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Evaluating Transfer Learning Methods on Real-World Data Streams

transfer learning

machine learning

AI research

dynamic data

data availability

domain adaptation

model evaluation

card payment fraud

fraud detection

Bank Account Fraud dataset

resampling methods

model deployment

AI frameworks

progressive labeling

data simulation

algorithm evaluation

data science

artificial intelligence

ML models

real-world AI

fintech AI

banking fraud

AI in finance

risk modeling

adaptive learning

model reproducibility

Автор: Feedzai | Fraud and Financial Crime

Загружено: 2025-09-24

Просмотров: 116

Описание: When the available data for a target domain is limited, transfer learning (TL) methods leverage related data-rich source domains to train and evaluate models, before deploying them on the target domain. However, most TL methods assume fixed levels of labeled and unlabeled target data, which contrasts with real-world scenarios where both data and labels arrive progressively over time. As a result, evaluations based on these static assumptions may not reflect how methods perform in practice.
To support a more realistic assessment of TL methods in dynamic settings, we propose an evaluation framework that (1) simulates varying data availability over time, (2) creates multiple domains via resampling of a given dataset and (3) introduces inter-domain variability through controlled transformations, e.g., including time-dependent covariate and concept shifts. These capabilities enable the systematic simulation of a large number of variants of the experiments, providing deeper insights into how algorithms may behave when deployed.
We demonstrate the usefulness of the proposed framework by performing a case study on a proprietary real-world suite of card payment datasets. To support reproducibility, we also apply the framework on the publicly available Bank Account Fraud (BAF) dataset. By providing a methodology for evaluating TL methods over time and in different data availability conditions, our framework supports a better understanding of model behavior in real-world environments, which enables more informed decisions when deploying models in new domains.

Authors:
Ricardo Ribeiro Pereira, Jacopo Bono, Hugo Ferreira, Pedro Ribeiro, Carlos Soares, Pedro Bizarro

Published in:
European Conference on Machine Learning and Principles and Practice of Knowledge Discovery in Databases - ECML PKDD 2025

Paper link:
Feedzai Research: https://research.feedzai.com/publicat...

arXiv: https://arxiv.org/abs/2508.02702

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Evaluating Transfer Learning Methods on Real-World Data Streams

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