Behavioral states help translate dispersal movements into spatial distribution patterns of floaters

被引:59
作者
del Mar Delgado, Maria [1 ]
Penteriani, Vincenzo [1 ]
机构
[1] CSIC, Estac Biol Donana, Dept Conservat Biol, Seville 41013, Spain
关键词
Bubo bubo; dispersal; ideal free distribution; movement behavior; population dynamics; residence index;
D O I
10.1086/590964
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Within the field of spatial ecology, it is important to study animal movements in order to better understand population dynamics. Dispersal is a nonlinear process through which different behavioral mechanisms could affect movement patterns. One of the most common approaches to analyzing the trajectories of organisms within patches is to use random-walk models to describe movement features. These models express individual movements within a specific area in terms of random-walk parameters in an effort to relate movement patterns to the distributions of organisms in space. However, only using the movement trajectories of individuals to predict the spatial spread of animal populations may not fit the complex distribution of individuals across heterogeneous environments. When we empirically tested the results from a random-walk model (a residence index) used to predict the spatial equilibrium distribution of individuals, we found that the index severely underestimated the spatial spread of dispersing individuals. We believe this is because random-walk models only account for the effects of environmental conditions on individual movements, completely overlooking the crucial influence of behavior changes over time. In the future, both aspects should be accounted for when predicting general rules of (meta) population abundance, distribution, and dynamics from patterns of animal movements.
引用
收藏
页码:475 / 485
页数:11
相关论文
共 81 条
[1]  
Andreassen HP, 2002, DISPERSAL ECOLOGY, P237
[2]  
[Anonymous], 1980, LECT NOTES BIOMATHEM
[3]   The impact of directed versus random movement on population dynamics and biodiversity patterns [J].
Armsworth, PR ;
Roughgarden, JE .
AMERICAN NATURALIST, 2005, 165 (04) :449-465
[4]   Landscape connectivity and animal behavior: functional grain as a key determinant for dispersal [J].
Baguette, Michel ;
Van Dyck, Hans .
LANDSCAPE ECOLOGY, 2007, 22 (08) :1117-1129
[5]  
Bélisle M, 2002, CONSERV ECOL, V5
[6]   Statistical analysis of the influence of conspecifics on the dispersal of a soil Collembola [J].
Bengtsson, G ;
Rydén, T ;
Öhrn, MS ;
Wiktorsson, M .
THEORETICAL POPULATION BIOLOGY, 2002, 61 (02) :97-113
[7]   Random diffusion models for animal movement [J].
Blackwell, PG .
ECOLOGICAL MODELLING, 1997, 100 (1-3) :87-102
[8]   Migratory movements, depth preferences, and thermal biology of Atlantic bluefin tuna [J].
Block, BA ;
Dewar, H ;
Blackwell, SB ;
Williams, TD ;
Prince, ED ;
Farwell, CJ ;
Boustany, A ;
Teo, SLH ;
Seitz, A ;
Walli, A ;
Fudge, D .
SCIENCE, 2001, 293 (5533) :1310-1314
[9]   The interaction between personality, offspring fitness and food abundance in North American red squirrels [J].
Boon, Adrienne K. ;
Reale, Denis ;
Boutin, Stan .
ECOLOGY LETTERS, 2007, 10 (11) :1094-1104
[10]   Causes and consequences of animal dispersal strategies: relating individual behaviour to spatial dynamics [J].
Bowler, DE ;
Benton, TG .
BIOLOGICAL REVIEWS, 2005, 80 (02) :205-225