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Journal articles on the topic 'Mass-mapping'

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1

Opuni, Kwabena F. M., Mahmoud Al-Majdoub, Yelena Yefremova, Reham F. El-Kased, Cornelia Koy, and Michael O. Glocker. "Mass spectrometric epitope mapping." Mass Spectrometry Reviews 37, no. 2 (2016): 229–41. http://dx.doi.org/10.1002/mas.21516.

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2

Mendonça, Carlos A., and Carlos A. M. Chaves. "Mass-constrained basin basement mapping." GEOPHYSICS 86, no. 3 (2021): G13—G21. http://dx.doi.org/10.1190/geo2020-0184.1.

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The irregular interface model setting side by side two dense homogeneous media has found many applications in gravity-data exploration such as for petroleum and gas in sedimentary basins, groundwater resources in buried paleochannels, characterization of abandoned landfills, and variable regolith-depth mapping. Despite its simplicity and wide range of applicability, the determination of the interface position from inverting surface gravity data configures an ill-posed problem requiring specialized regularizing procedures to produce reliable results. Common approaches to obtain stable and relia
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3

ROESLI, C., G. ELIA, and D. NERI. "Two-dimensional mass spectrometric mapping." Current Opinion in Chemical Biology 10, no. 1 (2006): 35–41. http://dx.doi.org/10.1016/j.cbpa.2005.12.017.

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4

Fiedorowicz, Pier, Eduardo Rozo, Supranta S. Boruah, Chihway Chang, and Marco Gatti. "KaRMMa – kappa reconstruction for mass mapping." Monthly Notices of the Royal Astronomical Society 512, no. 1 (2022): 73–85. http://dx.doi.org/10.1093/mnras/stac468.

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ABSTRACT We present KaRMMa, a novel method for performing mass map reconstruction from weak-lensing surveys. We employ a fully Bayesian approach with a physically motivated lognormal prior to sample from the posterior distribution of convergence maps. We test KaRMMa on a suite of dark matter N-body simulations with simulated DES Y1-like shear observations. We show that KaRMMa outperforms the basic Kaiser–Squires mass map reconstruction in two key ways: (1) our best map point estimate has lower residuals compared to Kaiser–Squires; and (2) unlike the Kaiser–Squires reconstruction, the posterior
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5

Holmes, D. F. "Mass mapping of extracellular matrix assemblies." Biochemical Society Transactions 23, no. 4 (1995): 720–25. http://dx.doi.org/10.1042/bst0230720.

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6

Dominitz, A., and A. Tannenbaum. "Texture Mapping via Optimal Mass Transport." IEEE Transactions on Visualization and Computer Graphics 16, no. 3 (2010): 419–33. http://dx.doi.org/10.1109/tvcg.2009.64.

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7

Zhao, Yingming, and Brian T. Chait. "Protein Epitope Mapping By Mass Spectrometry." Analytical Chemistry 66, no. 21 (1994): 3723–26. http://dx.doi.org/10.1021/ac00093a029.

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8

Guszejnov, Dávid, and Philip F. Hopkins. "Mapping the core mass function to the initial mass function." Monthly Notices of the Royal Astronomical Society 450, no. 4 (2015): 4137–49. http://dx.doi.org/10.1093/mnras/stv872.

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9

Xin Zhao, Zhengyu Su, Xianfeng David Gu, et al. "Area-Preservation Mapping using Optimal Mass Transport." IEEE Transactions on Visualization and Computer Graphics 19, no. 12 (2013): 2838–47. http://dx.doi.org/10.1109/tvcg.2013.135.

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10

Fred-Velez, K., S. L. Pérez-Cortés, A. M. Bramson, and T. R. Hudgins. "Mapping of potential mass wasting on Enceladus." Icarus 430 (April 2025): 116471. https://doi.org/10.1016/j.icarus.2025.116471.

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11

Lu, Xiaojun, Michael R. DeFelippis, and Lihua Huang. "Linear epitope mapping by native mass spectrometry." Analytical Biochemistry 395, no. 1 (2009): 100–107. http://dx.doi.org/10.1016/j.ab.2009.08.018.

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12

Krishnapillai, Rajeev, and Abe Zeid. "Mapping Product Design Specification for Mass Customization." Journal of Intelligent Manufacturing 17, no. 1 (2006): 29–43. http://dx.doi.org/10.1007/s10845-005-5511-3.

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13

Bond, Doug, J. Craig Jenkins, Charles L. Taylor, and Kurt Schock. "Mapping Mass Political Conflict and Civil Society." Journal of Conflict Resolution 41, no. 4 (1997): 553–79. http://dx.doi.org/10.1177/0022002797041004004.

