add new rav lectures

3 лет назад · 98e48b8d88
--- a/ws2022/rav/lecture/lecture.cls
+++ b/ws2022/rav/lecture/lecture.cls
@@ -1,6 +1,7 @@
 \ProvidesClass{lecture}
 \LoadClass[a4paper]{book}

 \RequirePackage{faktor}
 \RequirePackage{xparse}
 \RequirePackage{stmaryrd}
 \RequirePackage[utf8]{inputenc}
--- a/ws2022/rav/lecture/rav.pdf
+++ b/ws2022/rav/lecture/rav.pdf
--- a/ws2022/rav/lecture/rav.tex
+++ b/ws2022/rav/lecture/rav.tex
@@ -21,6 +21,9 @@ Christian Merten (\href{mailto:cmerten@mathi.uni-heidelberg.de}{cmerten@mathi.un

 \input{rav1.tex}
 \input{rav2.tex}
 \input{rav3.tex}
 \input{rav4.tex}
 \input{rav11.tex}
 \input{rav5.tex}
 \input{rav6.tex}
 \input{rav7.tex}
--- a/ws2022/rav/lecture/rav11.pdf
+++ b/ws2022/rav/lecture/rav11.pdf
--- a/ws2022/rav/lecture/rav11.tex
+++ b/ws2022/rav/lecture/rav11.tex
@@ -0,0 +1,352 @@
 \documentclass{lecture}

 \begin{document}

 \section{The tangent cone and the Zariski tangent space}

 \subsection{The tangent cone at a point}

 Let $X \subseteq k^{n}$ be a non-empty Zariski-closed subset.

 Let $P \in k[T_1, \ldots, T_n]$ be a polynomial. For all $x \in k^{n}$, we have a Taylor expansion
 at $x$: For all $h \in k^{n}$:
 \begin{salign*}
    P(x+h) &= P(x) + P'(x)h + \frac{1}{2} P''(x) (h, h) + \underbrace{\ldots}_{\text{finite number of terms}} \\
 &= \sum_{d=0}^{\infty} \frac{1}{d!} P^{(d)}(x) (\underbrace{h, \ldots, h}_{d \text{ times}})
 .\end{salign*}

 \begin{bem}[]
    The term $\frac{1}{d!} P^{(d)}(x)$ is a homogeneous polynomial of degree $d$
    in the coordinates of $h = (h_1, \ldots, h_n)$:
    \begin{salign*}
    P^{(d)}(x) (h, \ldots, h)
    &= \sum_{\alpha \in \N_0^{n}, |\alpha| = d} \frac{d!}{\alpha_1! \cdots \alpha_n!}
    \frac{\partial^{|\alpha|}}{\partial T_1^{\alpha_1} \cdots \partial T_n^{\alpha_n}} P(x)
    h_1^{\alpha_1} \cdots h_n^{\alpha_n}
    .\end{salign*}

    Also, when $x = 0_{k^{n}}$ and if we write
    \[
    P = P(0) + \sum_{d=1}^{\infty} Q_d
    \] with $Q_d$ homogeneous of degree $d$, then for all $h = (h_1, \ldots, h_n) \in k^{n}$, we
    have
    \[
    \frac{1}{d!}P^{(d)}(0) \cdot (h, \ldots, h) = Q_d(h_1, \ldots, h_n)
    .\]
    For all $P \in \mathcal{I}(X) \setminus \{0\} $, we denote by
    $P_x^{*}$ the \emph{initial term} in the Taylor expansion of $P$ at $x$, i.e.
    the term $\frac{1}{d!} P^{(d)}(x) \cdot  (h, \ldots, h)$ for the smallest
    $d \ge 1$ such that this is not zero. If $P = 0$, we put $P_x^{*} \coloneqq 0$.
 \end{bem}

 \begin{definition}
    We set
    \[
    \mathcal{I}(X)_x^{*} \coloneqq \{ P_x^{*} \colon P \in \mathcal{I}(X) \} 
    .\] 
 \end{definition}

 \begin{satz}
    The set $\mathcal{I}(X)_x^{*}$ is an ideal of $k[T_1, \ldots, T_n]$.
 \end{satz}

 \begin{proof}
    By definition, $0 \in \mathcal{I}(X)_x^{*}$. Let $P_x^{*}, Q_x^{*}$ be elements
    of $\mathcal{I}(X)_x^{*}$ coming from $P, Q \in \mathcal{I}(X)$. Then
    $P_x^{*} - Q_x^{*}$ is of the form $R_x^{*}$ for some $R \in \mathcal{I}(X)$, where
    $R = 0$, $R = P$, $R = Q$ or $R = P-Q$. Moreover, for $Q \in k[T_1, \ldots, T_n]$,
    we have $P_x^{*} Q = (PQ)_x^{*} \in \mathcal{I}(X)_x^{*}$.
 \end{proof}

 \begin{bem}[]
    The ideal $\mathcal{I}(X)^{*}$ is finitely generated. However,
    if $\mathcal{I}(X) = (P_1, \ldots, P_m)$, it is not true in general that
    $\mathcal{I}(X)_x^{*} = ((P_1)_x^{*}, \ldots, (P_m)_{x}^{*})$. We may need
    to add the initial terms at $x$ of some other polynomials of the
    form $\sum_{k=1}^{m} P_k Q_k \in \mathcal{I}(X)$.

    If $\mathcal{I}(X) = (P)$ is principal though, we have $\mathcal{I}(X)_x^{*}
    = (P_x^{*})$.
 \end{bem}

 \begin{definition}
    The \emph{tangent cone} to $X$ at $x$ is the affine algebraic
    set
    \[
    \mathcal{C}_x^{(X)} \coloneqq x + \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x^{*})
    = \{ x + h \colon h \in \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x^{*})\} 
    .\] 
 \end{definition}

 \begin{bem}
    The algebraic set $\mathcal{C}_x(X)$ is a cone at $x$: It contains $x$ and
    for all $x + h \in \mathcal{C}_x(X)$ for some $h \in \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x^{*})$,
    we have for all
    $\lambda \in k^{\times}$,
    $\lambda h \in \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x^{*}$), i.e. $x + \lambda h \in
    \mathcal{C}_x(X)$.

