infiltration trench and pervious pavement will have to be considered.

CoP 활동이 사회적 자본과 조직성과에 미치는 영향 : 유한킴벌리, 포스코, 건강보험심사원 사례를 중심으로 (The Effect of CoP on Social Capital and Organizational Performance from Yuhan-Kimberly, POSCO and HIRA)

  • 김동헌;김영재;이영찬
    • 지식경영연구
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    • 제11권3호
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    • pp.77-90
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    • 2010
  • The purpose of this study is to examine the effects of human resource development policies and practices on social capital and organizational performance. To serve the purpose, we focused on the effects of communities of practice (CoP) to social capital and suggested best practices of CoP from the aspect of social capital. Specifically, we considered new kinds of social capital such as social innovation capital and social integration capital as well as traditional social capital classified into structural, relational, and cognitive capital, Where, social innovation and social integration capital represent corporate's social capacity to innovate and corporate social responsibility (CSR). And then we conducted a multiple case study on Yuhan-Kimberly, POSCO, and HIRA. From the result, we identified that CoP activities have a positive effect on social capital and organizational performance.

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대기천 유역에서의 강우기 유량-SS배출 특성 및 원인분석 연구 (Analysis of flow rate-SS discharges characteristics and causes during rainfall season in Daegi-cheon Watershed)

  • 김종건;이수인;박병기;원철희;금동혁;최중대
    • 한국습지학회지
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    • 제21권1호
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    • pp.9-15
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    • 2019
  • 대기천 유역은 한강 상류에 위치하고 있으며, 대표적인 고랭지 채소재배단지 중의 하나로 강우기 대규모 탁수를 배출하여 한강 상류의 수질 및 수생태계에 심각한 영향을 미치고 있다. 효과적인 탁수관리 및 정책제안을 위해서는 강우기 하천유량과 탁수(SS)농도의 특성 및 원인분석이 우선시되어야 한다. 본 연구에서는 대기천 유역을 대상으로 강우기 유량과 SS농도 사이의 관계를 분석하고 이를 통해 탁수발생 특성을 분석하였다. 연구 결과 보통의 홍수유량상태에서는 다양한 주변 환경요소로 인해 임의적으로 변화하는 것으로 나타났다. 반면, 첨두홍수량상태에서는 SS농도가 매우 높게 나타났으며, 이는 현장방문관측을 통해 농경지 발생원뿐만 아니라 첨두홍수량에 따른 가파른 계곡과 사면의 붕괴에 의한 영향이 크게 기여한 것으로 판단된다. 따라서 통상적인 발생원관리대책과 함께 경지주변 사면안정과 하상유실을 제어할 수 있는 구조적 최적관리방법이 필요할 것으로 판단된다.

Social Support in the Times of Social Distancing: Learnings from the South Asian Context

  • BASHIR, Mohsin;SALEEM, Ammara;ALI, Qamar
    • The Journal of Asian Finance, Economics and Business
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    • 제9권3호
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    • pp.65-76
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    • 2022
  • This study will examine the relationship between social support from the work and family domains, referred to as multiple social network ties (MSNT), and employees' job and family-related performance outcomes during the COVID-19 crisis. The study also demonstrates the importance of employees' work-family balance (WFB) in moderating the association between MSNT and job and family-related performance. A two-wave design was used to collect data from 320 managerial level personnel in Pakistan's textile sector. The path analysis technique of structural equation modelling (SEM) was used to analyze the responses. In times of crisis, social support mechanisms could potentially replace organizational support mechanisms for employees dealing with work and family obligations, according to the study. The findings of this study show that work-family balance is a significant partial mediator between MSNT and employees' job and family-related outcomes during the COVID-19 pandemic, according to a best-fit model. This research supports the pragmatic view of MSNT's action mechanism in generating jobs for employees and family-related results, especially in uncertain situations. According to the findings, employees who have a positive work-life balance are happier and more productive in both work and personal life. It has major implications for human resource management (HRM) research and practice.

