coursework/cw01.tex
author Christian Urban <christian dot urban at kcl dot ac dot uk>
Thu, 24 Sep 2015 22:52:10 +0100
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\documentclass{article}
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\usepackage{../style}
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\usepackage{../langs}
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\begin{document}
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\section*{Coursework 1 (Strand 1)}
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This coursework is worth 5\% and is due on 16 October at 16:00. You
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are asked to implement a regular expression matcher and submit a
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document containing the answers for the questions below. You can do
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the implementation in any programming language you like, but you need
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to submit the source code with which you answered the
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questions. However, the coursework will \emph{only} be judged
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according to the answers. You can submit your answers in a txt-file or
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pdf.
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\subsubsection*{Disclaimer}
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It should be understood that the work you submit represents your own
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effort.  You have not copied from anyone else. An exception is the
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Scala code I showed during the lectures, which you can use.\bigskip
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\subsubsection*{Tasks}
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The task is to implement a regular expression matcher based on
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derivatives. The implementation should be able to deal with the usual
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(basic) regular expressions
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\[
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\varnothing, \epsilon, c, r_1 + r_2, r_1 \cdot r_2, r^*
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\]
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\noindent
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but also with the following extended regular expressions:
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\begin{center}
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\begin{tabular}{ll}
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$[c_1 c_2 \ldots c_n]$ & a range of characters\\
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$r^+$ & one or more times $r$\\
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$r^?$ & optional $r$\\
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$r^{\{n,m\}}$ & at least $n$-times $r$ but no more than $m$-times\\
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$\sim{}r$ & not-regular expression of $r$\\
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\end{tabular}
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\end{center}
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\noindent
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In the case of $r^{\{n,m\}}$ we have the convention that $0 \le n \le m$.
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The meaning of these regular expressions is
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\begin{center}
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\begin{tabular}{r@{\hspace{2mm}}c@{\hspace{2mm}}l}
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$L([c_1 c_2 \ldots c_n])$ & $\dn$ & $\{[c_1], [c_2], \ldots, [c_n]\}$\\ 
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$L(r^+)$                  & $\dn$ & $\bigcup_{1\le i}. L(r)^i$\\
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$L(r^?)$                  & $\dn$ & $L(r) \cup \{[]\}$\\
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$L(r^{\{n,m\}})$           & $\dn$ & $\bigcup_{n\le i \le m}. L(r)^i$\\
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$L(\sim{}r)$              & $\dn$ & $\mathbb{A} - L(r)$
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\end{tabular}
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\end{center}
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\noindent
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whereby in the last clause the set $\mathbb{A}$ stands for the set of
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\emph{all} strings.  So $\sim{}r$ means `all the strings that $r$
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cannot match'. 
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Be careful that your implementation of $nullable$ and $der$ satisfies
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for every $r$ the following two properties (see also Question 2):
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\begin{itemize}
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\item $nullable(r)$ if and only if $[]\in L(r)$
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\item $L(der\,c\,r)) = Der\,c\,(L(r))$
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\end{itemize}
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\noindent
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{\bf Important!} Your implementation should have explicit cases for
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the basic regular expressions, but also explicit cases for the
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extended regular expressions.  That means do not treat the extended
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regular expressions by just translating them into the basic ones. See
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also Question 2, where you are asked to explicitly give the rules for
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\textit{nullable} and \textit{der} for the extended regular
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expressions.
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\subsection*{Question 1 (unmarked)}
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What is your King's email address (you will need it in Question 3)?