    Indeed, $P_x^{*} \in \mathcal{I}(X)_x^{*}$ is either zero or a homogeneous polynomial of
    degree $r \ge 1$. Thus for $h \in k^{n}$ and $\lambda \in k^{\times}$:
    $P_x^{*}(\lambda h) = \lambda^{r} P_x^{*}(h)$ which
    is $0$ if and only if $P_x^{*}(h) = 0$.
 \end{bem}

 \begin{bsp}[]
    Let $k$ be an infinite field and let $P \in k[x,y]$ be an irreducible polynomial
    such that $X \coloneqq \mathcal{V}(P)$ is infinite. Then we know that
    $\mathcal{I}(X) = (P)$. Then we can determine $\mathcal{C}_X(X)$ by computing
    the successive derviatives of $P$ at $x$: In this case
    $\mathcal{I}(X)_x^{*} = (P_x^{*})$. For convenience wie will mostly consider examples
    for which $x = 0_{k^2}$.
    \begin{enumerate}[(i)]
        \item $P(x,y) = y^2 - x^{3}$. Then $P^{*}_{(0,0)} = y^2$, so the tangent cone
            at $(0, 0)$ is the algebraic set
            \[
            \mathcal{C}_{(0,0)}(X) = \{ (x,y) \in k^2  \mid y^2 = 0\} 
            .\]

        \begin{figure}[h]
            \centering
            \begin{tikzpicture}
                \begin{axis}[
                    legend style={at={(0.02, 0.98)}, anchor=north west}
                    ]
                \algebraiccurve[red]{y^2 - x^3}
                \algebraiccurve[green][$y^2 = 0$]{y}
                \algebraiccurve[blue][$y = \frac{3}{2}x - \frac{1}{2}$]{y-1.5*x + 0.5}
                \end{axis}
            \end{tikzpicture}
            \caption{The green line is the tangent cone at $(0,0)$ and the blue line
            the tangent cone at $(1,1)$.}
        \end{figure}
        Note that $P_{(1,1)}^{*}(h_1, h_2) = 2h_2 - 3 h_1$, so the tangent cone at
        $(1,1)$ is
        \begin{salign*}
            \mathcal{C}_{(1,1)}(X) &= \{ (1 + h_1, 1 + h_2)  \mid 2h_2 - 3h_1 = 0\} \\
                                   &= \left\{ (x,y) \in k^2  \mid y = \frac{3}{2} x - \frac{1}{2}\right\} 
        .\end{salign*}
    \item $P(x,y) = y^2 - x^2(x+1)$. Then $P_{(0,0)}^{*} = y^2 - x^2$ so
        \[
        \mathcal{C}_{(0,0)}(X) = \{ y^2 - x^2 = 0\} 
        \] which
        is a union of two lines.
        \begin{figure}[h]
            \centering
            \begin{tikzpicture}
                \begin{axis}[
                    legend style={at={(0.02, 0.98)}, anchor=north west}
                    ]
                \algebraiccurve[red][$y^2 = x^2(x+1) $]{y^2 - x^2*(x+1)}
                \algebraiccurve[green]{y^2 - x^2}
                \end{axis}
            \end{tikzpicture}
            \caption{The green line is the tangent cone at $(0,0)$.}
        \end{figure}

        In contrast, $P_{(1,1)}^{*}(h_1, h_2) = 2h_2 - 5h_1$ so
        \[
        \mathcal{C}_{(1,1)}(X) = \left\{ (x,y) \in k^2  \mid y = \frac{5}{2} x - \frac{3}{2}\right\}
        ,\] which is just one line.
        Evidently this is related to the origin being a ,,node`` of the curve of equation
        $y^2 - x^2(x+1) = 0$.
    \end{enumerate}
 \end{bsp}

 \begin{bem}
    \begin{enumerate}[(i)]
        \item The tangent cone $\mathcal{C}_x(X)$ represents all directions coming out
            of $x$ along which the initial term $P_x^{*}$
            vanishes, for all $P \in \mathcal{I}(X)$. In that sense, it is the least complicated
            approximation to $X$ around $x$, in terms of the degrees of the polynomials involved.
        \item The notion of tangent cone at a point enables us to define singular points of algebraic
            sets and even distinguish between the type of singularities:
            Let $\mathcal{I}(X) = (P)$.

            When $\text{deg}(P_x^{*}) = 1$, the tangent cone to $X \subseteq k^{n}$ at $x$
            is just an affine hyperplane, namely $x + \text{ker } P'(x)$, since
            $P_x^{*} = P'(x)$ in this case. The point $x$ is then called \emph{non-singular}.

            When $\text{deg}(P_x^{*}) = 2$, we say that $X$ has a \emph{quadratic singularity}
            at $x$. If $X \subseteq k^2$, a quadratic singularity is called a \emph{double point}.
            In that case,
            $P_x^{*} = \frac{1}{2} P''(x)$ is a quadratic form on $k^2$. If it is non-degenerate,
            then $x$ is called an \emph{ordinary} double point. For instance,
            if $X$ is the nodal cubic of equation $y^2 = x^2(x+1)$, then the origin is
            an ordinary double point (also called a \emph{node}), since
            $\frac{1}{2}P''(0,0)$ is the quadratic form associated to the symmetric matrix
            $\begin{pmatrix} -1 & 0 \\ 0 & -1 \end{pmatrix} $.
            But if $X$ is the cuspidal cubic of equation $y^2 = x^{3}$, then
            the origin is \emph{not} an ordinary double point, since
            $\frac{1}{2}P''(0,0)$ corresponds to $\begin{pmatrix} 0 & 0 \\ 0 & -1 \end{pmatrix} $.
            Instead, the origin is a \emph{cusp} in the following sense. We can write
            \[
            P(x,y) = l(x,y)^2 + Q_3(x,y) + \ldots
            \] with $l(x,y) = \alpha x + \beta y$ a linear form in $(x,y)$, and the double point
            $(0,0)$ is called a cusp if $Q_3(\beta, -\alpha) \neq 0$. This means that
            \[
            t ^{4}X P(\beta t, - \alpha t)
            \] in $k[t]$. And this is indeed what happens for $P(x,y) = y^2 - x^{3}$, since
            $l(x,y) = y$ and $Q_3(x,y) = -x^{3}$.
    \end{enumerate}
 \end{bem}

