A formal derivation of the ''beddington'' functional response

被引:79
作者
Huisman, G [1 ]
DeBoer, RJ [1 ]
机构
[1] UNIV UTRECHT,DEPT THEORET BIOL,NL-3584 CH UTRECHT,NETHERLANDS
关键词
D O I
10.1006/jtbi.1996.0318
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
In ecological modeling the interaction between a predator and its prey, is usually implemented as a linear or saturated function of the prey density. The main advantages of such a ''functional response'' are its simplicity, general applicability, and well understood mechanistic basis. In systems where predators compete directly for the available prey however, the functional response should depend not only on the prey density but also on the predator density. We aim here to devise a simple and generic ''predator-dependent'' functional response. We derive such a functional response by making quasi-steady-state assumptions for models, in which we allow predators and prey to form interaction complexes. We end up with the - previously proposed - ''Beddington'' functional response. Because of our formal derivation this simple predator-dependent functional response is now based on clear mechanistic reasoning. The direct predator interference of this functional response emerges from the interaction between a predator and a prey, and not from direct predator-predator interactions. We conclude however that, although the Beddington functional response is generic for a two-dimensional system of one prey interacting with one predator, it is difficult to generalize it to higher dimensional systems consisting of several prey and predator species. (C) 1997 Academic Press Limited.
引用
收藏
页码:389 / 400
页数:12
相关论文
共 27 条
  • [1] THE FALLACIES OF RATIO-DEPENDENT PREDATION
    ABRAMS, PA
    [J]. ECOLOGY, 1994, 75 (06) : 1842 - 1850
  • [2] UNDERESTIMATION OF MUTUAL INTERFERENCE OF PREDATORS
    ARDITI, R
    AKCAKAYA, HR
    [J]. OECOLOGIA, 1990, 83 (03) : 358 - 361
  • [3] COUPLING IN PREDATOR PREY DYNAMICS - RATIO-DEPENDENCE
    ARDITI, R
    GINZBURG, LR
    [J]. JOURNAL OF THEORETICAL BIOLOGY, 1989, 139 (03) : 311 - 326
  • [4] BAKER GA, 1984, ENCY MATH ITS APPLIC
  • [5] Beddington J.R., 1975, J ANIM ECOL, V51, P597
  • [6] THE ORIGINS AND EVOLUTION OF PREDATOR PREY THEORY
    BERRYMAN, AA
    [J]. ECOLOGY, 1992, 73 (05) : 1530 - 1535
  • [7] Extending the quasi-steady state approximation by changing variables
    Borghans, JAM
    DeBoer, RJ
    Segel, LA
    [J]. BULLETIN OF MATHEMATICAL BIOLOGY, 1996, 58 (01) : 43 - 63
  • [8] TOWARDS A GENERAL FUNCTION DESCRIBING T-CELL PROLIFERATION
    DEBOER, RJ
    PERELSON, AS
    [J]. JOURNAL OF THEORETICAL BIOLOGY, 1995, 175 (04) : 567 - 576
  • [9] A SIZE DEPENDENT PREDATOR-PREY INTERACTION - WHO PURSUES WHOM
    DEROOS, AM
    METZ, JAJ
    EVERS, E
    LEIPOLDT, A
    [J]. JOURNAL OF MATHEMATICAL BIOLOGY, 1990, 28 (06) : 609 - 643
  • [10] DAPHNIA-PHYTOPLANKTON INTERACTIONS IN LAKES - IS THERE A NEED FOR RATIO-DEPENDENT CONSUMER-RESOURCE MODELS
    DIEHL, S
    LUNDBERG, PA
    GARDFJELL, H
    OKSANEN, L
    PERSSON, L
    [J]. AMERICAN NATURALIST, 1993, 142 (06) : 1052 - 1061