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<link rel="modulepreload" href="/docs/diffusers/v0.25.0/ja/_app/immutable/chunks/IconCopyLink.96bbb92b.js"><!-- HEAD_svelte-1phssyn_START --><!-- HEAD_svelte-1phssyn_END --> <h1 class="relative group"><a id="overview" class="header-link block pr-1.5 text-lg no-hover:hidden with-hover:absolute with-hover:p-1.5 with-hover:opacity-0 with-hover:group-hover:opacity-100 with-hover:right-full" href="#overview"><span><svg class="" xmlns="http://www.w3.org/2000/svg" xmlns:xlink="http://www.w3.org/1999/xlink" aria-hidden="true" role="img" width="1em" height="1em" preserveAspectRatio="xMidYMid meet" viewBox="0 0 256 256"><path d="M167.594 88.393a8.001 8.001 0 0 1 0 11.314l-67.882 67.882a8 8 0 1 1-11.314-11.315l67.882-67.881a8.003 8.003 0 0 1 11.314 0zm-28.287 84.86l-28.284 28.284a40 40 0 0 1-56.567-56.567l28.284-28.284a8 8 0 0 0-11.315-11.315l-28.284 28.284a56 56 0 0 0 79.196 79.197l28.285-28.285a8 8 0 1 0-11.315-11.314zM212.852 43.14a56.002 56.002 0 0 0-79.196 0l-28.284 28.284a8 8 0 1 0 11.314 11.314l28.284-28.284a40 40 0 0 1 56.568 56.567l-28.285 28.285a8 8 0 0 0 11.315 11.314l28.284-28.284a56.065 56.065 0 0 0 0-79.196z" fill="currentColor"></path></svg></span></a> <span data-svelte-h="svelte-1jsw1pg">Overview</span></h1> <p data-svelte-h="svelte-66u7th">Generating high-quality outputs is computationally intensive, especially during each iterative step where you go from a noisy output to a less noisy output. One of 🤗 Diffuser’s goals is to make this technology widely accessible to everyone, which includes enabling fast inference on consumer and specialized hardware.</p> <p data-svelte-h="svelte-r3bxis">This section will cover tips and tricks - like half-precision weights and sliced attention - for optimizing inference speed and reducing memory-consumption. You’ll also learn how to speed up your PyTorch code with <a href="https://pytorch.org/tutorials/intermediate/torch_compile_tutorial.html" rel="nofollow"><code>torch.compile</code></a> or <a href="https://onnxruntime.ai/docs/" rel="nofollow">ONNX Runtime</a>, and enable memory-efficient attention with <a href="https://facebookresearch.github.io/xformers/" rel="nofollow">xFormers</a>. There are also guides for running inference on specific hardware like Apple Silicon, and Intel or Habana processors.</p>
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