Galileo-Based Doppler Shifts and Time Difference Carrier Phase: A Static Case Demonstration

Author:

Gioia Ciro1ORCID,Angrisano Antonio2,Gaglione Salvatore3ORCID

Affiliation:

1. Independent Researcher, 21020 Brebbia, Italy

2. Department of Engineering, Messina University, 98121 Messina, Italy

3. Department of Science and Technology, University of Naples Parthenope, 80143 Napoli, Italy

Abstract

The European Commission is designing and implementing new regulations for vehicle navigation in different sectors. Commission Delegated Regulation 2017/79 defines the compatibility and performance of the 112-based eCall in-vehicle systems. The regulation has a large impact on road transportation because it requires that all cars and light duty vehicles must be equipped with eCall devices. For heavy duty vehicles, a set of new regulations has been developed, starting from EU Regulation No 165/2014, in which the concept of smart tachographs was introduced to enforce the EU legislation on professional drivers’ driving and resting times. In addition, intelligent speed assistance (ISA) devices increase the safety of road users. These new devices fully exploit the Global Navigation Satellite System (GNSS) to compute position velocity and time (PVT) information. In all these systems, the velocity of the vehicle plays a fundamental role; hence, a reliable and accurate velocity estimate is of utmost importance. In this work, two methods for velocity estimation using Galileo are presented and compared. The first exploits Doppler shift measurements, while the second uses time difference carrier phase (TDCP) measurements. The Doppler-based technique for velocity estimation is widely adopted in current devices, while the TDCP technique is emerging due to its promising high accuracy. The two methods are compared considering all the Galileo signals including E1, E5a, E5b, E5 Alt BOC and E6. The methods are compared in terms of velocity errors for both horizontal and vertical components using real static data. From the tests performed, it emerged that the TDCP has increased performance with respect to the Doppler-based solution. Among the Doppler-based solutions, the most accurate solution is the one obtained with the E5 Alt BOC signal.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Reference27 articles.

1. EUROSTAT (2022). Key Figures on European Transport—2022 Edition, Publications Office of the European Union.

2. EU Commission (2023, July 28). COMMISSION DELEGATED REGULATION (EU) 2017/79—Establishing Detailed Technical Requirements and Test Procedures for the EC Type-Approval of Motor Vehicles with Respect to Their 112-Based eCall in-Vehicles Systems, of 112-Based eCall in-Vehicle2016. Available online: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A32017R0079.

3. Boniface, K., Gioia, C., Susi, M., and Sbardellati, J.F.E.F. (2019, January 16–20). Galileo and EGNOS Adoption in Automotive Emergency Call System (eCall). Proceedings of the 32nd International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GNSS+ 2019), Miami, FL, USA.

4. European Parliament, and Council of the European Union (2023, July 28). Regulation (EU) No 165/2014 of the European Parliament and of the Council of 4 February 2014 on Tachographs in Road Transport, Repealing Council Regulation (EEC) No 3821/85 on Recording Equipment in Road Transport and Amending Regulation (EC) No 561/2006. Available online: https://eur-lex.europa.eu/legal-content/EN/ALL/?uri=celex%3A32014R0165.

5. European Commission (2021). Commission Implementing Regulation

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