The question reads:
compute the derivative of the given function and find the slope of the line that is tangent to its graph for the specified value of the independent variable.
a) f(x)=2; c=13
Here is my work...
f'(x)=0 therefore m=0
then y-y1=m(x-x1)
y-2=0(x-13)
y=0(x-13+2)
y=0x-11
y=0-11
y=-11
So my answer is ... f'(x)=0; y=-11
HOWEVER, the answer is supposed to be ... f'(x)=0; y=2
My Ys are different. I don't know where I made my mistake!?
then there is this question:
b) f(x)=7-2x; c=5
Here is my work...
f'(x)=7 --> 0 and -2x --> -2
f'(x)=-2 therefore m=-2
f(x) = y = 7-2x
y=7-2(5)
y=7-10
y=-3
Then
y-y1=m(x-x1)
y-(-3)=-2(x-(5))
y+3=-2(x-5)
y=-2x-5-3
y=-2x-8
so my answer is f'(x)=-2; y=-2x-8
But the answer should be f'(x)=-2; y=-2x+7
Again, my Ys are different. I don't know where I made my mistake!?
compute the derivative of the given function and find the slope of the line that is tangent to its graph for the specified value of the independent variable.
a) f(x)=2; c=13
Here is my work...
f'(x)=0 therefore m=0
then y-y1=m(x-x1)
y-2=0(x-13)
y=0(x-13+2)
y=0x-11
y=0-11
y=-11
So my answer is ... f'(x)=0; y=-11
HOWEVER, the answer is supposed to be ... f'(x)=0; y=2
My Ys are different. I don't know where I made my mistake!?
then there is this question:
b) f(x)=7-2x; c=5
Here is my work...
f'(x)=7 --> 0 and -2x --> -2
f'(x)=-2 therefore m=-2
f(x) = y = 7-2x
y=7-2(5)
y=7-10
y=-3
Then
y-y1=m(x-x1)
y-(-3)=-2(x-(5))
y+3=-2(x-5)
y=-2x-5-3
y=-2x-8
so my answer is f'(x)=-2; y=-2x-8
But the answer should be f'(x)=-2; y=-2x+7
Again, my Ys are different. I don't know where I made my mistake!?
