Cite this paper:
FENG Yongjiu, CHEN Xinjun, LIU Yang. Examining spatiotemporal distribution and CPUEenvironment relationships for the jumbo flying squid Dosidicus gigas offshore Peru based on spatial autoregressive model[J]. Journal of Oceanology and Limnology, 2018, 36(3): 942-955

Examining spatiotemporal distribution and CPUEenvironment relationships for the jumbo flying squid Dosidicus gigas offshore Peru based on spatial autoregressive model

FENG Yongjiu1,2,3,4, CHEN Xinjun1,2,3,4, LIU Yang1
1 College of Marine Sciences, Shanghai Ocean University, Shanghai 201306, China;
2 The Key Laboratory of Sustainable Exploitation of Oceanic Fisheries Resources(Shanghai Ocean University), Ministry of Education, Shanghai 201306, China;
3 National Engineering Research Center for Oceanic Fisheries(Shanghai Ocean University), Shanghai 201306, China;
4 Collaborative Innovation Center for Distant-water Fisheries, Shanghai 201306, China
Abstract:
The spatiotemporal distribution and relationship between nominal catch-per-unit-effort (CPUE) and environment for the jumbo flying squid (Dosidicus gigas) were examined in offshore Peruvian waters during 2009-2013. Three typical oceanographic factors affecting the squid habitat were investigated in this research, including sea surface temperature (SST), sea surface salinity (SSS) and sea surface height (SSH). We studied the CPUE-environment relationships for D. gigas using a spatially-lagged version of spatial autoregressive (SAR) model and a generalized additive model (GAM), with the latter for auxiliary and comparative purposes. The annual fishery centroids were distributed broadly in an area bounded by 79.5°-82.7°W and 11.9°-17.1°S, while the monthly fishery centroids were spatially close and lay in a smaller area bounded by 81.0°-81.2°W and 14.3°-15.4°S. Our results show that the preferred environmental ranges for D. gigas offshore Peru were 20.9°-21.9° C for SST, 35.16-35.32 for SSS and 27.2-31.5 cm for SSH in the areas bounded by 78°-80°W/82-84°W and 15°-18°S. Monthly spatial distributions during October to December were predicted using the calibrated GAM and SAR models and general similarities were found between the observed and predicted patterns for the nominal CPUE of D. gigas. The overall accuracies for the hotspots generated by the SAR model were much higher than those produced by the GAM model for all three months. Our results contribute to a better understanding of the spatiotemporal distributions of D. gigas offshore Peru, and offer a new SAR modeling method for advancing fishery science.
Key words:    Dosidicus gigas|spatiotemporal distribution|generalized additive model (GAM)|spatial autoregressive (SAR) model|offshore Peru   
Received: 2016-12-17   Revised:
Tools
PDF (767 KB) Free
Print this page
Add to favorites
Email this article to others
Authors
Articles by FENG Yongjiu
Articles by CHEN Xinjun
Articles by LIU Yang
References:
Alabia I D, Saitoh S I, Mugo R, Igarashi H, Ishikawa Y, Usui N, Kamachi M, Awaji T, Seito M. 2015. Seasonal potential fishing ground prediction of neon flying squid(Ommastrephes bartramii) in the western and central North Pacific. Fisheries Oceanography, 24(2):190-203.
Aldwaik S Z, Pontius Jr R G. 2012. Intensity analysis to unify measurements of size and stationarity of land changes by interval, category, and transition. Landscape and Urban Planning, 106(1):103-114.
Anselin L, Syabri I, Kho Y. 2006. GeoDa:an introduction to spatial data analysis. Geographical Analysis, 38(1):5-22.
Anselin L. 1980. Estimation methods for spatial autoregressive structures:a study in spatial econometrics. In:Regional Science Dissertation and Monograph Series 8, Program in Urban and Regional Studies. Cornell University, Ithaca, New York. 273p.
Anselin L. 1995. Local indicators of spatial association-LISA.Geographical Analysis, 27(2):93-115.
Anselin L. 2004. Exploring Spatial Data With GeoDaTM:A Workbook. University of Illinois, Urbana-Champaign, Urbana.
