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Combined Metrics for Quality Assessment of 3D Printed Surfaces for Aesthetic Purposes: Towards Higher Accordance with Subjective Evaluations

机译:用于审美目的的3D打印表面质量评估的组合度量:朝着更高的主观评价的方向

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Objective quality assessment for 3D printing purposes may be considered as one of the most useful applications of machine vision in smart monitoring related to the development of the Industry 4.0 solutions. During recent years several approaches have been proposed, assuming observing the side surfaces, mainly based on the analysis of the regularity of visible patterns, which represent the consecutive printed layers. These methods, based on the use of general purpose image quality assessment (IQA) metrics, Hough transform, entropy and texture analysis, make it possible to classify the printed samples, independently of the filament's colour, into low and high quality classes, with the use of photos or 3D scans of the side surfaces. The next step of research, investigated in this paper, is the combination of various proposed approaches to develop a combined metric, possibly highly correlated with subjective opinions. Since the correlation of single metrics developed mainly for classification is relatively low, their combination makes it possible to achieve much better results, verified using an original, newly developed database containing 107 captured images and 3D scans of the 3D printed surfaces with various colours and local distortions caused by external factors, together with Mean Opinion Scores (MOS) gathered from independent observers. Obtained results are promising and may be a starting point for further research towards the optimisation of the newly developed metrics for the automatic assessment of the 3D printed surfaces, mainly for aesthetic purposes.
机译:用于3D打印目的的客观质量评估可以被视为与工业4.0解决方案的开发相关的机器视觉在智能监控中最有用的应用之一。近年来,已经提出了几种方法,主要是基于对代表连续印刷层的可见图案的规则性的分析来假设观察侧表面。这些方法基于通用图像质量评估(IQA)指标,霍夫变换,熵和纹理分析的使用,可以将打印的样本与灯丝的颜色无关地分为低质量类别和高质量类别,而无需考虑灯丝的颜色。使用照片或侧面的3D扫描。本文研究的下一步研究是将各种提议的方法结合起来,以开发一种可能与主观意见高度相关的组合指标。由于主要为分类而开发的单个度量的相关性相对较低,因此它们的组合使获得更好的结果成为可能,使用原始的,新开发的数据库进行了验证,该数据库包含107个捕获的图像以及3D打印表面的3D扫描,具有各种颜色和局部由外部因素引起的失真,以及从独立观察员那里收集的平均意见得分(MOS)。获得的结果是有希望的,并且可能是进一步研究优化用于自动评估3D打印表面(主要是出于美学目的)的新开发指标的起点。

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