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Opportunistic In-Vehicle Noise Measurements assess Road Surface Quality to Improve Noise Mapping: Preliminary Results from the MobiSense Project (CROSBI ID 680673)

Prilog sa skupa u zborniku | izvorni znanstveni rad | međunarodna recenzija

Dekoninck, Luc ; Van Hauwermeiren, Wout ; David, Joachim ; Filipan, Karlo ; De Pessemier, Toon ; De Coensel, Bert ; Joseph, Wout ; Martens, Luc ; Botteldooren, Dick Opportunistic In-Vehicle Noise Measurements assess Road Surface Quality to Improve Noise Mapping: Preliminary Results from the MobiSense Project // Proceedings of the 23rd International Congress on Acoustics, integrating 4th EAA Euroregio 2019 / Ochmann, Martin (ur.). Aachen, 2019. str. 7987-7994

Podaci o odgovornosti

Dekoninck, Luc ; Van Hauwermeiren, Wout ; David, Joachim ; Filipan, Karlo ; De Pessemier, Toon ; De Coensel, Bert ; Joseph, Wout ; Martens, Luc ; Botteldooren, Dick

engleski

Opportunistic In-Vehicle Noise Measurements assess Road Surface Quality to Improve Noise Mapping: Preliminary Results from the MobiSense Project

The quality of road pavements affects noise emission caused by tire-road interactions. This in turn affects the health and well-being of residents near these roads. Road pavement quality degrades over time due to wear, accidents, and infrastructure works. These local features are usually not included in noise mapping due to the lack of high-quality information on pavements with enough spatial resolution.The aim of Mobisense is to assess the quality of the road surface by performing opportunistic noise and vibration measurements inside vehicles that are on the road for other purposes than road quality measurement. In the demonstrator phase of the project, 20 vehicles collect data while the drivers make their usual trips. Measurements from all vehicles are combined using machine learning techniques. This removes engine noise, corrects for vehicle specific speed dependence, and finally determines a rolling noise proxy in third-octave bands. This rolling noise correction includes the effect of pavement type as well as the effect of road surface degradation. This local variation in road surface quality is included as a correction in the rolling noise component of CNOSSOS and used to calculate a subset of the noise map for the Flemish region in Belgium. Including road surface quality in this way changes noise maps locally over a range of 6 dBA.

Noise mapping, Road surface, Big Data

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Podaci o prilogu

7987-7994.

2019.

objavljeno

Podaci o matičnoj publikaciji

Proceedings of the 23rd International Congress on Acoustics, integrating 4th EAA Euroregio 2019

Ochmann, Martin

Aachen:

2415-1599

Podaci o skupu

23rd International Congress on Acoustics ; 4th EAA Euroregio 2019

predavanje

09.09.2019-13.09.2019

Aachen, Njemačka

Povezanost rada

Povezane osobe




Elektrotehnika, Računarstvo