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Scaling Laws For Deep Learning Based Image Reconstruction

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arxiv 2209.13435 v2 pith:CITUMKLL submitted 2022-09-27 eess.IV cs.AIcs.CVcs.LGstat.ML

classification eess.IVcs.AIcs.CVcs.LGstat.ML
keywords scalingtrainingimageperformancedeepsizetrainederror
verification ladder T0 review T1 audit T2 compute T3 formal
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Deep neural networks trained end-to-end to map a measurement of a (noisy) image to a clean image perform excellent for a variety of linear inverse problems. Current methods are only trained on a few hundreds or thousands of images as opposed to the millions of examples deep networks are trained on in other domains. In this work, we study whether major performance gains are expected from scaling up the training set size. We consider image denoising, accelerated magnetic resonance imaging, and super-resolution and empirically determine the reconstruction quality as a function of training set size, while simultaneously scaling the network size. For all three tasks we find that an initially steep power-law scaling slows significantly already at moderate training set sizes. Interpolating those scaling laws suggests that even training on millions of images would not significantly improve performance. To understand the expected behavior, we analytically characterize the performance of a linear estimator learned with early stopped gradient descent. The result formalizes the intuition that once the error induced by learning the signal model is small relative to the error floor, more training examples do not improve performance.

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Cited by 3 Pith papers

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  1. Model Merging Scaling Laws in Large Language Models

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    Empirical scaling laws for LLM merging show a size-dependent floor and 1/k-like tail in cross-entropy loss that holds across architectures and merging methods.

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  3. Compute-Optimal Network Design for Echocardiography Myocardial Segmentation and Perfusion Quantification using Neural Scaling Laws

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    Neural scaling laws fitted to subset performance on CAMUS and CEUS echocardiography datasets enable selection of smaller networks achieving state-of-the-art myocardial segmentation with 240-fold parameter reduction an...

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