 \begin{bem}[]
    One can define the \emph{multiplicity} of a point $(x,y) \in \mathcal{V}_{k^2}(P)$ as
    the smallest integer $r \ge 1$ such that $P^{(r)}(x,y)\neq 0$.
    If $P^{(r)}(x,y) \cdot (h, \ldots, h) = 0 \implies h = 0_{k^2}$, the singularity
    $(x,y)$ is called \emph{ordinary}. If $k$ is algebraically closed and
    $(x,y) = (0,0)$, we can write
    $P^{(r)}(0, 0) = \prod_{i=1}^{m} (\alpha_i x + \beta_i y)^{r_i} $,
    with $r_1 + \ldots + r_m = r$. Then $(0,0)$ is an ordinary singularity of multiplicity $r$
    iff $r_i = 1$ for all $i$. For instance, $(0,0)$ is an ordinary triple point of the trefoil
    curve $P(x,y) = (x^2 + y^2)^2 + 3x^2 y - y^{3}$.
 \end{bem}

 \subsection{The Zariski tangent space at a point}

 Let $X \subseteq k^{n}$ be a Zariski-closed subset and $x \in X$.

 The tangent cone is in general not a linear approximation. To remedy this, one can
 consider the Zariski tangent space to $X$ at a point $x \in X$.

 \begin{definition}
    The \emph{Zariski tangent space} to $X$ at $x$ is the affine subspace
    \[
    T_xX \coloneqq x + \bigcap_{P \in \mathcal{I}(X)} \text{ker } P'(x)
    .\]
 \end{definition}

 \begin{bem}[]
    By translation, $T_xX$ can be canonically identified to the vector space
    $\bigcap_{P \in \mathcal{I}(X)} \text{ker } P'(x) $.
 \end{bem}

 \begin{satz}[]
    View the linear forms
    \[
    P'(x) \colon h \mapsto P'(x) \cdot h
    \] as homogeneous polynomials of degree $1$ in the coordinates of $h \in k^{n}$ and
    denote by
    \[
    \mathcal{I}(X)_x \coloneqq (P'(x) : P \in \mathcal{I}(X))
    \] the ideal generated by these polynomials. Then
    \[
    T_xX = x + \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x)
    .\]
 \end{satz}

 \begin{proof}
    It suffices to check that
    \[
    \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x) = \bigcap_{P \in \mathcal{I}(X)} \text{ker } P'(x)
    \]
    which is obvious because the $(P'(x))_{P \in \mathcal{I}(X)}$ generate $\mathcal{I}(X)_x$.
 \end{proof}

 \begin{korollar}
    $T_xX \supseteq \mathcal{C}_x(X)$
    \label{kor:cone-in-tangent-space}
 \end{korollar}

 \begin{proof}
    Since $\mathcal{I}(X)_x \subseteq \mathcal{I}(X)_x^{*}$, one has
    $\mathcal{V}_{k^{n}}(\mathcal{I}(X)_x) \supseteq \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x^{*})$.
 \end{proof}

 \begin{definition}
    If $T_xX = \mathcal{C}_x(X)$, the point $x$ is called \emph{non-singular}.
 \end{definition}

 \begin{satz}
    If $\mathcal{I}(X) = (P_1, \ldots, P_m)$, then
    $\mathcal{I}(X)_x = (P_1'(x), \ldots, P_m'(x))$
 \end{satz}

 \begin{proof}
    By definition,
    \[
        (P_1'(x), \ldots, P_m'(x)) \subseteq (P'(x) : P \in \mathcal{I}(X)) = \mathcal{I}(X)_x
    .\] But for $P \in \mathcal{I}(X)$, there exist $Q_1, \ldots, Q_m \in k[T_1, \ldots, T_n]$ such
    that $P = \sum_{i=1}^{m} Q_i P_i$, so
    \begin{salign*}
        P'(x) &= \sum_{i=1}^{m} (Q_i P_i)'(x) \\
              &= \sum_{i=1}^{m} (Q_i'(x) \underbrace{P_i(x)}_{= 0} + \overbrace{Q_i(x)}^{\in k}
              P_i'(x))
    \end{salign*}
    since $x \in X$. This proves that $P'(x)$ is in fact a linear combination of the linear
    forms $(P_i'(x))_{1 \le i \le m}$.
 \end{proof}

 \begin{korollar}
    If $\mathcal{I}(X) = (P_1, \ldots, P_m)$, then
    $T_xX = x + \bigcap_{i=1}^{m} \operatorname{ker } P_i'(x)$.
    Moreover, if we write $P = (P_1, \ldots, P_m)$, and view this
    $P$ as a polynomial map $k^{n} \to k^{m}$, then
    \[
    T_xX = x + \text{ker } P'(x)
    \] with $P'(x)$ the Jacobian of $P$ at $x$, i.e.
    \[
        P'(x) = \begin{pmatrix} \frac{\partial P_1}{\partial T_1}(x) & \cdots & \frac{\partial P_1}{\partial T_n}(x) \\
        \vdots & & \vdots \\
        \frac{\partial P_m}{\partial T_1}(x) & \cdots & \frac{\partial P_m}{\partial T_n}(x)
    \end{pmatrix} 
    .\] In particular, $\text{dim } T_xX = n - \operatorname{rk } P'(x)$.
    \label{kor:tangent-kernel-jacobian}
 \end{korollar}

