Post on 02-Feb-2016
description
Proving Triangles Congruent
SSSSSSIf we can show all 3 pairs of corr.If we can show all 3 pairs of corr.
sides are congruent, the triangles sides are congruent, the triangles have to be congruent.have to be congruent.
SASSASShow 2 pairs of sides and the Show 2 pairs of sides and the
included angles are congruent and included angles are congruent and the triangles have to be congruent.the triangles have to be congruent.
IncludedIncludedangleangle
Non-includedNon-includedanglesangles
This is called a common side.This is called a common side.It is a side for both triangles.It is a side for both triangles.
We’ll use the reflexive property.We’ll use the reflexive property.
Common sideCommon side
SSSSSS
Parallel linesParallel linesalt int anglesalt int angles
Common sideCommon side
SASSAS
Vertical anglesVertical angles
SASSAS
ASA, AAS and HL ASA, AAS and HL
ASA – 2 anglesASA – 2 anglesand the included sideand the included side
AA
SS
AAAAS – 2 angles andAAS – 2 angles andThe non-included sideThe non-included side AAAA
SS
HLHL ( hypotenuse leg ) is used ( hypotenuse leg ) is usedonly with right triangles, BUT, only with right triangles, BUT,
not all right triangles. not all right triangles.
HLHL ASAASA
SOME REASONS WE’LL BE USINGSOME REASONS WE’LL BE USING
• DEF OF MIDPOINTDEF OF MIDPOINT
• DEF OF A BISECTORDEF OF A BISECTOR
• VERT ANGLES ARE CONGRUENTVERT ANGLES ARE CONGRUENT
• DEF OF PERPENDICULAR BISECTORDEF OF PERPENDICULAR BISECTOR
• REFLEXIVE PROPERTY (COMMON SIDE)REFLEXIVE PROPERTY (COMMON SIDE)
• PARALLEL LINES ….. ALT INT ANGLESPARALLEL LINES ….. ALT INT ANGLES
Proof
• 1) O is the midpoint of MQ and NP
• 2)
• 3)
• 4)
• 1) Given
• 2) Def of midpoint
• 3) Vertical Angles
• 4) SAS
Given: O is the midpoint of MQ and NP
Prove: MON POQ
MON POQ
,MO OQ NO OP MON POQ
AA BB
CC
11 22
Given: CX bisects ACBGiven: CX bisects ACB A A ˜ B˜ BProve: Prove: ∆ACX∆ACX ˜ ∆BCX˜ ∆BCX
XX
====
AASAAS
PPAAAASS∆’∆’ss
CX bisects ACB GivenCX bisects ACB Given 1 = 2 1 = 2 Def Def of angle biscof angle bisc A = B GivenA = B Given CX = CX Reflexive PropCX = CX Reflexive Prop∆∆ACX ˜ ∆BCX AASACX ˜ ∆BCX AAS==
Proof
• 1)
• 2)
• 3)
• 1) Given
• 2) Reflexive Property
• 3) SSS
Given:
Prove: ABC ADC
ABC ADC AC AC
,AB CD BC AD
,AB CD BC AD
Proof
• 1)
• 2)
• 3)
• 4)
• 1) Given
• 2) Alt. Int. <‘s Thm
• 3) Reflexive Property
• 4) SAS
ABD CDB
ABD CDB
, ||AD CB AD CB
, ||AD CB AD CB
DB DBADB CBD
Given:
Prove: