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Publications

Publications by Ana Pereira

2013

Editorial A Successful Change From TNN to TNNLS and a Very Successful Year

Authors
Liu, D; Anderson, C; Azar, AT; Battistelli, G; Corrochano, EB; Cervellera, C; Elizondo, DA; Filippone, M; Gnecco, G; Hu, X; Huang, T; Liu, W; Lu, W; Madureira, AM; Skrjanc, I; Villmann, T; Jonathan Wu, QM; Xie, S; Xu, D;

Publication
IEEE Trans. Neural Networks Learn. Syst.

Abstract

2022

A Novel Approach for Send Time Prediction on Email Marketing

Authors
Araujo, C; Soares, C; Pereira, I; Coelho, D; Rebelo, MA; Madureira, A;

Publication
APPLIED SCIENCES-BASEL

Abstract
In the digital world, the demand for better interactions between subscribers and companies is growing, creating the need for personalized and individualized experiences. With the exponential growth of email usage over the years, broad flows of campaigns are sent and received by subscribers, which reveals itself to be a problem for both companies and subscribers. In this work, subscribers are segmented by their behaviors and profiles, such as (i) open rates, (ii) click-through rates, (iii) frequency, and (iv) period of interactions with the companies. Different regressions are used: (i) Random Forest Regressor, (ii) Multiple Linear Regression, (iii) K-Neighbors Regressor, and (iv) Support Vector Regressor. All these regressions' results were aggregated into a final prediction achieved by an ensemble approach, which uses averaging and stacking methods. The use of Long Short-Term Memory is also considered in the presented case. The stacking model obtained the best performance, with an R-2 score of 0.91 and a Mean Absolute Error of 0.204. This allows us to estimate the week's days with a half-day error difference. This work presents promising results for subscriber segmentation based on profile information for predicting the best period for email marketing. In the future, subscribers can be segmented using the Recency, Frequency and Monetary value, the Lifetime Value, or Stream Clustering approaches that allow more personalized and tailored experiences for subscribers. The latter tracks segments over time without costly recalculations and handles continuous streams of new observations without the necessity to recompile the entire model.

2018

Proceedings of the Eighth International Conference on Soft Computing and Pattern Recognition, SoCPaR 2016, Vellore, India, December 19-21, 2016

Authors
Abraham, A; Cherukuri, AK; Madureira, AM; Muda, AK;

Publication
SoCPaR

Abstract

2021

Intelligent Systems Design and Applications - 20th International Conference on Intelligent Systems Design and Applications (ISDA 2020) held December 12-15, 2020

Authors
Abraham, A; Piuri, V; Gandhi, N; Siarry, P; Kaklauskas, A; Madureira, A;

Publication
ISDA

Abstract

2022

Innovations in Bio-Inspired Computing and Applications - Proceedings of the 12th International Conference on Innovations in Bio-Inspired Computing and Applications (IBICA 2021) Held During December 16-18, 2021

Authors
Abraham, A; Madureira, AM; Kaklauskas, A; Gandhi, N; Bajaj, A; Muda, AK; Kriksciuniene, D; Ferreira, JC;

Publication
IBICA

Abstract

2013

A Successful Change from TNN to TNNLS and a Very Successful Year

Authors
Anderson, C; Azar, AT; Battistelli, G; Bayro Corrochano, E; Cervellera, C; Elizondo, D; Filippone, M; Gnecco, G; Hu, XL; Huang, TW; Liu, WF; Lu, WL; Madureira, AM; Skrjanc, I; Villmann, T; Wu, J; Xie, SL; Xu, D; Liu, DR;

Publication
IEEE TRANSACTIONS ON NEURAL NETWORKS AND LEARNING SYSTEMS

Abstract

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