about addons

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Seth Forsgren 2022-11-28 14:53:35 -08:00
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@ -176,7 +176,7 @@ export default function Home() {
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<p>
And heres an example that adapts a rock and roll solo to an
And here's an example that adapts a rock and roll solo to an
acoustic folk fiddle:
</p>
<p className="text-4xl">TODO(hayk): This is as far as I got.</p>
@ -208,6 +208,58 @@ export default function Home() {
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<h2 className="pt-10 pb-5 text-3xl font-bold">Looping and Interpolation</h2>
<p>
Generating short clips is a blast, but we really wanted infinite AI-generated jams.
</p>
<p className="mt-3">
Let's say we put in a prompt and generate 100 clips with varying seeds.
We can't concatenate the resulting clips because they differ in key,
tempo, and downbeat.
</p>
<p className="mt-3">
Our strategy is to pick one initial image and generate variations of it
by running image-to-image generation with different seeds and prompts.
This preserves the key properties of the clips. To make them loop-able,
we also create initial images that are an exact number of measures.
</p>
<p className="mt-3">
However, even with this approach it's still too abrupt to transition
between clips. Multiple interpretations of the same prompt with the
same overall structure can still vary greatly in their vibe and melodic
motifs.
</p>
<p className="mt-3">
To address this, we smoothly
<em> interpolate between prompts and seeds in the {" "}
<a href="https://github.com/hmartiro/riffusion-inference/blob/main/riffusion/audio.py">
latent space
</a> {" "}
of the model
</em>. In diffusion models, the latent space is a feature vector
that embeds the entire possible space of what the model can generate.
Items which resemble each other are close in the latent space, and every
numerical value of the latent space decodes to a viable output.
</p>
<p className="mt-3">
The key is that we can continuously sample the latent space between a
prompt with two different seeds, or two different prompts with the same
seed. Here is an example with the visual model:
</p>
<Image
className="ml-24 m-5 w-1/2"
src={happy_cows_interpolation.gif}
alt={"happy cows interpolation"}
/>
<p className="mt-3">
We can do the same thing with our model, which often results in buttery
smooth transitions, even between starkly different prompts. This is vastly
more interesting than interpolating the raw audio, because in the latent
space all in-between points still sound like plausible clips.
</p>
<p className="mt-3">
A
</p>
</div>
</main>
</>

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