Low Precision Streaming PCA
Sanjoy Dasgupta, Syamantak Kumar, Shourya Pandey, Purnamrita Sarkar
Abstract
Low-precision Streaming PCA estimates the top principal component in a streaming setting under limited precision. We establish an information-theoretic lower bound on the quantization resolution required to achieve a target accuracy for the leading eigenvector. We study Oja's algorithm for streaming PCA under linear and nonlinear stochastic quantization. The quantized variants use unbiased stochastic quantization of the weight vector and the updates. Under mild moment and spectral-gap assumptions on the data distribution, we show that a batched version achieves the lower bound up to logarithmic factors under both schemes. This leads to a nearly dimension-free quantization error in the nonlinear quantization setting. Empirical evaluations on synthetic streams validate our theoretical findings and demonstrate that our low-precision methods closely track the performance of standard Oja's algorithm.
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- Streaming PCA for Markovian DataSyamantak Kumar, Purnamrita SarkarNeurIPS 2023 · 16 citations
- Bootstrapping the Error of Oja's AlgorithmRobert Lunde, Purnamrita Sarkar, Rachel A. WardNeurIPS 2021 · 14 citations
- Oja's Algorithm for Streaming Sparse PCASyamantak Kumar, Purnamrita SarkarNeurIPS 2024 · 13 citations
- Collage: Light-Weight Low-Precision Strategy for LLM TrainingTao Yu, Gaurav Gupta, Karthick Gopalswamy, Amith R. Mamidala et al.ICML 2024 · 9 citations
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