Acoustic Detection of the Red Date Palm Weevil

In this paper, acoustic techniques are used to detect hidden insect infestations of date palm tress (Phoenix dactylifera L.). In particular, we use an acoustic instrument for early discovery of the presence of a destructive insect pest commonly known as the Red Date Palm Weevil (RDPW) and scientifically as Rhynchophorus ferrugineus (Olivier). This type of insect attacks date palm tress and causes irreversible damages at late stages. As a result, the infected trees must be destroyed. Therefore, early presence detection is a major part in controlling the spread and economic damage caused by this type of infestation. Furthermore monitoring and early detection of the disease can asses in taking appropriate measures such as isolating or treating the infected trees. The acoustic system is evaluated in terms of its ability for early discovery of hidden bests inside the tested tree. When signal acquisitions is completed for a number of date palms, a signal processing technique known as time-frequency analysis is evaluated in terms of providing an estimate that can be visually used to recognize the acoustic signature of the RDPW. The testing instrument was tested in the laboratory first then; it was used on suspected or infested tress in the field. The final results indicate that the acoustic monitoring approach along with signal processing techniques are very promising for the early detection of presence of the larva as well as the adult pest in the date palms.





References:
<p>[1] Mankin, R.W.. Brandhorst-Hubbard, J.,Flanders, K. and et al. &ldquo;Eavesdropping on Insects Hidden in Soil and Interior Structures of Plants&quot;. Journal of Economic Entomology, Vol. 93 No 4, pp.1173-1182, Aug. 2000.
[2] Shade, R.E., Furgason, E.S. and Murdock, L.L. &ldquo;Detection of Hidden Insect Infestations by Feeding-generated Ultrasonic Signal&quot;. Am. Entomol., Vol. 36, pp.231-234, 1990.
[3] Lemaster, R.L., Beall, F.C., and Lewis, V.R. &ldquo;Detection of Termites with Acoustic Emissions&quot;. For Pro. Journal, Vol. 47, pp.75-79, 1997.
[4] Mankin, R.W., Osbrink, F.M., OI, and Anderson, J.B. &ldquo;Acoustic Detection of Termite Infestation in Urban Trees.&quot; Journal of Economic Entomology, Vol. 95 No 5, pp.981-988, Oct. 2002.
[5] Mankin, R.W. and Fisher J.R. &ldquo;Acoustic Detection of Black Vine Weevil, Otiorhynchus sulcatus (Fabricius) (Coleoptera: Curculionidae) Lavral Infestation in Nursery Containers&quot;. Journal of Environ. Hort., Vol. 20 No 3, pp.166-170, Sept. 2002.
[6] Shuman, D., Coffelt, J.A.,Vick, K.W., and Mankin, R.W. &ldquo;Quantitative Acoustical Detection of Larvae Feeding Inside Kernels of Grain&quot;. Journal of Economic Entomology, Vol. 86, pp.993-938, 1993.
[7] Hagstrum, D.W., Flinn, P.W., and Shuman, D. &ldquo;Automated Monitoring Using Acoustical Sensors for Insects in Farm Stored Wheat&quot;. Journal of Economic Entomology, Vol. 89, pp.211-217, 1996.
[8] Wang, W.J. and McFadden, P.D. &ldquo;Application of Orthogonal Wavelets to Early Gear Damage Detection&quot;. Mechanical Systems and Signals Processing, Vol. 9 No 5, pp.497-507, Sept. 1995.
[9] Wang, W.J. and McFadden, P.D. &ldquo;Application of Wavelets to Gearbox vibration Signals for Fault Detection&quot;. Journal of Sound and Vibration, Vol. 192 No. 5, pp.927-939, May 1996.
[10] Cohen, L. Time-frequency Analysis, Prentice-Hall, N.J. 1995.
[11] Specifications of probes and instrument for acoustic detection available: http://www.aeconsulting.com/body.html .</p>