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==Mathematics== ==Mathematics==
Seven, the fourth prime number, is a ], a ],<ref>{{Cite web |url=https://oeis.org/A088165 |title=Sloane's A088165 : NSW primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ],<ref>{{Cite web |url=https://oeis.org/A050918 |title=Sloane's A050918 : Woodall primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ],<ref>{{Cite web |url=https://oeis.org/A088054 |title=Sloane's A088054 : Factorial primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ], a ],<ref>{{Cite web |url=https://oeis.org/A031157 |title=Sloane's A031157 : Numbers that are both lucky and prime |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ] (happy prime),<ref>{{Cite web |url=https://oeis.org/A035497 |title=Sloane's A035497 : Happy primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ] (the only {{vanchor|Mersenne safe prime}}), a ] and the fourth ].<ref>{{Cite web |url=https://oeis.org/A003173 |title=Sloane's A003173 : Heegner numbers |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> Seven, the fourth prime number, is not only a ] (since <math>2^3 - 1 = 7</math>) but also a ] since the exponent, 3, is itself a Mersenne prime.<ref>{{Cite web|last=Weisstein|first=Eric W.|title=Double Mersenne Number|url=https://mathworld.wolfram.com/DoubleMersenneNumber.html|access-date=2020-08-06|website=mathworld.wolfram.com|language=en}}</ref> It is also a ],<ref>{{Cite web |url=https://oeis.org/A088165 |title=Sloane's A088165 : NSW primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ],<ref>{{Cite web |url=https://oeis.org/A050918 |title=Sloane's A050918 : Woodall primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ],<ref>{{Cite web |url=https://oeis.org/A088054 |title=Sloane's A088054 : Factorial primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ], a ],<ref>{{Cite web |url=https://oeis.org/A031157 |title=Sloane's A031157 : Numbers that are both lucky and prime |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ] (happy prime),<ref>{{Cite web |url=https://oeis.org/A035497 |title=Sloane's A035497 : Happy primes |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref> a ] (the only {{vanchor|Mersenne safe prime}}), a ] and the fourth ].<ref>{{Cite web |url=https://oeis.org/A003173 |title=Sloane's A003173 : Heegner numbers |website=The On-Line Encyclopedia of Integer Sequences |publisher=OEIS Foundation |access-date=2016-06-01}}</ref>


* Seven is the lowest natural number that cannot be represented as the sum of the squares of three integers. * Seven is the lowest natural number that cannot be represented as the sum of the squares of three integers. (See ].)
* Seven is the ] of one number, the ] ] = 2<sup>3</sup> making it the base of the 7-aliquot tree; it is also, therefore, the ] of only ].{{citation needed|date=August 2024}}
* 7 is the only number ''D'' for which the ] {{nowrap|1=2{{sup|''n''}} − ''D'' = ''x''{{sup|2}}}} has more than two solutions for ''n'' and ''x.'' In particular, the equation {{nowrap|1=2{{sup|''n''}} − 7 = ''x''{{sup|2}}}} is known as the ]. * 7 is the only number ''D'' for which the equation {{nowrap|1=2{{sup|''n''}} − ''D'' = ''x''{{sup|2}}}} has more than two solutions for ''n'' and ''x'' ]. In particular, the equation {{nowrap|1=2{{sup|''n''}} − 7 = ''x''{{sup|2}}}} is known as the ].
* There are 7 ]s in two dimensions.<ref>{{Cite book |last1=Heyden |first1=Anders |url=https://books.google.com/books?id=4yCqCAAAQBAJ&q=seven+frieze+groups&pg=PA661 |title=Computer Vision – ECCV 2002: 7th European Conference on Computer Vision, Copenhagen, Denmark, May 28–31, 2002. Proceedings. Part II |last2=Sparr |first2=Gunnar |last3=Nielsen |first3=Mads |last4=Johansen |first4=Peter |date=2003-08-02 |publisher=Springer |isbn=978-3-540-47967-3 |pages=661 |language=en |quote=A frieze pattern can be classified into one of the 7 frieze groups...}}</ref>
* There are 7 ]s in two dimensions, consisting of ] of the ] whose group of ] is ] to the group of ]s.<ref>{{Cite book |last1=Heyden |first1=Anders |url=https://books.google.com/books?id=4yCqCAAAQBAJ&q=seven+frieze+groups&pg=PA661 |title=Computer Vision – ECCV 2002: 7th European Conference on Computer Vision, Copenhagen, Denmark, May 28–31, 2002. Proceedings. Part II |last2=Sparr |first2=Gunnar |last3=Nielsen |first3=Mads |last4=Johansen |first4=Peter |date=2003-08-02 |publisher=Springer |isbn=978-3-540-47967-3 |pages=661 |language=en |quote=A frieze pattern can be classified into one of the 7 frieze groups...}}</ref> These are related to the ] ]s whose transformations and ] repeat two-dimensional patterns in the plane.<ref>{{Cite book |author1=Grünbaum, Branko |author-link=Branko Grünbaum |author2=Shephard, G. C. |author2-link=G.C. Shephard |url-access=registration |url=https://archive.org/details/isbn_0716711931 |title=Tilings and Patterns |chapter=Section 1.4 Symmetry Groups of Tilings |publisher=W. H. Freeman and Company |location=New York |year=1987 |pages=40–45 |doi=10.2307/2323457 |jstor=2323457 |isbn=0-7167-1193-1 |oclc=13092426 |s2cid=119730123 }}</ref><ref>{{Cite OEIS |A004029 |Number of n-dimensional space groups. |access-date=2023-01-30 }}</ref>

