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1

Henning, Margaret M., and Ian F. C. McKenzie. "HISTOCOMPATIBILITY LOCI ASSOCIATED WITH LYMPHOCYTE ALLOANTIGENIC LOCI." Transplantation 42, no. 3 (September 1986): 322–24. http://dx.doi.org/10.1097/00007890-198609000-00023.

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2

Макаров, Юрій. "Genius Loci." Україна, no. 5 (2008): 96–101.

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3

Russell, William R., Martin Chemnitz, and J. A. O. Preus. "Loci Theologici." Sixteenth Century Journal 21, no. 4 (1990): 697. http://dx.doi.org/10.2307/2542209.

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4

Marcus, Marvin. "Determinantal Loci." College Mathematics Journal 23, no. 1 (January 1992): 44. http://dx.doi.org/10.2307/2686198.

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5

Smil, Vaclav. "Genius loci." Nature 409, no. 6816 (January 2001): 21. http://dx.doi.org/10.1038/35051162.

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6

Spray, Martin. "Amor loci." Landscape Research 13, no. 3 (December 1988): 20–22. http://dx.doi.org/10.1080/01426398808706267.

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7

Algernon, S. R. "Genius loci." Nature 531, no. 7594 (March 2016): 408. http://dx.doi.org/10.1038/531408a.

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8

Raskin, Jonah. "Genius Loci." Boom 4, no. 4 (2014): 97–101. http://dx.doi.org/10.1525/boom.2014.4.4.97.

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This essay takes a literary journey to Jack London State Historic Park, the National Steinbeck Center, and the Beat Museum. An exploration of the shrines that are devoted to writers and which attract readers from around the world as well as close to home, the essay explores California’s identity as a cultural destination for tourists as well as for natives of the Golden State. By linking specific geographical places, such as Glen Ellen, Salinas, and San Francisco to books and to their authors, California’s literary shrines weave a kind of cultural magic that transcends time and place and invigorates twentieth-century classics such as Steinbeck’s The Grapes of Wrath, Kerouac’s On the Road, and Jack London’s The Iron Heel.
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9

Marcus, Marvin. "Determinantal Loci." College Mathematics Journal 23, no. 1 (January 1992): 44–47. http://dx.doi.org/10.1080/07468342.1992.11973433.

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10

Paul Lindholdt. "Genius Loci." Sewanee Review 118, no. 1 (2010): 47–58. http://dx.doi.org/10.1353/sew.0.0227.

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11

Itoh, Jin-ichi, and Kazuyoshi Kiyohara. "Cut loci and conjugate loci on Liouville surfaces." Manuscripta Mathematica 136, no. 1-2 (February 10, 2011): 115–41. http://dx.doi.org/10.1007/s00229-011-0433-1.

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12

Zagirnyak, Mikhail. "Genius Loci. Kantian Research in Kaliningrad." Voprosy Filosofii, no. 4 (April 2024): 208–17. http://dx.doi.org/10.21146/0042-8744-2024-4-208-217.

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Institutionalisation of a research school often causes difficulties due to different circumstances: scientific policy, funding, staffing, thematic uniqueness of re­search team members. In the situation of long-term existence of a school, there may be problems caused by the need to combine old, established scientific strategies and the newest vectors of research interest, determined both by the internal logic of the development of the subject area of research, and the challenges from the international scientific community and non-scientific factors. It cannot be said that all these aspects and difficulties had no influ­ence on the processes of formation of Academia Kantiana, the research unit of the Immanuel Kant Baltic Federal University. However, the localisation of all, including heterogeneous, tendencies in the intellectual space of Kantian philosophy made it possible to organically reorganise and institutionalise re­search strategies and successfully reach new horizons of Kantian studies and possibilities of modern use of its ideas. I comprehensively present the scientific and scientific-organisational activities of the Academia Kantiana in the context of similar Russian and international initiatives and show the logic of the re­search program formation and the main milestones of its implementation. I also give a brief overview of the main structural elements of the established intellec­tual ecosystem: scientific projects, scientific conferences and summer schools, the quarterly Kantian Journal.
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13

SABLIĆ-TOMIĆ, Helena, and Hrvoje MESIĆ. "GENIUS LOCI OF THE INNER CITY OF OSIJEK." Lingua Montenegrina 21, no. 1 (June 1, 2018): 281–96. https://doi.org/10.46584/lm.v21i1.629.