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14

Amaral, R. L. P. G., O. S. Ventura, L. O. Buffon, and J. V. Costa. "Topological mass mechanism and exact fields mapping." Journal of Physics A: Mathematical and General 39, no. 4 (2006): 941–49. http://dx.doi.org/10.1088/0305-4470/39/4/014.

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15

Vasilescu, Julian, and Daniel Figeys. "Mapping protein–protein interactions by mass spectrometry." Current Opinion in Biotechnology 17, no. 4 (2006): 394–99. http://dx.doi.org/10.1016/j.copbio.2006.06.008.

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16

YAMADA, Naoyuki. "Peptide and Protein Epitope Mapping by Mass Spectrometry." Journal of the Mass Spectrometry Society of Japan 45, no. 3 (1997): 355–66. http://dx.doi.org/10.5702/massspec.45.355.

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17

Tremblay, Catherine Y., Zachary J. Kirsch, and Richard W. Vachet. "Epitope Mapping with Diethylpyrocarbonate Covalent Labeling-Mass Spectrometry." Analytical Chemistry 94, no. 2 (2021): 1052–59. http://dx.doi.org/10.1021/acs.analchem.1c04038.

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18

Pallot, Judith, and Sofya Gavrilova. "Mapping the landscapes of the Stalinist mass repressions." Open Research Europe 2 (April 7, 2022): 44. http://dx.doi.org/10.12688/openreseurope.14410.1.

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In this article, we focus on the ways in which a variety of different carceral techniques used to punish and exploit people’s labour during the Stalin period (1927—1953) in the Union of Soviet Socialist Republics (USSR) created a distinctive landscape of repression. Using the tools of historical geographic information science (GIS) to map the material landscape, we foreground space in the discussion of the USSR’s exceptional history of repression. The ‘carceral conditions’ frame allows us to deconstruct boundaries erected over more than half a century of writing the history of the USSR that ha
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19

Zach, Meisel. "Mapping the frontiers of the nuclear mass surface." Journal of Physics: Conference Series 1668 (October 2020): 012026. http://dx.doi.org/10.1088/1742-6596/1668/1/012026.

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20

Witze, Eric S., William M. Old, Katheryn A. Resing, and Natalie G. Ahn. "Mapping protein post-translational modifications with mass spectrometry." Nature Methods 4, no. 10 (2007): 798–806. http://dx.doi.org/10.1038/nmeth1100.

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21

Wall, J. S., and J. F. Hainfeld. "Mass Mapping with the Scanning Transmission Electron Microscope." Annual Review of Biophysics and Biophysical Chemistry 15, no. 1 (1986): 355–76. http://dx.doi.org/10.1146/annurev.bb.15.060186.002035.

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22

Flaxman, Hope A., and Christina M. Woo. "Mapping the Small Molecule Interactome by Mass Spectrometry." Biochemistry 57, no. 2 (2017): 186–93. http://dx.doi.org/10.1021/acs.biochem.7b01038.

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23

Flanagan, Nina. "Mapping Epitopes with H/D-Ex Mass Spec." Genetic Engineering & Biotechnology News 31, no. 10 (2011): 10–13. http://dx.doi.org/10.1089/gen.31.10.02.

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24

Beardsley, Richard L., and James P. Reilly. "Optimization of Guanidination Procedures for MALDI Mass Mapping." Analytical Chemistry 74, no. 8 (2002): 1884–90. http://dx.doi.org/10.1021/ac015613o.

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25

Wenner, P. G., R. J. Bell, F. H. W. van Amerom, et al. "Environmental chemical mapping using an underwater mass spectrometer." TrAC Trends in Analytical Chemistry 23, no. 4 (2004): 288–95. http://dx.doi.org/10.1016/s0165-9936(04)00404-2.

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26

STEPHENSON, A. "'Pariscope': Mapping Metropolitan Mythologies and Mass Media Circuitry." Oxford Art Journal 18, no. 1 (1995): 160–65. http://dx.doi.org/10.1093/oxartj/18.1.160.

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27

Schneider, M. D., K. Y. Ng, W. A. Dawson, P. J. Marshall, J. E. Meyers, and D. J. Bard. "Probabilistic Cosmological Mass Mapping from Weak Lensing Shear." Astrophysical Journal 839, no. 1 (2017): 25. http://dx.doi.org/10.3847/1538-4357/839/1/25.

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28

Boschi-Filho, H., and N. R. F. Braga. "QCD/String holographic mapping and glueball mass spectrum." European Physical Journal C 32, no. 4 (2004): 529–33. http://dx.doi.org/10.1140/epjc/s2003-01526-4.

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29

Harig, C., and F. J. Simons. "Mapping Greenland's mass loss in space and time." Proceedings of the National Academy of Sciences 109, no. 49 (2012): 19934–37. http://dx.doi.org/10.1073/pnas.1206785109.