* As a consequence of ] and ], all cubes are congruent to 0, 1, or 6 modulo 7.{{citation needed|date=August 2024}}
* The ] has 7 points and 7 lines.<ref>{{Cite book |first1=Tomaž |last1=Pisanski |first2=Brigitte |last2=Servatius |author1-link=Tomaž Pisanski |author2-link=Brigitte Servatius |title=Configurations from a Graphical Viewpoint |chapter=Section 1.1: Hexagrammum Mysticum |chapter-url=https://link.springer.com/chapter/10.1007/978-0-8176-8364-1_5 |edition=1 |publisher=] |series=Birkhäuser Advanced Texts |location=Boston, MA |year=2013 |pages=5–6 |isbn=978-0-8176-8363-4 |oclc=811773514 |doi=10.1007/978-0-8176-8364-1 |zbl=1277.05001 }}</ref>
* A seven-sided shape is a ].<ref>{{Cite web|last=Weisstein|first=Eric W.|title=Heptagon|url=https://mathworld.wolfram.com/Heptagon.html|access-date=2020-08-25|website=mathworld.wolfram.com|language=en}}</ref> The ] ''n''-gons for ''n'' ⩽ 6 can be constructed by ] alone, which makes the heptagon the first regular polygon that cannot be directly constructed with these simple tools.<ref>{{Cite web|last=Weisstein|first=Eric W.|title=7|url=https://mathworld.wolfram.com/7.html|access-date=2020-08-07|website=mathworld.wolfram.com|language=en}}</ref> ]s representing heptagons are called ]s.<ref>{{Cite OEIS |A000566 |Heptagonal numbers (or 7-gonal numbers) |access-date=2023-01-09 }}</ref> 7 is also a ].<ref>{{Cite OEIS |A003215 |access-date=2016-06-01 }}</ref>

