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AI-woordenlijst

Het complete woordenboek van kunstmatige intelligentie

162
categorieën
2.032
subcategorieën
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Latent Diffusion

Image generation process where noise is added and removed in a lower-dimensional latent space, making computation faster and more efficient than in pixel space.

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Diffusion Process

Generation method that involves progressively destroying initial data by adding noise over multiple steps, then learning to reverse this process to reconstruct the data from noise.

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Noise Schedule

Strategy defining the amount and nature of noise added at each step of the diffusion process, influencing the quality and speed of final generation.

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U-Net Model

Convolutional neural network architecture with a 'U' shape, used in diffusion models to predict noise through its downsampling (analysis) and upsampling (synthesis) paths.

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Latent Text-to-Image

Application of latent diffusion where a model generates images in a latent space from a text description, before decoding them into final pixel images.

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Text Guidance (Classifier-Free Guidance)

Conditioning technique that uses a diffusion model trained simultaneously with and without text, and combines their predictions to strengthen adherence to the text description during generation.

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Latent Decoder

Part of an autoencoder (like a VAE) that converts a compressed representation from the latent space into final data in the original space (for example, a pixel image).

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Text Encoder

Model (often a Transformer like CLIP) that transforms a character string into a numerical vector in the latent space, providing conditioning for image generation.

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Negative Embedding

Use of text embeddings trained to represent concepts to avoid, allowing to guide the generation of a diffusion model away from undesirable styles or objects.

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Latent Inpainting

Process of modifying an existing image by masking an area and using a latent diffusion model to generate new coherent content in that area, while preserving the context.

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Latent Outpainting

Extension of an existing image beyond its original boundaries using a latent diffusion model to generate plausible content that seamlessly blends with the base image.

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Latent Image-to-Image

Technique where an input image is encoded into the latent space, then partially noised and denoised according to a text prompt, to transform the style or content of the original image.

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