Academic literature on the topic 'Snapping shrimp'

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Journal articles on the topic "Snapping shrimp"

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Lai, K. S., Z. Z. Goh, and S. M. Ghazali. "The effects of temperature and pH change on the snapping sound characteristic of Alpheus edwardsii." Journal of Environmental Biology 42, no. 3(SI) (2021): 832–39. http://dx.doi.org/10.22438/jeb/42/3(si)/jeb-15.

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Aim: The current study undertook manipulative experiments to observe changes in snapping shrimp sound signals in relation to temperature and pH changes. Methodology: Sounds of intertidal snapping shrimp (Alpheus edwardsii) sequentially exposed to different temperature/pH treatments manipulation for a period of 2 week each, were recorded in the laboratory and analysed. The acoustic characteristics of snapping sound signal were examined to relate to the change in temperature, pH and combination of both parameters. Results: Our results showed that there was a significant reduction in the frequenc
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Park, Soo Hyun, Jinuk Park, and Jungpyo Hong. "Snapping shrimp noise detection methods based on linear prediction analysis." INTER-NOISE and NOISE-CON Congress and Conference Proceedings 268, no. 3 (2023): 5040–47. http://dx.doi.org/10.3397/in_2023_0716.

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This paper proposes features for detecting snapping shrimp noise based on linear predictive analysis. Snapping shrimps are a species inhabiting the ocean depths and are one of the main sources of underwater noise due to their high-amplitude signals that occur frequently. The proposed features utilize the characteristic of sudden onset and rapid decay of pistol shrimp noise by using linear predictive analysis to accurately detect the noise segments and mitigate the impact of snapping shrimp noise. The large error between the predicted values by linear predictive analysis and the actual measured
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Yang, Yuliang, Shimu Qin, Changchun Di, Junqi Qin, Dalin Wu, and Jianxin Zhao. "Research on Claw Motion Characteristics and Cavitation Bubbles of Snapping Shrimp." Applied Bionics and Biomechanics 2020 (September 21, 2020): 1–12. http://dx.doi.org/10.1155/2020/6585729.

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Snapping shrimp produces a high-speed jet through the rapid closure of the snapper claw, which stimulates the formation of cavitation bubbles of various shapes. In order to explore the fast motion characteristics of snapper claw, the formation and change process of cavitation, and the physical principles underlying the biological phenomena, the equivalent model of snapper claw was constructed through CT scanning technology. A high-speed camera was used to capture the claw’s motion characteristics, thereby simulating the production of cavitation bubbles by snapping shrimp. The results show that
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Tang, Xin, and David Staack. "Bioinspired mechanical device generates plasma in water via cavitation." Science Advances 5, no. 3 (2019): eaau7765. http://dx.doi.org/10.1126/sciadv.aau7765.

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Nature can generate plasma in liquids more efficiently than human-designed devices using electricity, acoustics, or light. In the animal world, snapping shrimp can induce cavitation that collapses to produce high pressures and temperatures, leading to efficient plasma formation with photon and shock wave emission via energy focusing. Here, we report a bioinspired mechanical device that mimics the plasma generation technique of the snapping shrimp. This device was manufactured using additive manufacturing based on micro–x-ray computed tomography of a snapping shrimp claw molt. A spring fixture
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Jeong, Inyong, and Dong-Guk Paeng. "Circadian and Tidal Changes in Snapping Shrimp (Alpheus brevicristatus) Sound Observed by a Moored Hydrophone in the Coastal Sea of Western Jeju." Applied Sciences 12, no. 13 (2022): 6493. http://dx.doi.org/10.3390/app12136493.

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Numerous studies have evaluated the acoustic characteristics of soniferous snapping shrimp, but a few are based on long-term mooring measurements. In this study, underwater ambient noise signals were collected from a hydrophone moored 10 m from the sea bed in the coastal sea of western Jeju, South Korea, from mid-September 2019 for 90 days to analyze the variation in the sound of snapping shrimp. The kernel signal and a threshold value were utilized to identify the snapping shrimp, and the snap rate per minute was computed for quantitative analysis. The results show that the mean and standard
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Lohse, Detlef, Barbara Schmitz, and Michel Versluis. "Snapping shrimp make flashing bubbles." Nature 413, no. 6855 (2001): 477–78. http://dx.doi.org/10.1038/35097152.

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Lee, Dawoon, Gihoon Byun, and Wookeen Chung. "Adaptive iterative transfer learning for effective snapping shrimp sound detection." Journal of the Acoustical Society of America 156, no. 2 (2024): 865–78. http://dx.doi.org/10.1121/10.0028178.

