Acoustic camera

A sound visualization of an acoustic camera that was catching sounds form two african elephants.

An acoustic camera (or noise camera) is an imaging device used to locate sound sources and to characterize them. It consists of a group of microphones, also called a microphone array, from which signals are simultaneously collected and processed to form a representation of the location of the sound sources.

Terminology

The term acoustic camera has first appeared at the end of the 19th century: A physiologist, J.R. Ewald,[1] was investigating the function of the inner ear and introduced an analogy with the Chladni plates (a domain nowadays called Cymatics), a device enabling users to visually see the modes of vibration of a plate. He called this device an acoustic camera. The term has then been widely used during the 20th century[2][3][4] to designate various types of acoustic devices, such as underwater localization systems[5] or active systems used in medicine.[6] It designates nowadays any transducer array used to localize sound sources (the medium is usually the air), especially when coupled with an optical camera.

Technology

General principles

An acoustic camera generally consists of a microphone array and optionally an optical camera. The microphones – analog or digital – are acquired simultaneously or with known relative time delays to be able to use the phase difference between the signals. As the sound propagates in the medium (air, water...) at a finite known speed, a sound source is perceived by the microphones at different time instants and at different sound intensities that depend on both the sound source location and the microphone location. One popular method to obtain an acoustic image from the measurement of the microphone is to use beamforming: By delaying each microphone signal relatively and adding them, the signal coming from a specific direction is amplified while signals coming from other directions are canceled. The power of this resulting signal is then calculated and reported on a power map at a pixel corresponding to the direction . The process is iterated at each direction where the power needs to be computed.

This method has many advantages – it is robust, easy to understand, highly parallelizable (because each direction can be computed independently), versatile (there exist many types of beamformers), and it is relatively fast. It however has some drawbacks: it does not model correctly correlated sound sources, and the produced acoustic map has artifacts (also called side lobes or ghost sources). Various methods have been introduced to reduce the artifacts such as DAMAS[7] or to take in account correlated sources such as CLEAN-SC,[8] both at the price of a higher computational cost.

When the sound sources are near the acoustic camera, the relative intensity perceived by the different microphones as well as the waves not being any more seen as planar but spherical by the acoustic camera add new information compared to the case of sources being far from the camera. It enables to use more effective methods such as acoustic holography.

Reprojection

Results of far-field beamforming can be reprojected onto planar or non-planar surfaces.

Two-dimensional

Some acoustic cameras use two-dimensional acoustic mapping, which uses a unidirectional microphone array (e.g. a rectangle of microphones, all facing the same direction). Two-dimensional acoustic mapping works best when the surface to be examined is planar and the acoustic camera can be set up facing the surface perpendicularly. However, the surfaces of real-world objects are not often flat, and it is not always possible to optimally position the acoustic camera.[9]

Additionally, the two-dimensional method of acoustic mapping introduces error into the calculations of the sound intensity at a point. Two-dimensional mapping approximates three-dimensional surfaces into a plane, allowing the distance between each microphone and the focus point to be calculated relatively easily. However, this approximation ignores the distance differences caused by surfaces having different depths at different points. In most applications of the acoustic camera, this error is small enough to be ignored; however, in confined spaces, the error becomes significant.[9]

Three-dimensional

Three-dimensional acoustic cameras fix the errors of two-dimensional cameras by taking into account surface depths, and therefore correctly measuring the distances between the microphone and each spatial point. These cameras produce a more accurate picture, but require a 3-D model of the object or space being analyzed. Additionally, if the acoustic camera picks up sound from a point in space that is not part of the model, the sound may be mapped to a random space in the model, or the sound may not show up at all. 3-D acoustic cameras can also be used to analyze confined spaces, such as room interiors; however, in order to do this, a microphone array that is omnidirectional (e.g. a sphere of microphones, each facing a different direction) is required. This is in addition to the first requirement of having a 3-D model.[9]

Applications

An acoustic camera set in Taichung, Taiwan

There are many applications of the acoustic camera, with most focusing on noise reduction. The camera is frequently applied to improve the noise emission of vehicles (such as cars, airplanes[10]), trains, structures—such as wind turbines[11] and heavy machinery operations such as mining [12] or drilling.

