Tracking Pacific bluefin tuna (Thunnus thynnus orientalis)in the northeastern Pacific with an automated algorithm that estimates latitude by matching sea-surface-temperature data from satellites with temperature data from tags on fish

Data recovered from 11 popup satellite archival tags and 3 surgically implanted archival tags were used to analyze the movement patterns of juvenile northern bluefin tuna (Thunnus thynnus orientalis) in the eastern Pacific. The light sensors on archival and pop-up satellite transmitting archival tags (PSATs) provide data on the time of sunrise and sunset, allowing the calculation of an approximate geographic position of the animal. Light-based estimates of longitude are relatively robust but latitude estimates are prone to large degrees of error, particularly near the times of the equinoxes and when the tag is at low latitudes. Estimating latitude remains a problem for researchers using light-based geolocation algorithms and it has been suggested that sea surface temperature data from satellites may be a useful tool for refining latitude estimates. Tag data from bluefin tuna were subjected to a newly developed algorithm, called “PSAT Tracker,” which automatically matches sea surface temperature data from the tags with sea surface temperatures recorded by satellites. The results of this algorithm compared favorably to the estimates of latitude calculated with the lightbased algorithms and allowed for estimation of fish positions during times of the year when the lightbased algorithms failed. Three near one-year tracks produced by PSAT tracker showed that the fish range from the California−Oregon border to southern Baja California, Mexico, and that the majority of time is spent off the coast of central Baja Mexico. A seasonal movement pattern was evident; the fish spend winter and spring off central Baja California, and summer through fall is spent moving northward to Oregon and returning to Baja California.

[1]  W. Bayliff A review of the biology and fisheries for Northern bluefin tuna, Thunnus thynnus, in the Pacific Ocean , 1994 .

[2]  F. G. Carey,et al.  Temperature regulation in free-swimming bluefin tuna. , 1973, Comparative biochemistry and physiology. A, Comparative physiology.

[3]  T. Itoh,et al.  Swimming depth, ambient water temperature preference, and feeding frequency of young Pacific bluefin tuna (Thunnus orientalis) determined with archival tags , 2003 .

[4]  J. Teal,et al.  Regulation of body temperature by the bluefin tuna. , 1969, Comparative biochemistry and physiology.

[5]  Richard W. Brill,et al.  Vertical movements of bigeye tuna (Thunnus obesus) associated with islands, buoys, and seamounts near the main Hawaiian Islands from archival tagging data , 2003 .

[6]  Brent S. Stewart,et al.  DOCUMENTING MIGRATIONS OF NORTHERN ELEPHANT SEALS USING DAY LENGTH , 1992 .

[7]  S. B. Blackwell,et al.  Archival and Pop-up Satellite Tagging of Atlantic Bluefin Tuna , 2001 .

[8]  J. D. Metcalfe Summary Report of a Workshop on Daylight Measurements for Geolocation in Animal Telemetry , 2001 .

[9]  Thomas D. Williams,et al.  Archival tagging of Atlantic bluefin tuna (Thunnus thynnus thynnus) , 1998 .

[10]  D. Welch,et al.  Recent Progress in Estimating Geoposition Using Daylight , 2001 .

[11]  David W. Welch,et al.  Ability of Archival Tags to Provide Estimates of Geographical Position Based on Light Intensity , 2001 .

[12]  S. Kimura,et al.  Diving behavior of immature, feeding Pacific bluefin tuna (Thunnus thynnus orientalis) in relation to season and area: the East China Sea and the Kuroshio–Oyashio transition region , 2004 .