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Journal articles on the topic 'Large-Scale Expansion'

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1

Cohen, Jeffrey, John Eshleman, Brian Hagenbuch, et al. "Online expansion of large-scale data warehouses." Proceedings of the VLDB Endowment 4, no. 12 (2011): 1249–59. http://dx.doi.org/10.14778/3402755.3402759.

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2

Fliche, H. H., J. M. Souriau, and R. Triay. "Anisotropic hubble expansion of large scale structures." General Relativity and Gravitation 38, no. 3 (2006): 463–74. http://dx.doi.org/10.1007/s10714-006-0233-1.

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3

Alami, Abdul Hai, Rashid Alrashid, Ayman Mdallal, et al. "Expansion cooling prospects for large scale applications." International Journal of Thermofluids 20 (November 2023): 100437. http://dx.doi.org/10.1016/j.ijft.2023.100437.

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4

Pang, Wei, and Junping Du. "Query Expansion and Query Fuzzy with Large-Scale Click-through Data for Microblog Retrieval." International Journal of Machine Learning and Computing 9, no. 3 (2019): 279–87. http://dx.doi.org/10.18178/ijmlc.2019.9.3.799.

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5

Yin, Sheng, and Yi Cao. "Hydrogels for Large-Scale Expansion of Stem Cells." Acta Biomaterialia 128 (July 2021): 1–20. http://dx.doi.org/10.1016/j.actbio.2021.03.026.

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6

Chodorowski, M. J. "Large-scale density from velocity expansion and shear." Monthly Notices of the Royal Astronomical Society 292, no. 3 (1997): 695–702. http://dx.doi.org/10.1093/mnras/292.3.695.

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7

Fragkos, Ioannis, Jean-François Cordeau, and Raf Jans. "Decomposition methods for large-scale network expansion problems." Transportation Research Part B: Methodological 144 (February 2021): 60–80. http://dx.doi.org/10.1016/j.trb.2020.12.002.

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8

Sadeghi, Arian, Linnea Pauler, Cecilia Annerén, et al. "Large-scale bioreactor expansion of tumor-infiltrating lymphocytes." Journal of Immunological Methods 364, no. 1-2 (2011): 94–100. http://dx.doi.org/10.1016/j.jim.2010.11.007.

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9

Hassan, Muhammad Najib Fathi Bin, Muhammad Dain Yazid, Mohd Heikal Mohd Yunus, et al. "Large-Scale Expansion of Human Mesenchymal Stem Cells." Stem Cells International 2020 (July 15, 2020): 1–17. http://dx.doi.org/10.1155/2020/9529465.

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Mesenchymal stem cells (MSCs) are multipotent stem cells with strong immunosuppressive property that renders them an attractive source of cells for cell therapy. MSCs have been studied in multiple clinical trials to treat liver diseases, peripheral nerve damage, graft-versus-host disease, autoimmune diseases, diabetes mellitus, and cardiovascular damage. Millions to hundred millions of MSCs are required per patient depending on the disease, route of administration, frequency of administration, and patient body weight. Multiple large-scale cell expansion strategies have been described in the li
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10

Hallgren, Willow, C. Adam Schlosser, Erwan Monier, David Kicklighter, Andrei Sokolov, and Jerry Melillo. "Climate impacts of a large-scale biofuels expansion." Geophysical Research Letters 40, no. 8 (2013): 1624–30. http://dx.doi.org/10.1002/grl.50352.

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11

Yano, Jun-Ichi, and Marine Bonazzola. "Scale Analysis for Large-Scale Tropical Atmospheric Dynamics." Journal of the Atmospheric Sciences 66, no. 1 (2009): 159–72. http://dx.doi.org/10.1175/2008jas2687.1.

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Abstract A systematic scale analysis is performed for large-scale dynamics over the tropics. It is identified that two regimes are competing: 1) a dynamics characterized by balance between the vertical advection term and diabatic heating in the thermodynamic equation, realized at horizontal scales less than L ∼ 103 km given a velocity scale U ∼ 10 m s−1, and 2) a linear equatorial wave dynamics modulated by convective diabatic heating, realized at scales larger than L ∼ 3 × 103 km given U ∼ 3 m s−1. Under the first dynamic regime (balanced), the system may be approximated as nondivergent to le
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12

Lumbreras, Sara, Andrés Ramos, Fernando Banez-Chicharro, et al. "Large-scale transmission expansion planning: from zonal results to a nodal expansion plan." IET Generation, Transmission & Distribution 11, no. 11 (2017): 2778–86. http://dx.doi.org/10.1049/iet-gtd.2016.1441.

