[1] | Roughgarden J, Gaines S, Possingham H (1988) Recruitment dynamics in complex life-cycles. Science 241: 1460–1466.
|
[2] | Morgan SG (2001) The Larval Ecology of Marine Communities. In: Bertness MD, Gaines SD, Hay ME, editors. Marine Community Ecology. Sunderland: Sinauer Associates. pp. 159–182.
|
[3] | Kingsford MJ, Leis JM, Shanks A, Lindeman KC, Morgan SG, et al. (2002) Sensory environments, larval abilities and local self-recruitment. Bull Mar Sci 70: 309–340.
|
[4] | Levin LA (2006) Recent progress in understanding larval dispersal: new directions and digressions. Integr Comp Biol 46: 282–297.
|
[5] | Zimmer R, Fingerut J, Zimmer C (2009) Dispersal pathways, seed rains, and the dynamics of larval behavior. Ecology 90: 1933–1947.
|
[6] | Keough MJ, Downes BJ (1982) Recruitment of marine invertebrates: the role of active larval choices and early mortality. Oecologia 54: 348–352.
|
[7] | Rittschof D, Forward RB, Cannon G, Welch JM, McClary M, et al. (1998) Cues and context: Larval responses to physical and chemical cues. Biofouling 12: 31–44.
|
[8] | Huijbers CM, Nagelkerken I, L?ssbroek PAC, Schulten IE, Siegenthaler A, et al. (2011) A test of the senses: Fish select novel habitats by responding to multiple cues. Ecology 93: 46–55.
|
[9] | Pawlik JR (1992) Chemical ecology of the settlement of benthic marine invertebrates. Oceanogr Mar Biol Annu Rev 30: 273–335.
|
[10] | Tamburri MN, Zimmer-Faust RK, Tamplin ML (1992) Natural sources and properties of chemical inducers mediating settlement of oyster larvae: a re-examination. Biol Bull 183: 327–338.
|
[11] | Turner EJ, Zimmer-Faust RK, Palmer MA, Luckenbach M, Pentcheff ND (1994) Settlement of oyster (Crassostrea virginica) larvae: effects of water flow and a water-soluble chemical cue. Limnol Oceanogr 39: 1579–1593.
|
[12] | Pawlik JR, Butman CA, Starczak VR (1991) Hydrodynamic facilitation of gregarious settlement of a reef-building tube worm. Science 251: 421–424.
|
[13] | Lillis A, Snelgrove PV (2010) Near-bottom hydrodynamic effects on postlarval settlement in the American lobster Homarus americanus. Mar Ecol Prog Ser 401: 161–172.
|
[14] | Montgomery JC, Jeffs A, Simpson SD, Meekan M, Tindle C (2006) Sound as an orientation cue for the pelagic larvae of reef fishes and decapod crustaceans. Adv Mar Biol 51: 143–196.
|
[15] | Radford CA, Stanley JA, Tindle CT, Montgomery JC, Jeffs AG (2010) Localised coastal habitats have distinct underwater sound signatures. Mar Ecol Prog Ser 401: 21–29.
|
[16] | Stanley JA, Radford CA, Jeffs AG (2012) Location, location, location: finding a suitable home among the noise. Proc R Soc B 279: 3622–3631.
|
[17] | Jeffs A, Tolimieri N, Montgomery JC (2003) Crabs on cue for the coast: the use of underwater sound for orientation by pelagic crab stages. Mar Freshwater Res 54: 841–845.
|
[18] | Kennedy EV, Holderied MW, Mair JM, Guzman HM, Simpson SD (2010) Spatial patterns in reef-generated noise relate to habitats and communities: Evidence from a Panamanian case study. Journal of Experimental Marine Biology and Ecology 395: 85–92.
|
[19] | Kalmijn AJ (1988) Hydrodynamic and acoustic field detection. In: Atema J, Fay RR, Popper AN, Tavolga WN, editors. Sensory biology of aquatic animals. Springer-Verlag New York. pp. 83–130.
|
[20] | Cotter A (2008) The “soundscape” of the sea, underwater navigation, and why we should be listening more. In: Payne A, Cotter J, Potter T, editors. Advances in fisheries science: 50 years on from Beverton and Holt. John Wiley and Sons. pp. 451–471.
|
[21] | Tolimieri N, Jeffs A, Montgomery JC (2000) Ambient sound as a cue for navigation by the pelagic larvae of reef fishes. Mar Ecol Prog Ser 207: 219–224.
|
[22] | Simpson SD, Meekan M, Montgomery J, McCauley R, Jeffs A (2005) Homeward sound. Science 308: 221.
|
[23] | Simpson SD, Meekan MG, McCauley RD, Jeffs A (2004) Attraction of settlement-stage coral reef fishes to reef noise. Mar Ecol Prog Ser 276: 263–268.
|
[24] | Simpson SD, Meekan MG, Jeffs A, Montgomery JC, McCauley RD (2008) Settlement-stage coral reef fish prefer the higher-frequency invertebrate-generated audible component of reef noise. Anim Behav 75: 1861–1868.
|
[25] | Stanley J, Radford C, Jeffs A (2010) Induction of settlement in crab megalopae by ambient underwater reef sound. Behav Ecol 21: 113–120.
|
[26] | Budelmann BU (1992) Hearing in nonarthropod invertebrates. In: Webster DB, Fay RR, Popper AN, editors. The evolutionary biology of hearing. Springer-Verlag. pp. 141–155.
