3.2 implicit equations and implicit differentiation

Implicit Equations and Implicit Differentiation

Implicit Equations

Implicit Equations
The function y = 1/x may be written as xy = 1.

Implicit Equations
The y = 1/x is the explicit form because the output y is
given explicitly as a function of x. The equation
xy = 1 is said to be in the implicit form because the
relation between x and y are not given as a function.

Implicit Equations
The implicit equation x2 + y2 = 1 has the unit circle as
its graph.

Implicit Equations
The implicit equation x2 + y2 = 1 has the unit circle as
its graph. It’s not one function. y = √1 – x2
However x2 + y2 = 1
may be represented by
two different functions.

y = √1 – x2 or y = –√1 – x2
y = – √1 – x2

The joint variables x and y in an implicit equation may
be inseparable by algebra.

be inseparable by algebra. sin(xy) = 0,

be inseparable by algebra. In fact for sin(xy) = 0,
there are infinitely many solution-branches xy = nπ
for n = 0, 1, 2,..

for n = 0, 1, 2,.. Plot xy = 0, xy = π, xy = – π, ..


y

x

sin(xy) = 0

Any point (x, y) on any of these branch is a solution
for sin(xy) = 0.
y

xy = 0 x

sin(xy) = 0

for sin(xy) = 0.
y

xy = 0 x
xy = –π

sin(xy) = 0

for sin(xy) = 0.
y

xy = 0 x
xy = –π xy = –π

sin(xy) = 0

for sin(xy) = 0.
Given a point P(a, b) that satisfies y
a given implicit equation, P must
be on one (or more ) of the
branch which is well defined by
some function y = y(x). xy = 0 x
xy = –π xy = –π

sin(xy) = 0

for sin(xy) = 0.
Given a point P(a, b) that satisfies y
a given implicit equation, P must
be on one (or more ) of the
branch which is well defined by y=π/x
P(π, 1)

some function y = y(x). x
For example, the point (π, 1)
satisfies sin(xy) = 0 and it’s on the
branch xy = π or y = y(x) = π/x. sin(xy) = 0

We assume that the branch y
function y = y(x) that contains P
is differentiable at the point P as
P(π, 1)
the case in the example here y=π/x
that y = π/x is differentiable at x
P(π, 1).

sin(xy) = 0

P(π, 1)
P(π, 1). The slope at P may be
found by taking the derivative of
the branch function y = π/x sin(xy) = 0
which may be difficult to identify.

P(π, 1)
Instead we may compute a different form of the
derivative directly from the implicit equation sin(xy) = 0
and use it to compute the slope at the point P(π, 1).

P(π, 1)
Instead we may compute a different form of the
derivative directly from the implicit equation sin(xy) = 0
and use it to compute the slope at the point P(π, 1).
This procedure is called implicit differentiation and the
form of the derivative is called the implicit derivative.

To differentiate implicitly, we assume that y is y(x)
a function of x, and that we are to solve for y'(x).

Because y is y(x), all the the y’s in an implicit
equation are subjected to the Chain Rule.

Example A. Assume that y is y(x), expand the
following derivative in expressions of x, y and y'.
a. (x3 y)'

b. (x y3)'

a. (x3 y)'
By the Product Rule,
(x3 y)' = (x3)' y + x3 (y)'
b. (x y3)'

a. (x3 y)'
(x3 y)' = (x3)' y + x3 (y)' = 3x2y + x3(y)'
b. (x y3)'

a. (x3 y)'
(x3 y)' = (x3)' y + x3 (y)' = 3x2y + x3(y)'
b. (x y3)'
(x y3)' = (x)' y3 + x3 (y3)'

a. (x3 y)'
(x3 y)' = (x3)' y + x3 (y)' = 3x2y + x3(y)'
b. (x y3)'
(3y2y')
(x y3)' = (x)' y3 + x3 (y3)'

a. (x3 y)'
(x3 y)' = (x3)' y + x3 (y)' = 3x2y + x3(y)'
b. (x y3)'
(3y2y')
(x y3)' = (x)' y3 + x3 (y3)' = y3 + 3x3y2y'

d. Expand (x3 y – x y3)' and collect the y' – term

(x3 y – x y3)'
= [3x2y + x3 y'] – [y3 + 3x3y2 y']

(x3 y – x y3)'
= [3x2y + x3 y'] – [y3 + 3x3y2 y']
= 3x2y + x3 y' – y3 – 3x3y2 y'

(x3 y – x y3)'
= [3x2y + x3 y'] – [y3 + 3x3y2 y']
= 3x2y + x3 y' – y3 – 3x3y2 y'
= 3x2y – y3 + (x3 – 3x3y2) y'