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To mark a city means to observe it as a certain space. Hence, there is a correlation between the proper reading of its text, the recognition, understanding and mapping of those values that help create and uncover the identity and the actions of the city and individuals. That is a process which enables the comprehension of a genius loci (the spirit of a place). In order for a place to be designated as a City, one has to be acquainted with its ambience, geography and climate and determine it not only by the characteristics of its inhabitants, their abilities and activities but also by their spiritual civic traits. In this paper, the research scope is focused on those semantic spaces which make the Inner City (Fortress) the most urban part of Osijek, exclusively on the formation of civil culture from the point of the liberation of Osijek from the Turks on 29 September 1687 to the demolition of the fortress walls in the period from 1923 to 1926. Namely, military officers, merchants and craftsmen had a unique private time rhythm, which introduces a thesis that the repetition in a civic space is not a routine – it rather transforms an individual habit into a sort of a ritual.
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14

Wollheim, Peter. "Genius Loci, Eh ?" Afterimage 31, no. 5 (March 2004): 8–9. http://dx.doi.org/10.1525/aft.2004.31.5.8.

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15

Clarke, R. J. "Loci for circles." International Journal of Mathematical Education in Science and Technology 19, no. 2 (March 1988): 307–13. http://dx.doi.org/10.1080/0020739880190209.

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16

Eichwald, E. J., and I. L. Weissman. "WEAK HISTOCOMPATIBILITY LOCI*." Annals of the New York Academy of Sciences 129, no. 1 (December 16, 2006): 94–101. http://dx.doi.org/10.1111/j.1749-6632.1966.tb12843.x.

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17

Velikonja, Mitja. "GENIUS LOCI SLOVENIAE?" East Central Europe 26, no. 2 (1999): 133–37. http://dx.doi.org/10.1163/187633099x00978.

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18

Widodo, Johannes. "CONSERVING GENIUS LOCI." SMART: Seminar on Architecture Research and Technology 3 (March 19, 2019): 17–20. http://dx.doi.org/10.21460/smart.v3i0.1.

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19

Weitzman, Jonathan B. "Discovering metabolic loci." Genome Biology 4 (2003): spotlight—20030123–01. http://dx.doi.org/10.1186/gb-spotlight-20030123-01.

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20

LAYTIMI, F. "ON DEGENERACY LOCI." International Journal of Mathematics 07, no. 06 (December 1996): 745–54. http://dx.doi.org/10.1142/s0129167x96000396.

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21

Shipers, Carrie. "Genius Loci (review)." Prairie Schooner 81, no. 1 (2007): 256–59. http://dx.doi.org/10.1353/psg.2007.0101.

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22

Zlotorynski, Eytan. "Erratic loci relationships." Nature Reviews Molecular Cell Biology 20, no. 4 (March 4, 2019): 196–97. http://dx.doi.org/10.1038/s41580-019-0115-5.

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23

Juhasz, A., and M. Y. S. Ma. "QUEER MEDIA LOCI." GLQ: A Journal of Lesbian and Gay Studies 17, no. 1 (December 14, 2010): 167–69. http://dx.doi.org/10.1215/10642684-2010-027.

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24

Stolberg, Michael. "Medizinische Loci communes." NTM Zeitschrift für Geschichte der Wissenschaften, Technik und Medizin 21, no. 1 (February 2013): 37–60. http://dx.doi.org/10.1007/s00048-012-0084-7.

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25

Huang, Kang, Pei Zhang, Derek W. Dunn, Tongcheng Wang, Rui Mi, and Baoguo Li. "Assigning alleles to different loci in amplifications of duplicated loci." Molecular Ecology Resources 19, no. 5 (August 2019): 1240–53. http://dx.doi.org/10.1111/1755-0998.13036.

