• Title/Summary/Keyword: OML

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A Study on Improvement of High Resolution Regional NWP by Applying Ocean Mixed Layer Model (해양혼합층 모델 적용을 통한 고해상도 지역예측모델 성능개선에 대한 연구)

  • Min, Jae-Sik;Jee, Joon-Bum;Jang, Min;Park, Jeong-Gyun
    • Atmosphere
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    • v.27 no.3
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    • pp.317-329
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    • 2017
  • Ocean mixed layer (OML) depth affects diurnal cycle of sea surface temperature (SST) induced by change of solar radiation absorption and heat budget in ocean. The diurnal SST variation can lead to convection over the ocean, which can impact on localized precipitation both over coastal and inland. In this study, we investigate the OML characteristics affecting the diurnal cycle of SST for the Korean Peninsula and surrounding areas. To analyze OML characteristics, HYCOM oceanic mixed layer depth (MLD) and wind field at 10 m from ERA-interim during 2008~2016 are used. In the winter, MLD is deeply formed when the strong wind field is located on perpendicular to continental slope over deep seafloor areas. Besides, cooling SST-induced vertical mixing in OML is reinforced by dry cold air originated from Siberia. The OML in summer is shallowly distributed about 20 m. In order to estimate the impact of OML model in high resolution NWP model, four experimental simulations are performed. At this time, the prognostic scheme of skin SST is applied in NWP to simulate diurnal SST. The simulation results show that CNTL (off-OML) overestimates diurnal cycle of SST, while EXPs (on-OML) indicate similar results to observations. The prediction performance for precipitation of EXPs shows improvement compared with CNTL over coastal as well as inland. This results suggest that the application of the OML model in summer season can contribute to improving the prediction for performance of SST and precipitation over coastal area and inland.

A NOTE ON FINITE CONDITIONS OF ORTHOMODULAR LATTICES

  • Park, Eun-Soon
    • Communications of the Korean Mathematical Society
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    • v.14 no.1
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    • pp.31-37
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    • 1999
  • We prove the following: every chain-finite OML is path-connected; every finite block of an OML L is path-connected with at least one other block in L; every OML with unifromly finite sites is path-connected.

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Design and Implementation of the C++ OML class library of OMEGA (OMEGA C++ OML 클래스 라이브러리의 설계 및 구현)

  • 민준기;강흠근;이성진;정진완
    • Proceedings of the Korean Information Science Society Conference
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    • 1998.10b
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    • pp.39-41
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    • 1998
  • 복잡한 자료 구조와 정교한 연산자를 필요로하는 CAD/CAM, GIS와 같은 응용 분야를 위하여 객체지향 데이터베이스에 대한 많은 연구가 있어왔으며, 이들에 대한 노력으로 객체지향 데이터베이스의 표준으로 널리 확산되고 있는 ODMG 2.0이 발표되었다. 따라서 공간 객체지향 데이터베이스 관리 시스템은 OMEGA(Object Management system for Geospatial Applications)의 응용 프로그래밍 인터페이스로서 ODMG 2.0의 C++ OML을 채택하였다. 본 논문에서는 OMEGA의 C++ OML 클레스들 중 몇 가지 중요한 클래스들의 구조 및 구현 방법에 대하여 기술하며 C++ OML 클래스 구현 시 발생되는 문제점들중 중요한 몇 가지 사항에 대하여 해결 방안을 논의한다.

Biofortification of mushroom (Pleurotus floridanus) using calcium based supplements

  • Odiketa, J.K;Whitehall, S.;Adedokun, O.M.
    • Journal of Mushroom
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    • v.18 no.4
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    • pp.287-291
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    • 2020
  • The nutritional value and yield of mushrooms depend on the substrate on which it is grown. This study sought to biofortify Pleurotus floridanus with calcium supplements and assess its effect on the yield and calcium levels. The experiment was set up in a 2 × 5 factorial and replicated thrice in a completely randomized design. Two calcium supplements, OML and OMW, were added to two growth media. The examination of total dry weight yield showed that calcium supplements OML and OMW in the sawdust medium containing wheatbran in the ratio 1:10 had a mean value of 4.37 g, which was significantly higher (P < 0.05) than that in the control (1.29 g). However, in the sawdust-only medium, there was no significant difference (p > 0.05) in the application of treatments. No significant difference (p > 0.05) was observed between the calcium types in both growth media. The mineral analysis showed that calcium levels were increased in harvested mushrooms with the addition of calcium OML and OMW to the growth media.

