path: root/kang/hw9.tex

\def\Log{\mathop{\rm Log}\nolimits}
\let\rule\hrule
\def\hrule{\medskip\rule\medskip}

%page 195
\noindent{\bf 1.}

First,
$$\cosh z = \sum_{n=0}^\infty {z^{2n}\over (2n)!}$$

Substituting $z^2$ for $z$ and then multiplying each term by $z$ will
give $z\cosh(z^2).$

$$z{(z^2)^{2n}\over (2n)!} = {zz^{4n} \over (2n)!} = {z^{4n+1}\over
(2n)!}.$$

This gives
$$z\cosh(z^2) = \sum_{n=0}^\infty {z^{4n+1}\over (2n)!}$$
This applies over the entire plane because this function is entire.

\noindent{\bf 3.}

The Maclaurin expansion of
$$f(z) = {z\over z^4+4} = {z\over 4}\cdot {1\over 1+(z^4/4)}$$
may be found by substituting $-z^4/4$ in the place of $z$ in the
standard $1/(1-z)$ Maclaurin expansion, then multiplying by $z/4.$

This gives
$$f(z) = \sum_{n=0}^\infty {z^{4n+1}\over 4^{n-1}}$$

\noindent{\bf 7.}

$$f(z) = \sin z = {e^{iz} - e^{-iz}\over 2}.$$
$$f^{(n)}(z) = i^n{e^{iz} - (-1)^ne^{-iz}\over 2}.$$
Where $n = 2k+1,$ where $k$ is an integer, $f^{(n)}(0)$ simplifies to
$0$ because $e^{i0} - (-1)^{2k+1}e^{-i0} = 1 - 1 = 0.$
Similarly, where $n = 2k,$ $f^{(n)}(0)$ simplifies to $i^{2k} = (-1)^k$
because $e^{i0} - (-1)^{2k}e^{-i0} = 1 + 1 = 2,$ which substituted into
the original equation becomes $i^{2k}{2\over 2}.$

This provides an alternate justification of the Maclaurin expansion
given in Section 64.
Using the standard Maclaurin sum,
$$f(z) = \sum_{n=0}^\infty {f^{(n)}(0)z^n\over n!} = \sum_{k=0}^\infty
{f^{(2k)}(0)z^{2k}\over (2k)!} + \sum_{k=0}^\infty
{f^{(2k+1)}(0)z^{2k+1}\over (2k+1)!} = \sum_{k=0}^\infty
{(-1)^kz^{2k}\over (2k)!}$$

\hrule
%page 205
\noindent{\bf 2.}

$$f(z) = {1\over 1+z} = {1\over z}\cdot {1\over 1+(1/z)}$$

By substitution into the standard $1/(1-z)$ expansion (with $-1/z$ being
substituted for $z$),
$${1\over 1+(1/z)} = \sum_{n=0}^\infty (-1)^n(1/z)^n =
\sum_{n=0}^\infty {(-1)^n\over z^n}.$$
$${1\over z} \cdot {1\over 1+(1/z)} = \sum_{n=0}^\infty {(-1)^n\over
z^{n+1}} = \sum_{n=1}^\infty {(-1)^{n-1}\over z^n}$$

The standard $1/(1-(-1/z))$ applies because
$1<|z|<\infty \to |-1/z| < 1.$

\noindent{\bf 3.}

$${1\over z(1+z^2)} = {1\over z^3(1+(1/z^2))}$$

With $1<|z|<\infty \to |-1/z^2|<1,$
$${1\over (1-(-1/z^2))} = \sum_{n=0}^\infty (-1)^n z^{-2n}.$$
$${1\over z^3(1-(-1/z^2))} = \sum_{n=0}^\infty (-1)^n z^{-2n-3}.$$

\noindent{\bf 5.}

% I know how to do this one. Just formulate 1/(z-1) and repeat for
% 1/(z-2)

$$f(z) = {-1\over (z-1)(z-2)} = {1\over z-1} - {1\over z-2}.$$

Within $|z|<1,$
$${1\over z-1} = -{1\over 1-z} = \sum_{n=0}^\infty (-1)z^n.$$
On $|z|>1,$
$${1\over z-1} = {1\over z}\cdot{1\over 1 - (1/z)} =
\sum_{n=0}^\infty z^{-(n+1)}.$$

Within $|z|<2,$
$${1\over z-2} = -{1\over 2}\cdot{1\over 1 - z/2} =
\sum_{n=0}^\infty {(-1)z^n\over 2^{n+1}}.$$
On $|z|>2,$
$${1\over z-2} = {1\over z}\cdot{1\over 1-(2/z)} = \sum_{n=0}^\infty
2^n/z^(n+1)$$

