The ends of the latus-rectum of the conic x2 + 10x - 16y + 25 = 0 are

Question

The ends of the latus-rectum of the conic x2 + 10x - 16y + 25 = 0 are (A) (3,-4), (13, 4) (B) (-3,-4), (13,-4) (C) (3, 4), (-13, 4) (D) (5,-8), (-5, 8)

Tardigrade Admin · Accepted Answer

Given that, x2+10 x-16 y+25=0 ⇒ (x+5)2=16 y ⇒ X2=4 A Y where, X=x+5, A=4, Y=y. The ends of the latusrectum are (+2 A, A) and (-2 A, A) ⇒ x+5=2(4) ⇒ x=-8-5=3, y=4 and x+5=-2(4) ⇒ x=-8-5=-13, y=4 ⇒ (3,4) and (-13,4)

Q. The ends of the latus-rectum of the conic x2+10x−16y+25=0 are

(3,-4), (13, 4)

(-3,-4), (13,-4)

(3, 4), (-13, 4)

(5,-8), (-5, 8)

Given that, x2+10x−16y+25=0 ⇒(x+5)2=16y⇒X2=4AY where, X=x+5,A=4,Y=y. The ends of the latusrectum are (+2A,A) and (−2A,A) ⇒x+5=2(4) ⇒x=−8−5=3,y=4 and x+5=−2(4) ⇒x=−8−5=−13,y=4 ⇒(3,4) and (−13,4)

Q. The ends of the latus-rectum of the conic $x^{2} + 10 x - 16 y + 25 = 0$ are