Dr. Turdimuhammad Abdullah
Hakemli Dergi MakalesiSCI-E / Scopus2024
10Doğrulanmış Atıf

“Comparative study of evolutionary machine learning approaches to simulate the rheological characteristics of polybutylene succinate (PBS) utilized for fused deposition modeling …”

Yazarlar ve Katkıda Bulunanlar
Osman TaylanTurdimuhammad Abdullah★Shefaa BaikMustafa T YilmazHassan M AlidrisiRayyan O QurbanAmmar AbdulGhani MelaibariAdnan Memić
Polymer Bulletin Cover
Official Venue

Polymer Bulletin 81 (10), 8663-8683

Publisher: Springer Berlin Heidelberg

Özet ve Araştırma Bulguları (Abstract)

Polymer filament fabrication and its printability are influenced significantly by rheological behavior. This influence can pose a significant obstacle when attempting to transition fused deposition modeling (FDM) from the laboratory to industrial or clinical settings. The aim of this study is to demonstrate how machine learning (ML) approaches can speed up the development of polymer filaments for FDM. Four types of ML methods: artificial neural network, support vector regression, polynomial chaos expansion (PCE), and response surface model, were used to predict the rheological behaivior of polybutylene succinate. In general, all four approaches presented significantly high correlation values with respect to the training and testing data stages. Remarkably, the PCE algorithm repeatedly provided the highest correlation for each response variable in both the training and testing stages. Noteworthy, variation differs …

Yıllık Atıf Gelişimi & Dinamiği

10 total citations
Toplam Atıf:10
Zirve Yılı: 2025 (7 Atıf)
2025
2026

Alıntı Yap ve Dışa Aktar (Cite)

@article{taylan2024comparat,
  title = {Comparative study of evolutionary machine learning approaches to simulate the rheological characteristics of polybutylene succinate (PBS) utilized for fused deposition modeling …},
  author = {Osman Taylan, Turdimuhammad Abdullah, Shefaa Baik, Mustafa T Yilmaz, Hassan M Alidrisi, Rayyan O Qurban, Ammar AbdulGhani Melaibari, Adnan Memić},
  journal = {Polymer Bulletin 81 (10), 8663-8683},
  volume = {81},
  number = {10},
  pages = {8663--8683},
  year = {2024},
  publisher = {Springer Berlin Heidelberg},
  doi = {10.1007/S00289-023-05106-8},
  url = {https://doi.org/10.1007/S00289-023-05106-8},
}

Bibliyografik Yayın Bilgileri

Dergi / Patent KaydıPolymer Bulletin 81 (10), 8663-8683
YayıncıSpringer Berlin Heidelberg
Cilt (Volume)81
Sayı (Issue)10
Sayfalar (Pages)8663-8683
Yayın Tarihi2024/7
İndeks / SınıfSCI-E / Scopus
Resmi Kaynaktan Oku ve Doğrula
Önceki EserMelt‐processable and electrospinnable shape‐memory hydrogels
Sonraki EserHEXADECYL ACRYLATE-BASED PHOTO-CURABLE RESINS FOR 4D PRINTING OF BODY TEMPERATURE RESPONSIVE HYDROGELS WITH SHAPE MEMORY AND SELF-HEALING PROPERTIES

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