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1

Olinto, Angela V., James W. Truran, and Michael S. Turner. "David Norman Schramm." Physics Today 51, no. 7 (July 1998): 81–82. http://dx.doi.org/10.1063/1.2805880.

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2

Lehrer, Keith. "Reply to Alfred Schramm." Grazer Philosophische Studien 40 (1991): 88–91. http://dx.doi.org/10.5840/gps1991409.

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3

Faber, Martin. "Gottfried Schramm (11.01.1929-26.10.2017)." Zapiski Historyczne lxxxiv, no. 1 (September 11, 2019): 169–72. http://dx.doi.org/10.15762/zh.2019.07.

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4

Thiele, Rüdiger. "Matthias Schramm, 1928–2005." Historia Mathematica 32, no. 3 (August 2005): 271–74. http://dx.doi.org/10.1016/j.hm.2005.05.002.

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5

Turner, Michael S. "Remembering David N. Schramm." Physica Scripta T85, no. 1 (2000): 9. http://dx.doi.org/10.1238/physica.topical.085a00009.

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6

Thiele, Rüdiger. "IN MEMORIAM." Arabic Sciences and Philosophy 15, no. 2 (August 5, 2005): 329–31. http://dx.doi.org/10.1017/s0957423905000214.

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Matthias Schramm, a well-known historian of science and professor at the University of Tübingen from 1966 to 1996, died in Dusslingen near Tübingen on 24 January 2005, shortly before his 77th birthday. He was born on 6 February 1928 in Paris as a child of painters. Due to wartime difficulties, most of his education was acquired at home. In spite of this, he passed the examination of a high-school prior to his matriculation (Abitur). Although Schramm's school had a pure classical orientation (humanistisches Gymnasium), he read on his own initiative Euclid in Greek.
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7

Deitmar, Anton. "Benjamini–Schramm and spectral convergence." L’Enseignement Mathématique 64, no. 3 (July 23, 2019): 371–94. http://dx.doi.org/10.4171/lem/64-3/4-8.

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8

Dubédat, Julien. "Duality of Schramm-Loewner evolutions." Annales scientifiques de l'École normale supérieure 42, no. 5 (2009): 697–724. http://dx.doi.org/10.24033/asens.2107.

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9

Kolb, Edward W., and Michael S. Turner. "David N. Schramm (1945-97)." Nature 391, no. 6666 (January 1998): 444. http://dx.doi.org/10.1038/35044.

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10

Cassé, Michel. "In remembrance of David Schramm." Nuclear Physics B - Proceedings Supplements 80, no. 1-3 (January 2000): 13–14. http://dx.doi.org/10.1016/s0920-5632(00)90645-5.

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11

Nair, P. "QnAs with Vern L. Schramm." Proceedings of the National Academy of Sciences 108, no. 10 (February 7, 2011): 3829. http://dx.doi.org/10.1073/pnas.1101040108.

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12

Graham, K. "On multiple Schramm–Loewner evolutions." Journal of Statistical Mechanics: Theory and Experiment 2007, no. 03 (March 13, 2007): P03008. http://dx.doi.org/10.1088/1742-5468/2007/03/p03008.

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13

DA ROCHA, FLÁVIO FRANÇA NUNES, ARTUR CEZAR BASTOS NETO, MARCUS VINÍCIUS DORNELLES REMUS, and VITOR PAULO PEREIRA. "A Fonte dos Metais da Mina de Ouro do Schramm, Santa Catarina: Evidências de Dados de Isótopos de Pb e Elementos Terras Raras." Pesquisas em Geociências 32, no. 1 (June 30, 2005): 51. http://dx.doi.org/10.22456/1807-9806.19538.

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The source of the ore elements in the Schramm gold mine, localized in central part of Santa Catarina shield, has been constrained based on lead isotope composition of galena and sulfosalts, and the rare earth element (REE) patterns of the ore. The Pb207/ Pb206 model age obtained in galena and lillianite-gustavite series from the mineralization yields an age of 1.88 Ga. It is higher than the estimated age of the deposit (» 534 Ma). The Pb isotopic composition obtained in these minerals indicates that the age of Schramm mine source is similar to that of the galena of the Ribeirão da Prata mine (Pb-Zn-Cu-Ag). This mine is located 25 Km southwest of the Schramm gold mine witch is hosted in the tension fracture zone conjugated with the first order shear zone that contains the Ribeirão da Prata deposit. The similarities between Pb-isotope compositions of both deposits could indicate that they were contemporaneous and derived from the same regional lead source. The REE patterns of the ore samples of Schramm mine are similar to that of the pyroxenites and banded iron formations from the Archean Santa Catarina Granulitic Complex that host the Schramm gold mine. They present low REE contents with flat patterns and lack Eu anomalies. The comparison among the isotopic data from this mine with those from other places indicates that the banded iron formation and mafic-ultramafic granulitic gneisses are the source of the gold mineralization. This evidence agreed with the hypothesis that the ore fluids were derived from retrogressive metamorphism reactions of Santa Catarina Granulitic Complex in the shear zones during the final stage of Brasiliano orogenic cycle.
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14

Tankard, James W. "Wilbur Schramm: Definer of a Field." Journalism Educator 43, no. 3 (September 1988): 11–16. http://dx.doi.org/10.1177/107769588804300303.

