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Jed Mills

4 papers hereh-index 8836 citations10 works total

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

author position
  • first author3

Across the 3 of 4 papers where every author was matched, so the position is known.

fields
  • cs.LG4

identity via Semantic Scholar / OpenAlex

activity
20202023
most citedMulti-Task Federated Learning for Personalised Deep Neural Networks in Edge Computing

17 citations · 19 across the 4 of their papers we have counts for

collaborators

4 papers

cs.LG2023

Faster Federated Learning with Decaying Number of Local SGD Steps

Jed Mills, Jia Hu, Geyong Min

In Federated Learning (FL) client devices connected over the internet collaboratively train a machine learning model without sharing their private data with a central server or wit…

cs.LG2021★ 1 cited

Federated Ensemble Model-based Reinforcement Learning in Edge Computing

Jin Wang, Jia Hu, Jed Mills +2

Federated learning (FL) is a privacy-preserving distributed machine learning paradigm that enables collaborative training among geographically distributed and heterogeneous devices…

cs.LG2021★ 1 cited

Accelerating Federated Learning with a Global Biased Optimiser

Jed Mills, Jia Hu, Geyong Min +3

Federated Learning (FL) is a recent development in distributed machine learning that collaboratively trains models without training data leaving client devices, preserving data pri…

cs.LG2020★ 17 cited

Multi-Task Federated Learning for Personalised Deep Neural Networks in Edge Computing

Jed Mills, Jia Hu, Geyong Min

Federated Learning (FL) is an emerging approach for collaboratively training Deep Neural Networks (DNNs) on mobile devices, without private user data leaving the devices. Previous…

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Not affiliated with arXiv. Researcher data from Semantic Scholar (ODC-BY) and OpenAlex.