:A heptagon in ] is unable to generate ]s alongside other polygons, like the regular ]. However, it is one of fourteen polygons that can fill a ], in its case only alongside a regular ] and a 42-sided polygon (]).<ref>{{Cite journal |first1=Branko |last1=Grünbaum |author-link=Branko Grünbaum |first2=Geoffrey |last2=Shepard |author-link2=G.C. Shephard |title=Tilings by Regular Polygons |date=November 1977 |url=http://www.maa.org/sites/default/files/images/upload_library/22/Allendoerfer/1978/0025570x.di021102.02p0230f.pdf |journal=] |volume=50 |issue=5 |publisher=Taylor & Francis, Ltd.|page=231 |doi=10.2307/2689529 |jstor=2689529 |s2cid=123776612 |zbl=0385.51006 }}</ref><ref>{{Cite web |last=Jardine |first=Kevin |url=http://gruze.org/tilings/3_7_42_shield|title=Shield - a 3.7.42 tiling |website=Imperfect Congruence |access-date=2023-01-09 }} 3.7.42 as a unit facet in an irregular tiling.</ref> This is also one of twenty-one such configurations from seventeen combinations of polygons, that features the largest and smallest polygons possible.<ref>{{Cite journal |first1=Branko |last1=Grünbaum |author-link=Branko Grünbaum |first2=Geoffrey |last2=Shepard |author-link2=G.C. Shephard |title=Tilings by Regular Polygons |date=November 1977 |url=http://www.maa.org/sites/default/files/images/upload_library/22/Allendoerfer/1978/0025570x.di021102.02p0230f.pdf |journal=] |volume=50 |issue=5 |publisher=Taylor & Francis, Ltd.|pages=229–230 |doi=10.2307/2689529 |jstor=2689529 |s2cid=123776612 |zbl=0385.51006 }}</ref><ref>{{Cite book |first=Elmslie William |last=Dallas |author-link=Elmslie William Dallas |chapter-url=https://books.google.com/books?id=y4BaAAAAcAAJ&pg=PA134 |title=The Elements of Plane Practical Geometry |chapter=Part II. (VII): Of the Circle, with its Inscribed and Circumscribed Figures − Equal Division and the Construction of Polygons |publisher=John W. Parker & Son, West Strand |location=London |year=1855 |page=134 }}
* The seventh dimension is the only dimension aside from the familiar three where a vector ] can ].<ref>{{Cite journal |url=https://pdfs.semanticscholar.org/1f6b/ff1e992f60eb87b35c3ceed04272fb5cc298.pdf |title=Cross products of vectors in higher dimensional Euclidean spaces |first=William S. |last=Massey |author-link=William S. Massey |journal=The American Mathematical Monthly |volume=90 |issue=10 |publisher=] |date=December 1983 |pages=697–701 |doi=10.2307/2323537 |jstor=2323537 |s2cid=43318100 |zbl=0532.55011 |access-date=2023-02-23 |archive-date=2021-02-26 |archive-url=https://web.archive.org/web/20210226011747/https://pdfs.semanticscholar.org/1f6b/ff1e992f60eb87b35c3ceed04272fb5cc298.pdf |url-status=dead }}</ref>
:"...It will thus be found that, including the employment of the same figures, there are seventeen different combinations of regular polygons by which this may be effected; namely, —
:When three polygons are employed, there are ten ways; viz., ] – ] — ] – ] — ] — ] — ] — ] — ] — ].
:With four polygons there are four ways, viz., ] — ] — ] — ].
:With five polygons there are two ways, viz., ] — ].
:With six polygons one way — all equilateral triangles ] ]."<br>
Note: the only four other configurations from the same combinations of polygons are: ], ], ], and ].</ref>
:Otherwise, for any regular ''n''-sided polygon, the maximum number of intersecting diagonals (other than through its center) is at most 7.<ref>{{Cite journal |last1=Poonen |first1=Bjorn |author1-link=Bjorn Poonen |last2=Rubinstein |first2=Michael |title=The Number of Intersection Points Made by the Diagonals of a Regular Polygon |url=https://math.mit.edu/~poonen/papers/ngon.pdf |journal=SIAM Journal on Discrete Mathematics |volume=11 |issue=1 |publisher=] |location=Philadelphia |year=1998 |pages=135–156 |doi=10.1137/S0895480195281246 |arxiv=math/9508209 |mr=1612877 |zbl=0913.51005 |s2cid=8673508 }}</ref> Since the regular heptagon contains fourteen ]s, the difference between its number of diagonals and its number of sides is seven; the heptagon is the only convex polygon to have a one-to-two ratio between the number of its sides and diagonals (as any ''n''-sided polygon for ''n'' ≥ 3 sides, convex or concave, has {{sfrac|''n''(''n'' – 3)|2}} diagonals).<ref>{{Cite OEIS|A307681|difference between the number of sides and the number of diagonals of a convex n-gon}}</ref><ref>{{Cite OEIS|A000096|2=a(n) = n*(n+3)/2 = the number of diagonals of an n-gon}}</ref>
* In ], seven distinct generator points that lie on ''mirror'' edges of a three-sided ] are used to create most ]s and ]; an eighth point lying on all three mirrors is technically '']'', reserved to represent ] forms only.<ref>{{Cite book |last=Coxeter |first=H. S. M. |author-link=H. S. M. Coxeter |title=The Beauty of Geometry: Twelve Essays |chapter-url=https://archive.org/details/beautyofgeometry0000coxe/page/52/mode/2up |chapter-url-access=registration |chapter=Chapter 3: Wythoff's Construction for Uniform Polytopes |publisher=Dover Publications |location=Mineola, NY |year=1999 |pages=326–339 |isbn=9780486409191 |oclc=41565220 |s2cid=227201939 |zbl=0941.51001 }}</ref>
:Seven of eight ] are Wythoffian (the only exception is the ]), where there exist three tilings that are ], all of which are Wythoffian.<ref>{{Cite book |author1=Grünbaum, Branko |author-link=Branko Grünbaum |author2=Shephard, G. C. |author2-link=G.C. Shephard |url-access=registration |url=https://archive.org/details/isbn_0716711931 |title=Tilings and Patterns |chapter=Section 2.1: Regular and uniform tilings |publisher=W. H. Freeman and Company |location=New York |year=1987 |pages=62–64 |doi=10.2307/2323457 |isbn=0-7167-1193-1 |oclc=13092426 |jstor=2323457 |s2cid=119730123 }}</ref> Seven of nine uniform colorings of the square tiling are also Wythoffian, and between the ] and ], there are seven ''non-Wythoffian'' uniform colorings of a total twenty-one that belong to regular tilings (all ] uniform colorings are Wythoffian).<ref>{{Cite book |author1=Grünbaum, Branko |author-link=Branko Grünbaum |author2=Shephard, G. C. |author2-link=G.C. Shephard |url-access=registration |url=https://archive.org/details/isbn_0716711931 |title=Tilings and Patterns |chapter=Section 2.9 Archimedean and uniform colorings |publisher=W. H. Freeman and Company |location=New York |year=1987 |pages=102–107 |doi=10.2307/2323457 |isbn=0-7167-1193-1 |oclc=13092426 |jstor=2323457 |s2cid=119730123 }}</ref>
:In two dimensions, there are precisely seven ] ''Krotenheerdt'' tilings, with no other such ''k''-uniform tilings for ''k'' > 7, and it is also the only ''k'' for which the count of ''Krotenheerdt'' tilings agrees with ''k''.<ref>{{Cite OEIS |A068600 |Number of n-uniform tilings having n different arrangements of polygons about their vertices. |access-date=2023-01-09 }}</ref><ref>{{Cite journal |first1=Branko |last1=Grünbaum |author-link=Branko Grünbaum |first2=Geoffrey |last2=Shepard |author-link2=G.C. Shephard |title=Tilings by Regular Polygons |date=November 1977 |url=http://www.maa.org/sites/default/files/images/upload_library/22/Allendoerfer/1978/0025570x.di021102.02p0230f.pdf |journal=] |volume=50 |issue=5 |publisher=Taylor & Francis, Ltd.|page=236 |doi=10.2307/2689529 |jstor=2689529 |s2cid=123776612 |zbl=0385.51006 }}</ref>
* The ] is the smallest possible ] with 7 points and 7 lines such that every line contains 3 points and 3 lines cross every point.<ref>{{Cite book |first1=Tomaž |last1=Pisanski |first2=Brigitte |last2=Servatius |author1-link=Tomaž Pisanski |author2-link=Brigitte Servatius |title=Configurations from a Graphical Viewpoint |chapter=Section 1.1: Hexagrammum Mysticum |chapter-url=https://link.springer.com/chapter/10.1007/978-0-8176-8364-1_5 |edition=1 |publisher=] |series=Birkhäuser Advanced Texts |location=Boston, MA |year=2013 |pages=5–6 |isbn=978-0-8176-8363-4 |oclc=811773514 |doi=10.1007/978-0-8176-8364-1 |zbl=1277.05001 }}</ref> With ] 168 = 2<sup>3</sup>·3·7, this plane holds 35 total triples of points where 7 are collinear and another 28 are non-collinear, whose ] is the 3-regular ] ] with 14 ] and 21 ].<ref>{{Cite book |first1=Tomaž |last1=Pisanski |first2=Brigitte |last2=Servatius |author1-link=Tomaž Pisanski |author2-link=Brigitte Servatius |title=Configurations from a Graphical Viewpoint |chapter=Chapter 5.3: Classical Configurations |chapter-url=https://link.springer.com/chapter/10.1007/978-0-8176-8364-1_5 |edition=1 |publisher=] |series=Birkhäuser Advanced Texts |location=Boston, MA |year=2013 |pages=170–173 |isbn=978-0-8176-8363-4 |oclc=811773514 |doi=10.1007/978-0-8176-8364-1 |zbl=1277.05001 }}</ref> This graph ] in three dimensions as the ], the simplest ] alongside its ] with 7 vertices, the ].<ref>{{Cite journal |last= Szilassi |first= Lajos |journal= Structural Topology |pages= 74 |title= Regular toroids |url= http://www-iri.upc.es/people/ros/StructuralTopology/ST13/st13-06-a3-ocr.pdf |volume= 13 |year = 1986 |zbl=0605.52002 }}</ref><ref>{{Cite journal |last= Császár |first= Ákos |author-link= Ákos Császár |url= http://www.diale.org/pdf/csaszar.pdf |archive-url= https://web.archive.org/web/20170918064243/http://www.diale.org/pdf/csaszar.pdf |archive-date = 2017-09-18 |title= A polyhedron without diagonals |journal= Acta Scientiarum Mathematicarum (Szeged) |pages= 140–142 |volume= 13 |year= 1949}}</ref>
