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Michael W. Spratling

University of Luxembourg

4 papers hereh-index 284.2k citations104 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • sole author1
  • middle author1
  • last author2

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • cs.LG3
  • cs.CV1
affiliations
  • University of Luxembourg
HomepageORCID 0000-0001-9531-2813

identity via Semantic Scholar / OpenAlex

collaborators

4 papers

cs.LG2025

A Comprehensive Assessment Benchmark for Rigorously Evaluating Deep Learning Image Classifiers

Michael W. Spratling

Reliable and robust evaluation methods are a necessary first step towards developing machine learning models that are themselves robust and reliable. Unfortunately, current evaluat…

cs.LG2024

When Multi-Task Learning Meets Partial Supervision: A Computer Vision Review

Maxime Fontana, Michael Spratling, Miaojing Shi

Multi-Task Learning (MTL) aims to learn multiple tasks simultaneously while exploiting their mutual relationships. By using shared resources to simultaneously calculate multiple ou…

cs.CV2024

AROID: Improving Adversarial Robustness Through Online Instance-Wise Data Augmentation

Lin Li, Jianing Qiu, Michael Spratling

Deep neural networks are vulnerable to adversarial examples. Adversarial training (AT) is an effective defense against adversarial examples. However, AT is prone to overfitting whi…

cs.LG2024

OODRobustBench: a Benchmark and Large-Scale Analysis of Adversarial Robustness under Distribution Shift

Lin Li, Yifei Wang, Chawin Sitawarin +1

Existing works have made great progress in improving adversarial robustness, but typically test their method only on data from the same distribution as the training data, i.e. in-d…

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