A Study on Projection Angles for an Optimal Image of PNS Water's View on Children (유.소아 부비강 Water's 영상의 이상적 구현을 위한 촬영기준각도 변화에 관한 연구)

  • Son, Sang-Hyuk;Song, Young-Geun;Kim, Sung-Kyu;Hong, Sang-Woo;Kim, Je-Bong
    • Journal of radiological science and technology
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    • v.30 no.2
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    • pp.105-111
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    • 2007
  • This study is to calculate the proper angle for the optimal image of PNS Water's view on children, comparing and analyzing the PNS Water's projection angles between children and adults at every age. This study randomly selected 50 patients who visited the Medical Center from January to May in 2005, and examined the incidence path of central ray, taking a PNS Water's and skull trans-Lat. view in Water's filming position while attaching a lead ball mark on the Orbit, EAM, and acanthion of the patients's skull. And then, we calculated the incidence angles(Angle A) of the line connected from OML and the petrous ridge to the inferior margin of maxilla on general(random) patients's skull image, following the incidence path of central ray. Finally, we analyzed two pieces of the graphs at ages, developing out the patients' ideal images at PNS Water's filming position taken by a digital camera, and calculating the angle(Angle B) between OML and IP(Image Plate). The angle between OML and IP is about $43^{\circ} in 4-years-old children, which is higher than $37^{\circ}, as age increases the angle decreases, it goes to $37^{\circ} around 30 years of age. That is similar result to maxillary growth period. We can get better quality of Water's image for children when taking the PNS Water's view if we change the projection angles, considering maxillary growth for patients in every age stage.

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A Study of the New Positioning Guide Based on the Correlation between the Orbit Meatus Line and Mandibular Body Angle in Paranasal Sinus Parietoacanthial Projection(Water's Method) (코곁굴 두정비극방향 검사 시 안와이공선과 아래턱뼈 몸통각도의 상관관계를 이용한 새로운 자세잡이 기준에 관한 연구)

  • Yong-Min Son;Han-Yong Kim;Young-Cheol Joo
    • Journal of the Korean Society of Radiology
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    • v.18 no.4
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    • pp.335-344
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    • 2024
  • In this study, we aim to investigate the correlation between the lateral images of Korean skulls and the angle between the OML and the Body of the Mandible. Additionally, we seek to provide criteria for the ease of positioning in clinical settings and establish standardized imaging procedures for the PNS Water's view examination. This study was conducted on a total of 202 patients who visited the radiology department of a general hospital and examined the skull lateral radiography. In addition to the patient images, skull phantoms were also utilized, and images were obtained using GC85A and EOS equipment. In this research, abbreviations related to the angle of the Body of Mandible were defined using PACS on lateral images. Measurements were taken for various angles, including ramus of mandible angle(RIA), accurate OML angle(TIA), OML and IR Angle(OIA), total mandibular length(TML), ramus height(RH), the angle between the pogonion, gonion, and condylion(MA). The validity of these measurements was confirmed using the skull phantom in the study. The age-specific average range for RIA was 22.67° to 26.04°, with measurements of 23.14° for males and 24.78° for females. The age-related mean ranges for TIA and OIA were 35.98° to 38.31° and 72.27° to 75.25°, respectively. For males, TIA was 36.74° and OIA was 72.73°, while for females, TIA was 36.43° and OIA was 73.38°. The age-dependent measurements for TML and RH ranged from 85.73 mm to 89.60 mm and 62.60 mm to 70.87 mm, respectively. Male values were 90.54 mm and 70.78 mm, while female values were 85.13 mm and 61.54 mm for TML and RH, respectively. The age-specific average range for MA was 55.95° to 58.63°, with measurements of 57.96° for males and 57.76° for females. Correlation analysis revealed a positive correlation between RIA and OIA, as well as between RIA and TIA. Based on the results of this study, which indicate a positive correlation between the angle of the Body of Mandible and the OML, it can be inferred that adjusting the mandible vertically to align with the imaging receptor may contribute to more accurate image acquisition during PNS Water's view examination. Therefore, it is believed that there is value in utilizing this relationship as a criterion for establishing new positioning standards, which could enhance the utility of a new positioning guide.