(x3 y – x y3)'
= [3x2y + x3 y'] – [y3 + 3x3y2 y']
= 3x2y + x3 y' – y3 – 3x3y2 y'
= 3x2y – y3 + (x3 – 3x3y2) y'
y
Let us go back to the
equation sin(xy) = 0.

x

sin(xy) = 0

(x3 y – x y3)'
= [3x2y + x3 y'] – [y3 + 3x3y2 y']
= 3x2y + x3 y' – y3 – 3x3y2 y'
= 3x2y – y3 + (x3 – 3x3y2) y'
y
Let us go back to the
equation sin(xy) = 0.
P(π, 1)
Example B. Use implicit
y=π/x
differentiation to find y' x
given that sin(xy) = 0 and find
the slope and the tangent line
at the point (π, 1) on the graph sin(xy) = 0
of sin(xy) = 0.

Differentiate both sides of sin(xy) = 0 with respect to x,
[sin(xy) ] ' = (0)'

y

P(π, 1)
y=π/x
x

sin(xy) = 0

[sin(xy) ] ' = (0)' by the Sine Chain Rule
[cos(xy)] (xy)' = 0
y

P(π, 1)
y=π/x
x

sin(xy) = 0

[cos(xy)] (xy)' = 0 by the Product Rule
cos(xy) [(x)'y + x(y)'] = 0 y

P(π, 1)
y=π/x
x

sin(xy) = 0

cos(xy) [(x)'y + x(y)'] = 0 y

cos(xy) [1*y + x(y)'] = 0
P(π, 1)
y=π/x
x

sin(xy) = 0

cos(xy) [(x)'y + x(y)'] = 0 y

cos(xy) [1*y + x(y)'] = 0
P(π, 1)
Solve for (y)', set y + x(y)' = 0
y=π/x
x

sin(xy) = 0

cos(xy) [(x)'y + x(y)'] = 0 y

cos(xy) [1*y + x(y)'] = 0
P(π, 1)
y=π/x
–y x
x(y)' = –y or that y' = x

sin(xy) = 0

cos(xy) [(x)'y + x(y)'] = 0 y

cos(xy) [1*y + x(y)'] = 0
P(π, 1)
y=π/x
–y x
At P(π, 1), x = π, y = 1
y' = –1 = the slope at P.
π sin(xy) = 0

cos(xy) [(x)'y + x(y)'] = 0 y

cos(xy) [1*y + x(y)'] = 0
P(π, 1)
y=π/x
–y x
At P(π, 1), x = π, y = 1
y' = –1 = the slope at P.
π sin(xy) = 0

Using the the Point–Slope Formula at P (π, 1), the
equation of the tangent line is y = –x + 2.
π

Your turn: Expand [cos3 (x/y)] '

By the Power Chain Rule,
[cos3 (x/y)] ' = 3cos2(x/y) [cos (x/y)] '
= 3cos2(x/y) [– sin(x/y)] (x/y) '
= 3cos2(x/y) [– sin(x/y)] ((y – xy')/y2)

= 3cos2(x/y) [– sin(x/y)] (x/y) '
= 3cos2(x/y) [– sin(x/y)] ((y – xy')/y2)

exy x2+1
= y2 find y' implicitly.
Example C. Given

= 3cos2(x/y) [– sin(x/y)] (x/y) '
= 3cos2(x/y) [– sin(x/y)] ((y – xy')/y2)

exy x2+1
Example C. Given
We are to differentiate with respect to x on both sides
of the equation.

= 3cos2(x/y) [– sin(x/y)] (x/y) '
= 3cos2(x/y) [– sin(x/y)] ((y – xy')/y2)

exy x2+1
Example C. Given
of the equation. However it’s easier if we clear the
denominators first.

y2 exy = x2+1

= 3cos2(x/y) [– sin(x/y)] (x/y) '
= 3cos2(x/y) [– sin(x/y)] ((y – xy')/y2)

exy x2+1
Example C. Given
of the equation. However it’s easier if we clear the
denominators first.
Hence we differentiate both sides of
y2 exy = x2+1

[y2 exy ] ' = [x2+1] '

[y2 exy ] ' = [x2+1] '
Product
Rule

(y2)' exy + y2(exy)' =

[y2 exy ] ' = [x2+1] '
Product
Rule Derivative of x2 with respect to x

(y2)' exy + y2(exy)' = 2x

[y2 exy ] ' = [x2+1] '
Product

(y2)' exy + y2(exy)' = 2x
Chain Rule

2y(y)' exy

[y2 exy ] ' = [x2+1] '
Product

(y2)' exy + y2(exy)' = 2x
Chain Rule

2y(y)' exy + y2 exy (xy)' = 2x

[y2 exy ] ' = [x2+1] '
Product

(y2)' exy + y2(exy)' = 2x
Chain Rule

Product Chain Rule

2y(y)' exy + y2 exy (y + xy') = 2x

[y2 exy ] ' = [x2+1] '
Product

(y2)' exy + y2(exy)' = 2x
Chain Rule

Product Chain Rule

2y(y)' exy + y2 exy (y + xy') = 2x
We are done with differentiating.
Next is to extract the y'.

