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Thuật ngữ AI

Từ điển đầy đủ về Trí tuệ nhân tạo

162
danh mục
2.032
danh mục con
23.060
thuật ngữ
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thuật ngữ

Continual Learning without Tasks

Learning paradigm where the model learns continuously from a data stream without explicit task delimitation, requiring autonomous adaptation to distribution shifts.

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Plasticity-Stability

Fundamental dilemma in continual learning between the ability to learn new information (plasticity) and the preservation of acquired knowledge (stability).

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Dynamic Replay Buffer

Adaptive memory buffer that selectively stores representative samples from the past for periodic review of prior knowledge without defined task boundaries.

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Continual Synaptic Regularization

Technique preserving important synaptic weights identified dynamically during continual learning to limit catastrophic forgetting without prior knowledge of tasks.

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Adaptive Network Expansion

Strategy dynamically adding neurons or layers to the network when new capabilities are required, enabling organic growth without explicit task segmentation.

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Online Synaptic Consolidation

Process of progressive stabilization of important neural connections identified in real-time during continual learning, mimicking biological consolidation mechanisms.

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Automatic Change Detection

Mechanism automatically identifying transitions in data distribution or concepts without explicit supervision, crucial for continuous adaptation.

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Borderless Episodic Memory

Memory system storing significant experiences continuously without task segmentation, using dynamic selection criteria based on utility.

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Continuous Self-Supervised Learning

Approach where the model generates its own learning signals from unlabeled data in a continuous manner, adapting its representations without external supervision.

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Continual Latent Space

Reduced-dimension representation evolving dynamically to accommodate new concepts while preserving the semantic structure of prior knowledge.

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Gradual Knowledge Transfer

Process of automatic identification and reuse of transferable knowledge between emerging concepts in a continuous data stream without explicit delimitation.

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Continuity Metrics

Indicators quantifying model performance on the entirety of knowledge acquired over time, measuring the balance between learning and preservation without task segmentation.

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Non-Stationary Adaptation

Ability of a system to modify its internal parameters in response to dynamically changing data distributions, an essential characteristic of task-free learning.

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