집단지성을 활용한 시소러스 갱신에 관한 연구: 위키피디아를 중심으로 (Thesaurus Updating Using Collective Intelligence: Based on Wikipedia Encyclopedia)

  • 한승희
    • 정보관리학회지
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    • 제26권3호
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    • pp.25-43
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    • 2009
  • 이 연구에서는 위키피디아를 활용하여 시소러스를 갱신하고, 그 결과를 평가함으로써 시소러스 갱신에 있어 집단지성의 활용가능성에 대해 확인하고자 하였다. ASIS&T 시소러스를 대상으로 시소러스를 갱신한 결과, 용어 포괄성의 측면에서 ASIS&T 시소러스에 비해 위키 시소러스가 우수한 것으로 나타났다. 또한, 갱신된 시소러스를 평가한 결과, 위키피디아가 시소러스 갱신에 활용될 수 있음이 증명되었다. 특히, 리디렉션, 카테고리, 상호 링크로 요약되는 위키피디아의 구조적 특성은 시소러스의 의미관계를 추출하는 데 있어 적합하다는 것을 확인하였다. 이 연구의 결과를 일반화하기 위해 다국어 시소러스를 포함한 다양한 시소러스를 대상으로 적용해 볼 필요가 있다.

방사형 강우 유출의 초기세척 모의 및 소규모 불투수 배수구역에서의 초기우수 처리효과 상승을 위한 집수시설 배치 방안 (First flush modeling of the radial type surface runoff and a placement strategy for stormwater inlets to improve the effectiveness of the first flush treatment in a small impervious catchment)

  • 강주현;이동훈;김진휘
    • 한국습지학회지
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    • 제19권4호
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    • pp.375-382
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    • 2017
  • 본 연구에서는 방사형 흐름을 가지는 지표 유출수에 대한 오염물질의 초기세척현상 모의를 통하여 주차장과 같은 소규모 불투수 배수구역에서 발생하는 수렴형 강우유출수의 동적 유출특성에 대한 일반적 특성을 고찰하고, 이를 토대로 비점오염저감시설의 초기우수처리 효과를 극대화 시킬 수 있는 집수시설 배치 방안을 제시하고자 하였다. 이를 위하여 1차원 확산파 방정식(diffusion wave equation)과 오염물질 운송방정식을 이용하여 이상적인 방사형 불투수 배수구역에 대한 초기세척현상을 모의 하고, 이 결과를 이용하여 배수구역의 크기에 따른 오염물질의 초기세척강도를 산정 비교하였다. 초기세척 모의결과, 생화학적 산소요구량의 경우 평균경사도 0.02에서 배수구역의 길이 30-50m 범위일 때 초기세척강도가 가장 높았다. 이러한 결과는 주차장과 같은 소규모 불투수 구역에서는 강우유출수 집수시설의 위치와 갯수를 조정함으로써 배수구역의 길이 변경이 가능하며 이를 통하여 초기세척 강도와 첨두부하를 인위적으로 조절 가능함을 시사한다. 특히 초기우수수 처리에 중점을 둘 경우 집수시설의 위치와 갯수를 적절히 조절하여 초기세척 강도를 상승시킴으로써 동일한 용량의 비점오염저감시설로 보다 많은 오염물질 부하저감을 기대할 수 있을 것으로 판단된다.

최적관리기법에 따른 토양유실 저감 효과 유역단위 분석 (Analysis of Effects on Soil Erosion Reduction of Various Best Management Practices at Watershed Scale)

  • 이동준;이지민;금동혁;박윤식;정영훈;신용철;정교철;이병철;임경재
    • 한국물환경학회지
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    • 제30권6호
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    • pp.638-646
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    • 2014
  • Soil erosion from agricultural fields leads to various environmental problems weakening the capabilities of flood control and ecosystem in water bodies. Regarding these problems, Ministry of Environment of South-Korea prepared various structural and non-structural best management practices (BMPs) to control soil erosion. However, a lot of efforts are required to monitor and develop BMPs. Thus, modeling techniques have been developed and utilized for these issues. This study estimated the effectiveness of BMPs which are a vegetation mat with infiltration roll and Roll type vegetation channel using Soil and Water Assessment Tool (SWAT) model through the adjustment of the conservation practice factors, P factors, for Universal Soil Loss Equation which were calculated by monitoring data collected at the segment plots. Each BMP was applied to the areas with slopes ranged from 7% to 13% in the Haeanmyeon watershed. As a result of simulation, the vegetation mat with infiltration roll and Roll type vegetation channel showed 55% and 59% efficiency of soil erosion reduction, respectively. Also, Vegetation mat with infiltration roll and Roll type vegetation channel showed each 11.2% and 11.8% efficiency in reduction of sediment discharge. These roll type vegetation channel showed greater efficiency of soil erosion reduction and sediment discharge. Based on these results, if roll type vegetation channel is widely used in agricultural fields, reduction of soil erosion and sediment discharge of greater efficiency would be expected.

