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Glosarium AI

Kamus lengkap Kecerdasan Buatan

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Space embedding

Vector space where visual and semantic features are projected to enable comparisons and associations between seen and unseen classes during training.

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Attribute-based learning

Methodology using common descriptive attributes to share information between classes, enabling recognition of unseen objects through their shared characteristics.

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Prototype networks

Neural network architecture that learns a metric space where classification is performed by computing distances to class prototypes, which are mean representatives of each category.

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Model-Agnostic Meta-Learning

Meta-learning algorithm that optimizes a model's initialization parameters to enable rapid adaptation to new tasks with few gradient updates.

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Cross-domain adaptation

Technique that allows a model trained on a source domain to effectively adapt to a different target domain, with potentially dissimilar data distributions.

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Open-set recognition

Classification problem where the model must identify not only known classes but also recognize and reject samples belonging to unknown classes.

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Transductive learning

Learning paradigm where the model simultaneously uses training and test data to directly optimize its predictions on the specific test set considered.

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Episodic training

Training strategy in meta-learning where each episode simulates a few-shot task with support and query sets to learn rapid adaptation capabilities.

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Attribute vocabulary

Predefined set of descriptive attributes used to characterize classes and enable the transfer of semantic knowledge between categories in zero-shot systems.

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