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13

Gmyr, Valéry, Julie Kerr-Conte, Brigitte Vandewalle, Charles Proye, Jean Lefebvre, and Francçois Pattou. "Human Pancreatic Ductal Cells: Large-Scale Isolation and Expansion." Cell Transplantation 10, no. 1 (2001): 109–21. http://dx.doi.org/10.3727/000000001783987016.

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14

Oh, M. D., and M. L. Corradini. "A Propagation/Expansion Model for Large Scale Vapor Explosions." Nuclear Science and Engineering 95, no. 3 (1987): 225–40. http://dx.doi.org/10.13182/nse87-a20452.

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15

Ringleb, A., W. Schlüter, O. Sommer, and G. Wozniak. "Large Scale Fluctuations in an Axisymmetric Sudden Pipe Expansion with Large Aspect Ratio." Journal of Applied Fluid Mechanics 11, no. 4 (2018): 877–83. http://dx.doi.org/10.29252/jafm.11.04.28311.

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16

Antonini, Enrico G. A., and Ken Caldeira. "Spatial constraints in large-scale expansion of wind power plants." Proceedings of the National Academy of Sciences 118, no. 27 (2021): e2103875118. http://dx.doi.org/10.1073/pnas.2103875118.

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When wind turbines are arranged in clusters, their performance is mutually affected, and their energy generation is reduced relative to what it would be if they were widely separated. Land-area power densities of small wind farms can exceed 10 W/m2, and wakes are several rotor diameters in length. In contrast, large-scale wind farms have an upper-limit power density in the order of 1 W/m2 and wakes that can extend several tens of kilometers. Here, we address two important questions: 1) How large can a wind farm be before its generation reaches energy replenishment limits and 2) How far apart m
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17

Gilmour, Jill W., Wendy S. Stevens, Clive Gray, and Mark de Souza. "Laboratory expansion to large-scale international HIV preventive vaccine trials." Current Opinion in HIV and AIDS 2, no. 3 (2007): 201–6. http://dx.doi.org/10.1097/coh.0b013e3280eec77a.

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18

Kallos, M. S., A. Sen, and L. A. Behie. "Large-scale expansion of mammalian neural stem cells: a review." Medical & Biological Engineering & Computing 41, no. 3 (2003): 271–82. http://dx.doi.org/10.1007/bf02348431.

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19

Majidi-Qadikolai, Mohammad, and Ross Baldick. "A Generalized Decomposition Framework for Large-Scale Transmission Expansion Planning." IEEE Transactions on Power Systems 33, no. 2 (2018): 1635–49. http://dx.doi.org/10.1109/tpwrs.2017.2724554.

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20

Brand, H., C. M. Ferreira, C. Dermínio Donadel, et al. "Optimizing Large-Scale Expansion Methods for Natural Killer (NK) Cells." Cytotherapy 27, no. 5 (2025): S166—S167. https://doi.org/10.1016/j.jcyt.2025.03.334.

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21

Ananth, Majumdar. "Dynamic Panel Expansion through Cross-Panel Integration: A Solution for Large-Scale Market Research." Journal of Scientific and Engineering Research 5, no. 12 (2018): 354–57. https://doi.org/10.5281/zenodo.13338073.

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This paper presents an innovative approach to expanding market research panel capabilities through cross-system integration. We describe a method for seamlessly incorporating panelists from multiple market research panels, overcoming the challenges of disparate demographic management systems and variable naming conventions. Our solution involves the creation of a dynamic configuration system that maps common demographic variables and facilitates real-time translation of targeting and survey information across different platforms. This approach has significantly enhanced our ability to meet cli
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22

Kumar Sharma, Ajay, and Murli Manohar Verma. "Effect of the Modified Gravity on the Large-scale Structure Formation." Astrophysical Journal 934, no. 1 (2022): 13. http://dx.doi.org/10.3847/1538-4357/ac7b8e.

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Abstract We investigate the formation of the large-scale structures in the present accelerated era in the f(R) gravity background. This is done by considering the linear growth of matter perturbations at low redshift z < 1. The effect of f(R) alters the behavior of the matter density perturbations from the matter-dominated universe to the late-time accelerated universe, which is encoded in the Newtonian gravitational constant as G → G eff. The modified gravitational constant (G eff) depends on the form of f(R). The late-time accelerated expansion affects the formation of large-scale structu
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23

Hölzchen, Ericson, Christine Hertler, Ana Mateos, Jesús Rodríguez, Jan Ole Berndt, and Ingo J. Timm. "Discovering the opposite shore: How did hominins cross sea straits?" PLOS ONE 16, no. 6 (2021): e0252885. http://dx.doi.org/10.1371/journal.pone.0252885.

