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4 changes: 2 additions & 2 deletions pr-2587/applications/python/deutschs_algorithm.html
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Expand Up @@ -822,7 +822,7 @@ <h2>XOR <span class="math notranslate nohighlight">\(\oplus\)</span><a class="he
</section>
<section id="Quantum-oracles">
<h2>Quantum oracles<a class="headerlink" href="#Quantum-oracles" title="Permalink to this heading"></a></h2>
<p><img alt="437ca50c932c4db8b1c688c1f273b6a1" class="no-scaled-link" src="../../_images/oracle.png" style="width: 300px; height: 150px;" /></p>
<p><img alt="ffdb07176b484013a26040825939e80e" class="no-scaled-link" src="../../_images/oracle.png" style="width: 300px; height: 150px;" /></p>
<p>Suppose we have <span class="math notranslate nohighlight">\(f(x): \{0,1\} \longrightarrow \{0,1\}\)</span>. We can compute this function on a quantum computer using oracles which we treat as black box functions that yield the output with an appropriate sequence of logical gates.</p>
<p>Above you see an oracle represented as <span class="math notranslate nohighlight">\(U_f\)</span> which allows us to transform the state <span class="math notranslate nohighlight">\(\ket{x}\ket{y}\)</span> into:</p>
<div class="math notranslate nohighlight">
Expand Down Expand Up @@ -870,7 +870,7 @@ <h2>Quantum parallelism<a class="headerlink" href="#Quantum-parallelism" title="
<h2>Deutsch’s Algorithm:<a class="headerlink" href="#Deutsch's-Algorithm:" title="Permalink to this heading"></a></h2>
<p>Our aim is to find out if <span class="math notranslate nohighlight">\(f: \{0,1\} \longrightarrow \{0,1\}\)</span> is a constant or a balanced function? If constant, <span class="math notranslate nohighlight">\(f(0) = f(1)\)</span>, and if balanced, <span class="math notranslate nohighlight">\(f(0) \neq f(1)\)</span>.</p>
<p>We step through the circuit diagram below and follow the math after the application of each gate.</p>
<p><img alt="845ab55102eb4cd2b31f5a196085fbe0" class="no-scaled-link" src="../../_images/deutsch.png" style="width: 500px; height: 210px;" /></p>
<p><img alt="037428d8649b4aeaadf3ebe57b0ee581" class="no-scaled-link" src="../../_images/deutsch.png" style="width: 500px; height: 210px;" /></p>
<div class="math notranslate nohighlight">
\[\ket{\psi_0} = \ket{01}
\tag{1}\]</div>
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4 changes: 2 additions & 2 deletions pr-2587/examples/python/executing_photonic_kernels.html
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Expand Up @@ -806,7 +806,7 @@ <h2>Sample<a class="headerlink" href="#Sample" title="Permalink to this heading"
</div>
<div class="output_area docutils container">
<div class="highlight"><pre>
{ 02:382 11:259 20:359 }
{ 02:351 11:252 20:397 }

</pre></div></div>
</div>
Expand Down Expand Up @@ -894,7 +894,7 @@ <h2>Parallelization Techniques<a class="headerlink" href="#Parallelization-Techn
</div>
<div class="output_area docutils container">
<div class="highlight"><pre>
CUDA-Q Version (https://github.com/NVIDIA/cuda-quantum 03362533af3002696dac150a6f55d13ab7d502fb)
CUDA-Q Version (https://github.com/NVIDIA/cuda-quantum ac3ce7b4dcadeb7b206e461818d801d4e4a197e2)
</pre></div></div>
</div>
</section>
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28 changes: 14 additions & 14 deletions pr-2587/examples/python/executing_photonic_kernels.ipynb
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"{ 02:382 11:259 20:359 }\n",
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"\n"
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"CUDA-Q Version (https://github.com/NVIDIA/cuda-quantum 03362533af3002696dac150a6f55d13ab7d502fb)\n"
"CUDA-Q Version (https://github.com/NVIDIA/cuda-quantum ac3ce7b4dcadeb7b206e461818d801d4e4a197e2)\n"
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4 changes: 2 additions & 2 deletions pr-2587/examples/python/performance_optimizations.html
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Expand Up @@ -750,9 +750,9 @@ <h1>Optimizing Performance<a class="headerlink" href="#Optimizing-Performance" t
<section id="Gate-Fusion">
<h2>Gate Fusion<a class="headerlink" href="#Gate-Fusion" title="Permalink to this heading"></a></h2>
<p>Gate fusion is an optimization technique where consecutive gates are combined into a single gate operation to improve the efficiency of the simulation (See figure below). By targeting the <code class="docutils literal notranslate"><span class="pre">nvidia-mgpu</span></code> backend and setting the <code class="docutils literal notranslate"><span class="pre">CUDAQ_MGPU_FUSE</span></code> environment variable, you can select the degree of fusion that takes place. A full command line example would look like <code class="docutils literal notranslate"><span class="pre">CUDAQ_MGPU_FUSE=4</span> <span class="pre">python</span> <span class="pre">c2h2VQE.py</span> <span class="pre">--target</span> <span class="pre">nvidia</span> <span class="pre">--target-option</span> <span class="pre">fp64,mgpu</span></code></p>
<p><img alt="2a3d0bc481b24fcd9cc764ea192b34ab" src="../../_images/gate-fuse.png" /></p>
<p><img alt="b50eed1ff2bc480fb969d30f3cab6910" src="../../_images/gate-fuse.png" /></p>
<p>The importance of gate fusion is system dependent, but can have a large influence on the performance of the simulation. See the example below for a 24 qubit VQE experiment where changing the fusion level resulted in significant performance boosts.</p>
<p><img alt="c3cbbbd4173b45d283db1abad3b0b49f" src="../../_images/gatefusion.png" /></p>
<p><img alt="37369f2d44254ceb8f343db2c13a5450" src="../../_images/gatefusion.png" /></p>
</section>
</section>

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2 changes: 1 addition & 1 deletion pr-2587/searchindex.js

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