 \begin{bsp}
    \begin{enumerate}[(i)]
        \item $X = \{ y^2 - x^{3} = 0\} \subseteq k^2$. Then $\mathcal{I}(X) = (y^2 - x^{3})$,
            so,
            \[
            T_{(0,0)}X = (0,0) + \text{ker} \begin{pmatrix} 0 & 0 \end{pmatrix} = k^2
            .\] 
            which strictly contains the tangent cone $\{y^2 = 0\} $. In particular,
            the origin is indeed a singular point of the cuspidal cubic. In general,
            \[
            T_{(x,y)}X = (x,y) + \text{ker} \begin{pmatrix} -3x^2 & 2y \end{pmatrix} 
            ,\] 
            which is an affine line if $(x,y) \neq (0,0)$.
        \item $X = \{ y^2 - x^2 - x^{3} = 0\} \subseteq k^2$. Then
            $\mathcal{I}(X) = (y^2 - x^2 - x^{3})$, so
            \[
                T_{(0,0)}X = (0,0) + \text{ker} \begin{pmatrix} 0 & 0 \end{pmatrix} = k^2
            \] which again strictly contains the tangent cone $\{y = \pm x\} $. In general,
            \[
                T_{(x,y)}X = (x,y) + \text{ker} \begin{pmatrix} -2x & 2y \end{pmatrix}
            ,\] which is an affine line if $(x,y) \neq (0,0)$.
    \end{enumerate}
 \end{bsp}

 \begin{bem}
    The dimension of the Zariski tangent space at $x$ (as an affine subspace of $k^{n}$)
    may vary with $x$.
 \end{bem}

 \begin{satz}[a Jacobian criterion]
    If $(P_1, \ldots, P_m)$ are polynomials such that
    $\mathcal{I}(X) = (P_1, \ldots, P_m)$ and $\operatorname{rk } P'(x) = m$, where
    $P = (P_1, \ldots, P_m)$, then $x$ is a non-singular point of $X$.
 \end{satz}

 \begin{proof}
    By \ref{kor:cone-in-tangent-space} and \ref{kor:tangent-kernel-jacobian} it suffices to show that
    \[
    \mathcal{C}_x(X) \supseteq x + \bigcap_{i=1} ^{m} \text{ker } P_i'(x)
    .\] By definition
    \[
    \mathcal{C}_x(X) = x + \mathcal{V}_{k^{n}}(\mathcal{I}(X)_x^{*})
    \] and $\mathcal{I}(X)_x^{*} = \{ Q_x^{*} : Q \in \mathcal{I}(X)\} $. If $Q \in \mathcal{I}(X)$,
    there exist polynomials $Q_1, \ldots, Q_m$ such that
    $Q = \sum_{i=1}^{m} Q_i P_i$, so $Q_x^{*}$ is a linear combination of the $(P_i)_x^{*}$.
    Since $\text{rk }(P_1'(x), \ldots, P_m'(x)) = m$, we have
    $P_i'(x) \neq 0$ for all $i$. So $(P_i)_x^{*} = P_i'(x)$ in the Taylor expansion
    of $P_i$ at $x$. So $Q_x^{*}$ is a linear combination
    of $(P_1'(x), \ldots, P_m'(x))$,
    which proves that if $h \in \bigcap_{i=1}^{m} \text{ker } P_i'(x)$, then
    $Q_x^{*}(h) = 0$ for all $Q \in \mathcal{I}(X)$, hence
    $x + h \in \mathcal{C}_x(X)$.
 \end{proof}

 \end{document}
--- a/ws2022/rav/lecture/rav3.pdf
+++ b/ws2022/rav/lecture/rav3.pdf
--- a/ws2022/rav/lecture/rav3.tex
+++ b/ws2022/rav/lecture/rav3.tex
@@ -0,0 +1,263 @@
 \documentclass{lecture}

 \begin{document}

 \section{Plane algebraic curves}

 \begin{theorem}
    If $f \in k[x,y]$ is an irreducible polynomial such that $\mathcal{V}(f)$
    is infinite, then $\mathcal{I}(\mathcal{V}(f)) = (f)$. In particular,
    $\mathcal{V}(f)$ is irreducible in this case.
    \label{thm:plane-curve-ivf=f}
 \end{theorem}

 \begin{bem}[]
    \begin{enumerate}[(i)]
        \item If $k$ is algebraically closed and $n \ge 2$, then for all $f \in k[x_1, \ldots, x_n]$
            non-constant, the zero set $\mathcal{V}(f)$ is necessarily infinite.
        \item The assumption $\mathcal{V}(f)$ infinite is necessary for the conclusion of
            \ref{thm:plane-curve-ivf=f} to hold:
            The polynomial
            \[
            f(x,y) = (x^2 - 1)^2 + y^2
            \]
            is irreducible because, as a polynomial in $y$, it is monic and does not have a root
            in $\R[x]$ (for otherwise there would be a polynomial $P(x) \in \R[x]$
            such that $P(x)^2 = -(x^2-1)^2$)
            and the zero set of $f$ is
            \[
            \mathcal{V}(f) = \{ (1, 0)\} \cup \{(-1, 0)\} 
            ,\] which is reducible.
        \item \ref{thm:plane-curve-ivf=f} does not hold in this form for hypersurfaces of $k^{n}$ for $n \ge 3$.
            For instance, the polynomial
            \[
            f(x,y,z) = x^2 y^2 + z^{4} \in \R[x,y,z]
            \] is irreducible and the hypersurface
            \[
            \mathcal{V}(f) = \{ (0, y, 0)\colon y \in \R\} \cup \{(x, 0, 0)\colon x \in \R\} 
            \] is infinite. However, the function
            \[
            P\colon (x,y,z) \mapsto xy
            \] belongs to $\mathcal{I}(\mathcal{V}(f))$ but not to $(f)$. Moreover,
            $P \in \mathcal{I}(\mathcal{V}(f))$ but neither $x$ nor $y$ are in $\mathcal{I}(\mathcal{V}(f))$,
            so this ideal is not prime.
        \item Take $f(x,y) = (x-a)^2 + y^2 \in \R[x,y]$ which is irreducible. Then
            $\mathcal{V}(f) = \{ (a, 0) \} $ is irreducible, and
            $\mathcal{I}(\mathcal{V}(f)) = (x-a, y) \supsetneq (f)$. In particular, $(f)$ is a non-maximal
            prime ideal.
    \end{enumerate}
 \end{bem}

 We need a special case of the famous Bézout theorem, for which we need a result from algebra.
 For an integral domain $R$ denote by $Q(R)$ its fraction field. If $R$ is a factorial ring then
 $q \in R[T]$ is called \emph{primitve} if it is non-constant and its
 coefficients are coprime in $R$.

