NASPrecision: Neural Architecture Search-Driven Multi-Stage Learning for Surface Roughness Prediction in Ultra-Precision Machining
Penghui Ruan, Divya Saxena, Jiannong Cao, Xiaoyun Liu, Ruoxin Wang,, Chi Fai Cheung

TL;DR
NASPrecision introduces an automated multi-stage neural architecture search framework that significantly improves surface roughness prediction accuracy in machining, especially with limited and imbalanced datasets, reducing human intervention.
Contribution
It presents a novel NAS-driven multi-stage learning framework that autonomously optimizes models and features for surface roughness prediction, outperforming traditional methods.
Findings
Achieved 18% improvement in MAPE
Reduced RMSE by 31%
Enhanced robustness across multiple datasets
Abstract
Accurate surface roughness prediction is critical for ensuring high product quality, especially in areas like manufacturing and aerospace, where the smallest imperfections can compromise performance or safety. However, this is challenging due to complex, non-linear interactions among variables, which is further exacerbated with limited and imbalanced datasets. Existing methods using traditional machine learning algorithms require extensive domain knowledge for feature engineering and substantial human intervention for model selection. To address these issues, we propose NASPrecision, a Neural Architecture Search (NAS)-Driven Multi-Stage Learning Framework. This innovative approach autonomously identifies the most suitable features and models for various surface roughness prediction tasks and significantly enhances the performance by multi-stage learning. Our framework operates in three…
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Taxonomy
TopicsAdvanced machining processes and optimization · Advanced Measurement and Metrology Techniques · Advanced Surface Polishing Techniques