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26

Weirick, Tyler, David John, Stefanie Dimmeler, and Shizuka Uchida. "C-It-Loci: a knowledge database for tissue-enriched loci." Bioinformatics 31, no. 21 (July 10, 2015): 3537–43. http://dx.doi.org/10.1093/bioinformatics/btv410.

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27

Ansari, Talat Hojat, Terry Bertozzi, Jessica Hacking, Steven J. B. Cooper, and Michael G. Gardner. "Random non-coding fragments of lizard DNA: anonymous nuclear loci for the Australian skink, Tiliqua rugosa, and their utility in other Egernia-group species." Australian Journal of Zoology 62, no. 6 (2014): 515. http://dx.doi.org/10.1071/zo14085.

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We report the development of 48 anonymous nuclear loci from the Australian skink Tiliqua rugosa using 454 sequencing. These loci amplified across a Western Australian lineage (47 loci), a ‘northern’ lineage (48 loci) and a ‘southern’ lineage (46 loci). We further tested amplification for the related T. adelaidensis and Egernia stokesii where 37 and 34 loci amplified respectively. The loci showed variability within T. rugosa (22 polymorphic loci) and at least 27 loci also exhibited variation among the three species, highlighting the usefulness of these markers for phylogenetic, phylogeographic and population genetic analyses in T. rugosa and related species.
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28

Charlesworth, Deborah, Esther Kamau, Jenny Hagenblad, and Chunlao Tang. "Trans-specificity at Loci Near the Self-Incompatibility Loci in Arabidopsis." Genetics 172, no. 4 (February 19, 2006): 2699–704. http://dx.doi.org/10.1534/genetics.105.051938.

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29

Kirichenko, V. V., and V. N. Popov. "GENETICS OF ISOZYMES AND ANALYSIS OF ISOZYMES LINKAGE AND MORPHOLOGICAL LOCI IN SUNFLOWER (Helianthus annuus L.) / GENETICA DE ISOFERMENTOS Y EL ACOMPLAMIENTO DE LÓCUSES MORFOLOGICOS E ISOFERMENTICOS EN GIRASOL / GENETIQUE DES ISOFERMENTS ET LIAISON DES LOCUS MORPHOLOGIQUES ET CEUX-CI D’ISOFERMENTS AU TOURNESOL." helia 23, no. 33 (December 2000): 65–76. http://dx.doi.org/10.1515/helia.2000.23.33.65.

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SUMMARY The genetics of anodal esterase (Est), cathodal esterase (cEst), cathodal acid phosphatase (cAcp) and malate dehydrogenase (Mdh) has been studied in mature seeds and leaves (genetics of cAcp and Mdh has not been studied in leaves) of sunflower (Helianthus annuus L.). A total of ten loci (four loci of anodal esterase, two loci of cathodal esterase, three loci of malate dehydrogenase and one locus of cathodal acid phosphatase) have been identified and described. Five esterase loci (Est1, Est2, Est3, Est4, cEst5), three malate dehydrogenase loci and one locus of cathodal acid phosphatase are expressed in seeds. Three esterase loci (Est2, cEst5 and cEst6) are expressed in leaves. The analysis of linkage between these loci has been made. Two linkage groups have been found. The sequence of the loci in the first linkage group was Mdh2-Est1- Est2-Est3-cEst5. In the second linkage group it was Est4-cAcp1. Linkages have been analyzed between three isoenzymatic loci expressed in leaves and between two loci controlling morphological traits (branched stem and male fertility restoration). The linkage between morphological traits and isoenzymatic loci has not been revealed. It has been revealed in Br-Rf pair.
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30

Ludes, B., and I. Clisson. "Short Tandem Repeat loci analysis in forensic casework." Anthropologischer Anzeiger 58, no. 1 (March 28, 2000): 23–27. http://dx.doi.org/10.1127/anthranz/58/2000/23.

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31

Bhattramakki, Dinakar, Jianmin Dong, Ashok K. Chhabra, and Gary E. Hart. "An integrated SSR and RFLP linkage map of Sorghum bicolor (L.) Moench." Genome 43, no. 6 (December 1, 2000): 988–1002. http://dx.doi.org/10.1139/g00-074.