 \begin{satz}[Gauß]
    Let $R$ be a factorial ring. Then $R[T]$ is also factorial. A polynomial
    $q \in R[T]$ is prime in $R[T]$ if and only if
    \begin{enumerate}[(i)]
        \item $q \in R$ and $q$ is prime in $R$, or
        \item $q$ is primitve in $R[T]$ and prime in $Q(R)[T]$
    \end{enumerate}
    \label{satz:gauss}
 \end{satz}

 \begin{proof}
    Any algebra textbook.
 \end{proof}

 \begin{satz}
    Let $R$ be a factorial ring and $f,g \in R[X]$ coprime. Then $f$ and $g$ are
    coprime in $Q(R)[X]$.
    \label{satz:coprime-in-r-is-coprime-in-qr}
 \end{satz}

 \begin{proof}
    Let $h = \frac{a}{b} \in Q(R)[X]$ be a common irreducible factor of $f$ and $g$ with
    $a \in R[X]$ and $b \in R \setminus 0$. By Gauß $R[X]$ is factorial, thus we
    may assume $a$ irreducible. Then
    \[
    \frac{f}{1} = \frac{p_1}{q_1} \frac{a}{b} \text{ and } \frac{g}{1} = \frac{p_2}{q_2} \frac{a}{b}
    \] for some $p_1, p_2 \in R[X]$ and $q_1, q_2 \in R \setminus 0$.
    So $p_1 a = f q_1 b$ and $p_2 a = g q_2 b$. $a$ neither divides $q_1$, $q_2$ nor $b$, for otherwise
    $a \in R \setminus 0$ by the degree formula for polynomials and $h$ is a unit.
    Since $a$ divides $fq_1 b$ and
    $g q_2 b$ and, since $R[X]$ is factorial, $a$ is prime in $R[X]$ and thus
    $a  \mid f$ and $a  \mid g$.
 \end{proof}

 \begin{lemma}[Special case of Bézout]
    Let $f, g \in k[x,y]$ be two polynomials without common factors in $k[x,y]$. Then the set
    $\mathcal{V}(f) \cap \mathcal{V}(g)$ is finite.
    \label{lemma:coprime-finite-zero-locus}
 \end{lemma}

 \begin{proof}
    %\begin{enumerate}[(i)]
        %\item Claim: $f$ and $g$ have no common factors in $k(x)[y]$. Indeed, if
        %    $h(x,y) = \frac{H(x,y)}{L(x)} \in k(x)[y]$ is a common irreducible factor of $f$ and $g$,
        %    then we may assume $H$ and $L$ coprime in $k[x,y]$, with $L$ irreducible in $k[x]$
        %    and $H$ irreducible in $k[x,y]$. Thus we can write
        %    \begin{salign*}
        %        f(x,y) &= \frac{A(x,y)}{M(x)} \frac{H(x,y)}{L(x)}
        %        \intertext{and}
        %        g(x,y) &= \frac{B(x,y)}{N(x)} \frac{H(x,y)}{L(x)}
        %    \end{salign*}
        %    with $A$ and $M$ coprime, as well as $B$ and $N$ coprime in $k[x,y]$.
        %    So $A(x,y) H(x,y) = M(x) L(x) f(x,y)$
        %    and $B(x,y) H(x,y) = N(x) L(x) g(x,y)$.
        %    But $H(x,y)$ cannot divide $L(x), M(x)$ nor $N(x)$ in $k[x,y]$, for otherwise
        %    $H(x,y) \in k[x]$, making $h(x,y) = \frac{H(x,y)}{L(x)}$ a unit in $k(x)[y]$. But
        %    $H(x,y)$ is irreducible in $k[x,y]$ and divides both $M(x)L(x)f(x,y)$ and
        %    $N(x)L(x)g(x,y)$, so $H(x,y)$ divides $f(x,y)$ and $g(x,y)$ in $k[x,y]$. Contradiction.
        %\item
    Since $k(x)[y]$ is a principal ideal domain, \ref{satz:coprime-in-r-is-coprime-in-qr} implies
            $(f,g) = k(x)[y]$, hence the existence of $A(x,y), B(x,y), M(x), N(x)$ such that
            \[
            f(x,y) A(x,y) + g(x,y) B(x,y) = \underbrace{M(x) N(x)}_{=: D(x)}
            \] with $D(x) \in k[x]$. Since a common zero $(x,y)$ of $f$ and $g$ gives a zero of
            $D$, and $D$ has finitely many zeros, there are only finitely many $x$ such that
            $(x,y)$ is a zero of both $f$ and $g$. But, for fixed $x \in k$, the polynomial
            \[
            y \mapsto f(x,y) - g(x,y)
            \] has only finitely many zeros in $k$. So $\mathcal{V}(f) \cap \mathcal{V}(g)$ is finite.
    %\end{enumerate}
 \end{proof}

 \begin{proof}[Proof of \ref{thm:plane-curve-ivf=f}]
    Let $f \in k[x,y]$ be irreducible such that $\mathcal{V}(f) \subseteq k^2$ is infinite.
    Since $f \in \mathcal{I}(\mathcal{V}(f))$, it suffices to show that
    $\mathcal{I}(\mathcal{V}(f)) \subseteq (f)$.
    Let
    $g \in \mathcal{I}(\mathcal{V}(f))$. Then $\mathcal{V}(f) \subseteq \mathcal{V}(g)$. Thus
    \[
    \mathcal{V}(f) \cap \mathcal{V}(g) = \mathcal{V}(f)
    \] which is infinite by assumption. Thus by \ref{lemma:coprime-finite-zero-locus},
    $f$ and $g$ have a common factor. Since $f$ is irreducible, this implies that $f  \mid g$, i.e.
    $g \in (f)$.
 \end{proof}

 We can use \ref{thm:plane-curve-ivf=f} to find the irreducible components of a
 hypersurface $\mathcal{V}(P) \subseteq k^2$.