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Understanding hominin expansions requires the comprehension of movement processes at different scales. In many models of hominin expansion these processes are viewed as being determined by large-scale effects, such as changes in climate and vegetation spanning continents and thousands or even millions of years. However, these large-scale patterns of expansions also need to be considered as possibly resulting from the accumulation of small-scale decisions of individual hominins. Moving on a continental scale may for instance involve crossing a water barrier. We present a generalized agent-based
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24

Ramesh, Balasundari, and Soma Guhathakurta. "Large-scale in-vitro expansion of RBCs from hematopoietic stem cells." Artificial Cells, Nanomedicine, and Biotechnology 41, no. 1 (2012): 42–51. http://dx.doi.org/10.3109/10731199.2012.702315.

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25

Gottipamula, Sanjay, and K. N. Sridhar. "Large-scale Isolation, Expansion and Characterization of Human Amniotic Epithelial Cells." International Journal of Stem Cells 11, no. 1 (2018): 87–95. http://dx.doi.org/10.15283/ijsc18001.

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26

Watanabe, A., S. Okamoto, and K. I. Sato. "Optical path cross-connect system architecture suitable for large scale expansion." Journal of Lightwave Technology 14, no. 10 (1996): 2162–72. http://dx.doi.org/10.1109/50.541204.

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27

Gao, Ke, Yongdong Zhang, Dongming Zhang, and Shouxun Lin. "Accurate off-line query expansion for large-scale mobile visual search." Signal Processing 93, no. 8 (2013): 2305–15. http://dx.doi.org/10.1016/j.sigpro.2012.10.011.

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28

Cameau, E., M. Cesari, D. Splan, M. S. Szczypka, and C. Glover. "Cost of goods modelling for large scale mesenchymal stem cell expansion." Cytotherapy 20, no. 5 (2018): S64. http://dx.doi.org/10.1016/j.jcyt.2018.02.178.

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29

Zhou, Wengang, Houqiang Li, Yijuan Lu, Meng Wang, and Qi Tian. "Visual word expansion and BSIFT verification for large-scale image search." Multimedia Systems 21, no. 3 (2013): 245–54. http://dx.doi.org/10.1007/s00530-013-0330-4.

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30

Fitzsimons, James A., and Geoff Wescott. "Large‐scale expansion of marine protected area networks: Lessons from Australia." PARKS, no. 24.2 (November 14, 2018): 19–34. http://dx.doi.org/10.2305/iucn.ch.2018.parks-24-2jaf.en.

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31

Berezin, Y. A., and K. Hutter. "On Large-Scale Vortical Structures in (Incompressible) Fluids with Thermal Expansion." Mathematical Models and Methods in Applied Sciences 07, no. 01 (1997): 113–23. http://dx.doi.org/10.1142/s0218202597000074.

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This paper extends the analysis of Ref. 1 to non-Boussinesq fluids whose thermal equation of state depends negligibly on pressure but non-negligibly on temperature. It is demonstrated that these fluids are more stable than the Boussinesq fluids under the same conditions. We study the effect of the helicity on the stability of the Bénard problem and demonstrate that there is no separatrix that divides the instability regimes into two classes. Here, the phenomenon of inverse energy cascade is present at all values of helicities.
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32

Deuar, P. "A tractable prescription for large-scale free flight expansion of wavefunctions." Computer Physics Communications 208 (November 2016): 92–102. http://dx.doi.org/10.1016/j.cpc.2016.08.004.

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33

ZHANG, Jingchen, Shanzhi SHI, Xiaodong GUO, Zhenhu LÜ, Zhaopeng ZHANG, and Jingfeng DONG. "Large-scale mine experiments on hydraulic fracture expansion in dense conglomerates." Journal of Shenzhen University Science and Engineering 41, no. 2 (2024): 173–82. http://dx.doi.org/10.3724/sp.j.1249.2024.02173.

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34

MÜLLER, VOLKER. "NON-FLAT PERTURBATION SPECTRA AND LARGE SCALE STRUCTURE FORMATION." International Journal of Modern Physics D 03, no. 01 (1994): 241–44. http://dx.doi.org/10.1142/s021827189400037x.

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It is shown that fourth-order-gravity with a scalar field leads naturally to double inflation models. If both inflationary episodes are disconnected by a stage of power law expansion, we get a primordial inflation spectrum with a break in the power possibly relevant for the formation of large scale structures in the universe.
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35

Thorbow, Jan, Andrea Strauch, Viktoria Pfening, et al. "Large-Scale Expansion of Human Liver Stem Cells Using Two Different Bioreactor Systems." Bioengineering 11, no. 7 (2024): 692. http://dx.doi.org/10.3390/bioengineering11070692.

