1 Answer

Ashisha Nautiyal · Answer 1 · 2022-11-04T17:56:51+0000

Answer:

$\rm\displaystyle (x + 2{)}^(2) + (y + 5 {)}^(2) = {1}^{}$

$\rm\displaystyle (x - 7{)}^(2) + (y + 3{)}^(2) = { 7 }$

Explanation:

we are given the center and the redious of a circle equation

remember that,

$\rm\displaystyle E _(c) :(x - h {)}^(2) + (y - k {)}^(2) = {r}^(2)$

where (h,k) is the centre coordinate and r is redious of the circle

given that, h=-2 , k=-5 and r=1

Thus substitute:

$\rm\displaystyle (x - ( - 2){)}^(2) + (y - ( - 5) {)}^(2) = {1}^(2)$

simplify:

$\rm\displaystyle (x + 2{)}^(2) + (y + 5 {)}^(2) = {1}^{}$

Likewise

$\rm\displaystyle E _(c) :(x - h {)}^(2) + (y - k {)}^(2) = {r}^(2)$

given that,h=7,k=-3 and r=√7

substitute:

$\rm\displaystyle (x - (7{))}^(2) + (y - ( - 3){)}^(2) = { √(7) ^(2) }$

simplify:

$\rm\displaystyle (x - 7{)}^(2) + (y + 3{)}^(2) = { 7 }$

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