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How to Perform Reproducible Experiments in the ELLIOT Recommendation Framework: Data Processing, Model Selection, and Performance Evaluation

Author
Vito Walter, Anelli; Bellogin Kouki, Alejandrountranslated; Ferrara, Antonio; Malitesta, Daniele; Merra, Felice Antonio; Pomo, Claudio; Donini, Francesco Maria; Sciascio, Eugenio Di; Noia, Tommaso Di
Entity
UAM. Departamento de Ingeniería Informática
Publisher
CEUR
Date
2021-10-05
Citation
How to Perform Reproducible Experiments in the ELLIOT Recommendation Framework: Data Processing, Model Selection, and Performance Evaluation Discussion Paper IRR (2021)
 
 
 
Subjects
Recommender Systems; Reproducibility; Adversarial Learning; Visual Recommenders; Knowledge Graphs; Informática
URI
http://hdl.handle.net/10486/704999
Rights
© The author(s)

Licencia Creative Commons
Esta obra está bajo una Licencia Creative Commons Atribución 4.0 Internacional.

Abstract

Recommender Systems have shown to be an efective way to alleviate the over-choice problem and provide accurate and tailored recommendations. However, the impressive number of proposed recommendation algorithms, splitting strategies, evaluation protocols, metrics, and tasks, has made rigorous experimental evaluation particularly challenging. ELLIOT is a comprehensive recommendation framework that aims to run and reproduce an entire experimental pipeline by processing a simple confguration fle. The framework loads, flters, and splits the data considering a vast set of strategies. Then, it optimizes hyperparameters for several recommendation algorithms, selects the best models, compares them with the baselines, computes metrics spanning from accuracy to beyond-accuracy, bias, and fairness, and conducts statistical analysis. The aim is to provide researchers a tool to ease all the experimental evaluation phases (and make them reproducible), from data reading to results collection. ELLIOT is freely available on GitHub at https://github.com/sisinflab/elliot
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Google™ Scholar:Vito Walter, Anelli - Bellogin Kouki, Alejandro - Ferrara, Antonio - Malitesta, Daniele - Merra, Felice Antonio - Pomo, Claudio - Donini, Francesco Maria - Sciascio, Eugenio Di - Noia, Tommaso Di

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  • Producción científica en acceso abierto de la UAM [16850]

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