Type III functional response in Daphnia.
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[1] H. Utermöhl. Zur Vervollkommnung der quantitativen Phytoplankton-Methodik , 1958 .
[2] C. S. Holling. The components of prédation as revealed by a study of small-mammal prédation of the European pine sawfly. , 1959 .
[3] F. Rigler,et al. FEEDING RATE OF DAPHNIA MAGNA STRAUS IN DIFFERENT FOODS LABELED WITH RADIOACTIVE PHOSPHORUS1 , 1965 .
[4] J. W. McMahon,et al. SOME PHYSICAL FACTORS INFLUENCING THE FEEDING BEHAVIOR OF DAPHNIA MAGNA STRAUS , 1965 .
[5] C. Burns,et al. COMPARISON OF FILTERING RATES OF DAPHNIA ROSEA IN LAKE WATER AND IN SUSPENSIONS OF YEAST1 , 1967 .
[6] E. Corner,et al. On the nutrition and metabolism of zooplankton. VIII. the grazing of Biddulphia cells by Calanus helgolandicus , 1972, Journal of the Marine Biological Association of the United Kingdom.
[7] H. Akaike. A new look at the statistical model identification , 1974 .
[8] M. Berman,et al. The feeding behavior of Daphnia pulex from Lake Winnebago, Wisconsin1 , 1974 .
[9] R. Gaudy. Feeding four species of pelagic copepods under experimental conditions , 1974 .
[10] William W. Murdoch,et al. Functional Response and Stability in Predator-Prey Systems , 1975, The American Naturalist.
[11] W. Murdoch,et al. Predation and Population Stability , 1975 .
[12] G. Glass. Primary, Secondary, and Meta-Analysis of Research1 , 1976 .
[13] J. T. Lehman. The filter-feeder as an optimal forager, and the predicted shapes of feeding curves , 1976 .
[14] John H. Lawton,et al. Sigmoid Functional Responses by Invertebrate Predators and Parasitoids , 1977 .
[15] K. Porter. plant animal interface in freshwater ecosystems , 1977 .
[16] M. Hassell,et al. Sigmoid functional responses and population stability. , 1978, Theoretical population biology.
[17] P. A. Horton,et al. Browsing and grazing by cladoceran filter feeders , 1979 .
[18] W. Lampert,et al. Feeding of freshwater filter-feeders at very low food concentrations: Poor evidence for “threshold feeding” and “optimal foraging” in Daphnia longispina and Eudiaptomus gracilis , 1980 .
[19] R. S. Stemberger. A General Approach to the Culture of Planktonic Rotifers , 1981 .
[20] W. Horn. Phytoplankton Losses due to Zooplankton Grazing in a Drinking Water Reservoir , 1981 .
[21] D. Tilman. Resource competition and community structure. , 1983, Monographs in population biology.
[22] W. R. Demott,et al. Feeding selectivities and relative ingestion rates of Daphnia and Bosmina1 , 1982 .
[23] J. Gerritsen,et al. The effect of food concentration on swimming patterns, feeding behavior, ingestion, assimilation, and respiration by Daphnia1 , 1982 .
[24] A. J. Tessier,et al. Starvation in Daphnia: energy reserves and reproductive allocation [Daphnia galeata mendotae, Daphnia magna]. , 1983 .
[25] J. Shapiro,et al. Feeding and assimilation rates of Daphnia pulex fed Aphanizomenon flos‐aquae1 , 1983 .
[26] C. D. Sandgren,et al. A stratified sampling approach to compensating for non-random sedimentation of phytoplankton cells in inverted microscope settling chambers , 1984 .
[27] Robert H. Peters,et al. Empirical analysis of zooplankton filtering and feeding rates1 , 1984 .
[28] G. Ganf,et al. Feeding Behaviour and Limb Morphology of Two Cladocerans with Small Intersetular Distances , 1985 .
[29] P. Murtaugh. The influence of food concentration and feeding rate on the gut residence time of Daphnia , 1985 .
[30] W. Murdoch,et al. Three distinct types of dynamic behaviour shown by a single planktonic system , 1985, Nature.
[31] M. Lynch,et al. Measurement of the carbon balance in Daphnia , 1986 .
[32] M. Begon,et al. Ecology: Individuals, Populations and Communities , 1986 .
[33] W. Murdoch,et al. Cyclic and Stable Populations: Plankton as Paradigm , 1987, The American Naturalist.
