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advanced_source/cpp_frontend.rst

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@@ -57,7 +57,7 @@ the right tool for the job. Examples for such environments include:
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Multiprocessing is an alternative, but not as scalable and has significant
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shortcomings. C++ has no such constraints and threads are easy to use and
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create. Models requiring heavy parallelization, like those used in `Deep
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Neuroevolution <https://eng.uber.com/deep-neuroevolution/>`_, can benefit from
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Neuroevolution <https://www.uber.com/blog/deep-neuroevolution/>`_, can benefit from
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this.
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- **Existing C++ Codebases**: You may be the owner of an existing C++
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application doing anything from serving web pages in a backend server to
@@ -662,7 +662,7 @@ Defining the DCGAN Modules
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We now have the necessary background and introduction to define the modules for
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the machine learning task we want to solve in this post. To recap: our task is
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to generate images of digits from the `MNIST dataset
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<http://yann.lecun.com/exdb/mnist/>`_. We want to use a `generative adversarial
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<https://huggingface.co/datasets/ylecun/mnist>`_. We want to use a `generative adversarial
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network (GAN)
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<https://papers.nips.cc/paper/5423-generative-adversarial-nets.pdf>`_ to solve
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this task. In particular, we'll use a `DCGAN architecture

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