Balancing Stability and Plasticity in Sequentially Trained Early-Exiting Neural Networks

Fuente: arXiv
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Main Authors: Zniber, Alaa, Karrakchou, Ouassim, Ghogho, Mounir
Format: Preprint
Published: 2026
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author Zniber, Alaa
Karrakchou, Ouassim
Ghogho, Mounir
author_facet Zniber, Alaa
Karrakchou, Ouassim
Ghogho, Mounir
contents Early-exiting neural networks enable adaptive inference by allowing inputs to exit at intermediate classifiers, reducing computation for easy samples while maintaining high accuracy. In practice, exits can be trained sequentially by incrementally adding them to a shared backbone; however, this sequential training can cause newly introduced exits to interfere with previously learned ones, degrading the performance of earlier classifiers. We address this problem by retaining the knowledge embedded in existing exits while allowing new ones to specialize. We propose two alternative approaches that operate at different levels of the model. The first constrains learning by protecting parameters that are important for previously trained exits, while the second preserves the output distributions of earlier exits as the network adapts. These alternatives directly reflect the stability-plasticity trade-off studied in continual learning. Accordingly, we leverage \textit{Elastic Weight Consolidation} to constrain critical weights and \textit{Learning without Forgetting} to preserve output distributions. Experiments on standard benchmarks show that our approaches consistently improve early-exit performance, achieving higher accuracy over existing sequential training methods and significant performance speedups at low computational budgets.
format Preprint
id arxiv_https___arxiv_org_abs_2605_05358
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Balancing Stability and Plasticity in Sequentially Trained Early-Exiting Neural Networks
Zniber, Alaa
Karrakchou, Ouassim
Ghogho, Mounir
Machine Learning
Computer Vision and Pattern Recognition
Early-exiting neural networks enable adaptive inference by allowing inputs to exit at intermediate classifiers, reducing computation for easy samples while maintaining high accuracy. In practice, exits can be trained sequentially by incrementally adding them to a shared backbone; however, this sequential training can cause newly introduced exits to interfere with previously learned ones, degrading the performance of earlier classifiers. We address this problem by retaining the knowledge embedded in existing exits while allowing new ones to specialize. We propose two alternative approaches that operate at different levels of the model. The first constrains learning by protecting parameters that are important for previously trained exits, while the second preserves the output distributions of earlier exits as the network adapts. These alternatives directly reflect the stability-plasticity trade-off studied in continual learning. Accordingly, we leverage \textit{Elastic Weight Consolidation} to constrain critical weights and \textit{Learning without Forgetting} to preserve output distributions. Experiments on standard benchmarks show that our approaches consistently improve early-exit performance, achieving higher accuracy over existing sequential training methods and significant performance speedups at low computational budgets.
title Balancing Stability and Plasticity in Sequentially Trained Early-Exiting Neural Networks
topic Machine Learning
Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2605.05358