Arkhipkin A I, Rodhouse P G K, Pierce G J, Sauer W, Sakai M, Allcock L, Arguelles J, Bower J R, Castillo G, Ceriola L, Chen C S, Chen X J, Diaz-Santana M, Downey N, González A F, Amores J G, Green C P, Guerra A, Hendrickson L C, Ibáñez C, Ito K, Jereb P, Kato Y, Katugin O N, Kawano M, Kidokoro H, Kulik V V, Laptikhovsky V V, Lipinski M R, Liu B L, Mariátegui L, Marin W, Medina A, Miki K, Miyahara K, Moltschaniwskyj N, Moustahfid H, Nabhitabhata J, Nanjo N, Nigmatullin C M, Ohtani T, Pecl G, Perez J A A, Piatkowski U, Saikliang P, Salinas-Zavala C A, Steer M, Tian Y J, Ueta Y, Vijai D, Wakabayashi T, Yamaguchi T, Yamashiro C, Yamashita N, Zeidberg L D. 2015. World squid fisheries. Reviews in Fisheries Science & Aquaculture, 23(2):92-252.
Celik M, Kazar B M, Shekhar S, Boley D. 2006. Parameter Estimation for the Spatial Autoregression Model:A Rigorous Approach. Second NASA Data Mining Workshop:Issues and Applications in Earth Science with the 38th Symposium on the Interface of Computing Science, Statistics and Applications.
Chen X J, Chen Y, Tian S Q, Liu B L, Qian W G. 2008. An assessment of the west winter-spring cohort of neon flying squid (Ommastrephes bartramii) in the Northwest Pacific Ocean. Fisheries Research, 92(2-3):221-230.
Chen X J, Tian S Q, Liu B L, Chen Y. 2011. Modeling a habitat suitability index for the eastern fall cohort of Ommastrephes bartramii in the central North Pacific Ocean. Chinese Journal of Oceanology and Limnology, 29(3):493-504.
Chun Y W, Griffith D A. 2013. Spatial Statistics and Geostatistics:Theory and Applications for Geographic Information Science and Technology. SAGE Publications Ltd, Thousand Oaks, CA.
Ciannelli L, Fauchald P, Chan K S, Agostini V N, Dingsør G E. 2008. Spatial fisheries ecology:recent progress and future prospects. Journal of Marine Systems, 71(3-4):223-236.
Cliff A D, Ord J K. 1981. Spatial Processes:Models & Applications. Pion Ltd., London.
Fan W, Wu Y M, Cui X S. 2009. The study on fishing ground of neon flying squid, Ommastrephes bartrami, and ocean environment based on remote sensing data in the Northwest Pacific Ocean. Chinese Journal of Oceanology and Limnology, 27(2):408-414.
Feng Y J, Chen X J, Liu Y. 2016. The effects of changing spatial scales on spatial patterns of CPUE for Ommastrephes bartramii in the northwest Pacific Ocean.Fisheries Research, 183:1-12.
Feng Y J, Chen X J, Liu Y. 2017. Detection of spatial hot spots and variation for the neon flying squid Ommastrephes bartramii resources in the Northwest Pacific Ocean.Chinese Journal of Oceanology and Limnology, 35(4):921-935.
Feng Y J, Chen X J, Yang M X, Huo D, Zhu G P. 2014a. An exploratory spatial data analysis-based investigation of the hot spots and variability of Ommastrephes bartramii fishery resources in the northwestern Pacific Ocean. Acta Ecologica Sinica, 34(7):1 841-1 850. (in Chinese with English abstract)
Feng Y J, Cui L, Chen X J, Liu Y. 2017. A comparative study of spatially clustered distribution of jumbo flying squid(Dosidicus gigas) offshore Peru. Journal of Ocean University of China, 16(3):490-500.
Feng Y J, Yang M X, Chen X J. 2014b. Aanlyzing spatial aggregation of Ommastrephes bartramii in the Northwest Pacific Ocean based on Voronoi diagram and spatial autocorrelation. Acta Oceanologica Sinica, 36(12):74-84. (in Chinese with English abstract)
Gasper J R, Kruse G H. 2013. Modeling of the spatial distribution of Pacific spiny dogfish (Squalus suckleyi) in the Gulf of Alaska using generalized additive and generalized linear models. Canadian Journal of Fisheries and Aquatic Sciences, 70(9):1 372-1 385.
Gilly W F, Markaida U, Baxter C H, Block B A, Boustany A, Zeidberg L, Reisenbichler K, Robison B, Bazzino G, Salinas C. 2006. Vertical and horizontal migrations by the jumbo squid Dosidicus gigas revealed by electronic tagging. Marine Ecology Progress Series, 324:1-17.
Hastie T J, Tibshirani R J. 1990. Generalized Additive Models. CRC Press, London.
