started to improve that.
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\end{frame}
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}
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{
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\begin{frame}{Motivation: Exponentially Hard (Physical) Problems}
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\begin{itemize}
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\item{Some mathematical problems are exponentially hard to solve, for instance prime factorization.}
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\item{Some physical systems are hard to observe or manipulate, relativistic fermions on a curved spacetime are
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a typical example.}
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\item{There exist several physical systems which are interesting to study but hard so simulate such as
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QCD simulations at finite chemical potential or real time scattering amplitudes in QCD.}
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\item{The exponential behaviour in time (and space) complexity brings classical supercomputers to their limits.}
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\end{itemize}
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\end{frame}
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}
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{
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\begin{frame}{The Quantum Simulator}
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\begin{itemize}
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\item{Mapping a system which is hard to observe and/or hard to manipulate to an analogous system.}
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\item{A typical example is Graphene which has a band structure near the $K$ point similar to relativistic fermions.}
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\item{Original idea from Feynman.}
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\end{itemize}
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\end{frame}
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}
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{
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\begin{frame}{The Universal Quantum Computer}
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\end{frame}
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}
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{
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\begin{frame}{Quantum Errors and Quantum Error Correction}
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\begin{itemize}
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