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Glosarium AI

Kamus lengkap Kecerdasan Buatan

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Classifier-Free Guidance

A technique for improving conditional fidelity that combines predictions from a conditional model and an unconditional model to enhance the impact of the condition on generation.

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Condition Encoding

The process of transforming an input condition (text, image, etc.) into a vector representation that can be integrated into the diffusion network to influence the generation process.

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Text-to-Image

An application of conditional diffusion where the condition is a textual description used to generate a corresponding image synchronously.

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Image-to-Image

A conditional diffusion task using a source image as a condition to generate a new one, often for stylization, colorization, or modification applications.

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ControlNet

A neural network architecture that duplicates and locks the weights of a pre-trained diffusion model while adding layers to interpret precise spatial conditions such as depth maps or sketches.

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Negative Embedding

A technique involving providing the model with a condition describing what should be avoided in the generation, to refine control over the output content.

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Conditional Inpainting

A form of conditional diffusion where a partially masked image serves as a condition for the model to fill in the missing areas in a manner consistent with the context.

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Outpainting

A conditional diffusion process that extends the borders of an existing image by generating new coherent content, using the original image as a condition.

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Condition Modulation

Method of integrating condition into the diffusion model, often via AdaIN (Adaptive Instance Normalization) layers, to adapt feature statistics to the condition.

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Conditional Fidelity Score

Metric evaluating how well the output generated by a conditional diffusion model aligns with the provided input condition.

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DreamBooth

Fine-tuning technique for a conditional diffusion model on a small set of images to teach it to generate a specific concept or subject, often a person or object.

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Textual Inversion

Process that learns a new text embedding token from a set of images, allowing a unique word to be associated with a specific visual style or concept in a diffusion model.

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IP-Adapter (Image Prompt Adapter)

Module added to a diffusion model to enable it to use an image as a prompt, by encoding the reference image and integrating it via cross-attention mechanisms.

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Multi-Modality Reference

Simultaneous use of multiple types of conditions (e.g., text and image) to guide generation, offering more nuanced and precise control over the final result.

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