Bias of automatic weather parameter measurement in monsoon area, a case study in Makassar Coast

IF 1.6 Q4 ENVIRONMENTAL SCIENCES
N. Sunusi, Giarno
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引用次数: 0

Abstract

The shift from manual weather measurements to automation is almost inevitable. When switching to AWS (Automatic Weather Station), WMO requires parallel data testing between automatic and manual measurements to be performed. The purpose of this paper is to conduct a parallel test of AWS data using a simple statistical test that has been applied to three main weather parameters, namely temperature, pressure, humidity, rainfall, and wind direction and speed. The months of January and June were used as samples to represent the character of the wet and dry seasons in the Makassar monsoon area. The results of the analysis show that during the rainy season, only pressure and temperature are identical and homogeneous. Meanwhile, in the dry season, apart from these two parameters, humidity and wind speed are also homogeneous and rainfall is a non-homogeneous parameter in January and June. Both AWS and manual observations show that the influence of land-sea winds in Makassar is very strong. Considering that there are inhomogeneous parameters, it is highly recommended to test for a longer time, taking into account the season, the influence of other global phenomena, the effect of missing data and incorrect data testing various methods of homogeneity and characteristics in each place and their effect on forecasts.
季风区天气参数自动测量的偏差,以望加锡海岸为例
从人工天气测量向自动化的转变几乎是不可避免的。当切换到AWS(自动气象站)时,WMO要求在自动和手动测量之间进行并行数据测试。本文的目的是使用简单的统计检验对AWS数据进行并行检验,该统计检验应用于三个主要天气参数,即温度、压力、湿度、降雨量和风向和风速。以1月和6月为样本,代表望加锡季风区干湿季节的特征。分析结果表明,在雨季,只有压力和温度是相同且均匀的。同时,在旱季,除了这两个参数外,湿度和风速也是均匀的,1月和6月的降雨量是一个非均匀参数。AWS和人工观测都表明,陆海风对望加锡的影响非常大。考虑到存在非均匀参数,强烈建议进行较长时间的检验,同时考虑季节、其他全球现象的影响、缺失数据和错误数据的影响,检验各地的各种同质性和特征方法及其对预报的影响。
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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来源期刊
AIMS Environmental Science
AIMS Environmental Science ENVIRONMENTAL SCIENCES-
CiteScore
2.90
自引率
0.00%
发文量
31
审稿时长
5 weeks
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