Hu ZM, Chen X J, Zhou Y Q. 2009. Distribution of fishing ground of jumbo flying squid (Dosidicus gigas) and its relationship with structure of sea water temperature in the waters off Peru. Journal of Fisheries of China, 33(5):770-777. (in Chinese with English abstract)
Ichii T, Mahapatra K, Watanabe T, Yatsu A, Inagake D, Okada Y. 2002. Occurrence of jumbo flying squid Dosidicus gigas aggregations associated with the countercurrent ridge off the Costa Rica Dome during 1997 El Niño and 1999 La Niña. Marine Ecology Progress Series, 231:151-166.
Igarashi H, Ichii T, Sakai M, Ishikawa Y, Toyoda T, Masuda S, Sugiura N, Mahapatra K, Awaji T. 2017. Possible link between interannual variation of neon flying squid(Ommastrephes bartramii) abundance in the North Pacific and the climate phase shift in 1998/1999. Progress in Oceanography, 150:20-34.
Lichstein J W, Simons T R, Shriner S A, Franzreb K E. 2002. Spatial autocorrelation and autoregressive models in ecology. Ecological Monographs, 72(3):445-463.
Liu B L, Chen X J, Chen Y, Tian S Q, Li J H, Fang Z, Yang M X. 2013a. Age, maturation, and population structure of the Humboldt squid Dosidicus gigas off the Peruvian Exclusive Economic Zones. Chinese Journal of Oceanology and Limnology, 31(1):81-91.
Liu B L, Chen X J, Yi Q. 2013b. A comparison of fishery biology of jumbo flying squid, Dosidicus gigas outside three Exclusive Economic Zones in the Eastern Pacific Ocean. Chinese Journal of Oceanology and Limnology, 31(3):523-533.
Longley P A, Goodchild M F, Maguire D J, Rhind D W. 2015.Geographic Information Science and Systems. 4th edn. John Wiley & Sons, New York.
Markaida U, Quiñónez-Velázquez C, Sosa-Nishizaki O. 2004.Age, growth and maturation of jumbo squid Dosidicus gigas (Cephalopoda:Ommastrephidae) from the Gulf of California, Mexico. Fisheries Research, 66(1):31-47.
Martínez-Rincón R O, Ortega-García S, Vaca-Rodríguez J G. 2012. Comparative performance of generalized additive models and boosted regression trees for statistical modeling of incidental catch of wahoo (Acanthocybium solandri) in the Mexican tuna purse-seine fishery.Ecological Modelling, 233:20-25.
Morales-Bojórquez E, Pacheco-Bedoya J L. 2016. Jumbo Squid Dosidicus gigas:a new fishery in Ecuador. Reviews in Fisheries Science & Aquaculture, 24(1):98-110.
Murase H, Nagashima H, Yonezaki S, Matsukura R, Kitakado T. 2009. Application of a generalized additive model(GAM) to reveal relationships between environmental factors and distributions of pelagic fish and krill:a case study in Sendai Bay, Japan. ICES Journal of Marine Science, 66(6):1 417-1 424.
Nigmatullin C M, Nesis K N, Arkhipkin A I. 2001. A review of the biology of the jumbo squid Dosidicus gigas(Cephalopoda:Ommastrephidae). Fisheries Research, 54(1):9-19.
Ñiquen M, Bouchon M. 2004. Impact of El Niño events on pelagic fisheries in Peruvian waters. Deep Sea Research Part Ⅱ:Topical Studies in Oceanography, 51(6-9):563-574.
Paulino C, Segura M, Chacón G. 2016. Spatial variability of jumbo flying squid (Dosidicus gigas) fishery related to remotely sensed SST and chlorophyll-a concentration(2004-2012). Fisheries Research, 173:122-127.
Pontius Jr R G, Shusas E, McEachern M. 2004. Detecting important categorical land changes while accounting for persistence. Agriculture, Ecosystems & Environment, 101(2-3):251-268.
Posada D, Buckley T R. 2004. Model selection and model averaging in phylogenetics:advantages of Akaike information criterion and Bayesian approaches over likelihood ratio tests. Systematic Biology, 53(5):793-808.
Rodhouse P G K, Yamashiro C, Arguelles J. 2016. Jumbo squid in the eastern Pacific Ocean:a quarter century of challenges and change. Fisheries Research, 173:109-112.
Rodhouse P G. 2001. Managing and forecasting squid fisheries in variable environments. Fisheries Research, 54(1):3-8.
