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用于货币识别和分类的带注释秘鲁纸币数据集。

Annotated Peruvian banknote dataset for currency recognition and classification.

作者信息

Caytuiro-Silva Nicolás Esleyder, Peña-Alejandro Jackeline Melady, Castro-Gutierrez Eveling Gloria, Sulla-Torres Jose, Maraza-Quispe Benjamin

机构信息

Universidad Católica de Santa María, Arequipa Peru.

Universidad Nacional de San Agustín de Arequipa, Arequipa Peru.

出版信息

Data Brief. 2023 Oct 24;51:109715. doi: 10.1016/j.dib.2023.109715. eCollection 2023 Dec.

Abstract

The real-time detection of multinational banknotes remains an ongoing research challenge within the academic community. Numerous studies have been conducted to address the need for rapid and accurate banknote recognition, counterfeit detection, and identification of damaged banknotes [1], [2], [3]. State-of-the-art techniques, such as machine learning (ML) and deep learning (DL), have supplanted traditional digital image processing methods in banknote recognition and classification. However, the success of ML or DL projects critically hinges on the size and comprehensiveness of the datasets employed. Existing datasets suffer from several limitations. Firstly, there is a notable absence of a Peruvian banknote dataset suitable for training ML or DL models. Second, the lack of annotated data with specific labels and metadata for Peruvian currency hinders the development of effective supervised learning models for banknote recognition and classification. Lastly, datasets from different regions may not align with the unique characteristics, design, and security features of Peruvian banknotes, limiting the accuracy and applicability of models in a Peruvian context [4] To address these limitations, we have meticulously curated a comprehensive dataset comprising a total of 9,315 images of Peruvian banknotes, encompassing both old and new denominations from 2011 (old) and 2019 (new) [5]. The Peruvian banknote dataset includes denominations of 10, 20, 50, and 100 Peruvian soles. Importantly, as indicated by [5], both the 2011 and 2019 families of banknotes are currently in circulation, further enhancing the dataset's relevance for real-world applications in currency recognition and verification. This dataset serves as a vital resource for addressing the challenges in real-time multinational banknote detection. By offering a comprehensive collection of images of Peruvian banknotes, both old and new, this dataset fills a critical gap in the field of banknote recognition. Researchers can utilize it to train and evaluate advanced machine learning and deep learning models, ultimately enhancing the accuracy of banknote processing systems.

摘要

跨国纸币的实时检测仍然是学术界持续面临的研究挑战。为满足快速准确的纸币识别、伪钞检测和受损纸币识别需求,已经开展了大量研究[1,2,3]。机器学习(ML)和深度学习(DL)等先进技术已在纸币识别和分类中取代了传统数字图像处理方法。然而,ML或DL项目的成功关键取决于所使用数据集的规模和全面性。现有数据集存在若干局限性。首先,明显缺乏适用于训练ML或DL模型的秘鲁纸币数据集。其次,缺乏带有特定标签和元数据的秘鲁货币标注数据,这阻碍了用于纸币识别和分类的有效监督学习模型的开发。最后,来自不同地区的数据集可能与秘鲁纸币的独特特征、设计和安全特性不一致,限制了模型在秘鲁环境中的准确性和适用性[4]。为解决这些局限性,我们精心策划了一个全面的数据集,其中包含总共9315张秘鲁纸币图像,涵盖2011年(旧版)和2019年(新版)的新旧面额[5]。秘鲁纸币数据集包括10、20、50和100秘鲁索尔的面额。重要的是,如[5]所示,2011年和2019年的纸币系列目前都在流通,这进一步提高了该数据集在货币识别和验证实际应用中的相关性。该数据集是应对实时跨国纸币检测挑战的重要资源。通过提供新旧秘鲁纸币图像的全面集合,该数据集填补了纸币识别领域的关键空白。研究人员可以利用它来训练和评估先进的机器学习和深度学习模型,最终提高纸币处理系统的准确性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b0e/10641131/0c06ff24b0d0/gr1.jpg

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