Circumference

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  circumference C
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  diameter D
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  radius R
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  center or origin O
Circumference = π × diameter = 2π × radius.

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In geometry, the circumference (Script error: No such module "params".) is the perimeter of a circle or ellipse. The circumference is the arc length of the circle, as if it were opened up and straightened out to a line segment.[1] More generally, the perimeter is the curve length around any closed figure. Circumference may also refer to the circle itself, that is, the locus corresponding to the edge of a disk. The Page Template:Visible anchor/styles.css has no content.circumference of a sphere is the circumference, or length, of any one of its great circles.

Circle

Lua error in package.lua at line 80: module 'Module:Hatnote list' not found. The circumference of a circle is the distance around it, but if, as in many elementary treatments, distance is defined in terms of straight lines, this cannot be used as a definition. Under these circumstances, the circumference of a circle may be defined as the limit of the perimeters of inscribed regular polygons as the number of sides increases without bound.[2] The term circumference is used when measuring physical objects, as well as when considering abstract geometric forms.

File:Pi-unrolled-720.gif
When a circle's diameter is 1, its circumference is π.
File:2pi-unrolled.gif
When a circle's radius is 1—called a unit circle—its circumference is 2π.

Relationship with π

The circumference of a circle is related to one of the most important mathematical constants. This constant, pi, is represented by the Greek letter π. Its first few decimal digits are 3.141592653589793...[3] Pi is defined as the ratio of a circle's circumference C to its diameter d:[4] π=Cd.

Or, equivalently, as the ratio of the circumference to twice the radius. The above formula can be rearranged to solve for the circumference: C=πd=2πr.

The ratio of the circle's circumference to its radius is equivalent to 2π.[a] This is also the number of radians in one turn. The use of the mathematical constant π is ubiquitous in mathematics, engineering, and science.

In Measurement of a Circle written circa 250 BCE, Archimedes showed that this ratio (written as C/d, since he did not use the name π) was greater than 3Page Template:Sfrac/styles.css has no content.10/71 but less than 3Page Template:Sfrac/styles.css has no content.1/7 by calculating the perimeters of an inscribed and a circumscribed regular polygon of 96 sides.[9] This method for approximating π was used for centuries, obtaining more accuracy by using polygons of larger and larger number of sides. The last such calculation was performed in 1630 by Christoph Grienberger who used polygons with 1040 sides.

Ellipse

File:Ellipses same circumference.png
Circle, and ellipses with the same circumference

Script error: No such module "Labelled list hatnote". Some authors use circumference to denote the perimeter of an ellipse. There is no general formula for the circumference of an ellipse in terms of the semi-major and semi-minor axes of the ellipse that uses only elementary functions. However, there are approximate formulas in terms of these parameters. One such approximation, due to Euler (1773), for the canonical ellipse, x2a2+y2b2=1, is Cellipseπ2(a2+b2). Some lower and upper bounds on the circumference of the canonical ellipse with ab are:[10] 2πbC2πa, π(a+b)C4(a+b), 4a2+b2Cπ2(a2+b2).

Here the upper bound 2πa is the circumference of a circumscribed concentric circle passing through the endpoints of the ellipse's major axis, and the lower bound 4a2+b2 is the perimeter of an inscribed rhombus with vertices at the endpoints of the major and minor axes.

The circumference of an ellipse can be expressed exactly in terms of the complete elliptic integral of the second kind.[11] More precisely, Cellipse=4a0π/21e2sin2θ dθ, where a is the length of the semi-major axis and e is the eccentricity 1b2/a2.

See also

Notes

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  1. ^ The Greek letter 𝜏 (tau) is sometimes used to represent this constant. This notation is accepted in several online calculators[5] and many programming languages.[6][7][8]

References

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  1. ^ Page Module:Citation/CS1/styles.css has no content.Bennett, Jeffrey; Briggs, William (2005), Using and Understanding Mathematics / A Quantitative Reasoning Approach (3rd ed.), Addison-Wesley, p. 580, ISBN 978-0-321-22773-7
  2. ^ Page Module:Citation/CS1/styles.css has no content.Jacobs, Harold R. (1974), Geometry, W. H. Freeman and Co., p. 565, ISBN 0-7167-0456-0
  3. ^ Page Module:Citation/CS1/styles.css has no content.Sloane, N. J. A. (ed.). "Sequence A000796". The On-Line Encyclopedia of Integer Sequences. OEIS Foundation.
  4. ^ Page Module:Citation/CS1/styles.css has no content."Mathematics Essentials Lesson: Circumference of Circles". openhighschoolcourses.org. Retrieved 2024-12-02.
  5. ^ Page Module:Citation/CS1/styles.css has no content."Supported Functions". help.desmos.com. Archived from the original on 2023-03-26. Retrieved 2024-10-21.
  6. ^ Page Module:Citation/CS1/styles.css has no content."math — Mathematical functions". Python 3.7.0 documentation. Archived from the original on 2019-07-29. Retrieved 2019-08-05.
  7. ^ Page Module:Citation/CS1/styles.css has no content."Math class". Java 19 documentation.
  8. ^ Page Module:Citation/CS1/styles.css has no content."std::f64::consts::TAU - Rust". doc.rust-lang.org. Archived from the original on 2023-07-18. Retrieved 2024-10-21.
  9. ^ Page Module:Citation/CS1/styles.css has no content.Katz, Victor J. (1998), A History of Mathematics / An Introduction (2nd ed.), Addison-Wesley Longman, p. 109, ISBN 978-0-321-01618-8
  10. ^ Page Module:Citation/CS1/styles.css has no content.Jameson, G.J.O. (2014). "Inequalities for the perimeter of an ellipse". Mathematical Gazette. 98 (499): 227–234. doi:10.2307/3621497. JSTOR 3621497. S2CID 126427943.
  11. ^ Page Module:Citation/CS1/styles.css has no content.Almkvist, Gert; Berndt, Bruce (1988), "Gauss, Landen, Ramanujan, the arithmetic-geometric mean, ellipses, π, and the Ladies Diary", American Mathematical Monthly, 95 (7): 585–608, doi:10.2307/2323302, JSTOR 2323302, MR 0966232, S2CID 119810884

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