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15

Chaffee, Steven H. "In Memoriam: Wilbur Schramm, 1907-1987." Public Opinion Quarterly 52, no. 3 (1988): 372. http://dx.doi.org/10.1086/269114.

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16

Dubédat, Julien. "Commutation relations for Schramm-Loewner evolutions." Communications on Pure and Applied Mathematics 60, no. 12 (2007): 1792–847. http://dx.doi.org/10.1002/cpa.20191.

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17

Comtet, Roger. "Gottfried Schramm, Von Puschkin bis Gorki." Cahiers du monde russe 49, no. 49/4 (December 28, 2008): 715–18. http://dx.doi.org/10.4000/monderusse.6918.

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18

Grazer Philosophische studien, Editors. "Keith LEHRER: Reply to Alfred Schramm." Grazer Philosophische studien 40, no. 1 (August 13, 1991): 88–91. http://dx.doi.org/10.1163/18756735-90000481.

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19

Ueckermann, Erhard. "Dr. Josef Schramm vollendete 90. Lebensjahr." Zeitschrift für Jagdwissenschaft 37, no. 2 (June 1991): 138. http://dx.doi.org/10.1007/bf02241679.

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20

Klumbies, Paul-Gerhard. "Die Königsmacher, written by Christian Schramm." Biblische Zeitschrift 65, no. 2 (July 28, 2021): 323–26. http://dx.doi.org/10.30965/25890468-06502008-01.

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21

Phi, Ji Hoon, and Chun Kee Chung. "Brain tumors in the mesial temporal lobe: long-term oncological outcome." Neurosurgical Focus 27, no. 2 (August 2009): E5. http://dx.doi.org/10.3171/2009.5.focus09106.

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Object Surgical treatment of brain tumors in the mesial temporal lobe (MTL) is a highly demanding procedure. Only a few studies describing the surgery of MTL tumors have been reported, and they have been focused on the operative techniques and immediate results of the surgery. The authors have analyzed the long-term oncological outcome in patients with MTL tumors. Methods Thirty-six patients with an MTL tumor were studied. The mean patient age at surgery was 32 years (range 13–62 years). The tumors were confined to the MTL (Schramm Type A) in 25 patients (69%). Extension of the tumor into the fusiform gyrus (Schramm Type C) and temporal stem (Schramm Type D) was observed in 4 and 7 patients (11 and 19%), respectively. There was a significant difference in the tumor size according to Schramm types (p = 0.001). Complete tumor resection was achieved in 26 patients (72%). All tumors were low-grade lesions except for 1 anaplastic astrocytoma. Results After a median follow-up period of 50.5 months, 7 patients showed progression of the disease. The actuarial progression-free survival rates were 97% in the 1st year, 84% in the 2nd year, and 80% in the 5th year. The degree of tumor resection was significantly related to the tumor control failure (p < 0.001) and malignant transformation of a low-grade tumor (p < 0.001). Univariate analyses using a Cox proportional hazards model showed that the following factors were significantly associated with a failure to control the tumor: 1) extent of the tumor (Schramm Type D; p = 0.003, relative risk [RR] 12.04); 2) size of the tumor (p = 0.033, RR 1.052/mm); 3) patient age at surgery ≥ 50 years (p = 0.007, RR 8.312); and 4) short duration of epilepsy (< 6 months; p = 0.001, RR 21.54). Conclusions Surgery is the principal treatment for MTL tumors, despite its technical difficulty. Complete tumor resection is strongly recommended for long-term tumor control. The MTL tumors are heterogeneous in their prognosis. Older age, short duration of epilepsy, and tumor size are all associated with poor outcome. Patients with these characteristics may have a more aggressive form of the disease than those with MTL tumors associated with chronic epilepsy.
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22

Abért, Miklós, Péter Csikvári, Péter E. Frenkel, and Gábor Kun. "Matchings in Benjamini–Schramm convergent graph sequences." Transactions of the American Mathematical Society 368, no. 6 (October 5, 2015): 4197–218. http://dx.doi.org/10.1090/tran/6464.