* In three-dimensional space there are seven ] and fourteen ]s which classify under seven ], six of which are shared with the seven crystal systems.<ref>{{Cite OEIS |A004031 |Number of n-dimensional crystal systems. |access-date=2023-01-30 }}</ref><ref>{{Cite book |last1=Wang |first1=Gwo-Ching |last2=Lu |first2=Toh-Ming |chapter=Crystal Lattices and Reciprocal Lattices |title=RHEED Transmission Mode and Pole Figures |chapter-url=https://link.springer.com/chapter/10.1007/978-1-4614-9287-0_2 |publisher=] |edition=1 |location=New York |year=2014 |pages=8–9 |isbn=978-1-4614-9286-3 |doi=10.1007/978-1-4614-9287-0_2 |s2cid=124399480 }}</ref><ref>{{Cite OEIS |A256413 |Number of n-dimensional Bravais lattices |access-date=2023-01-30 }}</ref>
]
* The seventh dimension is the only dimension aside from the familiar three where a vector ] can ].<ref>{{Cite journal |url=https://pdfs.semanticscholar.org/1f6b/ff1e992f60eb87b35c3ceed04272fb5cc298.pdf |title=Cross products of vectors in higher dimensional Euclidean spaces |first=William S. |last=Massey |author-link=William S. Massey |journal=The American Mathematical Monthly |volume=90 |issue=10 |publisher=] |date=December 1983 |pages=697–701 |doi=10.2307/2323537 |jstor=2323537 |s2cid=43318100 |zbl=0532.55011 |access-date=2023-02-23 |archive-date=2021-02-26 |archive-url=https://web.archive.org/web/20210226011747/https://pdfs.semanticscholar.org/1f6b/ff1e992f60eb87b35c3ceed04272fb5cc298.pdf |url-status=dead }}</ref> This is related to the ]s over the ] {{math|Im('''O''')}} in 7-space whose ] between two octonions defines this vector product, wherein the Fano plane describes the multiplicative ] of the ] {{math|1={''e<sub>0</sub>, e<sub>1</sub>, e<sub>2</sub>, ..., e<sub>7</sub>''} }}, with {{math|1=''e<sub>0</sub>''}} an ].<ref>{{Cite journal |last1=Baez |first1=John C. |author-link=John Baez |url=http://math.ucr.edu/home/baez/octonions/ |title=The Octonions |journal=Bulletin of the American Mathematical Society |volume=39 |issue=2 |publisher=] |pages=152–153 |year=2002 |doi=10.1090/S0273-0979-01-00934-X |mr=1886087|s2cid=586512 |doi-access=free }}</ref>
* The lowest known dimension for an ] is the seventh dimension, with a total of 28 differentiable structures; there may exist exotic smooth structures on the ].<ref>{{Cite journal |last1=Behrens |first1=M. |last2=Hill |first2=M. |last3=Hopkins |first3=M. J. |last4=Mahowald |first4=M. |date=2020 |title=Detecting exotic spheres in low dimensions using coker J |url=https://onlinelibrary.wiley.com/doi/abs/10.1112/jlms.12301 |journal=Journal of the London Mathematical Society |volume=101 |issue=3 |publisher=] |pages=1173 |arxiv=1708.06854 |doi=10.1112/jlms.12301 |zbl=1460.55017 |mr=4111938 |s2cid=119170255 }}</ref><ref>{{Cite OEIS |A001676 |Number of h-cobordism classes of smooth homotopy n-spheres. |access-date=2023-02-23 }}</ref>
* In ], 7 is the highest dimension for non-simplex ] of rank ''n + 4'' mirrors, where there is one unique figure with eleven ].<ref>{{Cite journal |last1=Tumarkin |first1=Pavel |last2=Felikson |first2=Anna |url=https://www.ams.org/journals/mosc/2008-69-00/S0077-1554-08-00172-6/S0077-1554-08-00172-6.pdf |title=On ''d''-dimensional compact hyperbolic Coxeter polytopes with ''d + 4'' facets |journal=Transactions of the Moscow Mathematical Society |volume=69 |publisher=] (Translation) |location=Providence, R.I. |year=2008 |pages=105–151 |doi= 10.1090/S0077-1554-08-00172-6 |doi-access=free |mr=2549446 |s2cid=37141102 |zbl=1208.52012 }}</ref> On the other hand, such figures with rank ''n + 3'' mirrors exist in dimensions 4, 5, 6 and 8; ''not'' in 7.<ref>{{Cite journal |last=Tumarkin |first=Pavel |url=https://www.combinatorics.org/ojs/index.php/eljc/article/view/v14i1r69/pdf |title=Compact hyperbolic Coxeter n-polytopes with n + 3 facets |journal=The Electronic Journal of Combinatorics |volume=14 |number=1 |pages= 1–36 (R69) |date=2007 |doi=10.37236/987 |doi-access=free |mr=2350459 |s2cid=221033082 |zbl=1168.51311 }}</ref> Hypercompact polytopes with lowest possible rank of ''n + 2'' mirrors exist up through the ''17th'' dimension, where there is a single solution as well.<ref>{{Cite journal |last=Tumarkin |first=P. V. |title=Hyperbolic Coxeter N-Polytopes with n+2 Facets |journal=] |volume=75 |issue=6 |year= 2004 |pages=848–854 |doi=10.1023/b:matn.0000030993.74338.dd |arxiv=math/0301133 |mr=2086616 |s2cid=15156852 |zbl=1062.52012 }}</ref>
* There are seven fundamental types of ].<ref>{{Cite book|last1=Antoni|first1=F. de|url=https://books.google.com/books?id=3L_sCAAAQBAJ&q=seven+fundamental+types+of+catastrophes&pg=PA13|title=COMPSTAT: Proceedings in Computational Statistics, 7th Symposium held in Rome 1986|last2=Lauro|first2=N.|last3=Rizzi|first3=A.|date=2012-12-06|publisher=Springer Science & Business Media|isbn=978-3-642-46890-2|pages=13|language=en|quote=...every catastrophe can be composed from the set of so called elementary catastrophes, which are of seven fundamental types.}}</ref> * There are seven fundamental types of ].<ref>{{Cite book|last1=Antoni|first1=F. de|url=https://books.google.com/books?id=3L_sCAAAQBAJ&q=seven+fundamental+types+of+catastrophes&pg=PA13|title=COMPSTAT: Proceedings in Computational Statistics, 7th Symposium held in Rome 1986|last2=Lauro|first2=N.|last3=Rizzi|first3=A.|date=2012-12-06|publisher=Springer Science & Business Media|isbn=978-3-642-46890-2|pages=13|language=en|quote=...every catastrophe can be composed from the set of so called elementary catastrophes, which are of seven fundamental types.}}</ref>
* When rolling two standard six-sided ], seven has a 1 in 6 probability of being rolled, the greatest of any number.<ref>{{Cite web|last=Weisstein|first=Eric W.|title=Dice|url=https://mathworld.wolfram.com/Dice.html|access-date=2020-08-25|website=mathworld.wolfram.com|language=en}}</ref> The opposite sides of a standard six-sided dice always add to 7. * When rolling two standard six-sided ], seven has a 6 in 6{{sup|2}} (or {{sfrac|6}}) probability of being rolled (1–6, 6–1, 2–5, 5–2, 3–4, or 4–3), the greatest of any number.<ref>{{Cite web|last=Weisstein|first=Eric W.|title=Dice|url=https://mathworld.wolfram.com/Dice.html|access-date=2020-08-25|website=mathworld.wolfram.com|language=en}}</ref> The opposite sides of a standard six-sided dice always add to 7.
* The ] are seven problems in ] that were stated by the ] in 2000.<ref>{{Cite web|title=Millennium Problems {{!}} Clay Mathematics Institute|url=http://www.claymath.org/millennium-problems|access-date=2020-08-25|website=www.claymath.org}}</ref> Currently, six of the problems remain ].<ref>{{Cite web|date=2013-12-15|title=Poincaré Conjecture {{!}} Clay Mathematics Institute|url=http://www.claymath.org/millenium-problems/poincar%C3%A9-conjecture|access-date=2020-08-25|archive-url=https://web.archive.org/web/20131215120130/http://www.claymath.org/millenium-problems/poincar%C3%A9-conjecture|archive-date=2013-12-15}}</ref> * The ] are seven problems in ] that were stated by the ] in 2000.<ref>{{Cite web|title=Millennium Problems {{!}} Clay Mathematics Institute|url=http://www.claymath.org/millennium-problems|access-date=2020-08-25|website=www.claymath.org}}</ref> Currently, six of the problems remain ].<ref>{{Cite web|date=2013-12-15|title=Poincaré Conjecture {{!}} Clay Mathematics Institute|url=http://www.claymath.org/millenium-problems/poincar%C3%A9-conjecture|access-date=2020-08-25|archive-url=https://web.archive.org/web/20131215120130/http://www.claymath.org/millenium-problems/poincar%C3%A9-conjecture|archive-date=2013-12-15}}</ref>

