On-Line Electrical Supply Generation Fuel Mix Data Analysis using Python and TensorFlow

I. Grout, Willian Assis Pedrobon de Ferreira, Alexandre Rodrigues Silva
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引用次数: 0

Abstract

In this paper, the Python scripting language and TensorFlow open source platform for machine learning is used to create a software script that can automatically extract electricity supply generation data from an on-line resource and use machine learning techniques to analyze the available data for the creation of end-user information. An on-line resource was chosen where the data could be readily extracted and stored in multi-dimensional TensorFlow arrays for analysis. The usefulness of such generated end-user information is however based on the accuracy of the information and any biases introduced in the data collation, data presentation, data analysis and results presentation, along with the perceptions of the enduser. With these considerations in mind, this paper focuses on the aspects relating to the creation, operation and use of the Python and TensorFlow script.
使用Python和TensorFlow进行在线发电燃料混合数据分析
本文使用Python脚本语言和机器学习开源平台TensorFlow创建一个软件脚本,该脚本可以自动从在线资源中提取电力供应生成数据,并使用机器学习技术分析可用数据以创建最终用户信息。选择一个在线资源,其中数据可以很容易地提取并存储在多维TensorFlow数组中进行分析。然而,这种生成的最终用户信息的有用性取决于信息的准确性和在数据整理、数据呈现、数据分析和结果呈现过程中引入的任何偏差,以及最终用户的看法。考虑到这些因素,本文将重点关注与Python和TensorFlow脚本的创建、操作和使用相关的方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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