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空中交通流量管理 (ATFM) 延误演变预测——NM 运营 AI 工具如何改变运营.pdf

上传人: 哆哆 编号:631246 2025-04-19 12页 1.11MB

1、?Forecast of ATFM delay evolution FADE How an NM operational AI tool transforms operationsCamille ANORAUD EUROCONTROLHannes STAUDACHER Austrian Airlines?CONTEXTCONTEXTOperations pain points:Airspace users only know the current ATFM delay The ATFM delay assigned to a flight may change with time This

2、uncertainty has operational and economic consequencesTime before EOBTScope:Predict the evolution of ATFM delay for regulated flightsPREDICTED DELAYPROBABILITY TO DECREASEPARTNERSPARTNERSMODELMODELInputs:EFDs:city-pair,time to EOBT,airline,day of the week.Regulation(s)affecting the flight:reference l

3、ocation,reason.Training:Training dataset cleaned from obvious human actions?FADE predicts what is going to happen if the dispatcher does not act1st version-model too optimistic with high delays?Increased the weight for these cases?DEPLOYMENTDEPLOYMENT?Model deployed on NM Cloud platform(Cloudera)Mon

4、itoring of performance by NMDaily monitoring of performanceAutomatic retraining once the performance reaches the threshold DEPLOYMENTDEPLOYMENT+80 airspace usersNMP/NMUI Flight May 2023APIAPI for AI application from NM?SATISFACTION SURVEYSATISFACTION SURVEY Satisfaction survey launched in October 20

5、24 and sent to the PoC 41 AUs answered out of 65 PoC 63%response rate?Some improvements to make:Reliability and accuracy Further information on FADE:Reports on FADE performance Limitations of the models:adverse weather,ATC-industrial actions Usage of the models:timeframe,probability thresholds,model

6、s complementarityVery positive feedback:Useful tool with great potential Well-appreciated and regularly used Big improvement compared to before(no information on delay evolution)Very good predictions,generally accurate during Summer operations?SATISFACTIOSATIS

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本文介绍了欧洲航行控制中心(EUROCONTROL)和奥地利航空公司(Austrian Airlines)合作开发的NM操作性AI工具——FADE(预测ATFM延迟演变)。该工具能预测受监管航班的ATFM延迟,帮助航空公司优化调度,减少不确定性和运营经济影响。研究训练数据集从明显的人类行为中清洁出来,以预测如果没有调度员行动会发生什么。模型部署在NM云平台上,并进行日常性能监控和自动重训练。调查显示,63%的受试者对FADE表示满意,认为它是一个有潜力、经常使用、并在夏季操作中提供准确预测的有用工具。未来的改进包括提高模型的可靠性和准确性,以及增强关于FADE性能的报告,同时考虑新的性能监控指标和概率阈值。
"AI工具如何改变航空运营?" "FADE预测工具的性能如何?" "如何提高FADE模型的准确性?"
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