If x = sin t, y = cos pt, then

Question

If x = sin t, y = cos pt, then (A) (1-x2)y2 + xy1 + p2y = 0 (B) (1-x2)y2 + xy1 - p2y = 0 (C) (1+x2)y2 - xy1 + p2y = 0 (D) (1-x2)y2 - xy1 + p2y = 0

Tardigrade Admin · Accepted Answer

Given that, x= sin t, y= cos p t (d x/d t) = cos t, (d y/d t)=-p sin p t (d y/d x) =-(p sin p t/ cos t) ⇒ y1 =(-p √1-y2/√1-x2) ⇒ y1 √1-x2 =-p √1-y2 On squaring both sides, we get y12(1-x2)=p2(1-y2) Again differentiating, 2 y1 y2(1-x2)-2 x y12=-2 y y1 p2 or (1-x2) y2-x y1+p2 y=0

Q. If $x = s in t, y = cos pt$ , then

$(1 - x^{2}) y_{2} + x y_{1} + p^{2} y = 0$

$(1 - x^{2}) y_{2} + x y_{1} - p^{2} y = 0$

$(1 + x^{2}) y_{2} - x y_{1} + p^{2} y = 0$

$(1 - x^{2}) y_{2} - x y_{1} + p^{2} y = 0$

Q. If x=sint,y=cospt, then

(1−x2)y2​+xy1​+p2y=0

(1−x2)y2​+xy1​−p2y=0

(1+x2)y2​−xy1​+p2y=0

(1−x2)y2​−xy1​+p2y=0

Q. If $x = s in t, y = cos pt$ , then

$(1 - x^{2}) y_{2} + x y_{1} + p^{2} y = 0$

$(1 - x^{2}) y_{2} + x y_{1} - p^{2} y = 0$

$(1 + x^{2}) y_{2} - x y_{1} + p^{2} y = 0$

$(1 - x^{2}) y_{2} - x y_{1} + p^{2} y = 0$