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Computer Physics Communications · 2026 · Vol. 326 · North-Holland
R. Abbasi; M. Ackermann; J. Adams; S.K. Agarwalla; J.A. Aguilar; M. Ahlers; J.M. Alameddine; N.M. Amin; K. Andeen; C. Argüelles; Y. Ashida; S. Athanasiadou; S.N. Axani; R. Babu; X. Bai; A. Balagopal V․; M. Baricevic; S.W. Barwick; S. Bash; V. Basu; R. Bay; J.J. Beatty; J. Becker Tjus; P. Behrens; J. Beise; C. Bellenghi; B. Benkel; S. BenZvi; D. Berley; E. Bernardini; D.Z. Besson; E. Blaufuss; L. Bloom; S. Blot; F. Bontempo; J.Y. Book Motzkin; C. Boscolo Meneguolo; S. Böser; O. Botner; J. Böttcher; J. Braun; B. Brinson; Z. Brisson-Tsavoussis; R.T. Burley; D. Butterfield; M.A. Campana; K. Carloni; J. Carpio; S. Chattopadhyay; N. Chau; Z. Chen; D. Chirkin; B.A. Clark; A. Coleman; P. Coleman; G.H. Collin; A. Connolly; J.M. Conrad; R. Corley; D.F. Cowen; C. De Clercq; J.J. DeLaunay; D. Delgado; T. Delmeulle; S. Deng; A. Desai; P. Desiati; K.D. de Vries; G. de Wasseige; T. DeYoung; J.C. Díaz-Vélez; A. Diaz; S. DiKerby; M. Dittmer; A. Domi; L. Draper; L. Dueser; H. Dujmovic; D. Durnford; K. Dutta; M.A. DuVernois; T. Ehrhardt; L. Eidenschink; A. Eimer; P. Eller; E. Ellinger; D. Elsässer; R. Engel; H. Erpenbeck; W. Esmail; J. Evans; P.A. Evenson; K.L. Fan; K. Fang; K. Farrag; A.R. Fazely; A. Fedynitch; N. Feigl; C. Finley; L. Fischer; D. Fox; A. Franckowiak; S. Fukami; P. Fürst; J. Gallagher; E. Ganster; A. Garcia; M. Garcia; G. Garg; E. Genton; L. Gerhardt; A. Ghadimi; C. Glaser; T. Glüsenkamp; J.G. Gonzalez; S. Goswami; A. Granados; D. Grant; S.J. Gray; S. Griffin; S. Griswold; K.M. Groth; D. Guevel; C. Günther; P. Gutjahr; C. Ha; C. Haack; A. Hallgren; L. Halve; F. Halzen; L. Hamacher; M. Ha Minh; M. Handt; K. Hanson; J. Hardin; A.A. Harnisch; P. Hatch; A. Haungs; J. Häußler; K. Helbing; J. Hellrung; L. Hennig; L. Heuermann; R. Hewett; N. Heyer; S. Hickford; A. Hidvegi; C. Hill; G.C. Hill; R. Hmaid; K.D. Hoffman; S. Hori; K. Hoshina; M. Hostert; W. Hou; T. Huber; K. Hultqvist; R. Hussain; K. Hymon; A. Ishihara; W. Iwakiri; M. Jacquart; S. Jain; O. Janik; M. Jeong; M. Jin; B.J.P. Jones; N. Kamp; D. Kang; X. Kang; A. Kappes; L. Kardum; T. Karg; M. Karl; A. Karle; A. Katil; M. Kauer; J.L. Kelley; M. Khanal; A. Khatee Zathul; A. Kheirandish; H. Kimku; J. Kiryluk; C. Klein; S.R. Klein; Y. Kobayashi; A. Kochocki; R. Koirala; H. Kolanoski; T. Kontrimas; L. Köpke; C. Kopper; D.J. Koskinen; P. Koundal; M. Kowalski; T. Kozynets; N. Krieger; J. Krishnamoorthi; T. Krishnan; K. Kruiswijk; E. Krupczak; A. Kumar; E. Kun; N. Kurahashi; N. Lad; C. Lagunas Gualda; L. Lallement Arnaud; M. Lamoureux; M.J. Larson; F. Lauber; J.P. Lazar; K. Leonard DeHolton; A. Leszczyńska; J. Liao; Y.T. Liu; M. Liubarska; C. Love; L. Lu; F. Lucarelli; W. Luszczak; Y. Lyu; J. Madsen; E. Magnus; K.B.M. Mahn; Y. Makino; E. Manao; S. Mancina; A. Mand; W. Marie Sainte; I.C. Mariş; S. Marka; Z. Marka; L. Marten; I. Martinez-Soler; R. Maruyama; F. Mayhew; F. McNally; J.V. Mead; K. Meagher; S. Mechbal; A. Medina; M. Meier; Y. Merckx; L. Merten; J. Mitchell; L. Molchany; T. Montaruli; R.W. Moore; Y. Morii; R. Morse; A. Mosbrugger; M. Moulai; D. Mousadi; T. Mukherjee; R. Naab; M. Nakos; U. Naumann; J. Necker; L. Neste; M. Neumann; H. Niederhausen; M.U. Nisa; K. Noda; A. Noell; A. Novikov; A. Obertacke Pollmann; V. O’Dell; A. Olivas; R. Orsoe; J. Osborn; E. O’Sullivan; V. Palusova; H. Pandya; A. Parenti; N. Park; V. Parrish; E.N. Paudel; L. Paul; C. Pérez de los Heros; T. Pernice; J. Peterson; A. Pizzuto; M. Plum; A. Pontén; V. Poojyam; Y. Popovych; M. Prado