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UCR MATH 133 - Concurrence theoremsm

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110 I I I.4 : Concurrence theorems If, when three coins are tossed, they always turn up heads, we know at once that the matter demands investigation. In a like manner, if three points are always on a straight line or three lines [always] pass through a single point, we seek the reason. The Volume Library (Educators Association, New York, 1948) In this section we shall assume that all points lie in the Euclidean plane. If one draws three or more coplanar lines in a random manner, it is likely that no more than two will pass through a particular point. Therefore it is may seem surprising when some general method of constructing three lines always yields examples that pass through a single point. There are four basic results of this type in elementary geometry. We shall begin with one which has a simple algebraic proof. Theorem 1. Suppose we are given ABC. Let D, E and F be the midpoints of the respective sides [BC], [AC] and [AB]. Then the open segments (AD), (BE) and (CF) have a point in common. (Source: http://mathworld.wolfram.com/TriangleCentroid.html ) The classical formulation of this result is that the medians of a triangle are concurrent. Proof. The first step is to see if the lines AD and BE have a point in common. In other words, we need to determine if there are scalars p and q such that pD + (1 – p)A = qE + (1 – q)B and if we use the midpoint formulas D = ½(B + C), E = ½(A + C) we obtain the following equations: (1 – p)A + ½pB + ½pC = ½qA + (1 – q)B + ½qC111 Equating barycentric coordinates, we obtain 1 – p = ½q, 1 – q = ½p and ½q = ½p. The last equation implies p = q, and if we combine this with the others we obtain the equation 1 – p = ½p, which implies that p = 2/3. It is then routine to check that this value for p and q solves the equations for the barycentric coordinates and hence there is a point where AD and BE meet. In fact, since p and q lie strictly between 0 and 1, it follows that the open segments (AD) and (BE) meet, and the common point is given by 1/3 (A + B + C) . If we apply the same argument to (BE) and (CF), we find that they also have a point in common, and the argument shows it is the same point obtained previously. Therefore it follows that this point lies on all three of the segments (AC), (BE) and (CF). The common point is called the centroid of the triangle. By the results of Section I.4, this is the center of mass for a system of equal weights at each of the three vertices of the triangle (and it is also the center of mass for a triangular plate of uniform density bounded by ABC). We should also note that Theorem 1 is actually a special case of Ceva’s Theorem (see Exercise I.4.8) with t = u = v = ½ . Perpendicular bisectors and altitudes We shall need the following observation: Lemma 2. Let L1 and L2 be two lines that meet in one point, and let M1 and M2 be distinct lines that are perpendicular to L1 and L2 respectively. Then M1 and M2 have a point in common. Proof. Suppose that M1 and M2 are parallel. Since L1 ⊥⊥⊥⊥ M1 and M1 || M2 it follows that L1 ⊥⊥⊥⊥ M2 . However, we also have L2 ⊥⊥⊥⊥ M2 , so it follows that L1 || L2 . This contradicts our assumption on L1 and L2 , and therefore our assumption that M1 || M2 must be false, so that M1 and M2 must have a point in common. Theorem 3. Given ABC, the perpendicular bisectors of [BC], [AC] and [AB] all have a point in common. Proof. Let LA, LB and LC be the perpendicular bisectors of [BC], [AC] and [AB] respectively. Then LA ⊥⊥⊥⊥ BC and LB ⊥⊥⊥⊥ AC, and of course AB and AC have the point C in common. Therefore by the lemma LA and LB have a point X in common. Since the perpendicular bisector of a segment is the set of all points which are equidistant from the segment’s endpoints, it follows that d(X,B) = d(X,C) and d(X,A) = d(X,C). Combining these, we have d(X,A) = d(X,C) and hence X lies on the perpendicular bisector LC of [AB] . The common point of the lines LA, LB and LC is called the circumcenter of the triangle; it is the center of a (unique) circle containing A, B and C.112 (Source: http://faculty.evansville.edu/ck6/tcenters/class/ccenter.html ) Definition. Given ABC, the altitudes are the perpendiculars from A to BC, from B to AC, and from C to AB. Note that the points where the altitudes meet BC, AC and AB need not lie on the segments [BC], [AC] and [AB]. In particular, by the results of Section 2, we know that the altitude from A to BC meets the latter in (BC) if and only if the vertex angles at B and C are acute (measurements less than 90 degrees). Theorem 4. Given ABC, its altitudes all have a point in common. Proof. The trick behind this proof is to construct a new triangle DEF such that the altitudes MA, MB and MC of ABC are the perpendicular bisectors of the sides of DEF. Since these three lines have a point in common, the result for the original triangle will follow. More precisely, one constructs the new triangle such that we have AB || DE, AC || DF and BC || ED and the midpoints of [EF] , [DF] and [DE] are just the original vertices A, B and C. The situation is shown in the drawing below. We must now describe the points D, E and F explicitly.113 D = B + C – A E = A + C – B F = A + B – C We first need to verify that A, B and C are the midpoints of [EF], [DF] and [DE] respectively. To do this, it is only necessary to expand the vectors ½(E + F), ½(E + F), and ½(E + F) using the definitions above. Next, we need to show that AB || DE, AC || DF and BC || EF. It will suffice to show the following: 1. The lines AB and DE are distinct, the lines AC and DF are distinct, and the lines BC and EF are distinct. 2. The difference vectors E – D and B – A are nonzero multiples of each other, the difference vectors F – D and C – A are nonzero multiples of each other, and the difference vectors F – E and C – B are nonzero multiples of each other. We can dispose of the first item as follows: Since C lies on DE and not on AB, it follows that DE and AB are distinct lines; similarly, since B lies on DF and not on AC, it follows that DF …


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