 \begin{korollar}
    Let $P \in k[x,y]$ be non-constant and $P = u P_1^{n_1} \cdots P_r^{n_r}$ be the decomposition
    into irreducible factors. If each $\mathcal{V}(P_i)$ is infinite, then the algebraic sets
    $\mathcal{V}(P_i)$ are the irreducible components of $\mathcal{V}(P)$.
 \end{korollar}

 \begin{proof}
    Note that
    \[
    \mathcal{V}(P) = \mathcal{V}(P_1^{n_1} \cdots P_r^{n_r}) = \mathcal{V}(P_1) \cup \ldots \cup \mathcal{V}(P_r)
    .\] Since $P_i$ is irreducible and $\mathcal{V}(P_i)$ is infinite for all $i$,
    by \ref{thm:plane-curve-ivf=f} $\mathcal{V}(P_i)$ is irreducible and for $i \neq j$
    $\mathcal{V}(P_i) \not\subset \mathcal{V}(P_j)$, for otherwise
    \[
        (P_i) = \mathcal{I}(\mathcal{V}(P_i)) \supset \mathcal{I} (\mathcal{V}(P_j)) = (P_j)
    \] which is impossible for distinct irreducible elements $P_i, P_j$.
 \end{proof}

 \begin{bsp}[Real plane cubics]
    Let $P(x,y) = y^2 - f(x)$ with $\text{deg}_xf = 3$ in $k[x]$. Since $\text{deg}_y P \ge 1 $
    and the leading coefficient of $P$ is $1$, the polynomial $P$ is primitive in $k[x][y]$.
    It is reducible in $k(x)[y]$ if and only if there exists $a(x), b(x) \in k(x)$ such that
    $(y-a)(y-b) = y^2 - f$, i.e. $b = -a$ and $f = a^2$ in $k(x)$, therefore also in $k[x]$.
    Since $\text{deg}_xf = 3 $, this cannot happen. So, $P$ is irreducible
    by \ref{satz:gauss}.

    Moreover, when $k = \R$, the
    cubic polynomial $f(x)$ takes on an infinite number of positive values,
    so $\mathcal{V}(y^2 - f(x)) = \mathcal{V}(P)$ is infinite. In conclusion,
    real cubics of the form $y^2 - f(x) = 0$ are irreducible algebraic sets in $\R^2$
    by \ref{thm:plane-curve-ivf=f}.
 \end{bsp}

 \begin{figure}
    \centering
    \begin{tikzpicture}
        \begin{axis}[
            xmin = -1
            ]
        \algebraiccurve[red][$y^2 = x^3$]{y^2 - x^3}
        \end{axis}
    \end{tikzpicture}
    \caption{the cuspidal cubic}
 \end{figure}

 \begin{figure}
    \centering
    \begin{tikzpicture}
        \begin{axis}[
            ]
        \algebraiccurve[red][$y^2 = x^2(x+1)$][-2:2][-2:2]{y^2 - x^2*(x+1)}
        \end{axis}
    \end{tikzpicture}
    \caption{the nodal cubic}
 \end{figure}

 \begin{figure}
    \centering
    \begin{tikzpicture}[scale=0.9]
        \begin{axis}[
            xmin = -1
            ]
        \algebraiccurve[red][$y^2 = x(x^2+1)$][-2:2][-2:2]{y^2 - x*(x^2+1)}
        \end{axis}
    \end{tikzpicture}
    \hspace{.05\textwidth}
    \begin{tikzpicture}[scale=0.9]
        \begin{axis}[
            ]
        \algebraiccurve[red][$y^2 = x(x^2-1)$][-2:2][-2:2]{y^2 - x*(x^2-1)}
        \end{axis}
    \end{tikzpicture}
    \caption{the smooth cubics: the second curve demonstrates that the notion of connectedness in
        the Zariski topologoy of $\R^2$ is very different from the one in the usual topology of $\R^2$.}
 \end{figure}

 \begin{satz}
    Let $k$ be an algebraically closed field and let $P \in k[T_1, \ldots, T_n]$ be a non-constant polynomial
    with $n \ge 2$. Then $\mathcal{V}(P)$ is infinite.
 \end{satz}

 \begin{proof}
    Since $P$ is non-constant, we may assume that $\text{deg}_{x_1} P \ge 1$. Write
    \[
    P(T_1, \ldots, T_n) = \sum_{i=1}^{d} g_i(T_2, \ldots, T_n) T_1^{i}
    ,\]
    with $d \ge 1$ and $g_d \neq 0$. Then $D_{k^{n-1}}(g_d)$ is infinite: Since $g_d \neq 0$ and
    $k$ infinite, it is non-empty. Thus let $(a_2, \ldots, a_n) \in k^{n-1}$ such that
    $g_d(a) \neq 0$. Then $g_d(ta) = g_d(ta_2, \ldots, ta_n) \in k[t]$ is a non-zero polynomial and thus
    has only finitely many zeros in $k$. In particular $D_{k^{n-1}}(g_d)$ is infinite.

    For $(a_2, \ldots, a_{n-1}) \in D_{k^{n-1}}(g_d)$, $P(T_1, a_2, \ldots, a_n) \in k[T_1]$ is non-constant
    and thus has a root $a_1$ in the algebraically closed field $k$. Hence
    $(a_1, \ldots, a_n) \in \mathcal{V}(P)$.
 \end{proof}

 We finally give a complete classification of irreducible algebraic sets in the affine plane $k^2$ for
 an infinite field $k$.

 \begin{satz}
    Let $k$ be an infinite field. Then the irreducible algebraic subsets of $k^2$ are:
    \begin{enumerate}[(i)]
        \item the whole affine plane $k^2$
        \item single points $\{ (a, b) \} \subseteq k^2$
        \item infinite algebraic sets defined by an irreducible polynomial $f \in k[x,y]$.
    \end{enumerate}
    \label{satz:classification-irred-alg-subsets-plane}
 \end{satz}

 \begin{proof}
    Let $V \subseteq k^2$ be an irreducible algebraic subset of the affine plane. If $V$ is finite,
    it reduces to a point. So we may assume $V$ infinite. If $\mathcal{I}(V) = (0)$, then $V = k^2$.
    Otherwise, there is a non-constant polynomial $P \in k[x,y]$ such that $P$ vanishes on $V$. Since
    $V$ is irreducible, $\mathcal{I}(V)$ is prime, so it contains an irreducible factor $f$ of $P$.
    Let $g \in \mathcal{I}(V)$. Then $V \subseteq \mathcal{V}(f) \cap \mathcal{V}(g)$, but since
    $V$ is infinite, $f$ and $g$ must have a common factor. By irreducibility of $f$, it follows
    $f  \mid g$, i.e. $g \in (f)$. Hence $\mathcal{I}(V) = (f)$ and $V = \mathcal{V}(f)$.
 \end{proof}