|
[27] | Rogers PH, Cox M (1988) Underwater sound as a biological stimulus. In: Atema J, Fay RR, Popper AN, Tavolga WN, editors. Sensory biology of aquatic animals. New York: Springer-Verlag. pp. 131–149.
|
[28] | Zhadan PM, Semen'kov P (1984) An electrophysiological study of the mechanoreceptory function of abdominal sense organ of the scallop Patinopecten yessoensis (JAY). Comparative Biochemistry and Physiology Part A: Physiology 78: 865–870.
|
[29] | Zhadan PM (2005) Directional sensitivity of the Japanese scallop Mizuhopecten yessoensis and Swift scallop Chlamys swifti to water-borne vibrations. Russ J Mar Biol 31: 28–35.
|
[30] | Mooney TA, Hanlon RT, Christensen-Dalsgaard J, Madsen PT, Ketten DR, et al. (2010) Sound detection by the longfin squid (Loligo pealeii) studied with auditory evoked potentials: sensitivity to low-frequency particle motion and not pressure. J Exp Biol 213: 3748–3759.
|
[31] | Stocks JR, Broad A, Radford C, Minchinton TE, Davis AR (2012) Response of marine invertebrate larvae to natural and anthropogenic sound: A Pilot Study. Open Mar Biol J 6: 57–61.
|
[32] | Wilkens SL, Stanley JA, Jeffs AG (2012) Induction of settlement in mussel (Perna canaliculus) larvae by vessel noise. Biofouling 28: 65–72.
|
[33] | Vermeij MJA, Marhaver KL, Huijbers CM, Nagelkerken I, Simpson SD (2010) Coral larvae move toward reef sounds. PLoS ONE 5: e10660.
|
[34] | Radford C, Jeffs A, Tindle C, Montgomery J (2008) Temporal patterns in ambient noise of biological origin from a shallow water temperate reef. Oecologia 156: 921–929.
|
[35] | Kennedy VS, Newell RIE, Eble AF (1996) The Eastern Oyster: Crassostrea virginica. Maryland Sea Grant College 760.
|
[36] | Boudreaux ML, Stiner JL, Walters LJ (2006) Biodiversity of sessile and motile macrofauna on intertidal oyster reefs in Mosquito Lagoon, Florida. J Shellfish Res 25: 1079–1089.
|
[37] | Wells HW (1961) The fauna of oyster beds, with special reference to the salinity factor. Ecol Monogr 31: 239–266.
|
[38] | Au WWL, Hastings MC (2008) Principles of Marine Bioacoustics. Springer Science 679.
|
[39] | Okumura T, Akamatsu T, Yan HY (2002) Analyses of small tank acoustics: empirical and theoretical approaches. Bioacoustics 12: 330–332.
|
[40] | Slabbekoorn H, Bouton N (2008) Soundscape orientation: a new field in need of sound investigation. Anim Behav 76: 5–8.
|
[41] | Glade S (1982) Sound Intensity Part I. Theory. Bruel and Kjaer Technical Review.
|
[42] | Wahlberg M, Schack HB, Wilson M, Bejder L, Madsen PT (2008) Particle acceleration noise generated by boats. Bioacoustics 17: 148–150.
|
[43] | MacGillivray A, Racca RG (2005) Sound pressure and particle velocity measurements from marine pile driving at Eagle Harbor Maintenance Facility, Bainbridge Island, WA. Technical Report to Washington State Department of Transportation. Jasco Research Limited.
|
[44] | Ritchie TP, Menzel RW (1969) Influence of light on larval settlement of American oysters. Proc Nat Shellfish Assoc 59: 116–120.
|
[45] | Shaw R, Arnold DC, Stallworthy WB (1970) Effects of light on spat settlement of the American Oyster (Crassostrea virginica). J Fish Res Bd Can 27: 743–748.
|
[46] | Versluis MV, Schmitz B, von der Heydt A, Lohse D (2000) How snapping shrimp snap: Through cavitating bubbles. Science 289: 2114–2117.
|
[47] | Luczkovich JJ, Sprague MW (2002) Using passive acoustics to monitor estuarine fish populations. Bioacoustics 12: 289–291.
|
[48] | Sprague MW, Luczkovich JJ, Pullinger RC, Johnson SE, Jenkins T, et al. (2000) Using spectral analysis to identify drumming sounds of some North Carolina fishes in the family Sciaenidae. J Elisha Mitchell Sci Soc 116: 124–145.
|
[49] | Stanley JA, Radford CA, Jeffs AG (2011) Behavioural response thresholds in New Zealand crab megalopae to ambient underwater sound. PLoS ONE 6: e28572.
|
[50] | North EW, Schlag Z, Hood RR, Li M, Zhong L, et al. (2008) Vertical swimming behavior influences the dispersal of simulated oyster larvae in a coupled particle-tracking and hydrodynamic model of Chesapeake Bay. Mar Ecol Prog Ser 359: 115.
|
[51] | Bradbury IR, Snelgrove PVR (2001) Contrasting larval transport in demersal fish and benthic invertebrates: the roles of behaviour and advective processes in determining spatial pattern. Can J Fish Aquat Sci 58: 811–823.
|
[52] | Gaylord B, Hodin J, Ferner MC (2013) Turbulent shear spurs settlement in larval sea urchins. PNAS 110: 6901–6906.
|
[53] | Simpson SD, Meekan MG, Larsen NJ, McCauley RD, Jeffs A (2010) Behavioral plasticity in fish: orientation is influenced by recent acoustic experiences. Behav Ecol 21: 1098–1105.
|