Papers › Learning to (Learn at Test Time)

Learning to (Learn at Test Time)

20 Oct 2023arXiv:2310.13807archive 2025-07-28

Yu Sun, Xinhao Li, Karan Dalal, Chloe Hsu, Sanmi Koyejo, Carlos Guestrin, Xiaolong Wang, Tatsunori Hashimoto, Xinlei Chen

We reformulate the problem of supervised learning as learning to learn with two nested loops (i.e. learning problems). The inner loop learns on each individual instance with self-supervision before final prediction. The outer loop learns the self-supervised task used by the inner loop, such that its final prediction improves. Our inner loop turns out to be equivalent to linear attention when the inner-loop learner is only a linear model, and to self-attention when it is a kernel estimator. For practical comparison with linear or self-attention layers, we replace each of them in a transformer with an inner loop, so our outer loop is equivalent to training the architecture. When each inner-loop learner is a neural network, our approach vastly outperforms transformers with linear attention on ImageNet from 224 x 224 raw pixels in both accuracy and FLOPs, while (regular) transformers cannot run.

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blend test-time-training/mttt/pp/autoaugment.py official repository ran Apache-2.0 (permissive) · 8fa1f6dea89abe40 · report
cutout test-time-training/mttt/pp/autoaugment.py official repository ran Apache-2.0 (permissive) · a1146beffdc1b587 · report
get_posemb test-time-training/mttt/model.py official repository ran Apache-2.0 (permissive) · f66ba180f0c3270b · report
make_for_train test-time-training/mttt/datasets/input_pipeline.py official repository ran Apache-2.0 (permissive) · 7f6da8b96ca3fb1e · report
posemb_sincos_2d test-time-training/mttt/model.py official repository ran Apache-2.0 (permissive) · a9b79a3fcbad18af · report
solarize test-time-training/mttt/pp/autoaugment.py official repository ran Apache-2.0 (permissive) · 2f023d4690a70195 · report
make_for_inference test-time-training/mttt/datasets/input_pipeline.py official repository unverified Apache-2.0 (permissive) · 474c43c3ad6f28e3 · report

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