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This study aims to detect the bioacoustics signal in the underwater soundscape, specifically those produced by snapping shrimp, using adaptive iterative transfer learning. The proposed network is initially trained with pre-classified snapping shrimp sounds and Gaussian noise, then applied to classify and remove snapping-free noise from field data. This separated ambient noise is subsequently used for transfer learning. This process was iterated to distinguish more effectively between ambient noise and snapping shrimp sounds characteristics, resulting in improved classification. Through iterati
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Rossi, Tullio, Sean D. Connell, and Ivan Nagelkerken. "Silent oceans: ocean acidification impoverishes natural soundscapes by altering sound production of the world's noisiest marine invertebrate." Proceedings of the Royal Society B: Biological Sciences 283, no. 1826 (2016): 20153046. http://dx.doi.org/10.1098/rspb.2015.3046.

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Soundscapes are multidimensional spaces that carry meaningful information for many species about the location and quality of nearby and distant resources. Because soundscapes are the sum of the acoustic signals produced by individual organisms and their interactions, they can be used as a proxy for the condition of whole ecosystems and their occupants. Ocean acidification resulting from anthropogenic CO 2 emissions is known to have profound effects on marine life. However, despite the increasingly recognized ecological importance of soundscapes, there is no empirical test of whether ocean acid
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Versluis, Michel, Anna von der Heydt, Detlef Lohse, and Barbara Schmitz. "On the Sound of Snapping Shrimp." Physics of Fluids 13, no. 9 (2001): S13. http://dx.doi.org/10.1063/1.4739187.

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Readhead, Mark L. "Snapping shrimp noise near Gladstone, Queensland." Journal of the Acoustical Society of America 101, no. 3 (1997): 1718–22. http://dx.doi.org/10.1121/1.418153.

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Dissertations / Theses on the topic "Snapping shrimp"

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Legg, Matthew W. "Non-Gaussian and non-homogeneous Poisson models of snapping shrimp noise." Thesis, Curtin University, 2010. http://hdl.handle.net/20.500.11937/839.

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The problem of sonar detection and underwater communication in the presence of impulsive snapping shrimp noise is considered. Non-Gaussian amplitude and nonhomogeneous Poisson temporal statistical models of shrimp noise are investigated from the perspective of a single hydrophone immersed in shallow waters. New statistical models of the noise are devised and used to both challenge the superiority of existing models, and to provide alternative insights into the underlying physical processes.A heuristic amplitude statistical model of snapping shrimp noise is derived from first principles and com
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Read, Arthur Thomas. "Reversal and maintenance of claw asymmetry in the snapping shrimp Alpheus heterochelis." Thesis, National Library of Canada = Bibliothèque nationale du Canada, 1998. http://www.collectionscanada.ca/obj/s4/f2/dsk2/ftp02/NQ35296.pdf.

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Barris, Brittnee Nicole. "Species Composition and Reproductive Strategies of Commensal Synalpheus Shrimp (Decapoda:Alpheidae) Occupying the Sponges Spheciospongia vesparium and Spongia Sp. of the Florida Reef Tract." NSUWorks, 2013. http://nsuworks.nova.edu/occ_stuetd/183.

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Synalpheus shrimp species of the gambarelloides group are the only marine organisms displaying the highest level of social functioning, eusociality. Their social hierarchies are equally complex compared to the reproductive abnormalities that have been recently discovered. For instance, snapping shrimp of the genus Synalpheus were thought to be gonochoric, i.e. developing as independent sexes, until scanning electron microscopy studies revealed intersexed gonopores in several species. This project analyzed both the species composition, and accompanying reproductive structures, of Synalpheus spp
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Chak, Tin Chi Solomon. "Reproductive Altruism, Social Diversity and Host Association in Sponge-Dwelling Snapping Shrimps, Synalpheus." W&M ScholarWorks, 2016. https://scholarworks.wm.edu/etd/1477068130.

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The diversity of animal social strategies has interested evolutionary biologists since the time of Darwin. Eusociality—the apex of animal sociality—traditionally characterized by cooperative offspring care, overlapping generations and reproductive division of labor, was until recently known only in insects and a few vertebrate species. The independent evolution of eusociality in shrimps in the genus Synalpheus offers a unique opportunity to test the generality of social evolution theories that are based mainly on insects and social vertebrates. The genus Synalpheus is particularly ideal for co
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Ho, Chin-cheng, and 何金政. "Acoustics and fractal dimension of snapping shrimp''s community in subtidal zone." Thesis, 2006. http://ndltd.ncl.edu.tw/handle/3m836u.