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\subsection*{Question 2 (marked with 2\%)}
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This question does not require any implementation. From the lectures
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you have seen the definitions for the functions \textit{nullable} and
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\textit{der} for the basic regular expressions.  Give the rules for
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the extended regular expressions:
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\begin{center}
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\begin{tabular}{@ {}l@ {\hspace{2mm}}c@ {\hspace{2mm}}l@ {}}
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$nullable([c_1 c_2 \ldots c_n])$  & $\dn$ & $?$\\
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$nullable(r^+)$                   & $\dn$ & $?$\\
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$nullable(r^?)$                   & $\dn$ & $?$\\
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$nullable(r^{\{n,m\}})$            & $\dn$ & $?$\\
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$nullable(\sim{}r)$               & $\dn$ & $?$\medskip\\
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$der\, c\, ([c_1 c_2 \ldots c_n])$  & $\dn$ & $?$\\
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$der\, c\, (r^+)$                   & $\dn$ & $?$\\
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$der\, c\, (r^?)$                   & $\dn$ & $?$\\
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$der\, c\, (r^{\{n,m\}})$            & $\dn$ & $?$\\
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$der\, c\, (\sim{}r)$               & $\dn$ & $?$\\
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\end{tabular}
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\end{center}
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\subsection*{Question 3 (marked with 1\%)}
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Implement the following regular expression for email addresses
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\[
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([a\mbox{-}z0\mbox{-}9\_\!\_\,.-]^+)\cdot @\cdot ([a\mbox{-}z0\mbox{-}9\,.-]^+)\cdot .\cdot ([a\mbox{-}z\,.]^{\{2,6\}})
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\]
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\noindent
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and calculate the derivative according to your email address. When
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calculating the derivative, simplify all regular expressions as much
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as possible, but at least apply the following six simplification
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rules:
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\begin{center}
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\begin{tabular}{l@{\hspace{2mm}}c@{\hspace{2mm}}ll}
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$r \cdot \varnothing$ & $\mapsto$ & $\varnothing$\\ 
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$\varnothing \cdot r$ & $\mapsto$ & $\varnothing$\\ 
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$r \cdot \epsilon$ & $\mapsto$ & $r$\\ 
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$\epsilon \cdot r$ & $\mapsto$ & $r$\\ 
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$r + \varnothing$ & $\mapsto$ & $r$\\ 
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$\varnothing + r$ & $\mapsto$ & $r$\\ 
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$r + r$ & $\mapsto$ & $r$ & (added on 12 October)\\ 
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\end{tabular}
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\end{center}
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\noindent
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Write down your simplified derivative in the ``mathematicical''
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notation using parentheses where necessary.
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\subsection*{Question 4 (marked with 1\%)}
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Suppose \textit{[a-z]} stands for the range regular expression
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$[a,b,c,\ldots,z]$.  Consider the regular expression $/ \cdot * \cdot
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(\sim{}([a\mbox{-}z]^* \cdot * \cdot / \cdot [a\mbox{-}z]^*)) \cdot *
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\cdot /$ and decide wether the following four strings are matched by
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this regular expression. Answer yes or no.
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\begin{enumerate}
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\item \texttt{"/**/"}
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\item \texttt{"/*foobar*/"}
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\item \texttt{"/*test*/test*/"}
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\item \texttt{"/*test/*test*/"}
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\end{enumerate}
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\subsection*{Question 5 (marked with 1\%)}
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Let $r_1$ be the regular expression $a\cdot a\cdot a$ and $r_2$ be
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Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   159
$(a^{\{19,19\}}) \cdot (a^?)$.  Decide whether the following three
e5f4b8ff23b8 updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   160
strings consisting of $a$s only can be matched by $(r_1^+)^+$.
e5f4b8ff23b8 updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   161
Similarly test them with $(r_2^+)^+$. Again answer in all six cases
e5f4b8ff23b8 updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   162
with yes or no. \medskip
130
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 129
diff changeset
   163
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 129
diff changeset
   164
\noindent
259
e5f4b8ff23b8 updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   165
These are strings are meant to be entirely made up of $a$s. Be careful
e5f4b8ff23b8 updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   166
when copy-and-pasting the strings so as to not forgetting any $a$ and
e5f4b8ff23b8 updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 253
diff changeset
   167
to not introducing any other character.
127
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   168
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   169
\begin{enumerate}
216
f5ec7c597c5b updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 133
diff changeset
   170
\item \texttt{"aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\\
127
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   171
aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\\
216
f5ec7c597c5b updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 133
diff changeset
   172
aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"}
f5ec7c597c5b updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 133
diff changeset
   173
\item \texttt{"aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\\ 
127
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   174
aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\\ 
216
f5ec7c597c5b updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 133
diff changeset
   175
aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"}
f5ec7c597c5b updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 133
diff changeset
   176
\item \texttt{"aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\\ 
127
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   177
aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\\ 
216
f5ec7c597c5b updated
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents: 133
diff changeset
   178
aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"}
127
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   179
\end{enumerate}
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   180
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   181
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   182
\end{document}
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   183
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   184
%%% Local Variables: 
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   185
%%% mode: latex
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   186
%%% TeX-master: t
Christian Urban <christian dot urban at kcl dot ac dot uk>
parents:
diff changeset
   187
%%% End: