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Publications

FAME: Federated Decentralized Trusted Data Marketplace for Embedded Finance

Jul 2023
IEEE
  • Lazcano, Raquel
  • Vera, Juan Manuel
Due to its multivariate and multipurpose use and reuse, data’s worth is dramatically increasing, leading to an era characterized by the generation of data marketplaces towards accessing, selling, sharing, and trading data and data assets.

Leveraging Large Language Models for Financial Predictions

Apr 2024
FAME project blog
  • Lazcano, Raquel
  • Vera, Juan Manuel
  • Aguilar, Miguel Ángel
In the world of finance, where every decision can have significant ramifications, the possibility of predicting market movements is invaluable. Traditionally, analysts have relied on a combination of data analysis, market trends, and expert insights to make informed predictions.

Preserving data privacy in Machine Learning pipelines with Federated Learning

Jul 2024
FAME's project blog
  • Gil Pereira, Pablo
  • Lazcano, Raquel
  • Vera, Juan Manuel
The feature extraction capabilities of Machine Learning (ML) models have led to their wide adoption in a large variety of sectors: from anomaly detection for machinery, to user clustering and behavioral prediction, market trends predictions, or the analysis of text, sound, and image data.

FeLix, the Federated Learning Framework

  • García, Joaquín
  • Vera, Juan Manuel
  • Rojas-Delgado, Jairo
The Federated Learning is a rapidly growing field that enables the decentralized training of AI models while keeping data on the premises where it is generated.

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