4.5 The chain rule (Page 2/9)

Calculus volume 3 Page 2 / 9

Since $x (t)$ and $y (t)$ are both differentiable functions of $t,$ both limits inside the last radical exist. Therefore, this value is finite. This proves the chain rule at $t = t_{0};$ the rest of the theorem follows from the assumption that all functions are differentiable over their entire domains.

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Closer examination of [link] reveals an interesting pattern. The first term in the equation is $\frac{\partial f}{\partial x} \cdot \frac{d x}{d t}$ and the second term is $\frac{\partial f}{\partial y} \cdot \frac{d y}{d t} .$ Recall that when multiplying fractions, cancelation can be used. If we treat these derivatives as fractions, then each product “simplifies” to something resembling $\partial f / d t .$ The variables $x and y$ that disappear in this simplification are often called intermediate variables : they are independent variables for the function $f,$ but are dependent variables for the variable $t .$ Two terms appear on the right-hand side of the formula, and $f$ is a function of two variables. This pattern works with functions of more than two variables as well, as we see later in this section.

Using the chain rule

Calculate $d z / d t$ for each of the following functions:

$z = f (x, y) = 4 x^{2} + 3 y^{2}, x = x (t) = sin t, y = y (t) = cos t$
$z = f (x, y) = \sqrt{x^{2} - y^{2}}, x = x (t) = e^{2 t}, y = y (t) = e^{− t}$

To use the chain rule, we need four quantities— $\partial z / \partial x, \partial z / \partial y, d x / d t,$ and $d y / d t :$

$\begin{matrix} \frac{\partial z}{\partial x} = 8 x & \frac{\partial z}{\partial y} = 6 y \\ \frac{d x}{d t} = cos t & \frac{d y}{d t} = − sin t \end{matrix}$

Now, we substitute each of these into [link] :

$\begin{matrix} \frac{d z}{d t} & = \frac{\partial z}{\partial x} \cdot \frac{d x}{d t} + \frac{\partial z}{\partial y} \cdot \frac{d y}{d t} \\ = (8 x) (cos t) + (6 y) (− sin t) \\ = 8 x cos t - 6 y sin t . \end{matrix}$

This answer has three variables in it. To reduce it to one variable, use the fact that $x (t) = sin t and y (t) = cos t .$ We obtain

$\begin{matrix} \frac{d z}{d t} & = 8 x cos t - 6 y sin t \\ = 8 (sin t) cos t - 6 (cos t) sin t \\ = 2 sin t cos t . \end{matrix}$

This derivative can also be calculated by first substituting $x (t)$ and $y (t)$ into $f (x, y),$ then differentiating with respect to $t :$

$\begin{matrix} z & = f (x, y) \\ = f (x (t), y (t)) \\ = 4 {(x (t))}^{2} + 3 {(y (t))}^{2} \\ = 4 {sin}^{2} t + 3 {cos}^{2} t . \end{matrix}$

Then

$\begin{matrix} \frac{d z}{d t} & = 2 (4 sin t) (cos t) + 2 (3 cos t) (− sin t) \\ = 8 sin t cos t - 6 sin t cos t \\ = 2 sin t cos t, \end{matrix}$

which is the same solution. However, it may not always be this easy to differentiate in this form.
To use the chain rule, we again need four quantities— $\partial z / \partial x, \partial z / d y, d x / d t,$ and $d y / d t :$

$\begin{matrix} \frac{\partial z}{\partial x} = \frac{x}{\sqrt{x^{2} - y^{2}}} & \frac{\partial z}{\partial y} = \frac{− y}{\sqrt{x^{2} - y^{2}}} \\ \frac{d x}{d t} = 2 e^{2 t} & \frac{d x}{d t} = − e^{− t} . \end{matrix}$

We substitute each of these into [link] :