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The assessment of human liver stem cells (HLSCs) as cell therapeutics requires scalable, controlled expansion processes. We first focused on defining appropriate process parameters for HLSC expansion such as seeding density, use of antibiotics, optimal cell age and critical metabolite concentrations in conventional 2D culture systems. For scale-up, we transferred HLSC expansion to multi-plate and stirred-tank bioreactor systems to determine their limitations. A seeding density of 4000 cells cm−2 was needed for efficient expansion. Although growth was not significantly affected by antibiotics,
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36

Cheuk, C. Y., D. J. White, and M. D. Bolton. "Large-scale modelling of soil–pipe interaction during large amplitude cyclic movements of partially embedded pipelines." Canadian Geotechnical Journal 44, no. 8 (2007): 977–96. http://dx.doi.org/10.1139/t07-037.

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As the development of offshore hydrocarbons moves into deeper water, pipelines form an increasingly significant part of the required infrastructure. High-temperature high-pressure pipelines must be designed to accommodate thermal expansion and potential lateral buckling. A novel design approach is to control the formation of pre-engineered lateral buckles to relieve the expansion. The amplitude of these buckles is typically several pipe diameters. Assessment of the force–displacement interaction between the on-bottom pipeline and the seabed is crucial for design. A series of large-scale plane
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37

Li, Sen, Carina Schlebusch, and Mattias Jakobsson. "Genetic variation reveals large-scale population expansion and migration during the expansion of Bantu-speaking peoples." Proceedings of the Royal Society B: Biological Sciences 281, no. 1793 (2014): 20141448. http://dx.doi.org/10.1098/rspb.2014.1448.

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The majority of sub-Saharan Africans today speak a number of closely related languages collectively referred to as ‘Bantu’ languages. The current distribution of Bantu-speaking populations has been found to largely be a consequence of the movement of people rather than a diffusion of language alone. Linguistic and single marker genetic studies have generated various hypotheses regarding the timing and the routes of the Bantu expansion, but these hypotheses have not been thoroughly investigated. In this study, we re-analysed microsatellite markers typed for large number of African populations t
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38

Manwaring, Kyle Charles, Brian Gonda, Cale Parise, et al. "Large-Scale Production of Nanotube Silicon for Lithium-Ion Batteries." ECS Meeting Abstracts MA2024-02, no. 25 (2024): 2049. https://doi.org/10.1149/ma2024-02252049mtgabs.

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Silicon’s relatively high energy density in comparison to the more common anode material, graphite (3580 mA h g-1 for silicon compared to 371 mA h g-1 for graphite) has made silicon an intriguing anode material for lithium-ion batteries. However, during lithiation, the volume of silicon increases by approximately 300% causing irreversible capacity loss. During the initial charging of an anode, a solid electrolyte interface (SEI) forms on the surface of the anode. The formation of the SEI consumes lithium, resulting in irreversible capacity loss. The large volume expansion of silicon can break
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39

Okoth, Michael Aggrey, Ronghua Shang, Licheng Jiao, Jehangir Arshad, Ateeq Ur Rehman, and Habib Hamam. "A Large scale Evolutionary Algorithm based on Determinantal Point Processes for Large Scale Multi-Objective Optimization Problems." Electronics 11, no. 20 (2022): 3317. http://dx.doi.org/10.3390/electronics11203317.

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Global optimization challenges are frequent in scientific and engineering areas where loads of evolutionary computation methods i.e., differential evolution (DE) and particle-swarm optimization (PSO) are employed to handle these problems. However, the performance of these algorithms declines due to expansion in the problem dimension. The evolutionary algorithms are obstructed to congregate with the Pareto front rapidly while using the large-scale optimization algorithm. This work intends a large-scale multi-objective evolutionary optimization scheme aided by the determinantal point process (LS
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40

Shicong, Yin, and Chen Jianming. "Cartographic Methods for Large Scale Glacier Maps." Annals of Glaciology 8 (1986): 192–95. http://dx.doi.org/10.3189/s0260305500001440.