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23

Koshida, Shinji. "Schramm–Loewner evolution with Lie superalgebra symmetry." International Journal of Modern Physics A 33, no. 20 (July 20, 2018): 1850117. http://dx.doi.org/10.1142/s0217751x18501178.

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We propose a generalization of Schramm–Loewner evolution (SLE) that has internal degrees of freedom described by an affine Lie superalgebra. We give a general formulation of SLE corresponding to representation theory of an affine Lie superalgebra whose underlying finite-dimensional Lie superalgebra is basic classical type, and write down stochastic differential equations on internal degrees of freedom in case that the corresponding affine Lie superalgebra is [Formula: see text]. We also demonstrate computation of local martingales associated with the solution from a representation of [Formula: see text].
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24

Rohde, Steffen. "Oded Schramm: From circle packing to SLE." Annals of Probability 39, no. 5 (September 2011): 1621–67. http://dx.doi.org/10.1214/10-aop590.

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25

Lawler, Gregory F. "Scaling limits and the Schramm-Loewner evolution." Probability Surveys 8 (2011): 442–95. http://dx.doi.org/10.1214/11-ps189.

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26

Kennedy, Tom. "Numerical Computations for the Schramm-Loewner Evolution." Journal of Statistical Physics 137, no. 5-6 (November 17, 2009): 839–56. http://dx.doi.org/10.1007/s10955-009-9866-2.

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27

Levit, Arie. "On Benjamini-Schramm limits of congruence subgroups." Israel Journal of Mathematics 239, no. 1 (August 2020): 59–73. http://dx.doi.org/10.1007/s11856-020-2043-7.

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28

Trögner, Jens. "Zum Tode von Dr. med. Axel Schramm." Zeitschrift für Gerontologie und Geriatrie 50, no. 2 (January 26, 2017): 174. http://dx.doi.org/10.1007/s00391-017-1186-6.

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29

Roth, Oliver, and Sebastian Schleissinger. "The Schramm-Loewner equation for multiple slits." Journal d'Analyse Mathématique 131, no. 1 (March 2017): 73–99. http://dx.doi.org/10.1007/s11854-017-0002-y.

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30

Andersson, Axel. "Migration/immigration/emigration." K&K - Kultur og Klasse 44, no. 121 (June 21, 2016): 251–56. http://dx.doi.org/10.7146/kok.v44i121.23749.

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31

BOUYRIE, RAPHAËL. "On Quantitative Noise Stability and Influences for Discrete and Continuous Models." Combinatorics, Probability and Computing 27, no. 3 (March 23, 2018): 334–57. http://dx.doi.org/10.1017/s0963548318000044.

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Keller and Kindler recently established a quantitative version of the famous Benjamini–Kalai–Schramm theorem on the noise sensitivity of Boolean functions. Their result was extended to the continuous Gaussian setting by Keller, Mossel and Sen by means of a Central Limit Theorem argument. In this work we present a unified approach to these results, in both discrete and continuous settings. The proof relies on semigroup decompositions together with a suitable cut-off argument, allowing for the efficient use of the classical hypercontractivity tool behind these results. It extends to further models of interest such as families of log-concave measures and Cayley and Schreier graphs. In particular we obtain a quantitative version of the Benjamini–Kalai–Schramm theorem for the slices of the Boolean cube.
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32

BOOHER, DOUGLAS B. "Taxonomic clarification of two Nearctic Strumigenys (Hymenoptera: Formicidae)." Zootaxa 4664, no. 3 (September 4, 2019): 401–11. http://dx.doi.org/10.11646/zootaxa.4664.3.7.

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In 1901, Forel described an ant species from a relatively poorly known genus of ants from North America, naming it Strumigenys pilinasis. In 1931 M. R. Smith obtained the holotype and redescribed it, and he included a first illustration. The description was incomplete and the illustration resembled Strumigenys brevisetosa Smith, 1935, more than it resembled S. pilinasis, which led subsequent taxonomists to make consistent misidentifications and to consider S. brevisetosa to be a synonym of S. pilinasis. Here I redescribe both S. pilinasis and S. brevisetosa (revived status). Strumigenys manni Wesson & Wesson, 1939, and S. ohioensis Kennedy & Schramm, 1933, are new junior synonyms of S. pilinasis, and S medialis Kennedy & Schramm, 1933, is a new junior synonym of S. brevisetosa.
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33

Zhan, Dapeng. "Decomposition of Schramm–Loewner evolution along its curve." Stochastic Processes and their Applications 129, no. 1 (January 2019): 129–52. http://dx.doi.org/10.1016/j.spa.2018.02.010.

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34

Koshida, S. "Note on Schramm-Loewner Evolution for Superconformal Algebras." Theoretical and Mathematical Physics 199, no. 1 (April 2019): 501–12. http://dx.doi.org/10.1134/s0040577919040020.