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碩士<br>國立中山大學<br>海洋生物研究所<br>95<br>Snapping shrimp is the well-known source of biological sound in subtidal zone. Sounds were created by imploding a cavitation bubble which is generated under the tensile forces of the claw after a high-velocity water jet has been formed. The sounds of snapping shrimp is not only for attacking and defending, but also for communicating with each others. These sounds thus become the material of studying complex behavior arisen from interaction between individuals. This paper studies the change of fractal dimension of snapping shrimp’s noises in different condition
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ZHENG, MING-XIU, and 鄭明修. "Studies on the mechanisms and behavioral ecology of pairing in the snapping shrimp Alpheus edwardsii (Audouin)." Thesis, 1991. http://ndltd.ncl.edu.tw/handle/60273359230709996958.

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冼宜樂. "Studies on the biology of the snapping shrimp Alpheus brevicristatus (De Haan, 844)from the waters of Penghu." Thesis, 2003. http://ndltd.ncl.edu.tw/handle/37845966693273090722.

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碩士<br>國立海洋大學<br>漁業科學系碩士在職專班<br>91<br>Summary 1. Snapping shrimps Alpheus brevicristatus inhabit in the segrass meadow or sandy bottoms at the intertidal zones of Peng-hu. They are commonly used as fishing baits or even for food if reach larger body sizes. 2. The results of investigations showed that Alpheus brevicristatus distributed at sixteen sites in Peng-hu so for. Its highest population density reached 5 ind. /m2 in Chi-to Bay. Four species of symbiont gobyfishes were discovered. Acentrogobius pflaumill was the most widely distributed and with must individuals.
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Books on the topic "Snapping shrimp"

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Won, Kim. The snapping shrimp genus Alpheus from the eastern Pacific (Decapoda, Caridea, Alpheidae). Smithsonian Institution Press, 1988.

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McTeague, Jennifer Ann. Morphological changes in the first thoracis ganglion following limb loss and regeneration in the snapping shrimp, Alpheus heterochelis. National Library of Canada, 1992.

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Goby Fish and Snapping Shrimp. Bellwether Media, 2019.

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Read, Arthur Thomas. Reversal and maintenance of claw asymmetry in the snapping shrimp alpheus heterochelis. 1998.

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Wong, Anna. Regeneration and transformation of the claw closer muscle in the snapping shrimp, "Alpheus heterochelis". 1987.

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Rahman, Nasreen. Mate selection, social monogamy and pair bond behaviour in the big-clawed snapping shrimp, Alpheus heterochelis. 2002.

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Book chapters on the topic "Snapping shrimp"

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Spiga, Ilaria. "Acoustic Response to Playback of Pile-Driving Sounds by Snapping Shrimp." In The Effects of Noise on Aquatic Life II. Springer New York, 2016. http://dx.doi.org/10.1007/978-1-4939-2981-8_134.

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Hadi, Fatin Izzati Mohamad Abdul, Dzati Athiar Ramli, and Ahmad Saiful Azhar. "Passive Acoustic Monitoring (PAM) of Snapping Shrimp Sound Based on Blind Source Separation (BSS) Technique." In Lecture Notes in Electrical Engineering. Springer Singapore, 2022. http://dx.doi.org/10.1007/978-981-16-8129-5_92.

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"Burrows and behavior of the snapping shrimp Alpheus macellarius, Chase, 1988, in different seagrass substrates." In Burrowing Shrimps and Seagrass Dynamics in Shallow-Water Meadows off Bolinao (New Philippines). CRC Press, 2008. http://dx.doi.org/10.1201/9781439828359-7.

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"Burrows and behavior of the snapping shrimp Alpheus macellarius, Chace, 1988, in different seagrass substrates." In Burrowing Shrimps and Seagrass Dynamics in Shallow-Water Meadows off Bolinao (New Philippines). CRC Press, 2008. http://dx.doi.org/10.1201/9781439828359.ch4.

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"Aboveground behavior of the snapping shrimp Alpheun macellarius, Chace, 1988, and its significance for leaf and nutrient turnover in a Philippine seagrass meadow." In Burrowing Shrimps and Seagrass Dynamics in Shallow-Water Meadows off Bolinao (New Philippines). CRC Press, 2008. http://dx.doi.org/10.1201/9781439828359-6.