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Glacier mapping is steadily developing, along with the continuous expansion of glaciological research, in China. In the last 20 years we have made surveys and drawn up glacial topographic maps on large scales, of various study areas in Tianshan and the Qinghai-Xizang Plateau. This paper discusses the cartographic techniques, in the form of points, lines, symbols, brush-shading, colours, etc., used to create a vivid reproduction of the special natural landscape of glaciers on maps for the use of glaciologists and other scientists. For example, variations in rock symbols may be used to show the
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41

Shicong, Yin, and Chen Jianming. "Cartographic Methods for Large Scale Glacier Maps." Annals of Glaciology 8 (1986): 192–95. http://dx.doi.org/10.1017/s0260305500001440.

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Glacier mapping is steadily developing, along with the continuous expansion of glaciological research, in China. In the last 20 years we have made surveys and drawn up glacial topographic maps on large scales, of various study areas in Tianshan and the Qinghai-Xizang Plateau. This paper discusses the cartographic techniques, in the form of points, lines, symbols, brush-shading, colours, etc., used to create a vivid reproduction of the special natural landscape of glaciers on maps for the use of glaciologists and other scientists. For example, variations in rock symbols may be used to show the
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42

Yu, Bin, Zhao Xu, Ruinan Mu, Anping Wang, and Haifeng Zhao. "Design of Large-Scale Space Lattice Structure with Near-Zero Thermal Expansion Metamaterials." Aerospace 10, no. 3 (2023): 294. http://dx.doi.org/10.3390/aerospace10030294.

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Thermal expansion is inevitable for space structures under the alternating temperature of outer space around the earth. This may lead to the thermal stress and deformation due to the mismatch of the coefficient of thermal expansion. Near-zero thermal expansion (Near-ZTE) is a vitally essential demand for large-scale space telescopes or antennas to preserve their spatial precision and resolution. Recently, mechanical metamaterials with superior and tailorable properties have attracted significant interest with regard to developing negative materials or ultra-property materials. In this paper, t
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43

PAVELKIN, V. N., and V. F. PANOV. "LARGE SCALE ANISOTROPY OF MICROWAVE BACKGROUND RADIATION IN ROTATING COSMOLOGIES." International Journal of Modern Physics D 04, no. 01 (1995): 161–65. http://dx.doi.org/10.1142/s0218271895000107.

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The background radiation temperature distribution as a function of observation position angles for Gödel type cosmologies with expansion, rotation and shear is studied in the geometric optics approach. Null geodesic equations in the relevant metrics are solved for some particular cases and the background radiation temperature anisotropy for two directions is evaluated in terms of the values of rotation and shear.
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44

D'Amico, G., M. Marinucci, M. Pietroni, and F. Vernizzi. "The large scale structure bootstrap: perturbation theory and bias expansion from symmetries." Journal of Cosmology and Astroparticle Physics 2021, no. 10 (2021): 069. http://dx.doi.org/10.1088/1475-7516/2021/10/069.

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45

KIRIHARA, Hideaki, and Koichi YASUDA. "THE ARCHITECTURAL DESIGN METHOD OF MANUFACTURING FACILITIES WITH LARGE-SCALE EXPANSION PLAN." AIJ Journal of Technology and Design 17, no. 35 (2011): 293–98. http://dx.doi.org/10.3130/aijt.17.293.

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46

Piran, Tsvi, and Anupam Singh. "Spherical Harmonic Expansion of Gamma‐Ray Burst Distributions: Probing Large‐Scale Structure?" Astrophysical Journal 483, no. 2 (1997): 552–59. http://dx.doi.org/10.1086/304259.

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47

Youn, Benjamin S., Arindom Sen, Michael S. Kallos, et al. "Large-Scale Expansion of Mammary Epithelial Stem Cell Aggregates in Suspension Bioreactors." Biotechnology Progress 21, no. 3 (2008): 984–93. http://dx.doi.org/10.1021/bp050059f.

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48

Kropp, Christina, Diana Massai, and Robert Zweigerdt. "Progress and challenges in large-scale expansion of human pluripotent stem cells." Process Biochemistry 59 (August 2017): 244–54. http://dx.doi.org/10.1016/j.procbio.2016.09.032.

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49

Kammoun, Abla, Axel Muller, Emil Bjornson, and Merouane Debbah. "Linear Precoding Based on Polynomial Expansion: Large-Scale Multi-Cell MIMO Systems." IEEE Journal of Selected Topics in Signal Processing 8, no. 5 (2014): 861–75. http://dx.doi.org/10.1109/jstsp.2014.2322582.

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50

Szczypka, Mark S., Dave Splan, Grishma Patel, and Heather Woolls. "Microcarrier-based systems for the large-scale expansion of human stem cellS." Cytotherapy 17, no. 6 (2015): S80. http://dx.doi.org/10.1016/j.jcyt.2015.03.587.

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