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Glosarium AI

Kamus lengkap Kecerdasan Buatan

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Diffusion Inpainting

Technique using diffusion models to coherently reconstruct missing or masked areas of an image based on the surrounding context.

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Binary Inpainting Mask

Map of the same dimensions as the source image indicating which pixels to modify (value 1) and which to preserve (value 0), serving as a guide for the diffusion process.

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Conditional Text Guidance

Method guiding the diffusion process for inpainting using a textual description, ensuring that the generated region respects the requested semantics.

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Guided Resampling

Iterative noise addition and denoising strategy where noise samples are conditioned by the known pixels of the image to maintain consistency at mask boundaries.

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Latent Blending

Fusion process in the latent space between the features of the original image and those generated by diffusion, ensuring a seamless transition.

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Adaptive Timestep Diffusion

Approach where the number of denoising steps is dynamically adjusted based on the complexity of the region to inpaint, optimizing quality and computation time.

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Context Propagation

Mechanism by which structural and textural information from the preserved areas of the image is propagated into the masked area during the diffusion process.

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Structural Inpainting

Variant of diffusion inpainting focusing on reconstructing fundamental structures and contours before generating fine textural details.

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Semantic Consistency Control

Set of techniques, often based on cross-attention networks, aimed at ensuring that the generated content is semantically logical relative to its environment.

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Conditional Denoising by Mask

Step in the diffusion process where the U-Net model predicts the noise to be removed by jointly using the noisy image and the binary mask as conditional inputs.

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Image Editing by Guided Diffusion

Application of diffusion inpainting not to fill a void, but to alter an existing region according to a directive (text, sketch, style) while preserving the rest.

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Plug-and-Play Inpainting

Method allowing the use of a pre-trained diffusion model for inpainting without specific retraining, by modifying only its inference process.

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Edge Replication

Technique for initializing noise in the masked area based on the characteristics of the border pixels, to improve the visual integration of the result.

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Multi-scale Inpainting

Strategy performing diffusion at multiple resolutions, starting with a coarse structure to progressively refine details, improving overall consistency.

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Anti-Border Blur

Post-processing or constraint applied during diffusion to avoid blur or misalignment artifacts at the junctions between the original area and the inpainted area.

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Stochastic Diffusion Inpainting

Approach where the generation process introduces a controlled element of randomness, allowing for multiple plausible results for the same region to be completed.

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Object Identity Preservation

Inpainting challenge involving modifying part of an object (e.g., a face) without altering its perceived identity, requiring fine control mechanisms.

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Prompt-to-Region Inpainting

Advanced technique linking a specific text prompt segment to an image region, enabling localized and complex edits via diffusion.

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