Diffusion Model

A Diffusion Model creates images through iterative denoising steps conditioned on prompts and controls. It is the backbone of many Text-to-Image Generation systems and can be steered by Classifier-Free Guidance (CFG).

Related terms

Related terms

  • Structured Outputs

    AI

    Structured Outputs enforce a specific response shape, often with schemas, so AI output can be parsed and consumed reliably by software.

  • Reasoning Effort

    AI

    Reasoning Effort is a controllable depth setting for model thinking, balancing answer quality, latency, and cost.

  • Context Window

    AI

    A Context Window is the maximum amount of tokens a model can process at once, including instructions, conversation history, and retrieved data.

  • Tool Calling

    AI

    Tool Calling is the capability for a model to decide when to call connected tools, then use tool results to complete a task.

  • Retrieval-Augmented Generation (RAG)

    AI

    Retrieval-Augmented Generation (RAG) enriches model outputs by fetching external knowledge at runtime and conditioning generation on it.

  • Grounding

    AI

    Grounding is the practice of constraining generation with verifiable sources so outputs are accurate, attributable, and context-specific.

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