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"Aboveground behavior of the snapping shrimp Alpheus macellarius, Chace, 1988, and its significance for leaf and nutrient turnover in a Philippine seagrass meadow." In Burrowing Shrimps and Seagrass Dynamics in Shallow-Water Meadows off Bolinao (New Philippines). CRC Press, 2008. http://dx.doi.org/10.1201/9781439828359.ch3.

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Conference papers on the topic "Snapping shrimp"

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Spellauge, Tillmann, Marco Bonesi, Jami Shepherd, Craig A. Radford, and Frédérique Vanholsbeeck. "Fourier-Domain Mode-Locked Laser-Based Depth-Resolved Vibrometry Indicates Involvement of Superficial Hair in the Sound Detection of Snapping Shrimp." In Frontiers in Optics. Optica Publishing Group, 2024. https://doi.org/10.1364/fio.2024.jw5a.37.

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We present a Depth-resolved vibrometry system using a Fourier-domain mode-locked laser based optical coherence tomography system. We further present the first measurements of mechanical responses of snapping shrimp superficial hair to acoustic particle motion stimuli.
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Tong, Jing-Hui, and Chen-Fen Huang. "Assessing Taiwan's Coral Reef Ecosystem: Detecting Long-term Snapping Shrimp Sounds." In 2025 IEEE Underwater Technology (UT). IEEE, 2025. https://doi.org/10.1109/ut61067.2025.10947395.

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Mahmood, Ahmed, Hari Vishnu, and Mandar Chitre. "Model-based signal detection in snapping shrimp noise." In 2016 IEEE Third Underwater Communications and Networking Conference (UComms). IEEE, 2016. http://dx.doi.org/10.1109/ucomms.2016.7583459.

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Yuan, Zhuqing, E. L. Richards, H. C. Song, and W. S. Hodgkiss. "Estimation of Array Tilt Using Snapping Shrimp Noise." In 2018 OCEANS - MTS/IEEE Kobe Techno-Ocean (OTO). IEEE, 2018. http://dx.doi.org/10.1109/oceanskobe.2018.8559391.

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Рутенко, А. Н., В. Г. Ущиповский, and И. Р. Радаев. "ACOUSTIC SIGNALS GENERATED BY SNAPPING SHRIMP IN VITYAZ BAY." In Физики геосфер. Crossref, 2020. http://dx.doi.org/10.35976/poi.2020.10.93.010.

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Приводятся результаты натурных и модельных исследований распространения импульсных высокочастотных акустических сигналов, генерируемых раком-щелкуном на шельфе Японского моря в бухте Витязь. Пространственные акустические измерения проводились с помощью 4-х гидрофонов, устанавливаемых в море глубиной 3 м с помощью металлической конструкции – рама высотой 3 м. Модельные исследования, проведенные с помощью лучевой теории, показали, что из-за интерференции прямого акустического сигнала, распространяющегося в водном слое, и сигнала, отраженного от поверхности дна, рак-щелкун эквивалентен не точечно
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Mahmood, Ahmed, and Mandar Chitre. "Detecting OSDM Signals in Sparse Channels and Snapping Shrimp Noise." In 2018 Fourth Underwater Communications and Networking Conference (UComms). IEEE, 2018. http://dx.doi.org/10.1109/ucomms.2018.8493187.

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Mahmood, Ahmed, Mandar Chitre, and Marc A. Armand. "Improving PSK performance in snapping shrimp noise with rotated constellations." In the Seventh ACM International Conference. ACM Press, 2012. http://dx.doi.org/10.1145/2398936.2398952.

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Chitre, M., Koay Teong Beng, and J. Potter. "Origins of directionality in snapping shrimp sounds and its potential applications." In Oceans 2003. Celebrating the Past ... Teaming Toward the Future (IEEE Cat. No.03CH37492). IEEE, 2003. http://dx.doi.org/10.1109/oceans.2003.178442.

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Legg, Matthew W., Alec J. Duncan, Anthony Zaknich, and Michael V. Greening. "Analysis of impulsive biological noise due to snapping shrimp as a point process in time." In OCEANS 2007 - Europe. IEEE, 2007. http://dx.doi.org/10.1109/oceanse.2007.4302279.

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Sim, Lai Kean, and Shahriman M. Ghazali. "Snapping shrimp prefer natural as opposed to artificial materials as their habitat in laboratory conditions." In THE 2014 UKM FST POSTGRADUATE COLLOQUIUM: Proceedings of the Universiti Kebangsaan Malaysia, Faculty of Science and Technology 2014 Postgraduate Colloquium. AIP Publishing LLC, 2014. http://dx.doi.org/10.1063/1.4895287.

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