[34] Tamara G. Philippova,et al. The Effect of Food Quantity on Feeding and Metabolic Expenditure in Cladocera , 1988 .
[35] G. Paffenhöfer,et al. Why is Acartia tonsa (Copepoda: Calanoida) restricted to nearshore environments? , 1988 .
[36] William W. Murdoch,et al. Spatial Density Dependence in Parasitoids , 1988 .
[37] W. R. Demott. The Role of Competition in Zooplankton Succession , 1989 .
[38] William W. Murdoch,et al. Growth, Reproduction, and Mortality of Daphnia pulex Leydig: Life at Low Food , 1990 .
[39] K. Tande,et al. On the trophic fate of Phaeocystis pouchetii (Harlot). III. Functional responses in grazing demonstrated on juvenile stages of Calanus finmarchicus (Copepoda) fed diatoms and Phaeocystis , 1990 .
[40] W. Gurney,et al. THE PHYSIOLOGICAL ECOLOGY OF DAPHNIA: DEVELOPMENT OF A MODEL OF GROWTH AND REPRODUCTION' , 1990 .
[41] William Gurney,et al. The physiological ecology of Daphnia: a dynamic model of growth and reproduction , 1990 .
[42] William Gurney,et al. Population dynamics and element recycling in an aquatic plant-herbivore system , 1991 .
[43] M. Henning,et al. Strain‐specific Influence of Microcystis Aeruginosa on Food Ingestion and Assimilation of some Cladocerans and Copepods , 1991 .
[44] Jessica Gurevitch,et al. A Meta-Analysis of Competition in Field Experiments , 1992, The American Naturalist.
[45] Kim W. Kratz. Effects of Stoneflies on Local Prey Populations: Mechanisms of Impact Across Prey Density , 1996 .
[46] W. Lampert,et al. Juvenile growth rate as a measure of fitness in Daphnia , 1996 .
[47] William Gurney,et al. PLANKTON ABUNDANCE AND DYNAMICS ACROSS NUTRIENT LEVELS: TESTS OF HYPOTHESES , 1998 .
[48] J. Timothy Wootton,et al. THEORETICAL CONCEPTS AND EMPIRICAL APPROACHES TO MEASURING INTERACTION STRENGTH , 1998 .
[49] Klaus Plath. Adaptive feeding behavior of Duphnia magna in response to short‐term starvation , 1998 .
[50] S. D. Cooper,et al. The importance of data-selection criteria: meta-analyses of stream predation experiments , 1999 .
[51] Robert D. Holt,et al. RESOLVING ECOLOGICAL QUESTIONS THROUGH META‐ANALYSIS: GOALS, METRICS, AND MODELS , 1999 .
[52] Peter H. Wiebe,et al. Zooplankton Methodology Manual , 2000 .
[53] J. Kalff,et al. The contribution of picophytoplankton in marine and freshwater systems of different trophic status and depth , 2001 .
[54] Jonathan M. Jeschke,et al. PREDATOR FUNCTIONAL RESPONSES: DISCRIMINATING BETWEEN HANDLING AND DIGESTING PREY , 2002 .
[55] William W. Murdoch,et al. Consumer-resource dynamics , 2003 .
[56] O. Sarnelle. Nonlinear Effects of an Aquatic Consumer: Causes and Consequences , 2003, The American Naturalist.
[57] D. O. Hessen,et al. Phytoplankton contribution to sestonic mass and elemental ratios in lakes: Implications for zooplankton nutrition , 2003 .
[58] E. Vareschi,et al. Evaluation of a fluorescent microparticle technique for measuring filtering rates of Daphnia , 1995, Hydrobiologia.
[59] Ralph Tollrian,et al. Consumer‐food systems: why type I functional responses are exclusive to filter feeders , 2004, Biological reviews of the Cambridge Philosophical Society.
[60] W. G. Sprules,et al. Type-3 functional response in limnetic suspension-feeders, as demonstrated by in situ grazing rates , 1992, Hydrobiologia.
[61] J. Urabe,et al. Effect of food conditions on the bacterial feeding of Daphnia galeata , 1991, Hydrobiologia.
[62] Takehito Yoshida,et al. A DIRECT, EXPERIMENTAL TEST OF RESOURCE VS. CONSUMER DEPENDENCE , 2005 .
[63] Alan E. Wilson,et al. Local adaptation of Daphnia pulicaria to toxic cyanobacteria , 2005 .
[64] Ecological Archives E089-133-a1 , 2008 .