ma 341 – topics in geometry lecture 19droyster/courses/fall11/ma341/classnotes/lectur… · apply...
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Quadrilateral GeometryQuadrilateral Geometry
MA 341 – Topics in GeometryLecture 19
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Varignon’s Theorem IThe quadrilateral formed by joining the midpoints of consecutive sides of any quadrilateral is a parallelogram.
PQRS is a parallelogram.
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ProofQ B
PQ || BDRS || BD
Q B
||
PQ || RS.A
P R
DD
S
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SC
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ProofQ B
QR || ACPS || AC
Q B
||
QR || PS.A
P R
DD
S
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SC
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ProofQ B
PQRS is a parallelogram. Q B
A
P R
DD
S
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SC
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Starting with any quadrilateral gives us a Starting with any quadrilateral gives us a parallelogram
What type of quadrilateral will give us a square?a rhombus?a rectangle?
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Varignon’s Corollary: RectangleThe quadrilateral formed by joining the midpoints of consecutive sides of a quadrilateral whose diagonals are perpendicular is a rectangle.
PQRS is a parallelogramEach side is parallel to one of pthe diagonalsDiagonals perpendicular id f ll l sides of parallelogram are
perpendicularp r ll l r m is r ct n l
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parallelogram is a rectangle.
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Varignon’s Corollary: RhombusThe quadrilateral formed by joining the midpoints of consecutive sides of a quadrilateral whose diagonals are congruent is a rhombus.
PQRS is a parallelogramEach side is half of one of Each side is half of one of the diagonalsDiagonals congruent sides Diagonals congruent sides of parallelogram are congruent12-Oct-2011 MA 341 8
congruent
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Varignon’s Corollary: SquareThe quadrilateral formed by joining the midpoints of consecutive sides of a quadrilateral whose diagonals are congruent and perpendicular is a square.
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Quadrilateral Centers
Each quadrilateral gives rise to 4 triangles using the diagonals.P and Q = centroids of ∆ABD and ∆ CDBQ f D DR and S = centroids of ∆ABC and ∆ ADCThe point of intersection of the segments The point of intersection of the segments PQ and RS is the centroid of ABCD
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Centroid
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Quadrilateral Centers
The centerpoint of a quadrilateral is the ppoint of intersection of the two segments joining the midpoints of opposite sides of jthe quadrilateral. Let us call this point O.
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Centerpoint
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Centroid & Centerpoint
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TheoremThe segments joining the midpoints of the opposite sides of any quadrilateral bisect each other.
Proof:
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TheoremThe segment joining the midpoints of the diagonals of a quadrilateral is bisected by the centerpoint.
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ProofN d t h th t PMRN Need to show that PMRN a parallelogramI ∆ADC PN idli d In ∆ADC, PN a midline and PN||DC and PN= ½DC
∆BD dl d In ∆BDC, MR a midline and MR||DC and MR= ½DC
||MR||PN and MR=PNPMRN a parallelogramDiagonals bisect one another. Then MN intersects PR at its
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midpoint, which we know is O.
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TheoremConsider a quadrilateral ABCD and let E, F, G, H be the centroids of the triangles ∆ABC, ∆BCD, ∆ ∆∆ACD, and ∆ABD.
1. EF||AD, FG||AB, GH||BC, and EH||CD;2 K =9 K2. KABCD =9 KEFGH.
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ProofM = midpoint of BC Then AM = median MBC = midpoint of BC. Then AMBC = median of ∆ABC and E lies 2/3 of way between A and MBC, EMBC= 1/3 AMBC.DMBC = median of ∆DCB and DF:FMBC=2:1 in ∆ADMBC we have EF || AD and EF= 1/3 AD1/3 AD.Also
FG || AB and FG= 1/3 ABFG || B and FG /3 BGH || BC and GH=1/3 BCEH || CD and EH=1/3 CD
Th EFGH ADCB ith i il it Thus, EFGH~ADCB with similarity constant 1/3. Therefore, K B D =9KEFGH
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KABCD =9KEFGH.
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TheoremThe sum of the squares of the lengths of the sides of a parallelogram equals the sum of the squares of the lengths of the diagonals.
AB2+BC2+CD2+AD2=AC2+BD2
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Proof
By Law of Cosines ∆ABEAB2 = BE2 + AE2 2AE BE cos(BEA)AB2 = BE2 + AE2 - 2AE·BE cos(BEA)
Note that cos BEA=FE/BE, soAB2 = BE2 + AE2 - 2AE·FEAB BE AE 2AE FE
Apply Stewart's Theorem to ∆EBC we haveBC2=BE2 + EC2+2EC· FE
B D ll l d l b h hABCD parallelogram diagonals bisect each otherThus AE=EC. Adding the first two equations we getget
AB2 + BC2 = 2BE2 + 2AE2
Apply this same process to ∆CAD and we haveCD2 + AD2 = 2DE2 + 2CE2.
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Proof
Now, add these equations and recall that AE=EC and BE=ED.AB2+BC2+CD2+AD2 = BE2+2AE2+2DE2+2CE2D D E E DE E. = 4AE2 + 4BE2
= (2AE)2 + (2BE)2. = (2AE) + (2BE). = AC2 + BD2
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Varignon’s Theorem IIThe area of the Varignon parallelogram is half that of the corresponding quadrilateral, and the perimeter of the parallelogram is equal to the sum of the diagonals of the original quadrilateraldiagonals of the original quadrilateral.
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Proof
Recall SP = midline of ∆ABD and KASP = ¼ KABD
KDSR = ¼ KDAC
KCQR = ¼ KCBDKCQR ¼ KCBD
KBPQ = ¼ KBAC
ThereforeTherefore,KASP+KDSR+KCQR+KBPQ= ¼(KABD+KCBD)+¼(KDAC+KBAC)
¼K ¼K= ¼KABCD+¼KABCD
= ½ KABCD
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Proof
Then,KPQRS = KABCD - (KASP+KDSR+KCQR+KBPQ)
= KABCD – ½ KABCD ABCD ½ ABCD = ½KABCD
Also PQ = ½ AC = SR and SP = ½ BD = QREasy to see that the perimeter of the Easy to see that the perimeter of the Varignon parallelogram is the sum of the diagonals.diagonals.12-Oct-2011 MA 341 25
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Wittenbauer’s TheoremGiven a quadrilateral ABCD a parallelogram is formed by dividing the sides of a quadrilateral into three equal parts, and connecting and extending adjacent points on either side of each vertex Its area is 8/9 either side of each vertex. Its area is 8/9 of the quadrilateral. The centroid of ABCD is the center of Wittenbauer'sis the center of Wittenbauer sparallelogram (intersection of the diagonals).
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