Show In geometry, an altitude of a triangle is a line segment through a vertex and perpendicular to (i.e., forming a right angle with) a line containing the base (the side opposite the vertex). This line containing the opposite side is called the extended base of the altitude. The intersection of the extended base and the altitude is called the foot of the altitude. The length of the altitude, often simply called "the altitude", is the distance between the extended base and the vertex. The process of drawing the altitude from the vertex to the foot is known as dropping the altitude at that vertex. It is a special case of orthogonal projection. Altitudes can be used in the computation of the area of a triangle: one half of the product of an altitude's length and its base's length equals the triangle's area. Thus, the longest altitude is perpendicular to the shortest side of the triangle. The altitudes are also related to the sides of the triangle through the trigonometric functions. In an isosceles triangle (a triangle with two congruent sides), the altitude having the incongruent side as its base will have the midpoint of that side as its foot. Also the altitude having the incongruent side as its base will be the angle bisector of the vertex angle. It is common to mark the altitude with the letter h (as in height), often subscripted with the name of the side the altitude is drawn to. The altitude of a right triangle from its right angle to its hypotenuse is the geometric mean of the lengths of the segments the hypotenuse is split into. Using Pythagoras' theorem on the 3 triangles of sides (p + q, r, s ), (r, p, h ) and (s, h, q ),( p + q ) 2 = r 2 + s 2 p 2 + 2 p q + q 2 = p 2 + h 2 ⏞ + h 2 + q 2 ⏞ 2 p q = 2 h 2 ∴ h = p q {\displaystyle {\begin{aligned}(p+q)^{2}\;\;&=\quad r^{2}\;\;\,+\quad s^{2}\\p^{2}\!\!+\!2pq\!+\!q^{2}&=\overbrace {p^{2}\!\!+\!h^{2}} +\overbrace {h^{2}\!\!+\!q^{2}} \\2pq\quad \;\;\;&=2h^{2}\;\therefore h\!=\!{\sqrt {pq}}\\\end{aligned}}} In a right triangle, the altitude drawn to the hypotenuse c divides the hypotenuse into two segments of lengths p and q. If we denote the length of the altitude by hc, we then have the relation h c = p q {\displaystyle h_{c}={\sqrt {pq}}} (Geometric mean theorem)For acute triangles the feet of the altitudes all fall on the triangle's sides (not extended). In an obtuse triangle (one with an obtuse angle), the foot of the altitude to the obtuse-angled vertex falls in the interior of the opposite side, but the feet of the altitudes to the acute-angled vertices fall on the opposite extended side, exterior to the triangle. This is illustrated in the adjacent diagram: in this obtuse triangle, an altitude dropped perpendicularly from the top vertex, which has an acute angle, intersects the extended horizontal side outside the triangle. OrthocenterThree altitudes intersecting at the orthocenterThe three (possibly extended) altitudes intersect in a single point, called the orthocenter of the triangle, usually denoted by H.[1][2] The orthocenter lies inside the triangle if and only if the triangle is acute (i.e. does not have an angle greater than or equal to a right angle). If one angle is a right angle, the orthocenter coincides with the vertex at the right angle.[2] Let A, B, C denote the vertices and also the angles of the triangle, and let a = |BC|, b = |CA|, c = |AB| be the side lengths. The orthocenter has trilinear coordinates[3] sec A : sec B : sec C = cos A − sin B sin C : cos B − sin C sin A : cos C − sin A sin B , {\displaystyle \sec A:\sec B:\sec C=\cos A-\sin B\sin C:\cos B-\sin C\sin A:\cos C-\sin A\sin B,} and barycentric coordinates ( a 2 + b 2 − c 2 ) ( a 2 − b 2 + c 2 ) : ( a 2 + b 2 − c 2 ) ( − a 2 + b 2 + c 2 ) : ( a 2 − b 2 + c 2 ) ( − a 2 + b 2 + c 2 ) {\displaystyle \displaystyle (a^{2}+b^{2}-c^{2})(a^{2}-b^{2}+c^{2}):(a^{2}+b^{2}-c^{2})(-a^{2}+b^{2}+c^{2}):(a^{2}-b^{2}+c^{2})(-a^{2}+b^{2}+c^{2})} = tan A : tan B : tan C . {\displaystyle =\tan A:\tan B:\tan C.