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        검색결과 43

        2.
        2022.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Agrophotovoltaic (APV) system is an integrated system producing crops as well as solar energy. Because crop production underneath Photovoltaic (PV) modules requires delicate management of crops, smart farming equipment such as real-time remote monitoring sensors (e.g., soil moisture sensors) and micro-climate monitoring sensors (e.g., thermometers and irradiance sensors) is installed in the APV system. This study aims at introducing a decision support system (DSS) for smart farming in an APV system. The proposed DSS is devised to provide a mobile application service, satellite image processing, real-time data monitoring, and performance estimation. Particularly, the real-time monitoring data is used as an input of the DSS system for performance estimation of an APV system in terms of production yields of crops and monetary benefit so that a data-driven function is implemented in the proposed system. The proposed DSS is validated with field data collected from an actual APV system at the Jeollanamdo Agricultural Research and Extension Services in South Korea. As a result, farmers and engineers enable to efficiently produce solar energy without causing harmful impact on regular crop production underneath PV modules. In addition, the proposed system will contribute to enhancement of the smart farming technology in the field of agriculture.
        4,000원
        3.
        2022.11 구독 인증기관·개인회원 무료
        Agrophotovoltaic (APV) system is an integrated system producing crops as well as solar energy. Because crop production underneath Photovoltaic (PV) modules requires delicate management of crops, smart farming equipment such as real-time remote monitoring sensors (e.g., thermometers, irradiance sensors, and soil moisture sensors) is installed in the APV system. This study aims at introducing a simulation-based decision support system (DSS) for smart farming in an APV system. The proposed DSS is devised to provide a mobile application service, satellite image processing, real-time data monitoring, and simulation-based performance estimation. Particularly, an agent-based simulation (ABS) is used to mimic functions of an APV system so that a data-driven function and digital twin environment are implemented in the proposed system. The ABS model is validated with field data collected from an actual APV system at the Jeollanamdo Agricultural Research and Extension Services in South Korea. As a result, farmers and engineers enable to efficiently produce solar energy without causing harmful impact on regular crop production underneath PV modules. In addition, the proposed system will contribute to enhancement of the digital twin technology in the field of agriculture.
        14.
        2011.04 KCI 등재 구독 인증기관 무료, 개인회원 유료
        대체연료 충전을 위한 기반시설의 효율적 설계 및 개발은 신에너지 경제의 촉진을 위해 필요하다. 본 논문은 GIS와 입지모델을 결합하여 공간의사결정지원 시스템(SDSS)의 원형을 개발하였다. 사용된 입지 모델은 일회 주유에 따른 주행거리가 제한적인 대체연료 차량을 대상으로 최대의 충전 서비스를 제공할 수 있는 지점에 충전소를 입지하며, 이때 운전자는 주유를 위해 기-종점 간의 최적경로에서 벗어나 우회할 수도 있다고 가정한다. 개발된 SDSS는 확장가능할 뿐 아니라 의사결정자가 다양한 수요 시나리오를 탐색할 수 있다. 이를 통해 대체연료차 운전자의 우회 행태, 시장 수요의 공간적 분포, 주행거리, 기존 시설물에 관한 상이한 가설을 세우고 그 결과를 실험할 수 있다. 주어진 조건을 만족하는 최선의 충전소 위치에 관한 결과는 지도 및 통계와 같은 다양한 산출물로 보고된다.
        4,500원
        16.
        2010.09 구독 인증기관 무료, 개인회원 유료
        4,000원
        17.
        2009.08 KCI 등재 구독 인증기관 무료, 개인회원 유료
        The quick response(QR) system is very popular in Korean apparel companies. However, the usage of QR system was not known well. The purpose of this study is to identify the usage of the quick response decision support system(QR DSS) and postponement manufacturing in the Korean apparel company. The researched company was the only one which used the QR DSS. The researchers carried out the depth interview with the QR decision makers of the company. This company had 14 brands, and had used the QR DSS since January, 2008. The results are as follows: The QR DSS was supportive computer software program, and it helped the staffs to make agile decision about QR repeat production of clothing. The QR DSS automatically calculated the related data, and suggested the expected sales volume and the proper supply amounts of the styles. There were four functions in QR DSS : 'QR Alert', 'Proper Supply Amount Simulation', 'Sensible QR', and 'Supply/Sales Simulation by Item'. The men's clothing brands effectively used 'Supply/Sales Simulation by Item' function. And the women's clothing brands effectively used 'QR Alert' function. This company also used the postponement production system for QR repeat production. The postponement production was conducted with four methods : the yarn stocking, the grey fabric stocking, the dyed fabric stocking, and the fabric sourcing. The men's clothing brands usually used of the yarn stocking methods and the dyed fabric stocking methods. The women's clothing brands usually used the grey fabric stocking methods. By using QR DSS and postponement production system the company was able to shorten the lead time for QR decision making.
        4,000원
        18.
        2009.03 KCI 등재 구독 인증기관 무료, 개인회원 유료
        The bullwhip effect is known as the significant factor which causes unnecessary inventory, lost sales or cost increase in supply chains. Therefore, the causes of the bullwhip effect must be examined and removed. In this paper, we develop two analytical to
        4,500원
        20.
        2005.05 구독 인증기관 무료, 개인회원 유료
        In order to implement Artificial Intelligence, various technologies have been widely used. Artificial Intelligence are applied for many industrial products and machine tools are the center of manufacturing devices in intelligent manufacturing devices. The purpose of this paper is to present the design of Decision Support Agent that is applicable to machine tools. This system is that decision whether to act in accordance with machine status is support system. It communicates with other active agents such as sensory and dialogue agent. The proposed design of decision support agent facilitates the effective operation and control of machine tools and provides a systematic way to integrate the expert's knowledge that will implement Intelligent Machine Tools.
        3,000원
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