]
===Basic calculations=== ===Basic calculations===
{|class="wikitable" style="text-align: center; background: white" {|class="wikitable" style="text-align: center; background: white"
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|62748517 |62748517
|} |}

====In decimal====

In ] representation, the ] of 7 repeats six ] (as 0.{{overline|142857}}),<ref>{{Cite book |last=Wells |first= D. |title=The Penguin Dictionary of Curious and Interesting Numbers |url=https://archive.org/details/penguindictionar0000well_f3y1/mode/2up |url-access=registration |publisher=] |location=London |year=1987 |pages=171–174 |isbn=0-14-008029-5 |oclc=39262447 |s2cid=118329153 }}</ref><ref>{{Cite OEIS |A060283 |Periodic part of decimal expansion of reciprocal of n-th prime (leading 0's moved to end). |access-date=2024-04-02 }}</ref> whose sum when ] back to ] is equal to 28.

{{num|999,999}} divided by 7 is exactly {{num|142,857}}. Therefore, when a ] with 7 in the ] is converted to a ] expansion, the result has the same six-] repeating sequence after the decimal point, but the sequence can start with any of those six digits.<ref>Bryan Bunch, ''The Kingdom of Infinite Number''. New York: W. H. Freeman & Company (2000): 82</ref> For example, {{nowrap|1=1/7 = 0.142857 142857...}} and {{nowrap|1=2/7 = 0.285714 285714....}}

In fact, if one sorts the digits in the number 142,857 in ascending order, 124578, it is possible to know from which of the digits the decimal part of the number is going to begin with. The remainder of dividing any number by 7 will give the position in the sequence 124578 that the decimal part of the resulting number will start. For example, 628 ÷ 7 = {{sfrac|89|5|7}}; here 5 is the remainder, and would correspond to number 7 in the ranking of the ascending sequence. So in this case, {{nowrap|1=628 ÷ 7 = 89.714285}}. Another example, {{nowrap|1=5238 ÷ 7 = {{sfrac|748|2|7}}}}, hence the remainder is 2, and this corresponds to number 2 in the sequence. In this case, {{nowrap|1=5238 ÷ 7 = 748.285714}}.


==In science== ==In science==

Revision as of 09:51, 8 August 2024

Integer number 7 This article is about the number. For the year, see AD 7. For other uses, see 7 (disambiguation) and No. 7 (disambiguation). Not to be confused with . Natural number
← 6 7 8 →
−1 0 1 2 3 4 5 6 7 8 9 0 10 20 30 40 50 60 70 80 90
Cardinalseven
Ordinal7th
(seventh)
Numeral systemseptenary
Factorizationprime
Prime4th
Divisors1, 7
Greek numeralΖ´
Roman numeralVII, vii
Greek prefixhepta-/hept-
Latin prefixseptua-
Binary1112
Ternary213
Senary116
Octal78
Duodecimal712
Hexadecimal716
Greek numeralZ, ζ
Amharic
Arabic, Kurdish, Persian٧
Sindhi, Urdu۷
Bengali
Chinese numeral七, 柒
Devanāgarī
Telugu
Tamil
Hebrewז
Khmer
Thai
Kannada
Malayalam
ArmenianԷ
Babylonian numeral𒐛
Egyptian hieroglyph𓐀
Morse code_ _...

7 (seven) is the natural number following 6 and preceding 8. It is the only prime number preceding a cube.