Acoustic cameras are not only used to measure the exterior emission of products but also to improve the comfort inside cabins of cars,[9] train or airplanes. Spherical acoustic cameras are preferred in this type of application because the three-dimensional placement of the microphone allows to localize sound sources in all directions.

Troubleshooting of faults that occur in machines and mechanical parts can be accomplished with an acoustic camera. To find where the problem lies, the sound mapping of a properly functional machine can be compared to one of a dysfunctional machine.

A similar setup of the acoustic camera can be used to study the noise inside passenger carts during train operation. Alternatively, the camera can be set up outside, in an area near the train tracks, to observe the train as it goes by. This can give another perspective of the noise that might be heard inside the train. Additionally, an outside setup can be used to examine the squealing of train wheels caused by a curve in the tracks.

Acoustic camera may be used to aid legal enforcement of noise nuisances caused by people or motor vehicles. Epidemiologist Erica Walker has said this is a "lazy" solution to the problem of noise, and expressed concern acoustic cameras could be used to over-police ethnic minority neighbourhoods.[13]

Challenges

Dynamic range

The effective dynamic range in the imaging plane can be interpreted as the maximum contrast achievable within the target area. An inherent challenge related to the dynamic range of acoustic cameras lies in its dependency on the sound's wavelength and the size of the array. These physical constraints pose difficulties for far-field acoustic cameras aiming to resolve multiple low-frequency sources. As the aperture size would need to be significantly large to tackle low-frequency issues, it often results in inconclusive or less definitive results within this frequency range. This underlines the unique challenges faced in enhancing the dynamic range of acoustic cameras, particularly in applications involving low-frequency sounds.

Low frequencies in the far-field

The lowest frequency that can be localized with a far-field acoustic camera is primarily determined by the size of the array's aperture (its largest dimension). Challenges arise when dealing with low-frequency issues, particularly those below 300 Hz, as they require large array sizes for effective sound source localization. Alternatively, there are a number of effective solutions, such as acoustic vector sensors, either standalone or in an array configuration, or near-field acoustic cameras, both can serve as valuable tools for addressing non-stationary issues. On the other hand, methods that employ direct sound mapping using sound intensity probes and/or particle velocity probes offer robust alternatives for identifying and visualizing time-stationary sound sources.[14]

Computational power

The signal processing required by the acoustic camera is very intensive and needs powerful hardware and plenty of memory storage. Because of this, signal processing is frequently done after the recording of data, which can hinder or prevent the use of the camera in analyzing sounds that only occur occasionally or at varying locations. Cameras that do perform signal processing in real time tend to be large and expensive. Hardware and signal processing improvements can help to overcome these difficulties. Signal processing optimizations often focus on reduction of computational complexity, storage requirements, and memory bandwidth (rate of data consumption).[15]

References

  1. ^ Ewald, J.R. (1898). Wiener klinische Wochenschrift. 11: 721.{{cite journal}}: CS1 maint: untitled periodical (link)
  2. ^ Whitman, R. L.; Ahmed, M.; Korpel, A. (1972). "A progress report on the laser scanned acoustic camera". Acoustical Holography. 20. Springer US: 11–32. doi:10.1007/978-1-4615-8213-7_2. ISBN 978-1-4615-8215-1.
  3. ^ US patent 3895340, "Acoustic camera apparatus" 
  4. ^ Hansen, Rolf Kahrs; Andersen, Poul Arndt (1993). "3D acoustic camera for underwater imaging". Acoustical Imaging. 20. Springer US: 723–727. doi:10.1007/978-1-4615-2958-3_98. ISBN 978-1-4613-6286-9.
  5. ^ Haslett, R. W. G.; Pearce, G.; Welsh, A. W.; Hussey, K. (1966). "The underwater acoustic camera". Acta Acustica United with Acustica. 17, 4. S. Hirzel Verlag: 187–203.
  6. ^ Maginness, M. G.; Plummer, J. D.; Meindl, J. D. (1974). "An acoustic image sensor using a transmit-receive array". Acoustical Holography. Springer US: 619–631. doi:10.1007/978-1-4757-0827-1_36. ISBN 978-1-4757-0829-5.
  7. ^ Brooks, Thomas F.; Humphreys, William M. (2004). "Deconvolution Approach for the Mapping of Acoustic Sources". NASA Invention Disclosure. LAR-16907-1. NASA Langley Research.
  8. ^ Sijtsma, P. (2007). "CLEAN based on spatial source coherence". International Journal of Aeroacoustics. 6 (4): 357–374. doi:10.1260/147547207783359459. S2CID 122396368.
  9. ^ a b c d Meyer, Andy, and Döbler, Dirk. "Noise source localization within a car interior using 3D-microphone arrays." Proceedings of the BeBeC (2006).
  10. ^ Leon, Brusniak; Underbrink, James R.; Stoker, Robert W. (2006). "Acoustic imaging of aircraft noise sources using large aperture phased arrays". AIAA/CEAS Aeroacoustics Conference. 12.
  11. ^ Gwang-Se, Lee; Cheong, Cheolung; Shin, Su-Hyun; Jung, Sung-Soo (2012). "A case study of localization and identification of noise sources from a pitch and a stall regulated wind turbine". Applied Acoustics. 73 8: 817–827.
  12. ^ Oberholster, Abrie J. "Solving issues in the mining industry". Siemens Digital Industries Software. University Of Pretoria. Retrieved November 12, 2021.
  13. ^ Demopoulos A (4 October 2023). "Honk honk! Can noise cameras reduce 'potentially fatal' sound pollution?". The Guardian.
  14. ^ Sound Source Localization Solutions
  15. ^ Zimmermann, B.; Studer, C., "FPGA-based real-time acoustic camera prototype," Circuits and Systems (ISCAS), Proceedings of 2010 IEEE International Symposium on, vol., no., pp.1419,1419, May 30 2010-June 2 2010

Further reading

Read other articles:

Monumen Pembebasan Irian BaratMonumen Pembebasan Irian Barat di Lapangan Banteng.LetakSawah Besar, Jakarta, IndonesiaKoordinat6°10′13″S 106°50′06″E / 6.170298°S 106.834925°E / -6.170298; 106.834925Koordinat: 6°10′13″S 106°50′06″E / 6.170298°S 106.834925°E / -6.170298; 106.834925Dibangun1963ArsitekFriedrich SilabanHenk NgantungPemahatEdhi Sunarso Monumen Pembebasan Irian Barat adalah monumen yang dibangun untuk mengenang p...

 

Okonomiyaki ala Kansai dengan mayones, katsuobushi dan aonori Okonomiyaki (お好み焼きcode: ja is deprecated ) adalah makanan Jepang dengan bahan tepung terigu yang diencerkan dengan air atau dashi, ditambah kol, telur ayam, makanan laut atau daging babi dan digoreng di atas penggorengan datar yang disebut teppan. Okonomiyaki adalah salah satu jenis masakan teppanyaki yang bisa dimakan begitu saja atau sebagai lauk teman nasi putih. Okonomiyaki sering dimakan dengan sendok datar yang dise...

 

Celurut gajah[1]Rentang fosil: Oligosen Awal–Kini PreЄ Є O S D C P T J K Pg N ↓ [2] Rhynchocyon petersi Klasifikasi ilmiah Kerajaan: Animalia Filum: Chordata Kelas: Mamalia Infrakelas: Eutheria Superordo: Afrotheria (tanpa takson): Afroinsectiphilia Ordo: MacroscelideaButler, 1956 Famili: MacroscelididaeBonaparte, 1838 Genera Elephantulus Macroscelides Petrodromus Rhynchocyon Celurut gajah, atau celurut lompat, adalah mamalia insektivora kecil asli Afrika yang tergo...

Symbol used in drawings Diagram showing the rod and vane inserted into the soil US Army Corps of Engineers personnel carrying out a shear vane test The shear vane test is a method of measuring the undrained shear strength of a cohesive soil. The test is carried out with equipment consisting of a rod with vanes mounted to it that is inserted into the ground and rotated. A gauge on the top of the rod measures the torque required to cause failure of the soil and provides a conversion to shear st...

