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Time-of-flight measurement techniques for airborne ultrasonic ranging

IEEE transactions on ultrasonics, ferroelectrics, and frequency control, v.60 no.2, 2013년, pp.343 - 355  

Jackson, J. C. (Centre for Ultrasonic Eng., Univ. of Strathclyde, Glasgow, UK) ,  Summan, R. (Centre for Ultrasonic Eng., Univ. of Strathclyde, Glasgow, UK) ,  Dobie, G. I. (Centre for Ultrasonic Eng., Univ. of Strathclyde, Glasgow, UK) ,  Whiteley, S. M. (Centre for Ultrasonic Eng., Univ. of Strathclyde, Glasgow, UK) ,  Pierce, S. G. (Centre for Ultrasonic Eng., Univ. of Strathclyde, Glasgow, UK) ,  Hayward, G. (Centre for Ultrasonic Eng., Univ. of Strathclyde, Glasgow, UK)

Abstract AI-Helper 아이콘AI-Helper

Airborne ultrasonic ranging is used in a variety of different engineering applications for which other positional metrology techniques cannot be used, for example in closed-cell locations, when optical line of sight is limited, and when multipath effects preclude electromagnetic-based wireless syste...

참고문헌 (34)

  1. Canali, Claudio, De Cicco, Giorgio, Morten, Bruno, Prudenziati, Maria, Taroni, Andrea. A Temperature Compensated Ultrasonic Sensor Operating in Air for Distance and Proximity Measurements. IEEE transactions on industrial electronics : a publication of the IEEE Industrial Electronics Society, vol.ie29, no.4, 336-341.

  2. Saillant, Prestor A., Simmons, James A., Dear, Steven P., McMullen, Teresa A.. A computational model of echo processing and acoustic imaging in frequency- modulated echolocating bats: The spectrogram correlation and transformation receiver. The Journal of the Acoustical Society of America, vol.94, no.5, 2691-2712.

  3. Matsuo, Ikuo, Kunugiyama, Kenji, Yano, Masafumi. An echolocation model for range discrimination of multiple closely spaced objects: Transformation of spectrogram into the reflected intensity distribution. The Journal of the Acoustical Society of America, vol.115, no.2, 920-928.

  4. Radar Technology Encyclopedia barton 1997 

  5. Chande, P. K., Sharma, P. C.. A Fully Compensated Digital Ultrasonic Sensor for Distance Measurement. IEEE transactions on instrumentation and measurement, vol.33, no.2, 128-129.

  6. URC-04LX Datasheet 2005 

  7. Proc SPIE Characterization of the Hokuyo URG-04LX laser rangefinder for mobile robot obstacle negotiation okubo 2009 10.1117/12.818332 7332 

  8. Non-Destructive Testing halmshaw 1997 

  9. Barshan, Billur. Fast processing techniques for accurate ultrasonic range measurements. Measurement science & technology, vol.11, no.1, 45-50.

  10. Barshan, B., Kuc, R.. A bat-like sonar system for obstacle localization. IEEE transactions on systems, man, and cybernetics, vol.22, no.4, 636-646.

  11. Benny, Graham, Hayward, Gordon, Chapman, Roy. Beam profile measurements and simulations for ultrasonic transducers operating in air. The Journal of the Acoustical Society of America, vol.107, no.4, 2089-2100.

  12. Parrilla, M., Anaya, J.J., Fritsch, C.. Digital signal processing techniques for high accuracy ultrasonic range measurements. IEEE transactions on instrumentation and measurement, vol.40, no.4, 759-763.

  13. MaMullen, W.G., Delaughe, B.A., Bird, J.S.. A simple rising-edge detector for time-of-arrival estimation. IEEE transactions on instrumentation and measurement, vol.45, no.4, 823-827.

  14. Digital Signal Processing A Practical Guide for Engineers and Scientists smith 2003 

  15. Marioli, D., Narduzzi, C., Offelli, C., Petri, D., Sardini, E., Taroni, A.. Digital time-of-flight measurement for ultrasonic sensors. IEEE transactions on instrumentation and measurement, vol.41, no.1, 93-97.

  16. IEEE Ultrasonics Symp Evaluation of a biol.-inspired range finding algorithm (BIRA) devaud 2006 1381 

  17. Lect Notes Comput Sci Building world models by ray-tracing within ceiling-mounted positioning systems harle 2003 10.1007/978-3-540-39653-6_1 2864 1 

  18. Gueuning, F.E., Varlan, M., Eugne, C.E., Dupuis, P.. Accurate distance measurement by an autonomous ultrasonic system combining time-of-flight and phase-shift methods. IEEE transactions on instrumentation and measurement, vol.46, no.6, 1236-1240.

  19. Hightower, J., Borriello, G.. Location systems for ubiquitous computing. Computer, vol.34, no.8, 57-66.

  20. Understanding CPS Principles and Applications kaplan 2006 

  21. Simmons, JamesA., Ferragamo, Michael, Moss, CynthiaF., Stevenson, ScottB., Altes, RichardA.. Discrimination of jittered sonar echoes by the echolocating bat, Eptesicus fuscus: The shape of target images in echolocation. Journal of comparative physiology. A, Sensory, neural, and behavioral physiology, vol.167, no.5,

  22. Vicon 0 

  23. 10.1145/345910.345917 

  24. Leica Geosystems 0 

  25. 10.1109/INFCOM.2005.1497889 

  26. Thrun, Sebastian. Probabilistic robotics. Communications of the ACM, vol.45, no.3, 52-57.

  27. Friedrich, M., Dobie, G., Chung Chee Chan, Pierce, S.G., Galbraith, W., Marshall, S., Hayward, G.. Miniature Mobile Sensor Platforms for Condition Monitoring of Structures. IEEE sensors journal, vol.9, no.11, 1439-1448.

  28. 10.1109/IMTC.2006.328588 

  29. Moss, Cynthia F., Schnitzler, Hans -Ulrich. Accuracy of target ranging in echolocating bats: acoustic information processing. Journal of comparative physiology. A, Sensory, neural, and behavioral physiology, vol.165, no.3, 383-393.

  30. Simmons, J.A.. A view of the world through the bat's ear: The formation of acoustic images in echolocation. Cognition, vol.33, no.1, 155-199.

  31. Sens Actuators A High accuracy ultrasonic air temperature measurement using multi-frequency continuous wave tsai 2006 10.1016/j.sna.2006.02.025 132 526 

  32. Huang, K.N., Huang, Y.P.. Multiple-frequency ultrasonic distance measurement using direct digital frequency synthesizers. Sensors and actuators. A, Physical, vol.149, no.1, 42-50.

  33. Cowell, David M J, Freear, S. Separation of overlapping linear frequency modulated (LFM) signals using the fractional fourier transform. IEEE transactions on ultrasonics, ferroelectrics, and frequency control, vol.57, no.10, 2324-2333.

  34. Assous, Said, Hopper, Clare, Lovell, Mike, Gunn, Dave, Jackson, Peter, Rees, John. Short pulse multi-frequency phase-based time delay estimation. The Journal of the Acoustical Society of America, vol.127, no.1, 309-315.

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