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30

Jaberian Hamedan, V., A. Adam, C. Blair, L. Ju, and C. Zhao. "Precision mapping of a silicon test mass birefringence." Applied Physics Letters 122, no. 6 (2023): 064101. http://dx.doi.org/10.1063/5.0136869.

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Excellent mechanical and thermal properties of silicon make it a promising material for the test masses in future gravitational wave detectors. However, the birefringence of silicon test masses, due to impurity and residual stress during crystal growth or external stress, can reduce the interference contrast in an interferometer. Using the polarization–modulation approach and a scanning system, we mapped the birefringence of a float zone silicon test mass in the ⟨100⟩ crystal orientation to assess the suitability of such material for future gravitational wave detectors. Apart from the stress-i
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31

Takada, K., and K. Yamada. "Application of Dyson mapping to odd-mass nuclei." Nuclear Physics A 462, no. 3 (1987): 561–75. http://dx.doi.org/10.1016/0375-9474(87)90405-2.

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32

Moorthy, A. S., A. J. Kearsley, W. G. Mallard, and W. E. Wallace. "Mass spectral similarity mapping applied to fentanyl analogs." Forensic Chemistry 19 (June 2020): 100237. http://dx.doi.org/10.1016/j.forc.2020.100237.

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33

Hadžisejdić, Ita, Keding Cheng, John A. Wilkins, Werner Ens, and Kevin M. Coombs. "High-resolution mass spectrometric mapping of reovirus digestion." Rapid Communications in Mass Spectrometry 20, no. 3 (2006): 438–46. http://dx.doi.org/10.1002/rcm.2322.

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34

Hutchins, Paul D., Jason D. Russell, and Joshua J. Coon. "Mapping Lipid Fragmentation for Tailored Mass Spectral Libraries." Journal of The American Society for Mass Spectrometry 30, no. 4 (2019): 659–68. http://dx.doi.org/10.1007/s13361-018-02125-y.

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35

Janiszewski, Mateusz, Xiaoyun Zhang, Lauri Uotinen, and Mikael Rinne. "Virtual reality learning system for remote rock mass mapping." IOP Conference Series: Earth and Environmental Science 1124, no. 1 (2023): 012079. http://dx.doi.org/10.1088/1755-1315/1124/1/012079.

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Abstract Rock mass quality mapping is essential in rock engineering and mining projects. However, the current manual mapping approach and its teaching are restricted due to the dangerous nature of work near rock walls and the constraints of resources. Therefore, a virtual reality learning system for teaching remote mapping of rock mass quality was developed at Aalto University. Two rock wall sections of an underground tunnel and a roadside rock-cut were scanned using photogrammetry and imported as high-resolution textured 3D models. The user wears a head-mounted display and performs mapping us
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36

Tlashadze, Giorgi, Levan Gorgidze, and Mamuka Natsvlishvili. "Physical-mechanical Properties of Construction Site Bedrocks of Headworks and Powerhouse of “Khobi 2 HPP” Hydrotechnical Complex." Works of Georgian Technical University, no. 1(527) (March 21, 2023): 75–85. http://dx.doi.org/10.36073/1512-0996-2023-1-75-85.

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Modern methods of rock evaluation, such as Rock Quality Index (RQD), Rock Mass Rating (RMR) and Rock Mass Classification System (Q), are used within the field of geotechnical surveys. RQD was determined by D.U. Deere in 1963, as a simple classification system of rock mass stability. While using RQD index five classes of rocks (A-E) are determined. Q value can be determined in different ways: during mapping in underground excavations, on the surface or alternatively – on basis of core description. The most accurate values are obtained during underground geological mapping. Dividing the undergro
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37

Che, Jun Hua, Qian Zeng, and Shu You Zhang. "The Functional Configuration Mapping for Cloud-Based Mass Customization Service Platform." Advanced Materials Research 490-495 (March 2012): 3003–7. http://dx.doi.org/10.4028/www.scientific.net/amr.490-495.3003.

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The successful application for cloud-based mass customization service platform critically lies in the precision and efficiency factor of the functional mapping solution. This paper brings up the functional solution model based on three mapping domains for functional configuration: functional domain, behavior domain and structural domain and studies the mapping solution algorithm in cloud-based mass customization service platform. Finally this research has been applied for customization product: elevator, and has improved the efficiency of functional solution in the actual manufacture.
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38

Lemy, Frank, and John Hadjigeorgiou. "A digital face mapping case study in an underground hard rock mine." Canadian Geotechnical Journal 41, no. 6 (2004): 1011–25. http://dx.doi.org/10.1139/t04-046.

