DEVELOPMENT OF A REGRESSION MODEL TO FORECAST AIR TRAVEL DEMAND AT BAGHDAD INTERNATIONAL AIRPORT

Rawaa S. Albayati, Raquim N. Zehawi
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引用次数: 0

Abstract

The civil aviation demand forecast is a carefully formed perspective for airport system activities. Its main use is to predict possible needs for the planning and financial management processes for air carriers and civil aviation authorities. It is vital to conduct frequent analyses and projections of demand in order to meet their customers' expectations by balancing supply and demand and staying abreast of the ever-changing aviation industry. The purpose of this paper is to establish a mathematical relationship between the socioeconomic explanatory factors such as (population, Gross Domestic Product (GDP), consumption expenditure, rate of exchange, industry, imports, and exports) and activities (passenger movements and aircraft operations) at Baghdad International Airport in order to develop an econometric model. The required data had been collected for the past ten years. Eight models were developed depending on one or more of the explanatory variables using SPSS software, and they were then subjected to cross-comparison to see which model was more robust. According to the findings of the statistics, the gross domestic product, population size, and consumption expenditure are the most appropriate explanatory variables that have a significant impact on these activities, where they had a high R2 and F-statistics value equal to 90% and 73.442, respectively, for the model of air passengers and GDP and 90% and 48.737 for the model of flight operations and GDP.
巴格达国际机场航空旅行需求预测回归模型的建立
民航需求预测是机场系统活动的一个精心形成的视角。其主要用途是预测航空公司和民航当局规划和财务管理过程的可能需求。重要的是要经常对需求进行分析和预测,以通过平衡供需和跟上不断变化的航空业来满足客户的期望。本文的目的是在巴格达国际机场的社会经济解释因素(人口、国内生产总值、消费支出、汇率、工业、进口和出口)和活动(乘客流动和飞机运营)之间建立数学关系,以建立计量经济模型。所需的数据是在过去十年中收集的。使用SPSS软件,根据一个或多个解释变量开发了八个模型,然后对它们进行交叉比较,看看哪个模型更稳健。根据统计结果,国内生产总值、人口规模和消费支出是对这些活动产生重大影响的最合适的解释变量,它们的R2和F统计值分别高达90%和73.442,航空乘客和GDP的模型为90%,飞行运营和GDP的模式为48.737。
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
CiteScore
0.70
自引率
0.00%
发文量
74
审稿时长
50 weeks
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