parameters
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@ -16,6 +16,7 @@ imgs_transition = lb.run_transition()
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```
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## Gradio UI
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To run the UI on your local machine, run `gradio_ui.py`
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You can find the [most relevant parameters here](parameters.md)
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## Example 1: Simple transition
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![](example1.jpg)
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@ -46,7 +47,7 @@ lb.set_width(1024)
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lb.set_guidance_scale(5.0)
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```
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### depth_strength / list_injection_strength
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The strength dictates how early the blending process starts. The closer its value is to zero, the more inventive the results will be; whereas, a value closer to one indicates a more simple alpha blending.
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The strength of the diffusion iterations determines when the blending process will begin. A value close to zero results in more creative and intricate outcomes, while a value closer to one indicates a simpler alpha blending. However, low values may also bring about the introduction of additional objects and motion.
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## Set up the branching structure
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@ -252,7 +252,7 @@ class LatentBlending():
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Deeper injections will cause (unwanted) formation of new structures,
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more shallow values will go into alpha-blendy land.
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num_inference_steps: int
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Number of diffusion steps. Larger values will take more compute time.
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Number of diffusion steps. Higher values will take more compute time.
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nmb_branches_final (int): The number of diffusion-generated images
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at the end of the inference.
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nmb_mindist (int): The minimum number of diffusion steps
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# Gradio parameters
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## depth_strength
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determines when the blending process will begin in terms of diffusion steps. A value close to zero results in more creative and intricate outcomes, while a value closer to one indicates a simpler alpha blending. However, low values may also bring about the introduction of additional objects and motion.
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## guidance_scale
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higher guidance scale encourages the creation of images that are closely aligned with the text. However, the best results for latent blending are achieved with lower values.
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## guidance_scale_mid_damper
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decreases the guidance scale in the middle of a transition. A value of 1 would maintain a constant guidance scale, while a value of 0 would decrease the guidance scale to 1 at the midpoint of the transition
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## mid_compression_scaler
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stretches the spacing towards the center, with a linear spacing at mid_compression_scaler=1 and a higher sampling density in the middle at mid_compression_scaler=2
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## num_inference_steps
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determines the quality of the results. While an increase in this value may improve the outcome, it will also require more computation time.
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## nmb_trans_images
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final number of images computed in the last branch of the tree. Higher values will give better results but require more computation time.
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