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This paper presents a case study of a digital discontinuity mapping system used as a rock mass characterization tool in an underground hard rock mine. This mapping system allows for a fast acquisition of information that can best characterize the geological structural regime without exposing workers to potentially unsafe conditions. This method can be used to overcome some of the shortcomings of traditional mapping methods, such as limited access to rock exposures. Photographic images of the exposed rock mass are introduced into a software package that has been developed to extract potential d
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39

Hurtgen, M., and R. Detert. "A Data-Driven Approach to Mapping Rock Mass Discontinuities." IOP Conference Series: Earth and Environmental Science 1435, no. 1 (2024): 012006. https://doi.org/10.1088/1755-1315/1435/1/012006.

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Abstract The characterization of rock mass is vital to the development of a mine. Understanding and monitoring rock mass discontinuities plays a vital role in the continued stability of a mine. Current methods of data collection are often time-consuming, disruptive, unsafe, or complex. New scanning technologies have the power to change how rock mass is characterized. The proposed workflow for rock mass data collection can be done simply, with little to no disruption to production, and with high levels of accuracy. By using a combination of point cloud data and 3D meshes, discontinuities can be
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40

Hankammer, Stephan, David Antons, Robin Kleer, and Frank T. Piller. "Researching Mass Customization: Mapping Hidden Structures and Development Trajectories." Academy of Management Proceedings 2016, no. 1 (2016): 10900. http://dx.doi.org/10.5465/ambpp.2016.10900abstract.

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41

Cho, Yi-Tzu, Hung Su, Ching-Ying Wu, et al. "Molecular Mapping of Sebaceous Squalene by Ambient Mass Spectrometry." Analytical Chemistry 93, no. 49 (2021): 16608–17. http://dx.doi.org/10.1021/acs.analchem.1c03983.

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42

Mastere, Mohamed, Brigitte Van-Vliet Lanoë, Lahsen Ait Brahim, and Meryem El Moulat. "A linear indexing approach to mass movements susceptibility mapping." Revue Internationale de Géomatique 25, no. 2 (2015): 245–65. http://dx.doi.org/10.3166/rig.25.245-265.

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43

Konarski, P., M. Miśnik, and A. Zawada. "Two-dimensional elemental mapping using glow discharge mass spectrometry." Journal of Analytical Atomic Spectrometry 31, no. 11 (2016): 2192–97. http://dx.doi.org/10.1039/c6ja00253f.

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44

Schmidt, Alexandre G. M., and Anderson L. de Jesus. "Mapping between charge-monopole and position-dependent mass systems." Journal of Mathematical Physics 59, no. 10 (2018): 102101. http://dx.doi.org/10.1063/1.5039622.

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45

Haakensen, Nils. "Glacier Mapping to Confirm Results from Mass-Balance Measurements." Annals of Glaciology 8 (1986): 73–77. http://dx.doi.org/10.3189/s0260305500001178.

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Annual mass-balance measurements have been made at a number of glaciers in Norway since the beginning of the 1960s, A detailed and reliable map is necessary as a base for field work and more than twenty glacier maps have been constructed photogrammetrically at scales of 1:10 000 or 1:20 000 since 1952. For some of the glaciers more than one map has been constructed and changes in glacier volume can be calculated, provided the maps have sufficient accuracy.For the glaciers, Nigardsbreen, Hellstugubreen, and Gråsubreen, two or more good maps are available and these form a good basis for comparis
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46

Jullo, E., and J. P. Kneib. "Multiscale cluster lens mass mapping - I. Strong lensing modelling." Monthly Notices of the Royal Astronomical Society 395, no. 3 (2009): 1319–32. http://dx.doi.org/10.1111/j.1365-2966.2009.14654.x.

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47

Karty, Jonathan A., Marcia M. E. Ireland, Yves V. Brun, and James P. Reilly. "Artifacts and unassigned masses encountered in peptide mass mapping." Journal of Chromatography B 782, no. 1-2 (2002): 363–83. http://dx.doi.org/10.1016/s1570-0232(02)00550-0.

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48

de Jesus, Anderson L., and Alexandre G. M. Schmidt. "Mapping Between Charge-Dyon and Position-Dependent Mass Systems." Communications in Theoretical Physics 71, no. 10 (2019): 1261. http://dx.doi.org/10.1088/0253-6102/71/10/1261.

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49

Bark, Steven J., Nemone Muster, John R. Yates, and Gary Siuzdak. "High-Temperature Protein Mass Mapping Using a Thermophilic Protease." Journal of the American Chemical Society 123, no. 8 (2001): 1774–75. http://dx.doi.org/10.1021/ja002909n.

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50

Wilk, Zbigniew A., and David M. Hercules. "Organic and elemental ion mapping using laser mass spectrometry." Analytical Chemistry 59, no. 14 (1987): 1819–25. http://dx.doi.org/10.1021/ac00141a018.

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