Multiclass Reinforced Active Learning for Droplet Pinch-Off Behaviors Identification in Inkjet Printing
Author:
Affiliation:
1. University at Buffalo, SUNY Industrial and Systems Engineering, , Buffalo, NY 14260
2. University of Louisville Industrial Engineering, , Louisville, KY 40292
3. University of Oklahoma Industrial Engineering, , Norman, OK 73019
Abstract
Funder
National Science Foundation
Publisher
ASME International
Subject
Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering
Link
https://asmedigitalcollection.asme.org/manufacturingscience/article-pdf/145/7/071002/6995289/manu_145_7_071002.pdf
Reference51 articles.
1. Inkjet-Printed Electrochemical Sensors;Moya;Curr. Opin. Electrochem.,2017
2. A Review on Electromechanical Devices Fabricated by Additive Manufacturing;O'Donnell;ASME J. Manuf. Sci. Eng.,2017
3. A Low-Cost, Disposable and Portable Inkjet-Printed Biochip for the Developing World;Joshi;Sensors,2020
4. High-Throughput Production of Single-Cell Microparticles Using an Inkjet Printing Technology;Xu;ASME J. Manuf. Sci. Eng.,2008
5. Online Droplet Anomaly Detection From Streaming Videos in Inkjet Printing;Segura;Addit. Manuf.,2021
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