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GaLore 2: Large-Scale LLM Pre-Training by Gradient Low-Rank Projection
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Large language models (LLMs) have revolutionized natural language understanding and generation but face significant memory bottlenecks during training. GaLore, Gradient Low-Rank Projection, addresses this issue by leveraging the inherent low-rank structure of weight gradients, enabling substantial memory savings without sacrificing performance. Recent works further extend GaLore from various aspects, including low-bit quantization and higher-order tensor structures. However, there are several remaining challenges for GaLore, such as the computational overhead of SVD for subspace updates and the integration with state-of-the-art training parallelization strategies (e.g., FSDP). In this paper, we present GaLore 2, an efficient and scalable GaLore framework that addresses these challenges and incorporates recent advancements. In addition, we demonstrate the scalability of GaLore 2 by pre-training Llama 7B from scratch using up to 500 billion training tokens, highlighting its potential impact on real LLM pre-training scenarios.
Forward citations
Cited by 3 Pith papers
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No Subspace to Track: Non-Identifiability and Optimizer State in Low-Rank Training
The top-r gradient subspace in GaLore-family optimizers is statistically non-identifiable beyond ~39 of 128 directions, and the fix is to transport optimizer state across refreshes rather than stabilize the basis.
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Token Assorted: Mixing Latent and Text Tokens for Improved Language Model Reasoning
Partially replacing chain-of-thought tokens with discrete latent tokens during fine-tuning improves LLM reasoning accuracy and reduces generated token count.
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Scalable Parameter and Memory Efficient Pretraining for LLM: Recent Algorithmic Advances and Benchmarking
A benchmark and two low-cost tricks (weight refactorization and momentum reset) that make low-rank LLM pre-training competitive with GaLore and Fira at about 25% lower memory.
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