Doubling the cube: Difference between revisions

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False claims of doubling the cube with compass and straightedge abound in mathematical [[Crank (person)|crank]] literature ([[Pseudomathematics]]).
False claims of doubling the cube with compass and straightedge abound in mathematical [[Crank (person)|crank]] literature ([[Pseudomathematics]]).


Although Menaechmus solved this problem, doubling the cube was impossible in the plane with the compass and straightedge, ancient Greek mathematician [[Archytas]] did solve this problem in 4th century B.C. using geometric construction in three dimensions, determining a certain point as the intersection of three surfaces of revolution...[http://www-history.mcs.st-and.ac.uk/HistTopics/Doubling_the_cube.html][http://www.larouchepac.com/pages/economy_files/2004/041014_anim_eco_graphics.htm][http://mathforum.org/dr.math/faq/davies/cubedbl.htm].
Although Menaechmus solved this problem, doubling the cube was impossible in the plane with the compass and straightedge, ancient Greek mathematician [[Archytas]] did solve this problem in 4th century B.C. using geometric construction in three dimensions, determining a certain point as the intersection of three surfaces of revolution...[http://www-history.mcs.st-and.ac.uk/HistTopics/Doubling_the_cube.html][http://mathforum.org/dr.math/faq/davies/cubedbl.htm].


==Solutions==
==Solutions==
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==External link==
==External link==
* [http://www.cut-the-knot.org/Curriculum/Geometry/Delian.shtml Delian Problem Solved. Or Is It?] at [[cut-the-knot]]
* [http://www.cut-the-knot.org/Curriculum/Geometry/Delian.shtml Delian Problem Solved. Or Is It?] at [[cut-the-knot]]

http://wlym.com/antidummies/part42.html
http://wlym.com/pedagogicals/note.html


[[Category:Euclidean plane geometry]]
[[Category:Euclidean plane geometry]]

Revision as of 19:19, 21 December 2006

Doubling the cube is one of the three most famous geometric problems unsolvable by compass and straightedge construction. It was known to the Greeks, and earlier to the mathematicians of India.

To double the cube means to be given a cube of some side length s and volume V, and to construct a new cube, larger than the first, with volume 2V and therefore side length . The problem is known to be impossible to solve with only compass and straightedge, because is not a constructible number.

History

According to legend, the citizens of Athens consulted the oracle of Apollo at Delos in 430 BC, in order to learn how to defeat a plague which was ravaging their lands. The oracle responded that to stop the plague, they must double the size of their altar. The Athenians dutifully doubled each side of the altar, and the plague increased. The correct interpretation was that they must double the volume of their altar, not merely its side length; this proved to be a most difficult problem indeed, but was solved in 350 BC to the efforts of Menaechmus. The only problem was that the plague was finished several decades age .It is due to this legend that the problem is often known as the Delian problem.

False claims of doubling the cube with compass and straightedge abound in mathematical crank literature (Pseudomathematics).

Although Menaechmus solved this problem, doubling the cube was impossible in the plane with the compass and straightedge, ancient Greek mathematician Archytas did solve this problem in 4th century B.C. using geometric construction in three dimensions, determining a certain point as the intersection of three surfaces of revolution...[1][2].

Solutions

An illustration of the ruler-and-compass method

There are many ways to construct which involve tools other than compass and straightedge. In fact, some of these tools can themselves be constructed using compass and straightedge, but must be cut out of a sheet of paper before they can be used. For example, construct a ruler with a single unit distance marked on it. Construct an equilateral triangle ABC with side length 1, and extend side by one unit to form the line segment . Extend side to form the ray , and draw the ray . Now take the ruler and place it such that it passes through vertex A and intersects at G and at H, such that the distance GH is exactly 1. The distance AG will then be precisely .

Other more complicated methods of doubling the cube involve the cissoid of Diocles or the conchoid of Nicomedes.

External link