 \end{document}
--- a/ws2022/rav/lecture/rav4.pdf
+++ b/ws2022/rav/lecture/rav4.pdf
--- a/ws2022/rav/lecture/rav4.tex
+++ b/ws2022/rav/lecture/rav4.tex
@@ -0,0 +1,181 @@
 \documentclass{lecture}

 \begin{document}

 \section{Prime ideals in $k[x,y]$}

 \begin{satz}
    Let $A$ be a principal ideal domain. Let $\mathfrak{p} \subseteq A[X]$ be a prime ideal. Then
    $\mathfrak{p}$ satisfies exactly one of the following three mutually exclusive possibilities:
    \begin{enumerate}[(i)]
        \item $\mathfrak{p} = (0)$
        \item $\mathfrak{p} = (f)$, where $f \in A[X]$ is irreducible
        \item $\mathfrak{p} = (a, q)$, where $a \in A$ is irreducible and
            $q \in A[X]$ such that its reduction modulo $a A$ is an irreducible element
            in $A / aA [X]$. In this case, $\mathfrak{p}$ is a maximal ideal.
    \end{enumerate}
    \label{thm:class-prim-pol-pid}
 \end{satz}

 \begin{proof}
    Let $\mathfrak{p} \subseteq A[X]$ be a prime ideal. If $\mathfrak{p}$ is principal, then
    $\mathfrak{p} = (f)$ for some $f \in A[X]$. If $f = 0$, we are done. Otherwise,
    since $A[X]$ is factorial by Gauß and $\mathfrak{p}$ is prime, $f$ is irreducible.

    Let now $\mathfrak{p}$ not be principal. Then there exist $f, g \in \mathfrak{p}$ without
    common factors in $A[X]$. By \ref{satz:coprime-in-r-is-coprime-in-qr}, they
    also have no common factors in the principal ideal domain $Q(A)[X]$, so
    $Mf + Ng = 1$ for some $M, N \in Q(A)[X]$. By multiplying with the denominators, we obtain
    $Pf + Qg = b$ for some $b \in A$ and $P, Q \in A[X]$. So $b \in (f, g) \subseteq \mathfrak{p}$,
    thus there is an irreducible factor $a$ of $b$ in $A$ such that $a \in \mathfrak{p}$.
    Moreover, $a A[X] \subsetneq \mathfrak{p}$ since $\mathfrak{p}$ is not principal. Now consider
    the prime ideal
    \[
    \mathfrak{p} / a A[X] \subset  A[X]/aA[X] \simeq \left( A / aA \right)[X]
    .\] Since $A$ is a PID and $a$ is irreducible, $A/aA$ is a field and $(A / aA)[X]$ a PID.
    So $\mathfrak{p}/aA[X]$ is generated by an irreducible element $\overline{q} \in (A/aA)[X]$
    for some $q \in A[X]$. Thus $\mathfrak{p} = (a, q)$. Moreover
    \[
    \faktor{A[X]}{\mathfrak{p}} \simeq
    \faktor{\left(\faktor{A}{aA}\right)[X]}{\left(\faktor{\mathfrak{p}}{aA}\right)[X]}
    =
    \faktor{\left( \faktor{A}{aA} \right)[X] }
    {\overline{q} \left( \faktor{A}{aA} \right)[X] }
    \] which is a field since $\left( \faktor{A}{aA} \right)[X]$ is a PID. So $\mathfrak{p}$ is maximal in
    $A[X]$.
 \end{proof}

 Using \ref{thm:class-prim-pol-pid} we can give a simple proof for the classification of maximal ideals
 of $k[T_1, \ldots, T_n]$ when $k$ is algebraically closed and $n=2$.

 \begin{korollar}
    If $k$ is algebraically closed, a maximal ideal $\mathfrak{m}$ of $k[x,y]$ is of the form
    $\mathfrak{m} = (x-a, y-b)$ with $(a, b) \in k^2$. In particular, principal ideals are never maximal.
    \label{kor:max-ideals-alg-closed-k2}
 \end{korollar}

 \begin{proof}
    Since $\mathfrak{m}$ is maximal, it is prime and $\mathfrak{m} \neq (0)$. By
    \ref{thm:class-prim-pol-pid}, $\mathfrak{m} = (P, f)$
    with $P \in k[x]$ irreducible and $f \in k[x,y]$ such that
    its image $\overline{f}$ in $(k[x]/(P))[y]$ is irreducible or
    $\mathfrak{m} = (f)$ for $f \in k[x,y]$ irreducible.

    \begin{enumerate}[(1)]
        \item $\mathfrak{m} = (P, f)$. Since $k$ is algebraically closed and $P \in k[x]$ is irreducible,
            $P = x - a$ for some $a \in k$.
            \[
            k[x]/(P) = k[x]/(x-a) \simeq k
            .\] Since $\overline{f} \in k[y]$ is also irreducible, $\overline{f} = y - b$ for some $b \in k$.
        \item $\mathfrak{m} = (f)$. Since $k = \overline{k}$, $\mathcal{V}(f)$ is infinite, in particular
            $\mathcal{V}(f) \neq \emptyset$. Then if $(a,b) \in \mathcal{V}(f)$,
            \[
                (x-a, y-b) = \mathcal{I}(\{(a, b)\})
                \supset \mathcal{I}(\mathcal{V}(f)) \supset (f)
            .\] Since $(f)$ is maximal, it follows that $(f) = (x-a, y-b)$, which is impossible since
            $x -a $ and $y-b$ habe no common factors in $k[x,y]$.
    \end{enumerate}
 \end{proof}

 \begin{bem}[]
    The ideal $(x^2 + 1, y)$ is maximal in $\R[x,y]$ and is not of the form $(x-a, y-b)$ for $(a,b) \in \R^2$.
    Indeed,
    \[
    \faktor{\R[x,y]}{(x^2 + 1, y)}
    \simeq
    \faktor{\left( \R[y]/y\R[y] \right)[x]}{(x^2 + 1)}
    \simeq \R[x]/(x^2 + 1)
    \simeq \mathbb{C}
    .\] 
 \end{bem}