Within $|z|<1$ and $|z|<2,$ ($D_1$) these become
$$\sum_{n=0}^\infty z^n\left({1\over 2^{n+1}} - 1\right).$$

Within $|z|>1$ and $|z|<2,$ ($D_2$) these become
$$\sum_{n=0}^\infty {z^n\over 2^{n+1}} + \sum_{n=1}^\infty {1\over z^n}.$$

Within $|z|>1$ and $|z|>2,$ ($D_3$) these become
$$\sum_{n=1}^\infty {1 - 2^{n-1}\over z^n}$$

\hrule
%page 218
\noindent{\bf 1.}

The first derivative of $1/(1-z)$ is $1/(1-z)^2,$ which will have the
Maclaurin series equal to the termwise differentiation of the $1/(1-z)$
Maclaurina series. Except $n = 0,$ (for which $z^n = z^0$ has first
derivative 0) the first derivative of $z^n$ is $nz^{n-1}.$
This gives summation
$${1\over (1-z)^2} = \sum_{n=1}^\infty nz^{n-1} = \sum_{n=0}^\infty
(n+1)z^n.$$

Similarly, the second derivative of $1/(1-z)$ is $2/(1-z)^3.$
The second derivative of $z^n$ for $n\geq2$ is $n(n-1)z^{n-2},$ giving
summation
$${2\over (1-z)^3} = \sum_{n=2}^\infty n(n-1)z^{n-2} = \sum_{n=0}^\infty
(n+2)(n+1)z^n.$$

\noindent{\bf 5.}

$${\cos z\over z^2 - (\pi/2)^2} = {\cos z\over (z-\pi/2)(z+\pi/2)} =
{\cos z\over \pi(z-\pi/2)} - {\cos z\over \pi(z+\pi/2)} =
{-\sin(z-\pi/2)\over \pi(z-\pi/2)} - {\sin(z+\pi/2)\over \pi(z+\pi/2)}.$$

As shown in the example in Section 71, $\sin w/w$ is analytic, so this
function is analytic.

\noindent{\bf 6.}

With $|z-1|<1,$
$$\int_1^z {1\over w}dw = \sum_{n=0}^\infty \int_1^z (-1)^n (w-1)^n dw
\to \Log z = \sum_{n=0}^\infty (-1)^n (z-1)^{n+1}/(n+1) =
\sum_{n=1}^\infty {(-1)^{n+1}(z-1)^n\over n}.$$

\hrule
%page 224
\noindent{\bf 1.}

On $0<|z|<1,$
$$e^z = 1 + z + z^2/2 + z^3/6 + \cdots$$

$${1\over z(z^2+1)} = 1/z - z + \cdots$$

Taking their product gives

$${e^z\over z(z^2+1)} = 1/z + 1 + z/2 + z^2/6 - z - z^2 + \cdots =
1/z + 1 - z/2 - 5z^2/6 + \cdots$$

\hrule
%page 237
\noindent{\bf 1.}
% I don't understand residues at all.

\noindent{\it (a)}

$${1\over z+z^2} = {(1+z)^{-1}\over z},$$
giving a residue of $1+z,$ or, at $z=0,$ $1.$

\noindent{\it (b)}

$$z\cos\left({1\over z}\right) = \sum_{n=0}^\infty (-1)^n {z^{1-2n}\over
(2n)!}.$$
The value at $z^{-1}$ or $1-2n = -1 \to n = 1$ is $-1/2.$

\noindent{\it (c)}

$${z-\sin z\over z} = 1 - \sum_{n=0}^\infty (-1)^n {z^{2n}\over (2n+1)!}$$
has residue of $0$ because this is strictly a Taylor series.

\noindent{\it (d)}

Noting that $\cot z = 1/z - z/3 - z^3/45 + \ldots,$
$${\cot z\over z^4} = {1\over z^4}(1/z - z/3 - z^3/45 + \ldots) =
{1\over z^5} - {1\over 3z^3} - {1\over 45z} + \ldots,$$
giving a residue of $-1/45.$

\noindent{\it (e)}

$${\sinh z\over z^4(1-z^2)} =
z^{-4}(z+{z^3\over 3!}+\cdots)(1+z^2+z^4+\cdots) =
z^{-3} + z^{-1}/6 + z^{-1} + z/6 + z + z^3/6,$$
giving a residue of $7/6.$

\bye