基于机器学习的影响火星生命的参数预测

R. Paulraj, Steven Paul, Telkar Sai Gopichand, Subramanyam Morla, Vempalli Raja, Sekhar Raju
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引用次数: 0

摘要

天气预报是世界上最具挑战性的科学和技术问题之一,是气象学的一个主要应用。本文分析了利用数据挖掘方法预测最低和最高温度、湿度、压力和风速的不同方法。由于复杂的气象现象和缺乏观测和历史数据,天气预报具有挑战性。天气事件中的许多变量是无法计算和量化的。随着通信方法的进步,天气预报专家系统已经能够组合和交换资源,从而导致混合系统的发展。尽管在天气预报方面取得了这些进步,但这些专家系统并不完全可靠,因为天气预报是主要问题。天气预报是气象学家试图预测未来的天气状况和预测可能发生的天气情况。温度、风、湿度、压力和数据集大小都会影响天气条件特征。天气预报的目的是为人民和政府提供知识,他们可以利用这些知识来防止生命和基础设施的损失。在这项研究的背景下,它可以用来确定火星上的环境是否适合人类生存。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machine Learning based Prediction of Parameters that Influence Life on Mars
One of the world's most challenging scientific and technological problems is weather forecasting, a major application in meteorology. This study analyzes different ways to forecast minimum and maximum temperature, humidity, pressure and wind speed using data mining approaches. Weather forecasting is challenging due to complex meteorological phenomena and a lack of observations and historical data. Many variables in weather events are impossible to count and quantify. As communication methods have progressed, weather forecast expert systems have been able to combine and exchange resources, resulting in the development of a hybrid system. Despite these advancements in weather forecasting, these expert systems cannot be completely dependable because weather forecasting is the primary issue. Weather forecasting is meteorologists attempt to forecast weather conditions in the future and forecast weather situations that may occur. Temperature, wind, humidity, pressure, and data set size all influence the weather condition characteristics. Weather forecasting's purpose is to give knowledge to the people and governments, which they may use to prevent the loss of lives and infrastructure. In the context of this research, it can be utilized to determine whether or not the circumstances on Mars are suitable for human survival.
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