Deep Learning for Enterprise Decision-Making: A Comprehensive Study in Stock Market Analytics

Sarder Abdulla Al Shiam, Md Mahdi Hasan, Md Boktiar Nayeem, M. Tazwar Hossian Choudhury, Proshanta Kumar Bhowmik, Sarmin Akter Shochona, Ahmed Ali Linkon, Md Murshid Reja Sweet, Md Rasibul Islam
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Abstract

This study explores the transformative impact of deep learning, specifically Convolutional Neural Networks (CNNs), on organizational decision-making in the stock market. Utilizing CNN architectures like VGG16, ResNet50, and InceptionV3, the research emphasizes the significance of leveraging deep learning for improved business intelligence and management. It highlights the superiority of CNN models over traditional algorithms, with VGG16 achieving an accuracy rate of 90.45%. The study underscores the potential of deep learning in extracting valuable insights from complex data, leading to a shift in optimizing organizational processes. Additionally, it stresses the importance of investing in infrastructure and expertise for successful CNN integration, alongside addressing ethical and privacy concerns. Through a dive into real-time mathematical concepts, the study provides insights into CNN functionality and offers comparisons between different architectures, aiding in specialized applications such as stock market trends.
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企业决策的深度学习:股市分析综合研究
本研究探讨了深度学习,特别是卷积神经网络(CNN)对股票市场组织决策的变革性影响。研究利用 VGG16、ResNet50 和 InceptionV3 等 CNN 架构,强调了利用深度学习改善商业智能和管理的重要性。研究强调了 CNN 模型相对于传统算法的优越性,其中 VGG16 的准确率达到了 90.45%。该研究强调了深度学习在从复杂数据中提取有价值见解方面的潜力,从而促进组织流程的优化。此外,研究还强调了投资基础设施和专业知识对于成功整合 CNN 以及解决道德和隐私问题的重要性。通过深入探讨实时数学概念,该研究提供了对 CNN 功能的见解,并提供了不同架构之间的比较,有助于股票市场趋势等专业应用。
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