[y2 exy ] ' = [x2+1] '
Product

(y2)' exy + y2(exy)' = 2x
Chain Rule

Product Chain Rule

2y(y)' exy + y2 exy (y + xy') = 2x
We are done with differentiating.
Next is to extract the y'.
Pull out the inherited exy factor on the left first.
exy [2y(y)' + y2 (y + xy')] = 2x

exy [2y(y)' + y2 (y + xy')] = 2x

exy [2y(y)' + y2 (y + xy')] = 2x
2y(y)' + y2 (y + xy') = 2x
exy

exy [2y(y)' + y2 (y + xy')] = 2x
2y(y)' + y2 (y + xy') = 2x
exy
2y y' + y3 + xy2 y' = 2xexy

exy [2y(y)' + y2 (y + xy')] = 2x
2y(y)' + y2 (y + xy') = 2x
exy
2y y' + y3 + xy2 y' = 2xexy
2yy' + xy2 y' = 2x – y3
exy

exy [2y(y)' + y2 (y + xy')] = 2x
2y(y)' + y2 (y + xy') = 2x
exy
2y y' + y3 + xy2 y' = 2xexy
2yy' + xy2 y' = 2x – y3
exy
y' (2y+ xy2 ) = 2x – y3
exy

exy [2y(y)' + y2 (y + xy')] = 2x
2y(y)' + y2 (y + xy') = 2x
exy
2y y' + y3 + xy2 y' = 2xexy
2yy' + xy2 y' = 2x – y3
exy
y' (2y+ xy2 ) = 2x – y3
exy
2x
exy – y3
y' =
(2y+ xy2 )

exy [2y(y)' + y2 (y + xy')] = 2x
2y(y)' + y2 (y + xy') = 2x
exy
2y y' + y3 + xy2 y' = 2xexy
2yy' + xy2 y' = 2x – y3
exy
y' (2y+ xy2 ) = 2x – y3
exy
2x
exy – y3
y' = multiply exy up and down, we get
(2y+ xy2 )

y' = 2x – y3exy
(2y+ xy2 )exy

Log Differentiation
The technique of log–differentiation takes advantage
of the fact that a “messy” function or an equation may
be disassembled into simpler terms after logging.

Log Differentiation
To use log–differentiation to find derivative y',

Log Differentiation
i. takes the log of the function or equation or both
sides and disassemble the formulas as much as
possible in terms of In(#)’s.

Log Differentiation
ii. takes the derivative of the disassembled function
or equation implicitly.

Log Differentiation
iii. then collect and isolate the y'.

Log Differentiation
iii. then collect and isolate the y'.
Example C.
Use log differentiation to find y' given that
3
2(x)√x2+1
y = sin
e2x– 1

Log Differentiation
Takes the natural–log on both sides we have
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
ln(y) = In(sin2(x)) + In( (x2+1)3/2) – In(e2x–1)

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
ln(y) = 2In(sin (x)) + 3 In(x2+1) – 2x + 1
2

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
ln(y) = 2In(sin (x)) + 3 In(x2+1) – 2x + 1 Differentiate
2
both sides

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
2
both sides
y'
y =

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
2
both sides
y' 2cos(x)
y = sin(x)

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
2
both sides
y' 2cos(x) 3 2x – 2
y = sin(x) + 2 x2+1

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
2
both sides
y' 2cos(x) 3 2x – 2
y = sin(x) + 2 x2+1
Hence
y' = 2cos(x) + 3 2+1
–2 y
sin(x) x

Log Differentiation
3
2(x) √x2+1
ln(y) = ln sin
e2x– 1
2
both sides
y' 2cos(x) 3 2x – 2
y = sin(x) + 2 x2+1
Hence
y' = 2cos(x) + 3 2+1
–2 y
sin(x) x
3
2cos(x) 2(x)√x2+1
y' =
sin(x) + x2+1 – 2 sin
3
e2x– 1

3.2 implicit equations and implicit differentiation

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3.2 implicit equations and implicit differentiation