Rosas-Luis R, Salinas-Zavala C, Koch V, Del Monte Luna P, Morales-Zárate M. 2008. Importance of jumbo squid Dosidicus gigas (Orbigny, 1835) in the pelagic ecosystem of the central Gulf of California. Ecological Modelling, 218(1-2):149-161.
Sokal R R, Oden N L. 1978. Spatial autocorrelation in biology. 2. Some biological implications and four applications of evolutionary and ecological interest. Biological Journal of the Linnean Society, 10(2):229-249.
Sumaila U R, Cheung W W L, Lam V W Y, Pauly D, Herrick S. 2011. Climate change impacts on the biophysics and economics of world fisheries. Nature Climate Change, 1(9):449-456.
Taipe A, Yamashiro C, Mariategui L, Rojas P, Roque C. 2001. Distribution and concentrations of jumbo flying squid(Dosidicus gigas) off the Peruvian coast between 1991and 1999. Fisheries Research, 54(1):21-32.
The R Development Core Team. 2014. R:A Language and Environment for Statistical Computing. R Foundation for Statistical Computing, Vienna, Austria.
Tian S Q, Chen X J, Chen Y, Xu L X, Dai X J. 2009.Standardizing CPUE of Ommastrephes bartramii for Chinese squid-jigging fishery in Northwest Pacific Ocean.Chinese Journal of Oceanology and Limnology, 27(4):729-739.
Tseng C T, Su N J, Sun C L, Punt A E, Yeh S Z, Liu D C, Su W C. 2013. Spatial and temporal variability of the Pacific saury (Cololabis saira) distribution in the northwestern Pacific Ocean. ICES Journal of Marine Science, 70(5):991-999.
Valavanis V D, Georgakarakos S, Kapantagakis A, Palialexis A, Katara I. 2004. A GIS environmental modelling approach to essential fish habitat designation. Ecological Modelling, 178(3-4):417-427.
Valavanis V D, Pierce G J, Zuur A F, Palialexis A, Saveliev A, Katara I, Wang J J. 2008. Modelling of essential fish habitat based on remote sensing, spatial analysis and GIS.Hydrobiologia, 612(1):5-20.
Venables W N, Dichmont C M. 2004. A generalised linear model for catch allocation:an example from Australia's Northern Prawn Fishery. Fisheries Research, 70(2-3):409-426.
Walsh W A, Ito R Y, Kawamoto K E, McCracken M. 2005.Analysis of logbook accuracy for blue marlin (Makaira nigricans) in the Hawaii-based longline fishery with a generalized additive model and commercial sales data.Fisheries Research, 75(1-3):175-192.
Waluda C M, Yamashiro C, Rodhouse P G. 2006. Influence of the ENSO cycle on the light-fishery for Dosidicus gigas in the Peru Current:an analysis of remotely sensed data.Fisheries Research, 79(1-2):56-63.
Wang W Y, Zhou C H, Shao Q Q, Mulla D J. 2010. Remote sensing of sea surface temperature and chlorophyll-a:implications for squid fisheries in the North-West Pacific Ocean. International Journal of Remote Sensing, 31(17-18):4 515-4 530.
Wang Y B, Zheng J, Wang Y, Zheng X Z. 2012. Spatiotemporal factors affecting fish harvest and their use in estimating the monthly yield of single otter trawls in Putuo district of Zhoushan, China. Chinese Journal of Oceanology and Limnology, 30(4):580-586.
Windle M J S, Rose G A, Devillers R, Fortin M J. 2010.Exploring spatial non-stationarity of fisheries survey data using geographically weighted regression (GWR):an example from the Northwest Atlantic. ICES Journal of Marine Science, 67(1):145-154.
Wood S N. 2006. Generalized Additive Models:An Introduction with R. CRC Press, London.
Xu B, Chen X J, Qian W G, Tian S Q. 2011. Spatial and temporal distribution of fishing ground for Dosidicus gigas in the offshore waters of Peru. Periodical of Ocean University of China, 41(11):43-47. (in Chinese with English abstract)
Yu W, Chen X J, Yi Q, Chen Y. 2016a. Spatio-temporal distributions and habitat hotspots of the winter-spring cohort of neon flying squid Ommastrephes bartramii in relation to oceanographic conditions in the Northwest Pacific Ocean. Fisheries Research, 175:103-115.
Yu W, Yi Q, Chen X J, Chen Y. 2016b. Modelling the effects of climate variability on habitat suitability of jumbo flying squid, Dosidicus gigas, in the Southeast Pacific Ocean off Peru. ICES Journal of Marine Science, 73(2):239-249.
Copyright © Haiyang Xuebao