다양한 다분류 SVM을 적용한 기업채권평가 (Corporate Bond Rating Using Various Multiclass Support Vector Machines)

  • 안현철;김경재
    • Asia pacific journal of information systems
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    • 제19권2호
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    • pp.157-178
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    • 2009
  • Corporate credit rating is a very important factor in the market for corporate debt. Information concerning corporate operations is often disseminated to market participants through the changes in credit ratings that are published by professional rating agencies, such as Standard and Poor's (S&P) and Moody's Investor Service. Since these agencies generally require a large fee for the service, and the periodically provided ratings sometimes do not reflect the default risk of the company at the time, it may be advantageous for bond-market participants to be able to classify credit ratings before the agencies actually publish them. As a result, it is very important for companies (especially, financial companies) to develop a proper model of credit rating. From a technical perspective, the credit rating constitutes a typical, multiclass, classification problem because rating agencies generally have ten or more categories of ratings. For example, S&P's ratings range from AAA for the highest-quality bonds to D for the lowest-quality bonds. The professional rating agencies emphasize the importance of analysts' subjective judgments in the determination of credit ratings. However, in practice, a mathematical model that uses the financial variables of companies plays an important role in determining credit ratings, since it is convenient to apply and cost efficient. These financial variables include the ratios that represent a company's leverage status, liquidity status, and profitability status. Several statistical and artificial intelligence (AI) techniques have been applied as tools for predicting credit ratings. Among them, artificial neural networks are most prevalent in the area of finance because of their broad applicability to many business problems and their preeminent ability to adapt. However, artificial neural networks also have many defects, including the difficulty in determining the values of the control parameters and the number of processing elements in the layer as well as the risk of over-fitting. Of late, because of their robustness and high accuracy, support vector machines (SVMs) have become popular as a solution for problems with generating accurate prediction. An SVM's solution may be globally optimal because SVMs seek to minimize structural risk. On the other hand, artificial neural network models may tend to find locally optimal solutions because they seek to minimize empirical risk. In addition, no parameters need to be tuned in SVMs, barring the upper bound for non-separable cases in linear SVMs. Since SVMs were originally devised for binary classification, however they are not intrinsically geared for multiclass classifications as in credit ratings. Thus, researchers have tried to extend the original SVM to multiclass classification. Hitherto, a variety of techniques to extend standard SVMs to multiclass SVMs (MSVMs) has been proposed in the literature Only a few types of MSVM are, however, tested using prior studies that apply MSVMs to credit ratings studies. In this study, we examined six different techniques of MSVMs: (1) One-Against-One, (2) One-Against-AIL (3) DAGSVM, (4) ECOC, (5) Method of Weston and Watkins, and (6) Method of Crammer and Singer. In addition, we examined the prediction accuracy of some modified version of conventional MSVM techniques. To find the most appropriate technique of MSVMs for corporate bond rating, we applied all the techniques of MSVMs to a real-world case of credit rating in Korea. The best application is in corporate bond rating, which is the most frequently studied area of credit rating for specific debt issues or other financial obligations. For our study the research data were collected from National Information and Credit Evaluation, Inc., a major bond-rating company in Korea. The data set is comprised of the bond-ratings for the year 2002 and various financial variables for 1,295 companies from the manufacturing industry in Korea. We compared the results of these techniques with one another, and with those of traditional methods for credit ratings, such as multiple discriminant analysis (MDA), multinomial logistic regression (MLOGIT), and artificial neural networks (ANNs). As a result, we found that DAGSVM with an ordered list was the best approach for the prediction of bond rating. In addition, we found that the modified version of ECOC approach can yield higher prediction accuracy for the cases showing clear patterns.