 \begin{satz}[]
    Let $k$ be an algebraically closed field. Then the maps $V \mapsto \mathcal{I}(V)$
    and $I \mapsto \mathcal{V}(I)$ induce a bijection
    \begin{salign*}
    \{ \text{irreducible algebraic subsets of } k^2\}
    &\longleftrightarrow \{ \text{prime ideals in } k[x,y]\} 
    \intertext{through wich we have correspondences}
        \text{points } (a, b) \in k^2 &\longleftrightarrow \text{maximal ideals } (x-a, y-b) \text{ in }k[x,y] \\
        \text{proper, infinite, irreducible algebraic sets}
                                      &\longleftrightarrow \text{prime ideals } (f) \subseteq k[x,y]
                                      \text{ with } f \text{ irreducible} \\
        k^2 &\longleftrightarrow (0)
    .\end{salign*} 
    \label{satz:correspondence-irred-subsets-prime-ideals}
 \end{satz}

 \begin{proof}
    Let $V \subseteq k^2$ be an irreducible algebraic set. By
    \ref{satz:classification-irred-alg-subsets-plane} we
    can distinguish the following cases:
    \begin{enumerate}[(i)]
        \item If $V = k^2$, then $\mathcal{I}(V) = (0)$ since $k$ is infinite and
            $\mathcal{I}(\mathcal{V}(0)) = (0)$.
        \item If $V = \{(a,b)\} $, then $\mathcal{I}(V) \supset (x-a, y-b) \eqqcolon \mathfrak{m} $. Since
            $\mathfrak{m}$ is maximal, $\mathcal{I}(V) = \mathfrak{m}$. Since $V = \mathcal{V}(\mathfrak{m})$,
            this also shows $\mathcal{I}(\mathcal{V}(\mathfrak{m})) = \mathfrak{m}$.
        \item If $V = \mathcal{V}(f)$ where $f \in k[x,y]$ is irreducible, 
            then by \ref{thm:plane-curve-ivf=f} $\mathcal{I}(\mathcal{V}(f)) = (f)$.
    \end{enumerate}
    So, every irreducible algebraic set $V \subseteq k^2$ is of the form
    $\mathcal{V}(\mathfrak{p})$ for some prime ideal $\mathfrak{p} \subseteq k[x,y]$. Moreover,
    \[
    \mathcal{I}(\mathcal{V}(\mathfrak{p})) = \mathfrak{p}
    .\]
    Let now $\mathfrak{p}$ be a prime ideal in $k[x,y]$. By \ref{thm:class-prim-pol-pid} we can dinstiguish
    the following cases:
    \begin{enumerate}[(i)]
        \item $\mathfrak{p} = (0)$: Then $\mathcal{V}(\mathfrak{p}) = k^2$ and
            since $k$ is infinite, $k^2$ is irreducible.
        \item $\mathfrak{p}$ maximal: Then by \ref{kor:max-ideals-alg-closed-k2},
            $\mathfrak{p} = (x-a, y-b)$ for some $(a, b) \in k^2$. So $\mathcal{V}(m) = \{(a, b)\}$
            is irreducible.
        \item $\mathfrak{p} = (f)$ with $f \in k[x,y]$ irreducible. Since $k = \overline{k}$,
            $\mathcal{V}(f)$ is infinite and hence by \ref{thm:plane-curve-ivf=f} irreducible.
    \end{enumerate}
    Thus the maps in the proposition are well-defined, mutually inverse and induce the stated
    correspondences.
 \end{proof}

 \begin{korollar}
    Assume that $k$ is algebraically closed and let $\mathfrak{p} \subseteq k[x,y]$ be a prime ideal.
    Then
    \[
    \mathfrak{p} = \bigcap_{\mathfrak{m} \; \mathrm{maximal}, \mathfrak{m} \supset \mathfrak{p}} 
    \mathfrak{m}
    .\] 
 \end{korollar}

 \begin{proof}
    If $\mathfrak{p}$ is maximal, there is nothing to prove. If $\mathfrak{p} = (0)$, $\mathfrak{p}$
    is contained in $(x-a, y-b)$ for $(a, b) \in k^2$. Since $k$ is infinite, the intersection
    of these ideals is $(0)$. Otherwise, by \ref{satz:correspondence-irred-subsets-prime-ideals},
    $\mathfrak{p} = (f)$ for some $f \in k[x,y]$ irreducible. Then, since $k = \overline{k}$,
    $\mathcal{V}(f)$ is infinite and with \ref{thm:plane-curve-ivf=f}:
    \[
    \mathfrak{p} = (f) = \mathcal{I}(\mathcal{V}(f))
    = \mathcal{I}\left( \bigcup_{(a, b) \in \mathcal{V}(f)}  \{(a, b)\} \right)
    \supset \bigcap_{(a,b) \in \mathcal{V}(f)}
    \mathcal{I}(\{(a,b)\})
    \supset (f) = \mathfrak{p}
    .\] By \ref{satz:correspondence-irred-subsets-prime-ideals}, the ideals
    $\mathcal{I}(\{(a,b)\})$ for $(a, b) \in \mathcal{V}(f)$ are exactly the
    maximal ideals containing $(f) = \mathfrak{p}$.
 \end{proof}

 \begin{korollar}
    Let $\mathfrak{p} \subseteq k[x,y]$ be a non-principal prime ideal.
    Then $\mathcal{V}(\mathfrak{p}) \subseteq k^2$ is finite.
 \end{korollar}

 \begin{proof}
    Since $\mathfrak{p}$ is not principal, there exist $f, g \in \mathfrak{p}$ without common factors. Since
    $(f, g) \subset \mathfrak{p}$, we have
    \[
    \mathcal{V}(f) \cap \mathcal{V}(g) =
    \mathcal{V}(f, g) \supset \mathcal{V}(\mathfrak{p})
    \] and the left hand side is finite by \ref{lemma:coprime-finite-zero-locus}.
 \end{proof}

 \end{document}