Difference between revisions of "Power of a point theorem"
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If two chords <math> AB </math> and <math> CD </math> intersect at a point <math> P </math> within a circle, then <math> AP\cdot BP=CP\cdot DP </math> | If two chords <math> AB </math> and <math> CD </math> intersect at a point <math> P </math> within a circle, then <math> AP\cdot BP=CP\cdot DP </math> | ||
+ | |||
+ | $ <asy> draw(circle((0,0),5)); </asy> <math> | ||
===Case 2 (Outside the Circle):=== | ===Case 2 (Outside the Circle):=== | ||
Line 11: | Line 13: | ||
=====Classic Configuration===== | =====Classic Configuration===== | ||
− | Given lines <math> AB < | + | Given lines </math> AB <math> and </math> CB <math> originate from two unique points on the [[circumference]] of a circle (</math> A <math> and </math> C <math>), intersect each other at point </math> B <math>, outside the circle, and re-intersect the circle at points </math> F <math> and </math> G <math> respectively, then </math> BF\cdot BA=BG\cdot BC <math> |
=====Tangent Line===== | =====Tangent Line===== | ||
− | Given Lines <math> AB < | + | Given Lines </math> AB <math> and </math> AC <math> with </math> AC <math> [[tangent line|tangent]] to the related circle at </math> C <math>, </math> A <math> lies outside the circle, and Line </math> AB <math> intersects the circle between </math> A <math> and </math> B <math> at </math> D <math>, </math> AD\cdot AB=AC^{2} <math> |
===Case 3 (On the Border/Useless Case):=== | ===Case 3 (On the Border/Useless Case):=== | ||
− | If two chords, <math> AB < | + | If two chords, </math> AB <math> and </math> AC <math>, have A on the border of the circle, then the same property such that if two lines that intersect and touch a circle, then the product of each of the lines segments is the same. However since the intersection points lies on the border of the circle, one segment of each line is </math> 0 <math> so no matter what, the constant product is </math> 0 $. |
==Proof== | ==Proof== |
Revision as of 16:37, 23 April 2024
Contents
Theorem:
There are three unique cases for this theorem. Each case expresses the relationship between the length of line segments that pass through a common point and touch a circle in at least one point.
Case 1 (Inside the Circle):
If two chords and intersect at a point within a circle, then
$ $===Case 2 (Outside the Circle):===
=====Classic Configuration=====
Given lines$ (Error compiling LaTeX. Unknown error_msg) AB CB A C B F G BF\cdot BA=BG\cdot BC $=====Tangent Line=====
Given Lines$ (Error compiling LaTeX. Unknown error_msg) AB AC AC C A AB A B D AD\cdot AB=AC^{2} $===Case 3 (On the Border/Useless Case):===
If two chords,$ (Error compiling LaTeX. Unknown error_msg) AB AC 0 0 $.