What is the slope of the tangent line of #xy^2-(1-xy)^2= C #, where C is an arbitrary constant, at #(1,-1)#?

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Answer 1 · 2018-04-23T20:12:07

#dy/dx=-1.5#

We first find #d/dx# of each term.

#d/dx[xy^2]-d/dx[(1-xy)^2]=d/dx[C]#

#d/dx[x]y^2+d/dx[y^2]x-2(1-xy)d/dx[1-xy]=0#

#y^2+d/dx[y^2]x-2(1-xy)(d/dx[1]-d/dx[xy])=0#

#y^2+d/dx[y^2]x-2(1-xy)(-d/dx[x]y+d/dx[y]x)=0#

#y^2+d/dx[y^2]x-2(1-xy)(-y+d/dx[y]x)=0#

The chain rule tells us:
#d/dx=d/dy*dy/dx#

#y^2+dy/dx d/dy[y^2]x-2(1-xy)(-y+dy/dxd/dy[y]x)=0#

#y^2+dy/dx 2yx-2(1-xy)(-y+dy/dx x)=0#

#dy/dx 2yx-2(1-x)dy/dx x=-y^2-2y(1-xy)#

#dy/dx( 2yx-2x(1-x))=-y^2-2y(1-xy)#x

#dy/dx=-(y^2+2y(1-xy))/(2yx-2x(1-x))#

For #(1,-1)#

#dy/dx=-((-1)^2+2(-1)(1-1(-1)))/(2(1)(-1)-2(1)(1-1))=-1.5#