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1.
Fraunfelter G.H. A megafauna from the Boskydell sandstone (Morrowan) in southwestern Illinois // Trans. Ill. State Acad. Sci., 1992. Vol. 85, Suppl..-С.54

2.
Alroy A multispecies overkill simulation of the end-pleistocene megafaunal mass extinction // Science, 2001. Vol. 292, N 5523.-С.1893-1896

3.
Alroy A multispecies overkill simulation of the end-pleistocene megafaunal mass extinction // Science, 2001. Vol. 292, N 5523.-С.1893-1896

4.
Christiansen B. Abundanzabschatzung von Megafauna mit visuellen Methoden am Beispiel Sognefjord // Ber. Inst. Meeresk. Christian-Albrechts-Univ. Kiel, 1993, N 242.-С.19-23

5.
Radziejewska Abyssal epibenthic megafauna of the Clarion-Clipperton area (NE Pacific): Changes in time and space versus anthropogenic environmental disturbance // Oceanol. Stud., 2000. Vol. 29, N 2.-С.83-101

6.
Australia's deep-water reserve network: Implications of false homogeneity for classifying abiotic surrogates of biodiversity // ICES J. Mar. Sci., 2009. Vol. 66, N 1.-С.214-224

7.
Bathymetric and seasonal patterns in the sublittoral megafauna off central Chile // J. Mar. Biol. Assoc. UK, 1996. Vol. 76, N 2.-С.311-326

8.
Bathymetric and seasonal patterns in the sublittoral megafauna off central Chile // J. Mar. Biol. Assoc. UK, 1996. Vol. 76, N 2.-С.311-326

9.
Doughty Christopher E. Biophysical feedbacks between the Pleistocene megafauna extinction and climate: The first human-induced global warming? // Geophys. Res. Lett., 2010. Vol. 37, N 15.-С.L15703/1-L15703/5

10.
Lopes Biostratigraphy of the pleistocene fossiliferous deposits of the southern Brazilian coastal area // J. Mammal. Evol., 2013. Vol. 20, N 1.-С.69-82

11.
Biknevicius A.R. Body size in Amblyrhiza inundata (Rodentia: Caviomorpha), an extinct megafaunal rodent from the anguilla bank, West Indies: estimates and implications // Amer. Mus. Novit., 1993, N 3079.-С.1-25

12.
Echeverria C.A. Composition and biomass of shallow benthic megafauna along an annual cycle in Admiralty Bay, King George Island, Antarctica // Ber. Polar- und Meeresforsch., 2005, N 507.-С.48-50

13.
Deep water bioherms of the scleractinian coral Lophelia pertusa (L.) at 64'ГРАДУС' N on the Norwegian shelf: Structure and associated megafauna // Sarsia, 1995. Vol. 80, N 2.-С.145-158

14.
Chave E.H. Deep-water megafauna of the Kohala and Haleakala slopes, Alenuihaha Channel, Hawaii // Deep-Sea Res. A, 1991. Vol. 38, N 7.-С.781-803

15.
Yeh Depth zonation and bathymetric trends of deep-sea megafaunal scavengers of the Hawaiian Islands // Deep-Sea Res. Pt 1, 2009. Vol. 56, N 2.-С.251-266

16.
Lauerman L.M.L. Distribution and abundance of epibenthic megafauna at a long time-series station in the abyssal northeast Pacific // Deep-Sea Res. Pt 1, 1996. Vol. 43, N 7.-С.1075-1103

17.
Lauerman L.M.L. Distribution and abundance of epibenthic megafauna at a long time-series station in the abyssal northeast Pacific // Deep-Sea Res. Pt 1, 1996. Vol. 43, N 7.-С.1075-1103

18.
Piepenburg D. Distribution patterns and carbon demand of epibenthic megafauna // Ber. Polar- und Meeresforsch., 2004, N 488.-С.269-277

19.
Effects of deep-water coral banks on the abundance and size structure of the megafauna in the Mediterranean Sea // Deep-Sea Res. Pt 2, 2010. Vol. 57, N 5-6.-С.397-411

20.
Effects of deep-water coral banks on the abundance and size structure of the megafauna in the Mediterranean Sea // Deep-Sea Res. Pt 2, 2010. Vol. 57, N 5-6.-С.397-411

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