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We report the development, testing, and use (for genetic mapping) of a large number of polymerase chain reaction (PCR) primer sets that amplify DNA simple sequence repeat (SSR) loci of Sorghum bicolor (L.) Moench. Most of the primer sets were developed from clones isolated from two sorghum bacterial artificial chromosome (BAC) libraries and three enriched sorghum genomic-DNA (gDNA) libraries. A few were developed from sorghum DNA sequences present in public databases. The libraries were probed with radiolabeled di- and trinucleotide oligomers, the BAC libraries with four and six oligomers, respectively, and the enriched gDNA libraries with four and three oligomers, respectively. Both types of libraries were markedly enriched for SSRs relative to a size-fractionated gDNA library studied earlier. However, only 2% of the sequenced clones obtained from the size-fractionated gDNA library lacked a SSR, whereas 13% and 17% of the sequenced clones obtained from the BAC and enriched gDNA libraries, respectively, lacked a SSR. Primer sets were produced for 313 SSR loci. Two-hundred sixty-six (85%) of the loci were amplified and 165 (53%) of the loci were found to be polymorphic in a population composed of 18 diverse sorghum lines. (AG/TC)n and (AC/TG)n repeats comprised 91% of the dinucleotide SSRs and 52% of all of the SSRs at the polymorphic loci, whereas four types of repeats comprised 66% of the trinucleotide SSRs at the loci. Primer sequences are reported for the 165 polymorphic loci and for eight monomorphic loci that have a high degree of homology to genes. Also reported are the genetic map locations of 113 novel SSR loci (including four SSR-containing gene loci) and a linkage map composed of 147 SSR loci and 323 RFLP (restriction fragment length polymorphism) loci. The number of SSR loci per linkage group ranges from 8 to 30. The SSR loci are distributed relatively evenly throughout approximately 75% of the 1406-cM linkage map, but segments of five linkage groups comprising about 25% of the map either lack or contain few SSR loci. Mapping of SSR loci isolated from BAC clones located to these segments is likely to be the most efficient method for placing SSR loci in the segments.Key words: DNA libraries, linkage mapping, Sorghum bicolor, SSRs.
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32

Tikhonovich, M. V., S. A. Gavrilova, and I. E. Ioshin. "Müller Cells: Genii Loci." Human Physiology 46, no. 6 (November 2020): 696–702. http://dx.doi.org/10.1134/s0362119720050126.

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33

Szalma, Stephen J., Maurice E. Snook, Bradley S. Bushman, Katherine E. Houchins, and Michael D. McMullen. "Duplicate Loci as QTL." Crop Science 42, no. 5 (September 2002): 1679–87. http://dx.doi.org/10.2135/cropsci2002.1679.

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34

Mortensen, Daniel E. "The Loci of Cicero." Rhetorica 26, no. 1 (2008): 31–56. http://dx.doi.org/10.1525/rh.2008.26.1.31.

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35

Boyd, J. N., R. W. Farley, and P. N. Raychowdhury. "Loci and Rolling Circles." Mathematical Gazette 72, no. 462 (December 1988): 301. http://dx.doi.org/10.2307/3619946.

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36

ORLOV, O. "POLTAVA AS GENIUS LOCI." Philological Studies, no. 32 (February 27, 2020): 54–57. http://dx.doi.org/10.33989/2524-2490.2020.32.202451.

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37

Stagnaro, Ezio. "On Campedelli branch loci." ANNALI DELL UNIVERSITA DI FERRARA 43, no. 1 (December 1997): 1–26. http://dx.doi.org/10.1007/bf02837226.

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38

Тихонович, М. В., С. А. Гаврилова та И. Э. Иошин. "Клетки Мюллера: Genii loci". Физиология человека 46, № 6 (2020): 129–36. http://dx.doi.org/10.31857/s0131164620050124.

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39

Morton, N. E. "Major loci for atopy?" Clinical Experimental Allergy 22, no. 12 (December 1992): 1041–43. http://dx.doi.org/10.1111/j.1365-2222.1992.tb00126.x.

