• 제목/요약/키워드: ROM

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클라우드 시스템에서 해양수치모델 성능 최적화 (Performance Optimization of Numerical Ocean Modeling on Cloud Systems)

  • 정광욱;조양기;탁용진
    • 한국해양학회지:바다
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    • 제27권3호
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    • pp.127-143
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    • 2022
  • 최근 클라우드 컴퓨팅 환경에서 해양수치모델 실험을 수행하는 많은 연구가 활발하게 진행되고 있다. 클라우드 컴퓨팅 환경은 대규모 자원이 필요한 해양수치모델을 구현하는데 매우 효과적인 수단이 될 수 있다. 정보처리 기술의 발달로 클라우드 컴퓨팅 시스템은 가상화와 원격 고속 네트워크, 직접 메모리 액세스와 같은 수치모델의 병렬처리에 필요한 다양한 기술과 환경을 제공한다. 이러한 새로운 기능은 클라우드 컴퓨팅 시스템에서 해양수치모델링 실험을 용이하게 한다. 많은 과학자들과 엔지니어들은 해양수치모델 실험에 있어서 가까운 미래에 클라우드 컴퓨팅이 주류가 될 것으로 기대하고 있다. 해양수치모델링을 위한 클라우드 컴퓨팅의 처리성능 분석은 수치모델의 수행 시간과 리소스 활용량을 최소화하는 데 도움이 될 수 있으므로 최적의 시스템을 적용하는 데 필수적이다. 특히 모델 격자 내 다양한 변수들이 다차원 배열 구조로 되어 있기 때문에 대량의 입출력을 처리하는 해양수치모델의 구조는 캐시메모리의 효과가 크며, 대량의 자료가 이동하는 통신 특성으로 인해서 네트워크의 속도가 중요하다. 최근에 주요한 컴퓨팅환경으로 자리잡고 있는 클라우드 환경이 이러한 해양수치모델을 수행하기에 적합한지 실험을 통해서 검토할 필요가 있다. 본 연구에서는 상용 클라우드 시스템에서 해양수치모델로 대표적인 Regional Ocean Modeling System (ROMS)와 더불어 다른 해양모델의 클라우드 환경으로 전환에도 도움이 될 수 있게 병렬처리 시스템의 성능을 측정할 수 있는 표준 벤치마킹 소프트웨어 패키지인 High Performance Linpack을 활용하여 초당 부동소수점 연산횟수 처리능력과 및 STREAM 벤치마크를 활용하여 다중 노드들로 구성된 수치모델용 클러스터의 메모리처리성능을 평가하고 비교하였다. 이러한 평가내용은 클라우드 환경에서 해양수치모델을 어떻게 수행할 것인가에 대해 중요한 정보를 제공할 수 있다. 가상화 기반 상용 클라우드에서 얻은 실제 성능 자료와 구성 설정 분석을 통해 가상화 기반 클라우드 시스템에서 해양수치모델의 다양한 격자 크기에 대한 컴퓨터 리소스의 효율성을 평가했다. 본 연구를 통해서 캐시 계층과 용량이 큰 메모리를 사용하는 HPC 클러스터가 ROMS의 성능에 매우 중요하다는 것을 발견했다. 수치모델링의 실행 시간을 줄이기 위해 코어 수를 늘리는 것은 작은 격자 보다 큰 격자 모델에서 더 효과적이다. 이러한 처리 성능 분석 결과는 클라우드 컴퓨팅 시스템에서 해양수치모델을 효율적으로 구축하는 데 중요한 자료로 이용될 것이다.

