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The need for pre-release assessment of probable impact of candidate biocontrol agents, with some examples, 252\nBaldwin, 1990, Herbivory simulations in ecological research, Trends in Ecology and Evolution, 5, 91, 10.1016\u002F0169-5347(90)90237-8\nBriese, 1996, Potential impact of the stem-boring weevil Lixus cardui on the growth and reproductive capacity of Onopordum spp. thistles, Biocontrol Science and Technology, 6, 251, 10.1080\u002F09583159650039449\nBriese, 2004, Weed biological control: applying science to solve seemingly intractable problems, Australian Journal of Entomology, 43, 304, 10.1111\u002Fj.1326-6756.2004.00442.x\nBriese, 2002, A strategy for the biological control of Onopordum spp. thistles in south-eastern Australia, Biocontrol Science and Technology, 12, 121, 10.1080\u002F09583150120110707\nBriese, 2002, A strategy for the biological control of blue heliotrope (Heliotropium amplexicaule), 394\nBroughton, 2003, Effect of artificial defoliation on growth and biomass of Lantana camara L. (Verbenaceae), Plant Protection Quarterly, 18, 110\nBrun, 1995, Development of cercospora blight epidemics and effect on the summer annual Heliotropium europaeum in the field, Annals of Applied Biology, 127, 137, 10.1111\u002Fj.1744-7348.1995.tb06658.x\nCsurhes, 1998\nCullen, 1995, Predicting effectiveness: fact and fantasy, 103\nDenoth, 2002, Multiple agents in biological control: improving the odds?, Biological Control, 24, 20, 10.1016\u002FS1049-9644(02)00002-6\nDeWalt, 2004, Natural-enemy release facilitates habitat expansion of the invasive tropical shrub Clidemia hirta, Ecology, 85, 471, 10.1890\u002F02-0728\nDhileepan, 2000, Response of the weed Parthenium hysterophorus (Asteraceae) to defoliation by the introduced biocontrol agents Zygogramma bicolorata (Coleptera: Chrysomelidae), Biological Control, 19, 9, 10.1006\u002Fbcon.2000.0847\nDhileepan, 2001, Effectiveness of introduced biocontrol insects on the weed Parthenium hysterophorus (Asteraceae) in Australia, Bulletin of Entomological Research, 91, 167, 10.1079\u002FBER200188\nEhler, 1998, Invasion biology and biological control, Biological Control, 13, 127, 10.1006\u002Fbcon.1998.0649\nEvans, 1997, Parthenium hysterophorus: a review of its weed status and the possibilities for biological control, Biocontrol News and Information, 18, 389N\nFoggo, 1996, Long and short-term changes in plant growth following simulated herbivory: adaptive responses to damage?, Ecological Entomology, 21, 198, 10.1111\u002Fj.1365-2311.1996.tb01188.x\nGavloski, 2000, Compensation by cruciferous plants is specific to the type of simulated herbivory, Environmental Entomology, 29, 1273, 10.1603\u002F0046-225X-29.6.1273\nGrigulis, 2001, The comparative demography of the pasture weed Echium platagineum between its native and invaded ranges, Journal of Applied Ecology, 38, 281, 10.1046\u002Fj.1365-2664.2001.00587.x\n2000\nHarden, 2004, Monitoring and assessment of restoration of a rainforest remnant at Wingham Brush, NSW, Austral Ecology, 29, 489, 10.1111\u002Fj.1442-9993.2004.01421.x\nHarris, 1991, Classical biological control of weeds: its definition, selection of effective agents, and administrative-political problems, Canadian Entomologist, 123, 827, 10.4039\u002FEnt123827-4\nHasan, 1991, Biology and effectiveness of Uromyces heliotropii, a potential biological control agent for Heliotropium europaeum, New Phytologist, 118, 559, 10.1111\u002Fj.1469-8137.1991.tb00996.x\nHjalten, 2004, Simulating herbivory: problems and possibilities, 243\nHjalten, 1993, Effects of simulated herbivory and intraspecific competition on the compensatory ability of birches, Ecology, 74, 1136, 10.2307\u002F1940483\nHowarth, 1991, Environmental implications of classical biological control, Annual Review of Entomology, 36, 485, 10.1146\u002Fannurev.en.36.010191.002413\nHowarth, 2000, Non-target effects of biological control agents, 369\nKeane, 