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AI-woordenlijst

Het complete woordenboek van kunstmatige intelligentie

162
categorieën
2.032
subcategorieën
23.060
termen
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subcategorieën

Metric-based Meta-Learning

An approach that learns a distance or similarity metric to compare examples and make predictions on new tasks.

7 termen
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Model-based Meta-Learning

Methods that use models with internal memory or attention mechanisms to quickly adapt to new tasks.

11 termen
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Optimization-based Meta-Learning

Techniques that directly optimize the learning process to enable rapid adaptation with few gradient updates.

6 termen
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MAML (Model-Agnostic Meta-Learning)

Algorithm that trains models with optimal parameter initialization for fast learning on new tasks.

13 termen
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Prototypical Networks

Architecture that learns an embedding space where each class is represented by a prototype computed from support examples.

19 termen
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Siamese Networks

Twin neural networks that learn to measure similarity between pairs of inputs for few-shot learning.

7 termen
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Matching Networks

Models that use weighted attention mechanisms to match test examples to support examples.

6 termen
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Relation Networks

Architecture that learns a relation function to compare support and test example embeddings.

4 termen
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Memory-Augmented Neural Networks

Neural networks with external memory enabling rapid storage and efficient retrieval of information for new tasks.

11 termen
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Meta-Reinforcement Learning

Application of meta-learning to reinforcement learning problems for rapid adaptation to new environments.

12 termen
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Continual Meta-Learning

Approach combining meta-learning and continual learning to continuously learn on new tasks without forgetting previous ones.

11 termen
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Meta-Learning for Hyperparameter Optimization

Using meta-learning to automatically optimize the hyperparameters of learning models.

10 termen
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Neural Architecture Search with Meta-Learning

Application of meta-learning to automatically discover optimal neural network architectures for specific tasks.

13 termen
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Zero-Shot Learning

Ability to recognize classes never seen during training by using semantic information or descriptions.

9 termen
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One-Shot Learning

Subfield of few-shot learning where the model must learn from a single example per class.

0 termen
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Meta-Learning for Few-Shot Classification

Specialization of meta-learning focused on classification problems with very few training examples per class.

2 termen
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Task-Agnostic Meta-Learning

Approach that learns universal representations without prior knowledge of the distribution of future tasks.

16 termen
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