$\begin{matrix} \frac{d z}{d t} & = \frac{\partial z}{\partial x} \cdot \frac{d x}{d t} + \frac{\partial z}{\partial y} \cdot \frac{d y}{d t} \\ = (\frac{x}{\sqrt{x^{2} - y^{2}}}) (2 e^{2 t}) + (\frac{− y}{\sqrt{x^{2} - y^{2}}}) (− e^{− t}) \\ = \frac{2 x e^{2 t} - y e^{− t}}{\sqrt{x^{2} - y^{2}}} . \end{matrix}$

To reduce this to one variable, we use the fact that $x (t) = e^{2 t}$ and $y (t) = e^{− t} .$ Therefore,

$\begin{matrix} \frac{d z}{d t} & = \frac{2 x e^{2 t} + y e^{− t}}{\sqrt{x^{2} - y^{2}}} \\ = \frac{2 (e^{2 t}) e^{2 t} + (e^{− t}) e^{− t}}{\sqrt{e^{4 t} - e^{−2 t}}} \\ = \frac{2 e^{4 t} + e^{−2 t}}{\sqrt{e^{4 t} - e^{−2 t}}} . \end{matrix}$

To eliminate negative exponents, we multiply the top by $e^{2 t}$ and the bottom by $\sqrt{e^{4 t}} :$

$\begin{matrix} \frac{d z}{d t} & = \frac{2 e^{4 t} + e^{−2 t}}{\sqrt{e^{4 t} - e^{−2 t}}} \cdot \frac{e^{2 t}}{\sqrt{e^{4 t}}} \\ = \frac{2 e^{6 t} + 1}{\sqrt{e^{8 t} - e^{2 t}}} \\ = \frac{2 e^{6 t} + 1}{\sqrt{e^{2 t} (e^{6 t} - 1)}} \\ = \frac{2 e^{6 t} + 1}{e^{t} \sqrt{e^{6 t} - 1}} . \end{matrix}$

Again, this derivative can also be calculated by first substituting $x (t)$ and $y (t)$ into $f (x, y),$ then differentiating with respect to $t :$

$\begin{matrix} z & = f (x, y) \\ = f (x (t), y (t)) \\ = \sqrt{{(x (t))}^{2} - {(y (t))}^{2}} \\ = \sqrt{e^{4 t} - e^{−2 t}} \\ = {(e^{4 t} - e^{−2 t})}^{1 / 2} . \end{matrix}$

Then

$\begin{matrix} \frac{d z}{d t} & = \frac{1}{2} {(e^{4 t} - e^{−2 t})}^{− 1 / 2} (4 e^{4 t} + 2 e^{−2 t}) \\ = \frac{2 e^{4 t} + e^{−2 t}}{\sqrt{e^{4 t} - e^{−2 t}}} . \end{matrix}$

This is the same solution.

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Calculate $d z / d t$ given the following functions. Express the final answer in terms of $t .$

z = f (x, y) = x^{2} - 3 x y + 2 y^{2}, x = x (t) = 3 sin 2 t, y = y (t) = 4 cos 2 t

$\begin{matrix} \frac{d z}{d t} & = \frac{\partial f}{\partial x} \frac{d x}{d t} + \frac{\partial f}{\partial y} \frac{d y}{d t} \\ = (2 x - 3 y) (6 cos 2 t) + (−3 x + 4 y) (−8 sin 2 t) \\ = −92 sin 2 t cos 2 t - 72 ({cos}^{2} 2 t - {sin}^{2} 2 t) \\ = −46 sin 4 t - 72 cos 4 t . \end{matrix}$

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It is often useful to create a visual representation of [link] for the chain rule. This is called a tree diagram for the chain rule for functions of one variable and it provides a way to remember the formula ( [link] ). This diagram can be expanded for functions of more than one variable, as we shall see very shortly.

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Source: OpenStax, Calculus volume 3. OpenStax CNX. Feb 05, 2016 Download for free at http://legacy.cnx.org/content/col11966/1.2

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