Rodriguez; B. Pries; R. Procter-Murphy; G.T. Przybylski; L. Pyras; C. Raab; J. Rack-Helleis; N. Rad; M. Ravn; K. Rawlins; Z. Rechav; A. Rehman; I. Reistroffer; E. Resconi; S. Reusch; C.D. Rho; W. Rhode; B. Riedel; A. Rifaie; E.J. Roberts; S. Robertson; M. Rongen; A. Rosted; C. Rott; T. Ruhe; L. Ruohan; I. Safa; J. Saffer; D. Salazar-Gallegos; P. Sampathkumar; A. Sandrock; G. Sanger-Johnson; M. Santander; S. Sarkar; J. Savelberg; P. Savina; P. Schaile; M. Schaufel; H. Schieler; S. Schindler; L. Schlickmann; A. Schneider; B. Schlüter; F. Schlüter; N. Schmeisser; T. Schmidt; F.G. Schröder; L. Schumacher; S. Schwirn; S. Sclafani; D. Seckel; L. Seen; M. Seikh; S. Seunarine; P.A. Sevle Myhr; R. Shah; S. Shefali; N. Shimizu; M. Silva; B. Skrzypek; R. Snihur; J. Soedingrekso; A. Søgaard; D. Soldin; P. Soldin; G. Sommani; C. Spannfellner; G.M. Spiczak; C. Spiering; J. Stachurska; M. Stamatikos; T. Stanev; T. Stezelberger; T. Stürwald; T. Stuttard; G.W. Sullivan; I. Taboada; S. Ter-Antonyan; A. Terliuk; A. Thakuri; M. Thiesmeyer; W.G. Thompson; J. Thwaites; S. Tilav; K. Tollefson; S. Toscano; D. Tosi; A. Trettin; M.A. Unland Elorrieta; A.K. Upadhyay; K. Upshaw; A. Vaidyanathan; N. Valtonen-Mattila; J. Vandenbroucke; T. Van Eeden; N. van Eijndhoven; J. van Santen; J. Vara; F. Varsi; J. Veitch-Michaelis; M. Venugopal; M. Vereecken; S. Vergara Carrasco; S. Verpoest; D. Veske; A. Vijai; J. Villarreal; C. Walck; N. Wandkowsky; A. Wang; E. Warrick; C. Weaver; P. Weigel; A. Weindl; A.Y. Wen; C. Wendt; J. Werthebach; M. Weyrauch; N. Whitehorn; C.H. Wiebusch; D.R. Williams; L. Witthaus; M. Wolf; G. Wrede; X.W. Xu; J.P. Yanez; E. Yildizci; S. Yoshida; R. Young; F. Yu; S. Yu; T. Yuan; A. Zegarelli; S. Zhang; Z. Zhang; P. Zhelnin; P. Zilberman; M. Zimmerman
Oceanography · 2025 · The Oceanography Society
Animal telemetry is maturing into a viable method for observing the ocean as it can be used to monitor both environmental conditions and biological metrics along the movement trajectories of marine animals. As part of the Cormorant Oceanography Project, we have augmented a biologging tag with an external fast response temperature sensor to collect ocean temperature profiles from the backs of foraging marine birds. Cormorants d...
Environmental Monitoring and Assessment · 2024 · Vol. 196 · Issue 4 · Springer
Protected areas are typically managed as a network of sites exposed to varying anthropogenic conditions. Managing these networks benefits from monitoring of conditions across sites to help prioritize coordinated efforts. Monitoring marine vessel activity and related underwater radiated noise impacts across a network of protected areas, like the U.S. National Marine Sanctuary system, helps managers ensure the quality of habitat...
Frontiers in Marine Science · 2021 · Vol. 8 · Frontiers
Chronic low-frequency noise from commercial shipping is a worldwide threat to marine animals that rely on sound for essential life functions. Although the U.S. National Oceanic and Atmospheric Administration recognizes the potential negative impacts of shipping noise in marine environments, there are currently no standard metrics to monitor and quantify shipping noise in U.S. marine waters. However, one-third octave band acous...
Frontiers in Marine Science · 2021 · Vol. 8 · Frontiers
Soundscapes offer rich descriptions of composite acoustic environments. Characterizing marine soundscapes simply through sound levels results in incomplete descriptions, limits the understanding of unique features, and impedes meaningful comparisons. Sources that contribute to sound level metrics shift in time and space with changes in biological patterns, physical forces, and human activity. The presence of a constant or chro...
Conservation Biology · 2012 · Vol. 26 · Issue 6 · Wiley
The effects of chronic exposure to increasing levels of human‐induced underwater noise on marine animal populations reliant on sound for communication are poorly understood. We sought to further develop methods of quantifying the effects of communication masking associated with human‐induced sound on contact‐calling North Atlantic right whales (Eubalaena glacialis) in an ecologically relevant area (∼10,000 km 2 ) and time peri...