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35

Moazami Goodarzi, Milad, Mahdi Hormozi, and Nacima Memić. "Relations between Schramm spaces and generalized Wiener classes." Journal of Mathematical Analysis and Applications 450, no. 1 (June 2017): 829–38. http://dx.doi.org/10.1016/j.jmaa.2017.01.033.

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36

Knobloch, Eberhard. "For Matthias Schramm on his sixty-fifth birthday." Historia Mathematica 20, no. 2 (May 1993): 121–25. http://dx.doi.org/10.1006/hmat.1993.1011.

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37

Glander, Timothy. "WILBUR SCHRAMM AND THE FOUNDING OF COMMUNICATION STUDIES." Educational Theory 46, no. 3 (September 1996): 373–91. http://dx.doi.org/10.1111/j.1741-5446.1996.00373.x.

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38

Gwynne, Ewain, Jason Miller, and Xin Sun. "Almost sure multifractal spectrum of Schramm–Loewner evolution." Duke Mathematical Journal 167, no. 6 (April 2018): 1099–237. http://dx.doi.org/10.1215/00127094-2017-0049.

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39

Lawler, Gregory F., and Scott Sheffield. "A natural parametrization for the Schramm–Loewner evolution." Annals of Probability 39, no. 5 (September 2011): 1896–937. http://dx.doi.org/10.1214/10-aop560.

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40

Häggström, Olle. "Percolation beyond ℤd: The contributions of Oded Schramm." Annals of Probability 39, no. 5 (September 2011): 1668–701. http://dx.doi.org/10.1214/10-aop563.

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41

Bauer, Michel, Denis Bernard, and Kalle Kytölä. "Multiple Schramm–Loewner Evolutions and Statistical Mechanics Martingales." Journal of Statistical Physics 120, no. 5-6 (September 2005): 1125–63. http://dx.doi.org/10.1007/s10955-005-7002-5.

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42

Chen, Zhen-Qing, and Steffen Rohde. "Schramm–Loewner Equations Driven by Symmetric Stable Processes." Communications in Mathematical Physics 285, no. 3 (November 19, 2008): 799–824. http://dx.doi.org/10.1007/s00220-008-0674-3.

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43

Kaufmann, Wolfgang. "Die Stasi im Westen." Das Historisch-Politische Buch (HPB) 65, no. 3 (July 1, 2017): 225–27. http://dx.doi.org/10.3790/hpb.65.3.225.

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Peter Böhm: For Eyes Only. Die wahre Geschichte des Agenten Horst Hesse Horst Kopp: Der Desinformant. Erinnerungen eines DDR-Geheimdienstlers Klaus Eichner, Gotthold Schramm (Hg.): Top-Spione im Westen. Spitzenquellen der DDR-Aufklärung erinnern sich
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44

Jenderek, Bastian. "Holger Schramm/Werner Wirth/Helena Bilandzic (Hrsg.): Empirische Unterhaltungsforschung." Medien & Kommunikationswissenschaft 55, no. 2 (2007): 273–76. http://dx.doi.org/10.5771/1615-634x-2007-2-273.

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45

Peltola, Eveliina. "Toward a conformal field theory for Schramm-Loewner evolutions." Journal of Mathematical Physics 60, no. 10 (October 1, 2019): 103305. http://dx.doi.org/10.1063/1.5094364.

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46

Geller, Margaret J. "Is Cosmology Solved? A Tribute to David N. Schramm." Publications of the Astronomical Society of the Pacific 111, no. 757 (March 1999): 253. http://dx.doi.org/10.1086/316323.

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47

Rüthers, Bernd. "Nils-Eberhard Schramm, Die Vereinigung demokratischer Juristen (1949-1999)." Zeitschrift der Savigny-Stiftung für Rechtsgeschichte: Germanistische Abteilung 118, no. 1 (August 1, 2001): 869–71. http://dx.doi.org/10.7767/zrgga.2001.118.1.869.

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48

Nazarov, A. "Schramm-Loewner evolution martingales in coset conformal field theory." JETP Letters 96, no. 2 (September 2012): 90–93. http://dx.doi.org/10.1134/s0021364012140093.

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49

Buchmann, N. "Laudatio Dr. med. H.-J. Schramm zum 65. Geb." Allgemeine Homöopathische Zeitung 237, no. 06 (April 4, 2007): 263. http://dx.doi.org/10.1055/s-2006-936430.

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50

Bauer, Michel, Denis Bernard, and Tom Kennedy. "Conditioning Schramm–Loewner evolutions and loop erased random walks." Journal of Mathematical Physics 50, no. 4 (April 2009): 043301. http://dx.doi.org/10.1063/1.3097299.

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