38,395 views
26 votes
26 votes
Please write
{x}^(2) + {y}^(2) + 6x - 14y - 42 = 0in standard form.

User Chys
by
2.5k points

1 Answer

10 votes
10 votes

Given the standard equation of a circle


(x-a)^2+(y-b)^2=r^2
\text{Where a and b are the center of the circle}

Given the equation


x^2+y^2+6x-14y-42=0

Collect like terms and simplify in their complete form


\begin{gathered} x^2+6x+y^2-14y=42 \\ (x^2+6x)+(y^2-14y)=42 \\ (x+3)^2-9+(y-7)^2-49=42 \\ (x+3)^2+(y-7)^2=42+49+9 \\ (x+3)^2+(y-7)^2=100 \\ (x+3)^2+(y-7)^2=10^2 \end{gathered}

Hence the standard form of the equation is


(x+3)^2+(y-7)^2=10^2

User Igor Romanov
by
2.8k points