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What Is a Parameter? Print

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The adjustable values inside a model.

THE DEFINITION

One adjustable value inside the model, set during training.

A model with seven billion parameters has seven billion such values.

WHAT SIZE CORRELATES WITH

Generally, capability. Larger models handle more complex tasks and know more.

WHAT SIZE DOES NOT GUARANTEE

Accuracy. Larger models still hallucinate. Suitability. A smaller model may be better for a narrow task. Speed. Larger models are slower and more expensive.

THE TRADE-OFFS

Large: more capable, slower, costlier

Small: faster, cheaper, can run locally, less capable

WHAT MATTERS BESIDES SIZE

Training data quality, training technique, and how the model was aligned.

A well-trained smaller model can beat a poorly trained larger one.

WHAT TO ACTUALLY CARE ABOUT

Whether it does your task well. Test rather than comparing numbers.

RELATED TERMS

Model, training, fine-tuning.


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