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Friday, 7 November 2025

Introducing Nested Learning: A new ML paradigm for continual learning

Google Research 9 months ago 49

Researchers introduced Nested Learning, a machine learning paradigm that unifies model architecture and optimization algorithms as interconnected multi-level learning problems to address catastrophic forgetting in continual learning. A self-modifying architecture called Hope, presented at NeurIPS 2025, demonstrated lower perplexity and superior long-context memory management compared to standard transformers and recurrent models on language modeling and reasoning tasks. This approach enables models to incorporate multiple update frequencies and memory levels, potentially enabling continuous knowledge acquisition without losing previous capabilities.

Understanding prompt injections: a frontier security challenge

OpenAI 9 months ago 17

Prompt injection attacks exploit AI systems by manipulating their input instructions to bypass intended behaviors or extract unintended outputs. OpenAI is conducting research into these vulnerabilities and developing training methods and safeguards to protect against them. The effort reflects an emerging security concern as large language models become more widely deployed in real-world applications.

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