 

Sucker for PainSingel oleh Lil Wayne, Wiz Khalifa dan Imagine Dragons dengan Logic dan Ty Dolla Sign featuring X Ambassadorsdari album Suicide Squad: The AlbumDirilis24 Juni 2016 (2016-06-24)Direkam2016Genre Alternative hip hop rap rock[1] Durasi4:03Label Atlantic Warner Bros. Pencipta Dwayne Carter Jr. Cameron Thomaz Dan Reynolds Daniel Platzman Wayne Sermon Benjamin McKee Sir Robert Bryson Hall II Tyrone Griffin Jr. Sam Harris Alexander Grant ProduserAlex da KidKronologi s...

 

Not to be confused with Vancouver Angels. BC Angels Established2012Folded2013Based inAbbotsford, British Columbia, CanadaHome fieldAbbotsford Entertainment & Sports CentreOwner(s)Lingerie Football League, LLCLeagueLingerie Football LeagueDivisionLFL CanadaColoursBlue, lime green, white     LFL Canada Lingerie Bowl1 (2012)Websitewww.lflcanada.com/bcangels/ Applicants trying out for the BC Angels were told to don cute gym wear. The BC Angels were a women's football team in th...

У этого термина существуют и другие значения, см. Богота (значения). ГородБоготаисп. Bogotá Флаг Герб[d] 4°35′56″ с. ш. 74°04′51″ з. д.HGЯO Страна  Колумбия Регион Столичный округ Мэр Карлос Фернандо Галан[en] История и география Основан 6 августа 1538 Прежние названи�...

 

PSR B1913+16معلومات عامةالكتلة 1٫441 كتلة شمسية المكتشف أو المخترع راسل هالسجوزيف تيلور زمن الاكتشاف أو الاختراع 1974 موقع الاكتشاف الفلكي Arecibo Radio Telescope (en) الكوكبة العقاب[1] المسافة من الأرض 5٫25 kiloparsec (en) [2] القدر الظاهري 22٫5[3] الحقبة J2000.0[3] المطلع المستقيم 288٫866666625 در�...

 

Paternoster Square. LSE terletak dalam bangunan yang mencakup hampir seluruh bagian kanan foto ini. Bursa Saham London (bahasa Inggris: London Stock Exchange, LSE) adalah sebuah bursa saham yang terletak di London. Didirikan pada 1801, bursa ini merupakan salah satu bursa saham terbesar di dunia, dengan banyak pencatatan saham dari luar negeri dan juga perusahaan Britania Raya. Pada Juli 2004 Bursa Saham London pindah dari Threadneedle Street ke Paternoster Square, dekat dengan Katedral St. P...

Northeast megaregion (megalopolis) at night. Imagery was collected by the Suomi NPP satellite in April and October 2012, courtesy of the NASA Earth Observatory/NOAA NGDC. Population tablesof U.S. citiesThe skyline of New York City, the most populous city in the United States Cities Population AreaDensityEthnic identityForeign-bornIncomeSpanish speakerscapitalsBy decadeBy stateBy decade/state Urban areas Populous cities and metropolitan areas Metropolitan areas 563 primary statistical areas17...

 

Amateur wrestling governing body United World WrestlingAbbreviationUWWFormation1912; 112 years ago (1912)TypeSports federationHeadquartersCorsier-sur-Vevey, outside of Lausanne, SwitzerlandMembership Representatives from 176 national federationsPresidentNenad Lalović[1]Revenue (2017) US$5.12 million[2]Expenses (2017)US$8.89 million[2]WebsiteUWW.org United World Wrestling (UWW) is the international governing body for the sport of amateur wrestling; it...

 

Former coal-fired power station in Gloucestershire, England Lydney power stationCountryEnglandLocationLydney GloucestershireCoordinates51°44′06″N 02°32′18″W / 51.73500°N 2.53833°W / 51.73500; -2.53833StatusDecommissioned and demolishedConstruction began1922Commission date1923Decommission date1967Construction cost£235,000Owner(s)West Gloucestershire Power Company Limited(1922–1948)British Electricity Authority(1948–1955)Central Elect...

