5G 网络对人类和环境的影响:全面分析的机器学习方法

Haris Haskić, Amina Radončić
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引用次数: 0

摘要

从 1979 年 1G 网络的诞生到 2019 年 5G 技术的出现,电信技术的发展代表了人类进步的重要历程。随着 5G 时代的到来,其特点是机器与机器之间的连接性增强以及人工智能、物联网和云计算领域的变革性应用,我们必须认识到并解决其对健康和环境的潜在影响。利用机器学习算法(特别是在 Python 中实现的算法)来分析有关 5G 信号的复杂数据集及其与医疗保健结果的潜在相关性,为本研究提供了一种有效的方法。在仔细清理和准备数据并进行线性回归分析后,发现了支持 5G 天线比 4G 天线发出更高水平辐射这一观点的证据--这是企业经常隐瞒的事实。尽管依靠的是有限的数据集,但研究结果强调了需要更准确的数据来提高模型的精确度。正在进行的研究工作对于缓解公众对 5G 技术的焦虑,从而在更大范围内促进信任和提高意识至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The effects of 5G network on people and the environment: A machine learning approach to the comprehensive analysis
The progression of telecommunications, starting from the inception of 1G networks in 1979 to the advent of 5G technology in 2019, represents a significant journey of advancement for humanity. As we approach the era of 5G, characterized by heightened machine-to-machine connectivity and transformative applications in AI, IoT, and cloud computing, it becomes imperative to acknowledge and address concerns regarding its potential impacts on health and the environment. Utilizing machine learning algorithms, particularly implemented in Python for this research, provides a potent approach to analyzing intricate datasets concerning 5G signals and their potential correlations with healthcare outcomes. After carefully cleaning and preparing the data and conducting linear regression analysis, uncovered evidence backing the notion that 5G antennas emit greater levels of radiation compared to 4G antennas emerged - a fact often concealed by corporations. Despite relying on a restricted dataset, the results emphasize the necessity for more accurate data to improve model precision. Ongoing research endeavors are vital to alleviate public anxieties regarding 5G technology, thereby fostering trust and bolstering awareness on a wider front.
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