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40

Ott, Jurg. "Association of genetic loci." Neurology 63, no. 6 (September 27, 2004): 955–58. http://dx.doi.org/10.1212/wnl.63.6.955.

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41

Scott, M. P. "Complex Loci of Drosophila." Annual Review of Biochemistry 56, no. 1 (June 1987): 195–227. http://dx.doi.org/10.1146/annurev.bi.56.070187.001211.

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42

Nurnberg, Sylvia T., Hanrui Zhang, Nicholas J. Hand, Robert C. Bauer, Danish Saleheen, Muredach P. Reilly, and Daniel J. Rader. "From Loci to Biology." Circulation Research 118, no. 4 (February 19, 2016): 586–606. http://dx.doi.org/10.1161/circresaha.115.306464.

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43

Poland, Douglas. "Loci of limit cycles." Physical Review E 49, no. 1 (January 1, 1994): 157–65. http://dx.doi.org/10.1103/physreve.49.157.

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44

Martz, Lauren. "Susceptibility loci for COPD." Science-Business eXchange 2, no. 14 (April 2009): 563. http://dx.doi.org/10.1038/scibx.2009.563.

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45

Mukundan, Malavika. "Embedding unicritical connectedness loci." Conformal Geometry and Dynamics of the American Mathematical Society 28, no. 7 (December 3, 2024): 131–64. https://doi.org/10.1090/ecgd/389.

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In this article, for degree d ≥ 1 d\geq 1 , we construct an embedding Φ d \Phi _d of the connectedness locus M d + 1 \mathcal {M}_{d+1} of the polynomials z d + 1 + c z^{d+1}+c into the connectedness locus of degree 2 d + 1 2d+1 bicritical odd polynomials.
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46

Lewis, C. M. "ELODs for three loci." Cytogenetic and Genome Research 59, no. 2-3 (1992): 139–41. http://dx.doi.org/10.1159/000133227.

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47

Coskun, Izzet, and Artie Prendergast-Smith. "Eckardt Loci on Hypersurfaces." Communications in Algebra 43, no. 8 (June 4, 2015): 3083–101. http://dx.doi.org/10.1080/00927872.2014.910798.

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48

Zhang, Yang, and Edward Luke. "Concurrent Composition Using Loci." Computing in Science & Engineering 11, no. 3 (May 2009): 27–35. http://dx.doi.org/10.1109/mcse.2009.50.

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49

TRÁNG, LÊ DŨNG, HÉLÈNE MAUGENDRE, and CLAUDE WEBER. "GEOMETRY OF CRITICAL LOCI." Journal of the London Mathematical Society 63, no. 3 (June 2001): 533–52. http://dx.doi.org/10.1017/s0024610701001995.

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Let(formula here)be the germ of a finite (that is, proper with finite fibres) complex analytic morphism from a complex analytic normal surface onto an open neighbourhood U of the origin 0 in the complex plane C2. Let u and v be coordinates of C2 defined on U. We shall call the triple (π, u, v) the initial data.Let Δ stand for the discriminant locus of the germ π, that is, the image by π of the critical locus Γ of π.Let (Δα)α∈A be the branches of the discriminant locus Δ at O which are not the coordinate axes.For each α ∈ A, we define a rational number dα by(formula here)where I(–, –) denotes the intersection number at 0 of complex analytic curves in C2. The set of rational numbers dα, for α ∈ A, is a finite subset D of the set of rational numbers Q. We shall call D the set of discriminantal ratios of the initial data (π, u, v). The interesting situation is when one of the two coordinates (u, v) is tangent to some branch of Δ, otherwise D = {1}. The definition of D depends not only on the choice of the two coordinates, but also on their ordering.In this paper we prove that the set D is a topological invariant of the initial data (π, u, v) (in a sense that we shall define below) and we give several ways to compute it. These results are first steps in the understanding of the geometry of the discriminant locus. We shall also see the relation with the geometry of the critical locus.
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50

Fraser, James A., and Joseph Heitman. "Fungal mating-type loci." Current Biology 13, no. 20 (October 2003): R792—R795. http://dx.doi.org/10.1016/j.cub.2003.09.046.

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