RELATIVELY PATH-CONNECTED ORTHOMODULAR LATTICES

  • Park, Eunsoon
    • Bulletin of the Korean Mathematical Society
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    • v.31 no.1
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    • pp.61-72
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    • 1994
  • Every irreducible block-finite orthomodular lattice is simple [9] and every irreducible orthomodular alttice such that no proper p-ideal of L contains infinitely many commutators is simple [5]. Every finite (height) OML L which does not belong to the varitety generated by MO2 has one of the OML MO3, 2$^{3}$.2$^{2}$, D$_{16}$ OMLHOUSE as the homomorpyhic image of a subalgebra of L [3]. In this paper, we extend these results.s.

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A Study on Double Angle of Optic Foramen in the Rhese Method (Rhese법 촬영에서 시신경구멍의 이중 각도에 대한 연구)

  • Park, Sang-Jo;Yoo, Ji-Na;Yoo, Myung-Seok;Heo, Yeong-Cheol
    • Journal of the Korean Society of Radiology
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    • v.11 no.5
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    • pp.313-319
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    • 2017
  • The purpose of this study is to confirm the double of optic foramen in Korean and apply it to the Rhese method. First, the angle between the right optic foramen and the MSP was measured on the axial image using MPR technique of the 3D CT. Second, we measured the angle between the right optic foramen and OML in sagittal of MPR images. As a result, the angle between the optic foramen and the MSP was $39.9{\pm}4.63^{\circ}$ on average, which was different from the $53^{\circ}$ presented by Rhese method(p<0.05). The angle between optic foramen and OML was $40.8{\pm}6.6^{\circ}$. In conclusion, this study confirms that the standard of the Rhese method proposed in current textbook is difficult to apply to Koreans. Therefore, it is necessary to study angle of Korean standard in various general x-ray technique.

A study of beam hardening effect reduction occur in brain CT (Brain CT에서 발생하는 선속경화현상 감소방안에 관한 연구)

  • Kim, Hyeon-ju
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.16 no.12
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    • pp.8479-8486
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    • 2015
  • This study aim is occur in brain CT cause of beam hardening effect and reducing method, We will scan Bone opaque bead phantom on variation of image on the influence factor with equipment called 'Samatom Senation 16' with following listed herein : tube voltage, tube current, slice thickness, gantry angle, base line which affect beam-hardening effect. After that we are going to start Quantitative Analysis resulted in previous scanning and Qualitative Assessment with CT image sheet evaluation. result of quantitative analysis 140kVp $31.56{\pm}2.89HU$ on tube voltage, 150mA $-3.87{\pm}0.12HU$ on tube current, 3mm on slice thickness, and $13.31{\pm}1.03HU$ IOML on gantry angle which was the least beam-hardening effect. Like Qualitative Analysis, we went through Qualitative Assessment and most of valuers got a result of 140kVp on tube voltage, 150mA on tube current, 3mm on slice thickness. As before valuers evaluated gantry angle that scanned image from IOML or OML was the least beam-hardening effect occured. There are meaningful differences when we compare all theses factors statistically(P<0.05). therefore We consider that Minimizing artifact that caused by beam-hardening effect can provide better quality of image to deciphers and patients. if we rise tube voltage in permissible dose limit, set tube current in a limit that does not effect to image quality, use slice thickness too thin enough to harm resolution, use IOML or OML on gantry angle.

A NOTE ON PATH-CONNECTED ORTHOMODULAR LATTICES

  • Park, Eun-Soon
    • Journal of the Korean Mathematical Society
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    • v.33 no.2
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    • pp.217-225
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    • 1996
  • An orthomodular lattice (abbreviated by OML) is an ortholattice L which satisfies the orthomodular law: if x $\leq$ y, then $y = x \vee (x' \wedge y)$ [5]. A Boolean algebra B is an ortholattice satisfying the distributive law : $x \vee (g \wedge z) = (x \vee y) \wedge (x \vee z) \forall x, y, z \in B$.

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