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Fabian Stricker

4 papers hereh-index 27 citations5 works total

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

author position
  • first author4

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

fields
  • cs.DC3
  • cs.LG1

identity via Semantic Scholar / OpenAlex

collaborators

4 papers

cs.LG2026

FLAM: Evaluating Model Performance with Aggregatable Measures in Federated Learning

Fabian Stricker, Jose A. Peregrina, David Bermbach +1

Performance evaluation is essential for assessing the quality of machine learning (ML) models and guiding deployment decisions. In federated learning (FL), assessing the performanc…

cs.DC2026

Revealing the influence of participant failures on model quality in cross-silo Federated Learning

Fabian Stricker, David Bermbach, Christian Zirpins

Federated Learning (FL) is a paradigm for training machine learning (ML) models in collaborative settings while preserving participants' privacy by keeping raw data local. A key re…

cs.DC2025

Analyzing the Impact of Participant Failures in Cross-Silo Federated Learning

Fabian Stricker, David Bermbach, Christian Zirpins

Federated learning (FL) is a new paradigm for training machine learning (ML) models without sharing data. While applying FL in cross-silo scenarios, where organizations collaborate…

cs.DC2025

FL-APU: A Software Architecture to Ease Practical Implementation of Cross-Silo Federated Learning

F. Stricker, J. A. Peregrina, D. Bermbach +1

Federated Learning (FL) is an upcoming technology that is increasingly applied in real-world applications. Early applications focused on cross-device scenarios, where many particip…

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