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locus (1 Viewer)
- Thread starter apak
- Start date
Trev
stix
Yes, so:
√[x²+(y-3)²]=2√[(x-4)²+(y-7)²]
x²+(y-3)²=4[(x-4)²+(y-7)²]
etc.
√[x²+(y-3)²]=2√[(x-4)²+(y-7)²]
x²+(y-3)²=4[(x-4)²+(y-7)²]
etc.
Wackedupwacko
Member
4PB²=PA²
4[ (x-4)² + (y-7)²] = x² + (y-3)²
4x²-32x+64+4y²-56y+196 = x² + y² - 6y + 9
3x²-32x+3y²-50y+251 =0 <---- if this isnt answer then continue
x²- 32x/3 + y² - 50y/3 = -251/3
complete the square
(x - 16/3)² + (y - 25/3)² = -251/3 + 256/9 + 625/9
(x - 16/3)² + (y - 25/3)² = 128/9
4[ (x-4)² + (y-7)²] = x² + (y-3)²
4x²-32x+64+4y²-56y+196 = x² + y² - 6y + 9
3x²-32x+3y²-50y+251 =0 <---- if this isnt answer then continue
x²- 32x/3 + y² - 50y/3 = -251/3
complete the square
(x - 16/3)² + (y - 25/3)² = -251/3 + 256/9 + 625/9
(x - 16/3)² + (y - 25/3)² = 128/9