}Since barycentric coordinates are all positive for a point in a triangle's interior but at least one is negative for a point in the exterior, and two of the barycentric coordinates are zero for a vertex point, the barycentric coordinates given for the orthocenter show that the orthocenter is in an acute triangle's interior, on the right-angled vertex of a right triangle, and exterior to an obtuse triangle. In the complex plane, let the points A, B and C represent the numbers z A {\displaystyle z_{A}} , z B {\displaystyle z_{B}} and, respectively, z C {\displaystyle z_{C}} and assume that the circumcenter of triangle ABC is located at the origin of the plane. Then, the complex number z H = z A + z B + z C {\displaystyle z_{H}=z_{A}+z_{B}+z_{C}}is represented by the point H, namely the orthocenter of triangle ABC.[4] From this, the following characterizations of the orthocenter H by means of free vectors can be established straightforwardly: O H → = ∑ c y c l i c O A → , 2 ⋅ H O → = ∑ c y c l i c H A → . {\displaystyle {\vec {OH}}=\sum \limits _{\scriptstyle {\rm {cyclic}}}{\vec {OA}},\qquad 2\cdot {\vec {HO}}=\sum \limits _{\scriptstyle {\rm {cyclic}}}{\vec {HA}}.}The first of the previous vector identities is also known as the problem of Sylvester, proposed by James Joseph Sylvester.[5] PropertiesLet D, E, and F denote the feet of the altitudes from A, B, and C respectively. Then:
Relation with circles and conicsDenote the circumradius of the triangle by R. Then[12][13] a 2 + b 2 + c 2 + A H 2 + B H 2 + C H 2 = 12 R 2 . {\displaystyle a^{2}+b^{2}+c^{2}+AH^{2}+BH^{2}+CH^{2}=12R^{2}.}In addition, denoting r as the radius of the triangle's incircle, ra, rb, and rc as the radii of its excircles, and R again as the radius of its circumcircle, the following relations hold regarding the distances of the orthocenter from the vertices:[14] r a + r b + r c + r = A H + B H + C H + 2 R , {\displaystyle r_{a}+r_{b}+r_{c}+r=AH+BH+CH+2R,} r a 2 + r b 2 + r c 2 + r 2 = A H 2 + B H 2 + C H 2 + ( 2 R ) 2 . {\displaystyle r_{a}^{2}+r_{b}^{2}+r_{c}^{2}+r^{2}=AH^{2}+BH^{2}+CH^{2}+(2R)^{2}.}If any altitude, for example, AD, is extended to intersect the circumcircle at P, so that AP is a chord of the circumcircle, then the foot D bisects segment HP:[7] H D = D P . {\displaystyle HD=DP.}The directrices of all parabolas that are externally tangent to one side of a triangle and tangent to the extensions of the other sides pass through the orthocenter.[15] A circumconic passing through the orthocenter of a triangle is a rectangular hyperbola.[16] Relation to other centers, the nine-point circleThe orthocenter H, the centroid G, the circumcenter O, and the center N of the nine-point circle all lie on a single line, known as the Euler line.[17] The center of the nine-point circle lies at the midpoint of the Euler line, between the orthocenter and the circumcenter, and the distance between the centroid and the circumcenter is half of that between the centroid and the orthocenter:[18] O H = 2 N H , {\displaystyle OH=2NH,} 2 O G = G H . {\displaystyle 2OG=GH.}The orthocenter is closer to the incenter I than it is to the centroid, and the orthocenter is farther than the incenter is from the centroid: H I < H G , {\displaystyle HI<HG,} H G > I G . {\displaystyle HG>IG.}In terms of the sides a, b, c, inradius r and circumradius R,[19] O H 2 = R 2 − 8 R 2 cos A cos B cos C = 9 R 2 − ( a 2 + b 2 + c 2 ) , {\displaystyle OH^{2}=R^{2}-8R^{2}\cos A\cos B\cos C=9R^{2}-(a^{2}+b^{2}+c^{2}),} [20]: p. 449 H I 2 = 2 r 2 − 4 R 2 cos A cos B cos C . {\displaystyle HI^{2}=2r^{2}-4R^{2}\cos A\cos B\cos C.}Orthic triangleIf the triangle ABC is oblique (does not contain a right-angle), the pedal triangle of the orthocenter of the original triangle is called the orthic triangle or altitude triangle. That is, the feet of the altitudes of an oblique triangle form the orthic triangle, DEF. Also, the incenter (the center of the inscribed circle) of the orthic triangle DEF is the orthocenter of the original triangle ABC.[21] Trilinear coordinates for the vertices of the orthic triangle are given by
The extended sides of the orthic triangle meet the opposite extended sides of its reference triangle at three collinear points.[22][23][21] In any acute triangle, the inscribed triangle with the smallest perimeter is the orthic triangle.[24] This is the solution to Fagnano's problem, posed in 1775.[25] The sides of the orthic triangle are parallel to the tangents to the circumcircle at the original triangle's vertices.[26] The orthic triangle of an acute triangle gives a triangular light route.[27] The tangent lines of the nine-point circle at the midpoints of the sides of ABC are parallel to the sides of the orthic triangle, forming a triangle similar to the orthic triangle.[28] The orthic triangle is closely related to the tangential triangle, constructed as follows: let LA be the line tangent to the circumcircle of triangle ABC at vertex A, and define LB and LC analogously. Let A" = LB ∩ LC, B" = LC ∩ LA, C" = LC ∩ LA. The tangential triangle is A"B"C", whose sides are the tangents to triangle ABC's circumcircle at its vertices; it is homothetic to the orthic triangle. The circumcenter of the tangential triangle, and the center of similitude of the orthic and tangential triangles, are on the Euler line.[20]: p. 447 Trilinear coordinates for the vertices of the tangential triangle are given by
The reference triangle and its orthic triangle are orthologic triangles. For more information on the orthic triangle, see here. Some additional altitude theoremsAltitude in terms of the sidesFor any triangle with sides a, b, c and semiperimeter s = (a + b + c) / 2, the altitude from side a is given by h a = 2 s ( s − a ) ( s − b ) ( s − c ) a . {\displaystyle h_{a}={\frac {2{\sqrt {s(s-a)(s-b)(s-c)}}}{a}}.}This follows from combining Heron's formula for the area of a triangle in terms of the sides with the area formula (1/2)×base×height, where the base is taken as side a and the height is the altitude from A. Inradius theoremsConsider an arbitrary triangle with sides a, b, c and with corresponding altitudes ha, hb, and hc. The altitudes and the incircle radius r are related by[29]: Lemma 1 Circumradius theoremDenoting the altitude from one side of a triangle as ha, the other two sides as b and c, and the triangle's circumradius (radius of the triangle's circumscribed circle) as R, the altitude is given by[30] h a = b c 2 R . {\displaystyle h_{a}={\frac {bc}{2R}}.}Interior pointIf p1, p2, and p3 are the perpendicular distances from any point P to the sides, and h1, h2, and h3 are the altitudes to the respective sides, then[31] p 1 h 1 + p 2 h 2 + p 3 h 3 = 1. {\displaystyle {\frac {p_{1}}{h_{1}}}+{\frac {p_{2}}{h_{2}}}+{\frac {p_{3}}{h_{3}}}=1.}Area theoremDenoting the altitudes of any triangle from sides a, b, and c respectively as h a {\displaystyle h_{a}} , h b {\displaystyle h_{b}} , and h c {\displaystyle h_{c}} , and denoting the semi-sum of the reciprocals of the altitudes as H = ( h a − 1 + h b − 1 + h c − 1 ) / 2 {\displaystyle H=(h_{a}^{-1}+h_{b}^{-1}+h_{c}^{-1})/2} we have[32] A r e a − 1 = 4 H ( H − h a − 1 ) ( H − h b − 1 ) ( H − h c − 1 ) . {\displaystyle \mathrm {Area} ^{-1}=4{\sqrt {H(H-h_{a}^{-1})(H-h_{b}^{-1})(H-h_{c}^{-1})}}.}General point on an altitudeIf E is any point on an altitude AD of any triangle ABC, then[33]: 77–78 A C 2 + E B 2 = A B 2 + C E 2 . {\displaystyle AC^{2}+EB^{2}=AB^{2}+CE^{2}.}Special case trianglesEquilateral triangleFor any point P within an equilateral triangle, the sum of the perpendiculars to the three sides is equal to the altitude of the triangle. This is Viviani's theorem. Right triangleComparison of the inverse Pythagorean theorem with the Pythagorean theoremIn a right triangle the three altitudes ha, hb, and hc (the first two of which equal the leg lengths b and a respectively) are related according to[34][35] 1 h a 2 + 1 h b 2 = 1 h c 2 . {\displaystyle {\frac {1}{h_{a}^{2}}}+{\frac {1}{h_{b}^{2}}}={\frac {1}{h_{c}^{2}}}.}This is also known as the inverse Pythagorean theorem. HistoryThe theorem that the three altitudes of a triangle meet in a single point, the orthocenter, was first proved in a 1749 publication by William Chapple.[36] See also
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