A method to mitigate cyber exploits on automatic dependent surveillance-broadcast (ADS-B) data transmissions

IF 1.2 4区 工程技术 Q3 ENGINEERING, AEROSPACE Aircraft Engineering and Aerospace Technology Pub Date : 2024-05-07 DOI:10.1108/aeat-10-2023-0261
Swathi Pennapareddy, Ramprasad Srinivasan, Natarajan K.
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引用次数: 0

Abstract

Purpose

Automatic dependent surveillance-broadcast (ADS-B) is the foundational technology of the next generation air transportation system defined by Federal Aviation Authority and is one of the most precise ways for tracking aircraft position. ADS-B is intended to provide greater situational awareness to the pilots by displaying the traffic information like aircraft ID, altitude, speed and other critical parameters on the Cockpit Display of Traffic Information displays in the cockpit. Unfortunately, due to the initial proposed nature of ADS-B protocol, it is neither encrypted nor has any other innate security mechanisms, which makes it an easy target for malicious attacks. The system is vulnerable to various active and passive attacks like message ingestion, message deletion, eavesdropping, jamming, etc., which has become an area of concern for the aviation industry. The purpose of this study is to propose a method based on modified advanced encryption standard (AES) algorithm to secure the ADS=B messages and increase the integrity of ADS-B data transmissions.

Design/methodology/approach

Though there are various cryptographic and non-cryptographic methods proposed to secure ADS-B data transmissions, it is evident that most of these systems have limitations in terms of cost, implementation or feasibility. The new proposed method implements AES encryption techniques on the ADS-B data on the sender side and correlated decryption mechanism at the receiver end. The system is designed based on the flight schedule data available from any flight planning systems and implementing the AES algorithm on the ADS-B data from each aircraft in the flight schedule.

Findings

The suitable hardware was developed using Raspberry pi, ESP32 and Ra-02. Several runs were done to verify the original message, transmitted data and received data. During transmission, encryption algorithm was being developed, which has got very high secured transmission, and during the reception, the data was secured. Field test was conducted to validate the transmission and quality. Several trials were done to validate the transmission process. The authors have successfully shown that the ADS-B data can be encrypted using AES algorithm. The authors are successful in transmitting and receiving the ADS-B data packet using the discussed hardware and software methodology. One major advantage of using the proposed solution is that the information received is encrypted, and the receiver ADS-B system can decrypt the messages on the receiving end. This clearly proves that when the data is received by an unknown receiver, the messages cannot be decrypted, as the receiver is not capable of decrypting the AES-authenticated messages transmitted by the authenticated source. Also, AES encryption is highly unlikely to be decrypted if the encryption key and the associated decryption key are not known.

Research limitations/implications

Implementation of the developed solution in actual onboard avionics systems is not within the scope of this research. Hence, assessing in the real-time distances is not covered.

Social implications

The authors propose to extend this as a software solution to the onboard avionics systems by considering the required architectural changes. This solution can also bring in positive results for unmanned air vehicles in addition to the commercial aircrafts. Enhancement of security to the key operational and navigation data elements is going to be invaluable for future air traffic management and saving lives of people.

Originality/value

The proposed solution has been practically implemented by developing the hardware and software as part of this research. This has been clearly brought out in the paper. The implementation has been tested using the actual ADS-B data/messages received from using the ADS-B receiver. The solution works perfectly, and this brings immense value to the aircraft-to-aircraft and aircraft-to-ground communications, specifically while using ADS-B data for communicating the position information. With the proposed architecture and minor software updates to the onboard avionics, this solution can enhance safety of flights.

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减少对自动监测广播(ADS-B)数据传输的网络攻击的方法
目的ADS-B(Automatic dependent surveillance-broadcast)是美国联邦航空局定义的下一代航空运输系统的基础技术,也是跟踪飞机位置的最精确方法之一。ADS-B 的目的是通过在驾驶舱的交通信息显示屏上显示飞机 ID、高度、速度和其他关键参数等交通信息,为飞行员提供更多的态势感知。遗憾的是,由于 ADS-B 协议最初的提议性质,它既没有加密,也没有任何其他固有的安全机制,因此很容易成为恶意攻击的目标。该系统容易受到各种主动和被动攻击,如信息摄入、信息删除、窃听、干扰等,这已成为航空业关注的一个领域。本研究的目的是提出一种基于改进的高级加密标准(AES)算法的方法,以确保 ADS=B 信息的安全,并提高 ADS-B 数据传输的完整性。新提出的方法在发送端对 ADS-B 数据实施 AES 加密技术,并在接收端实施相关的解密机制。该系统的设计基于任何飞行计划系统提供的飞行计划数据,并对飞行计划中每架飞机的 ADS-B 数据实施 AES 算法。对原始信息、传输数据和接收数据进行了多次运行验证。在传输过程中,开发了加密算法,从而获得了非常高的传输安全性;在接收过程中,数据也得到了保护。进行了实地测试,以验证传输和质量。为了验证传输过程,进行了多次试验。作者成功证明了 ADS-B 数据可以使用 AES 算法进行加密。作者利用所讨论的硬件和软件方法成功地发送和接收了 ADS-B 数据包。使用所提解决方案的一个主要优势是,接收到的信息是加密的,而接收方的 ADS-B 系统可以在接收端对信息进行解密。这清楚地证明,当数据被未知接收器接收时,信息是无法解密的,因为接收器没有能力解密由经过验证的信息源传输的经过 AES 验证的信息。此外,如果不知道加密密钥和相关解密密钥,AES 加密也很难被解密。研究限制/影响在实际机载航空电子系统中实施所开发的解决方案不属于本研究的范围。社会影响作者建议将其作为软件解决方案扩展到机载航空电子系统中,并考虑所需的架构更改。除商用飞机外,该解决方案还可为无人驾驶飞行器带来积极成果。增强关键操作和导航数据元素的安全性,对于未来的空中交通管理和拯救生命将是无价之宝。这一点在论文中已明确提出。使用 ADS-B 接收器接收的实际 ADS-B 数据/信息对实施方案进行了测试。该解决方案运行完美,为机对机和机对地通信带来了巨大价值,特别是在使用 ADS-B 数据通信位置信息时。利用建议的架构和对机载航空电子设备的少量软件更新,该解决方案可以提高飞行的安全性。
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来源期刊
Aircraft Engineering and Aerospace Technology
Aircraft Engineering and Aerospace Technology 工程技术-工程:宇航
CiteScore
3.20
自引率
13.30%
发文量
168
审稿时长
8 months
期刊介绍: Aircraft Engineering and Aerospace Technology provides a broad coverage of the materials and techniques employed in the aircraft and aerospace industry. Its international perspectives allow readers to keep up to date with current thinking and developments in critical areas such as coping with increasingly overcrowded airways, the development of new materials, recent breakthroughs in navigation technology - and more.
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