As an early prime number in the series of positive integers, the number seven has greatly symbolic associations in religion, mythology, superstition and philosophy. The seven classical planets resulted in seven being the number of days in a week. 7 is often considered lucky in Western culture and is often seen as highly symbolic. Unlike Western culture, in Vietnamese culture, the number seven is sometimes considered unlucky.

Evolution of the Arabic digit

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For early Brahmi numerals, 7 was written more or less in one stroke as a curve that looks like an uppercase ⟨J⟩ vertically inverted (ᒉ). The western Arab peoples' main contribution was to make the longer line diagonal rather than straight, though they showed some tendencies to making the digit more rectilinear. The eastern Arab peoples developed the digit from a form that looked something like 6 to one that looked like an uppercase V. Both modern Arab forms influenced the European form, a two-stroke form consisting of a horizontal upper stroke joined at its right to a stroke going down to the bottom left corner, a line that is slightly curved in some font variants. As is the case with the European digit, the Cham and Khmer digit for 7 also evolved to look like their digit 1, though in a different way, so they were also concerned with making their 7 more different. For the Khmer this often involved adding a horizontal line to the top of the digit. This is analogous to the horizontal stroke through the middle that is sometimes used in handwriting in the Western world but which is almost never used in computer fonts. This horizontal stroke is, however, important to distinguish the glyph for seven from the glyph for one in writing that uses a long upstroke in the glyph for 1. In some Greek dialects of the early 12th century the longer line diagonal was drawn in a rather semicircular transverse line.

On seven-segment displays, 7 is the digit with the most common graphic variation (1, 6 and 9 also have variant glyphs). Most calculators use three line segments, but on Sharp, Casio, and a few other brands of calculators, 7 is written with four line segments because in Japan, Korea and Taiwan 7 is written with a "hook" on the left, as ① in the following illustration.

While the shape of the character for the digit 7 has an ascender in most modern typefaces, in typefaces with text figures the character usually has a descender (⁊), as, for example, in .

Most people in Continental Europe, Indonesia, and some in Britain, Ireland, and Canada, as well as Latin America, write 7 with a line through the middle (7), sometimes with the top line crooked. The line through the middle is useful to clearly differentiate the digit from the digit one, as the two can appear similar when written in certain styles of handwriting. This form is used in official handwriting rules for primary school in Russia, Ukraine, Bulgaria, Poland, other Slavic countries, France, Italy, Belgium, the Netherlands, Finland, Romania, Germany, Greece, and Hungary.

Mathematics

Seven, the fourth prime number, is not only a Mersenne prime (since 2 3 1 = 7 {\displaystyle 2^{3}-1=7} ) but also a double Mersenne prime since the exponent, 3, is itself a Mersenne prime. It is also a Newman–Shanks–Williams prime, a Woodall prime, a factorial prime, a Harshad number, a lucky prime, a happy number (happy prime), a safe prime (the only Mersenne safe prime), a Leyland prime of the second kind and the fourth Heegner number.

A heptagon in Euclidean space is unable to generate uniform tilings alongside other polygons, like the regular pentagon. However, it is one of fourteen polygons that can fill a plane-vertex tiling, in its case only alongside a regular triangle and a 42-sided polygon (3.7.42). This is also one of twenty-one such configurations from seventeen combinations of polygons, that features the largest and smallest polygons possible.
Otherwise, for any regular n-sided polygon, the maximum number of intersecting diagonals (other than through its center) is at most 7. Since the regular heptagon contains fourteen diagonals, the difference between its number of diagonals and its number of sides is seven; the heptagon is the only convex polygon to have a one-to-two ratio between the number of its sides and diagonals (as any n-sided polygon for n ≥ 3 sides, convex or concave, has ⁠n(n – 3)/2⁠ diagonals).
Seven of eight semiregular tilings are Wythoffian (the only exception is the elongated triangular tiling), where there exist three tilings that are regular, all of which are Wythoffian. Seven of nine uniform colorings of the square tiling are also Wythoffian, and between the triangular tiling and square tiling, there are seven non-Wythoffian uniform colorings of a total twenty-one that belong to regular tilings (all hexagonal tiling uniform colorings are Wythoffian).
In two dimensions, there are precisely seven 7-uniform Krotenheerdt tilings, with no other such k-uniform tilings for k > 7, and it is also the only k for which the count of Krotenheerdt tilings agrees with k.
Graph of the probability distribution of the sum of two six-sided dice
  • The seventh dimension is the only dimension aside from the familiar three where a vector cross product can be defined. This is related to the octonions over the imaginary subspace Im(O) in 7-space whose commutator between two octonions defines this vector product, wherein the Fano plane describes the multiplicative algebraic structure of the unit octonions {e0, e1, e2, ..., e7}, with e0 an identity element.
  • The lowest known dimension for an exotic sphere is the seventh dimension, with a total of 28 differentiable structures; there may exist exotic smooth structures on the four-dimensional sphere.
  • In hyperbolic space, 7 is the highest dimension for non-simplex hypercompact Vinberg polytopes of rank n + 4 mirrors, where there is one unique figure with eleven facets. On the other hand, such figures with rank n + 3 mirrors exist in dimensions 4, 5, 6 and 8; not in 7. Hypercompact polytopes with lowest possible rank of n + 2 mirrors exist up through the 17th dimension, where there is a single solution as well.
  • There are seven fundamental types of catastrophes.
  • When rolling two standard six-sided dice, seven has a 6 in 6 (or ⁠1/6⁠) probability of being rolled (1–6, 6–1, 2–5, 5–2, 3–4, or 4–3), the greatest of any number. The opposite sides of a standard six-sided dice always add to 7.
  • The Millennium Prize Problems are seven problems in mathematics that were stated by the Clay Mathematics Institute in 2000. Currently, six of the problems remain unsolved.