2002, Exotic plant invasions and the enemy release hypothesis, Trends in Ecology and Evolution, 17, 164, 10.1016\u002FS0169-5347(02)02499-0\nLehtilä, 2004, The use and usefulness of artificial herbivory in plant–herbivore studies, 257\nLouda, 2003, Invasiveness of some biological control insects and adequacy of their ecological risk assessment and regulation, Conservation Biology, 17, 73, 10.1046\u002Fj.1523-1739.2003.02020.x\nLouda, 2003, Nontarget effects—the Achilles’ heel of biological control? Retrospective analyses to reduce risk associated with biocontrol introductions, Annual Review of Entomology, 48, 365, 10.1146\u002Fannurev.ento.48.060402.102800\nLouda, 2004, The double-edged sword of biological control in conservation and restoration, Conservation Biology, 18, 50, 10.1111\u002Fj.1523-1739.2004.00070.x\nMarquis, 1992, The selective impact of herbivores, 301\nMcEvoy, 1999, Biological control of plant invaders: regional patterns, field experiments and structured population models, Ecological Applications, 9, 387, 10.1890\u002F1051-0761(1999)009[0387:BCOPIR]2.0.CO;2\nMcEvoy, 2000, Why things bite back: unintended consequences of biological control of weeds, 167\nMcFadyen, 1998, Biological control of weeds, Annual Review of Entomology, 43, 369, 10.1146\u002Fannurev.ento.43.1.369\nMcFadyen, 2003, Does ecology help in the selection of biocontrol agents?, 5\nMcLaren, 1996, Plant-specific response to herbivory: simulated browsing of suppressed balsam fir on Isle Royale, Ecology, 77, 228, 10.2307\u002F2265672\nMitchell, 2003, Release of invasive plants from fungal and viral pathogens, Nature, 421, 625, 10.1038\u002Fnature01317\nMuller-Schärer, 1991, The impact of root herbivory is a function of plant density and competition: survival, growth and fecundity of Centaurea maculosa in field plots, Journal of Applied Ecology, 28, 759, 10.2307\u002F2404206\nMyers, 1985, How many insects are necessary for successful biocontrol of weeds?, 77\nPalmer, 1992, The use of computer databases during the foreign exploration phase of a biological control programme, 705\nPaynter, 1998, Factors affecting the establishment of Cysticus scoparius in southern France: implications for its control, Journal of Applied Ecology, 35, 582, 10.1046\u002Fj.1365-2664.1998.3540582.x\nPearson, 2003, Indirect effects of host-specific biocontrol agents, Trends in Ecology and Evolution, 18, 456, 10.1016\u002FS0169-5347(03)00188-5\nPoorter, 1986, Testing differences in relative growth rate: a method avoiding curve fitting and pairing, Physiologia Plantarum, 67, 223, 10.1111\u002Fj.1399-3054.1986.tb02447.x\nRaghu, S., Dhileepan, K., Treviño, M. Response of an invasive liana to simulated herbivory: implications for its biological control (in review).\nRees, 1997, Biological control of broom: modelling the determinants of abundance and potential impact of introduced insect herbivores, Journal of Applied Ecology, 34, 1203, 10.2307\u002F2405232\nRogers, 2002, Effects of simulated herbivory and resource availability on native and invasive exotic tree seedlings, Basic and Applied Ecology, 3, 297, 10.1078\u002F1439-1791-00120\nSchroeder, 1986, The search for arthropod natural enemies of introduced weeds for biological control—in theory and practice, Biocontrol News and Information, 7, 147\nSegura, 2004, The CSIRO Mexican Field Station: history and current activities, 145\nSheppard, 2003, Prioritising agents based on predicted efficacy: beyond the lottery approach, 11\nSheppard, 1991, Natural enemies and population stability of the winter-annual Carduus pycnocephalus L. in Mediterranean Europe, Acta Oecological, 12, 707\nSheppard, 2002, Factors affecting the invasion and persistence of broom, Cysticus scoparius, in Australia, Journal of Applied Ecology, 39, 721, 10.1046\u002Fj.1365-2664.2002.00750.x\nSparks, 1999, The initiation of a biological control programme against Macfadyena unguis-cati (L.) 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