A study of the inorganic element contents for the ginsengs of Keumsan, Chungnam

  • 송석환
    • 고려인삼학회:학술대회논문집
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    • 고려인삼학회 2008년도 춘계 학술대회
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    • pp.74-75
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    • 2008
  • This study is for geochemical relationships between ginsengs and soils from three representative soil types from Keumsan, shale, phyllite and granite. For these study, ginsengs, with the field and weathered soils were collected from the three regions, and are analysed for the major and trace elements. In the weathered soils(avg.), the granite and phyllite areas are high in the most of elements while the shale area is low. In the correlation coefficients, negative correlations are shown in the $Al_2O_3$-MgO pair while positive correlations, are shown in the Ba-Sr, Zr, Sr-Zr and Cs-Ge pairs. In the field soils(avg.), the granite and phyllite areas are, generally, high in the most of elements while the shale area is low. In the shale area, the major elements are high in the 4 year soils, but low in the 2 year soils. The LFS(Ba, Sr, Cs) and transitional elements are high in the 2 year soils, but low in the 4 year soils. The HFS(Y, Zr) is high in the 4 year soils. In the correlation coefficients, most of the elements from the 4 year show positive relationships. Positive correlations are shown in the $Al_2O_3$-CaO, MnO-MgO, V-Tl, and Ba-Sr pairs in all localities. In the ginseng contents, clear chemical differences with the ages are shown in the shale and granite ares, but not clear in the phyllite area. In the shale area Mn, Mg, Ba, Sr, and Y contents, increase with ages but decrease in Al, Cs, Be and Cd. In the correlation coefficients, degrees of the correlations for the major elements become low with the ages. Positive correlations are shown in the Al-Mn, Ti, Mn-Ti, Mg-Ca, Ca-K, Ba-Cs, Y and Cs-Y pairs. Comparisons with ginsengs of the same ages from the different areas suggest that generally, the 2 years in the shale and 3 and 4 years in the granite area are distinctive. Relative ratios(granite/ shale area) of the ginsengs are below 1 in the major elements except Mn in the 2 year ginsengs and above 1 in the other elements except Mg and Na in the 4 year. Relative ratios(granite/ phyllite area) of the ginsengs are high in the 3 year from the phyllite area. In the relative ratios(weathered/field soils) of the soils, numbers of the elements showing the ratios of above 1 increase from the shale, to phyllite and granite in the case of the major elements, but decrease in the case of the trace elements. These results suggest that major elements are high in the granite while trace elements are high in the shale area. In the relative ratios between field soils and ginsengs(field soils/ginseng), the shale area, regardless of the ages, show differences of several hundred times in the $Al_2O_3$, $TiO_2$, Y and Tl, of several ten times in the MnO, MgO and Ba and of several times in the CaO contents. These results suggest that ginseng contents are significantly different from the field soils in the $Al_2O_3$, $TiO_2$, Y and Tl, but similar in the CaO contents. The phyllite area, regardless of the ages, show differences of several hundred times in the $Al_2O_3$, $TiO_2$, Y, Tl and Be, of several ten times in the MnO, MgO, $Na_2O$ and Ba, and of several times to ten times in the CaO, $K_2O$ and Sr contents. These results suggest that ginseng contents are significantly different from those of the field soils in the $Al_2O_3$, $TiO_2$, Y, Tl and Be, but similar in the CaO, $K_2O$ and Sr contents. The granite area, regardless of the ages, show differences of several hundred times in the $Al_2O_3$, $TiO_2$, Tl and Be, of several ten times in the Ba, and of several times to ten times in the MgO and CaO contents. Of the other elements, differences of several times to ten times are shown in the MnO, $K_2O$ and Sr contents. These results suggest that ginseng contents are significantly different from those of the field soils in the $Al_2O_3$, $TiO_2$, Tl and Be, but similar in the $K_2O$ and Sr contents. Comparisons among the different ages from the same area suggest that, in the case of shale area, differences of several hundred times in the $Al_2O_3$ and $TiO_2$, of the several ten times in the MnO, MgO and Ba and several times in the CaO and $K_2O$ are shown in the 2 year ginsengs. Differences of several hundred times in the $Al_2O_3$, $TiO_2$, Cs, Y, Tl and Be, of above several ten times in the MnO, MgO, $K_2O$ and Ba, and of several times in the CaO and Sr are shown in the 3 year ginsengs. Differences of several hundred to thousand times in the $Al_2O_3$, of above several hundred times in the $TiO_2$, Cs and Y, and of several ten times in the MnO, MgO, $K_2O$ and Ba, and of several times in the $Na_2O$ are shown in the 4 year ginsengs. These relationships suggest that, regardless of the localities in the shale area, $Al_2O_3$ contents of the soils show big differences from those of the ginsengs. Regardless of the ages of ginsengs, comparisons with the overall average contents of each area show differences of several hundred times in the $Al_2O_3$, $TiO_2$, Cs and Tl and of several ten times in the MnO. These overall relationships suggest that the $Al_2O_3$, $TiO_2$, Cs and Tl contents of the soils are higher than those of the ginsengs, show big differences between two and low different contents are found in the MnO. In detail, differences of several hundred times in the Y, and ten times in the MgO and Sr, and of several times in the CaO, $Na_2O$, $K_2O$ in the case of shale area, are shown. These results suggest that the soils are higher than the ginsengs in the Y and significantly differences in Y, and moderately differences in the MgO and Sr, and low differences in the CaO, $Na_2O$ and $K_2O$ are shown between soils and ginsengs.

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