Basic calculations

Multiplication 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 50 100 1000
7 × x 7 14 21 28 35 42 49 56 63 70 77 84 91 98 105 112 119 126 133 140 147 154 161 168 175 350 700 7000
Division 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
7 ÷ x 7 3.5 2.3 1.75 1.4 1.16 1 0.875 0.7 0.7 0.63 0.583 0.538461 0.5 0.46
x ÷ 7 0.142857 0.285714 0.428571 0.571428 0.714285 0.857142 1.142857 1.285714 1.428571 1.571428 1.714285 1.857142 2 2.142857
Exponentiation 1 2 3 4 5 6 7 8 9 10 11 12 13
7 7 49 343 2401 16807 117649 823543 5764801 40353607 282475249 1977326743 13841287201 96889010407
x 1 128 2187 16384 78125 279936 823543 2097152 4782969 10000000 19487171 35831808 62748517

In decimal

In decimal representation, the reciprocal of 7 repeats six digits (as 0.142857), whose sum when cycling back to 1 is equal to 28.

999,999 divided by 7 is exactly 142,857. Therefore, when a vulgar fraction with 7 in the denominator is converted to a decimal expansion, the result has the same six-digit repeating sequence after the decimal point, but the sequence can start with any of those six digits. For example, 1/7 = 0.142857 142857... and 2/7 = 0.285714 285714....

In fact, if one sorts the digits in the number 142,857 in ascending order, 124578, it is possible to know from which of the digits the decimal part of the number is going to begin with. The remainder of dividing any number by 7 will give the position in the sequence 124578 that the decimal part of the resulting number will start. For example, 628 ÷ 7 = ⁠89+5/7⁠; here 5 is the remainder, and would correspond to number 7 in the ranking of the ascending sequence. So in this case, 628 ÷ 7 = 89.714285. Another example, 5238 ÷ 7 = ⁠748+2/7⁠, hence the remainder is 2, and this corresponds to number 2 in the sequence. In this case, 5238 ÷ 7 = 748.285714.

In science

In psychology

Classical antiquity

The Pythagoreans invested particular numbers with unique spiritual properties. The number seven was considered to be particularly interesting because it consisted of the union of the physical (number 4) with the spiritual (number 3). In Pythagorean numerology the number 7 means spirituality.

References from classical antiquity to the number seven include:

"Number Seven"
by William Sidney Gibson
Read by Ruth Golding for LibriVox
Audio 00:15:59 (full text)
Problems playing this file? See media help.

Religion and mythology

Judaism

Main article: Significance of numbers in Judaism

The number seven forms a widespread typological pattern within Hebrew scripture, including:

  • Seven days (more precisely yom) of Creation, leading to the seventh day or Sabbath (Genesis 1)
  • Seven-fold vengeance visited on upon Cain for the killing of Abel (Genesis 4:15)
  • Seven pairs of every clean animal loaded onto the ark by Noah (Genesis 7:2)
  • Seven years of plenty and seven years of famine in Pharaoh's dream (Genesis 41)
  • Seventh son of Jacob, Gad, whose name means good luck (Genesis 46:16)
  • Seven times bullock's blood is sprinkled before God (Leviticus 4:6)
  • Seven nations God told the Israelites they would displace when they entered the land of Israel (Deuteronomy 7:1)
  • Seven days (de jure, but de facto eight days) of the Passover feast (Exodus 13:3–10)
  • Seven-branched candelabrum or Menorah (Exodus 25)
  • Seven trumpets played by seven priests for seven days to bring down the walls of Jericho (Joshua 6:8)
  • Seven things that are detestable to God (Proverbs 6:16–19)
  • Seven Pillars of the House of Wisdom (Proverbs 9:1)
  • Seven archangels in the deuterocanonical Book of Tobit (12:15)

References to the number seven in Jewish knowledge and practice include:

  • Seven divisions of the weekly readings or aliyah of the Torah
  • Seven aliyot on Shabbat
  • Seven blessings recited under the chuppah during a Jewish wedding ceremony
  • Seven days of festive meals for a Jewish bride and groom after their wedding, known as Sheva Berachot or Seven Blessings
  • Seven Ushpizzin prayers to the Jewish patriarchs during the holiday of Sukkot

Christianity

Following the tradition of the Hebrew Bible, the New Testament likewise uses the number seven as part of a typological pattern:

Seven lampstands in The Vision of John on Patmos by Julius Schnorr von Carolsfeld, 1860

References to the number seven in Christian knowledge and practice include:

Islam

References to the number seven in Islamic knowledge and practice include:

Hinduism

References to the number seven in Hindu knowledge and practice include:

  • Seven worlds in the universe and seven seas in the world in Hindu cosmology
  • Seven sages or Saptarishi and their seven wives or Sapta Matrka in Hinduism
  • Seven Chakras in eastern philosophy
  • Seven stars in a constellation called "Saptharishi Mandalam" in Indian astronomy
  • Seven promises, or Saptapadi, and seven circumambulations around a fire at Hindu weddings
  • Seven virgin goddesses or Saptha Kannimar worshipped in temples in Tamil Nadu, India
  • Seven hills at Tirumala known as Yedu Kondalavadu in Telugu, or ezhu malaiyan in Tamil, meaning "Sevenhills God"
  • Seven steps taken by the Buddha at birth
  • Seven divine ancestresses of humankind in Khasi mythology
  • Seven octets or Saptak Swaras in Indian Music as the basis for Ragas compositions
  • Seven Social Sins listed by Mahatma Gandhi

Eastern tradition

Other references to the number seven in Eastern traditions include:

The Seven Lucky Gods in Japanese mythology

Other references

Other references to the number seven in traditions from around the world include:

See also

Notes

  1. Carl B. Boyer, A History of Mathematics (1968) p.52, 2nd edn.
  2. Georges Ifrah, The Universal History of Numbers: From Prehistory to the Invention of the Computer transl. David Bellos et al. London: The Harvill Press (1998): 395, Fig. 24.67
  3. Eeva Törmänen (September 8, 2011). "Aamulehti: Opetushallitus harkitsee numero 7 viivan palauttamista". Tekniikka & Talous (in Finnish). Archived from the original on September 17, 2011. Retrieved September 9, 2011.
  4. "Education writing numerals in grade 1." Archived 2008-10-02 at the Wayback Machine(Russian)
  5. "Example of teaching materials for pre-schoolers"(French)
  6. Elli Harju (August 6, 2015). ""Nenosen seiska" teki paluun: Tiesitkö, mistä poikkiviiva on peräisin?". Iltalehti (in Finnish).
  7. "Μαθηματικά Α' Δημοτικού" [Mathematics for the First Grade] (PDF) (in Greek). Ministry of Education, Research, and Religions. p. 33. Retrieved May 7, 2018.
  8. Weisstein, Eric W. "Double Mersenne Number". mathworld.wolfram.com. Retrieved 2020-08-06.
  9. "Sloane's A088165 : NSW primes". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  10. "Sloane's A050918 : Woodall primes". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  11. "Sloane's A088054 : Factorial primes". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  12. "Sloane's A031157 : Numbers that are both lucky and prime". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  13. "Sloane's A035497 : Happy primes". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  14. "Sloane's A003173 : Heegner numbers". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  15. Heyden, Anders; Sparr, Gunnar; Nielsen, Mads; Johansen, Peter (2003-08-02). Computer Vision – ECCV 2002: 7th European Conference on Computer Vision, Copenhagen, Denmark, May 28–31, 2002. Proceedings. Part II. Springer. p. 661. ISBN 978-3-540-47967-3. A frieze pattern can be classified into one of the 7 frieze groups...
  16. Grünbaum, Branko; Shephard, G. C. (1987). "Section 1.4 Symmetry Groups of Tilings". Tilings and Patterns. New York: W. H. Freeman and Company. pp. 40–45. doi:10.2307/2323457. ISBN 0-7167-1193-1. JSTOR 2323457. OCLC 13092426. S2CID 119730123.
  17. Sloane, N. J. A. (ed.). "Sequence A004029 (Number of n-dimensional space groups.)". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2023-01-30.
  18. Weisstein, Eric W. "Heptagon". mathworld.wolfram.com. Retrieved 2020-08-25.
  19. Weisstein, Eric W. "7". mathworld.wolfram.com. Retrieved 2020-08-07.
  20. Sloane, N. J. A. (ed.). "Sequence A000566 (Heptagonal numbers (or 7-gonal numbers))". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2023-01-09.
  21. Sloane, N. J. A. (ed.). "Sequence A003215". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2016-06-01.
  22. Grünbaum, Branko; Shepard, Geoffrey (November 1977). "Tilings by Regular Polygons" (PDF). Mathematics Magazine. 50 (5). Taylor & Francis, Ltd.: 231. doi:10.2307/2689529. JSTOR 2689529. S2CID 123776612. Zbl 0385.51006.
  23. Jardine, Kevin. "Shield - a 3.7.42 tiling". Imperfect Congruence. Retrieved 2023-01-09. 3.7.42 as a unit facet in an irregular tiling.
  24. Grünbaum, Branko; Shepard, Geoffrey (November 1977). "Tilings by Regular Polygons" (PDF). Mathematics Magazine. 50 (5). Taylor & Francis, Ltd.: 229–230. doi:10.2307/2689529. JSTOR 2689529. S2CID 123776612. Zbl 0385.51006.
  25. Dallas, Elmslie William (1855). "Part II. (VII): Of the Circle, with its Inscribed and Circumscribed Figures − Equal Division and the Construction of Polygons". The Elements of Plane Practical Geometry. London: John W. Parker & Son, West Strand. p. 134.
    "...It will thus be found that, including the employment of the same figures, there are seventeen different combinations of regular polygons by which this may be effected; namely, —
    When three polygons are employed, there are ten ways; viz., 6,6,63.7.423,8,243,9,183,10,153,12,124,5,204,6,124,8,85,5,10.
    With four polygons there are four ways, viz., 4,4,4,43,3,4,123,3,6,63,4,4,6.
    With five polygons there are two ways, viz., 3,3,3,4,43,3,3,3,6.
    With six polygons one way — all equilateral triangles ."
    Note: the only four other configurations from the same combinations of polygons are: 3.4.3.12, (3.6), 3.4.6.4, and 3.3.4.3.4.
  26. Poonen, Bjorn; Rubinstein, Michael (1998). "The Number of Intersection Points Made by the Diagonals of a Regular Polygon" (PDF). SIAM Journal on Discrete Mathematics. 11 (1). Philadelphia: Society for Industrial and Applied Mathematics: 135–156. arXiv:math/9508209. doi:10.1137/S0895480195281246. MR 1612877. S2CID 8673508. Zbl 0913.51005.
  27. Sloane, N. J. A. (ed.). "Sequence A307681 (difference between the number of sides and the number of diagonals of a convex n-gon)". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation.
  28. Sloane, N. J. A. (ed.). "Sequence A000096 (a(n) = n*(n+3)/2 = the number of diagonals of an n-gon)". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation.
  29. Coxeter, H. S. M. (1999). "Chapter 3: Wythoff's Construction for Uniform Polytopes". The Beauty of Geometry: Twelve Essays. Mineola, NY: Dover Publications. pp. 326–339. ISBN 9780486409191. OCLC 41565220. S2CID 227201939. Zbl 0941.51001.
  30. Grünbaum, Branko; Shephard, G. C. (1987). "Section 2.1: Regular and uniform tilings". Tilings and Patterns. New York: W. H. Freeman and Company. pp. 62–64. doi:10.2307/2323457. ISBN 0-7167-1193-1. JSTOR 2323457. OCLC 13092426. S2CID 119730123.
  31. Grünbaum, Branko; Shephard, G. C. (1987). "Section 2.9 Archimedean and uniform colorings". Tilings and Patterns. New York: W. H. Freeman and Company. pp. 102–107. doi:10.2307/2323457. ISBN 0-7167-1193-1. JSTOR 2323457. OCLC 13092426. S2CID 119730123.
  32. Sloane, N. J. A. (ed.). "Sequence A068600 (Number of n-uniform tilings having n different arrangements of polygons about their vertices.)". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation. Retrieved 2023-01-09.
  33. Grünbaum, Branko; Shepard, Geoffrey (November 1977). "Tilings by Regular Polygons" (PDF). Mathematics Magazine. 50 (5). Taylor & Francis, Ltd.: 236. doi:10.2307/2689529. JSTOR 2689529. S2CID 123776612. Zbl 0385.51006.
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