Antígono III Rey de Macedonia Antígono III DosónReinado 229 a. C.-221 a. C.Predecesor Demetrio IISucesor Filipo VInformación personalNacimiento 263 a. C.Fallecimiento 221 a. C.FamiliaPadre Demetrio el BelloMadre Olimpia[1]​Consorte Ftía[editar datos en Wikidata] Antígono III, en griego Αντίγονος Δώσων, fue un rey de Macedonia, apodado Dosón (280 - 221 a. C.), hijo de Demetrio el Bello[2]​ y nieto de Demetr...

 

Gold funeral mask discovered at the ancient Greek site of Mycenae Mask of AgamemnonThe mask in the National Archaeological Museum of AthensMaterialGoldCreated1550–1500 BCDiscovered1876 at Mycenae, Greece by Heinrich SchliemannPresent locationNational Archaeological Museum, Athens The Mask of Agamemnon is a gold funerary mask discovered at the Bronze Age site of Mycenae in southern Greece. The mask, displayed in the National Archaeological Museum of Athens, has been described by the historia...

 

Scottish science fiction writer For other people named Ken MacLeod, see Ken MacLeod (disambiguation). This article's lead section may be too short to adequately summarize the key points. Please consider expanding the lead to provide an accessible overview of all important aspects of the article. (June 2020) Ken MacLeodAddressing the 63rd World Science Fiction Convention, Glasgow, August 2005BornKenneth Macrae MacLeod (1954-08-02) 2 August 1954 (age 69)Stornoway, ScotlandOccupationWriterL...

Art school in Manhattan, New York Art Students' League redirects here. For the building occupied by the organization, see American Fine Arts Society. For the school started by Thomas Eakins, see Art Students' League of Philadelphia. The American Fine Arts Society Building at 215 West 57th Street The Art Students League of New York is an art school in the American Fine Arts Society in Manhattan, New York City. The Arts Students League is known for its broad appeal to both amateurs and professi...

 

Overture by Anton Bruckner Overtureby Anton BrucknerThe composer, c. 1860KeyG minorCatalogueWAB 98ComposedNovember 1862 (1862-11) – 22 January 1863 (1863-01-22): LinzPerformed8 September 1921 (1921-09-08): KlosterneuburgRecordedc. 1937 (c. 1937)InstrumentalOrchestra Anton Bruckner composed the Overture in G minor, WAB 98 in 1862–63, during his tuition by Otto Kitzler. History In the fall of 1862, when studying with Ot...

 

English canal linking the south Cheshire town of Nantwich with the River Dee at Chester Chester CanalChester Canal basin, on the Wirral Line of the Ellesmere Canal, at Raymond Street, near the junction with the Chester Canal and the River DeeSpecificationsMaximum boat length72 ft 0 in (21.95 m)(originally 80 ft 0 in or 24.38 m)Maximum boat beam9 ft 0 in (2.74 m)(originally 14 ft 9 in or 4.50 m)Locks14StatusNavigableNavigation authori...

Wiggle-High5Ciclismo La squadra all'Emakumeen Bira 2016InformazioniNazione Gran Bretagna Debutto2013 Scioglimento2018 SpecialitàStrada Divisa Manuale La Wiggle-High5 era una squadra femminile britannica di ciclismo su strada. Fondata nel 2012 su iniziativa della ciclista australiana Rochelle Gilmore, fu attiva nella categoria Elite con licenza di UCI Women's Team da inizio 2013 a fine 2018, affermandosi tra le migliori dieci formazioni al mondo. Indice 1 Cronistoria 1.1 Annuario 1.2 Cla...

 

КоммунаФочеFoce 41°37′54″ с. ш. 9°03′51″ в. д.HGЯO Страна  Франция Регион Корсика Департамент Южная Корсика Кантон Сартен Мэр Louisette Nicolaï(2008–2014) История и география Площадь 20,75 км² Высота центра 97–691 м Часовой пояс UTC+1:00, летом UTC+2:00 Население Население 135 человек (2008...