Register      Login
Animal Production Science Animal Production Science Society
Food, fibre and pharmaceuticals from animals

Articles citing this paper

Climate change and broadacre livestock production across southern Australia. 3. Adaptation options via livestock genetic improvement

Andrew D. Moore A B and Afshin Ghahramani A
+ Author Affiliations
- Author Affiliations

A CSIRO Climate Adaptation National Research Flagship and Plant Industry, GPO Box 1600, Canberra, ACT 2601, Australia.

B Corresponding author. Email: Andrew.Moore@csiro.au

Animal Production Science 54(2) 111-124 https://doi.org/10.1071/AN13052
Submitted: 31 January 2013  Accepted: 19 May 2013   Published: 20 August 2013



22 articles found in Crossref database.

Informing climate adaptation pathways in multi-use woodland landscapes using the values-rules-knowledge framework
Prober Suzanne M., Colloff Matthew J., Abel Nick, Crimp Steve, Doherty Michael D., Dunlop Michael, Eldridge David J., Gorddard Russell, Lavorel Sandra, Metcalfe Daniel J., Murphy Helen T., Ryan Paul, Williams Kristen J.
Agriculture, Ecosystems & Environment. 2017 241 p.39
Carbon footprint of sheep production systems in semi-arid zone of Chile: A simulation-based approach of productive scenarios and precipitation patterns
Toro-Mujica Paula, Aguilar Claudio, Vera Raúl R., Bas Fernando
Agricultural Systems. 2017 157 p.22
A review of measuring, assessing and mitigating heat stress in dairy cattle
Ji Boyu, Banhazi Thomas, Perano Kristen, Ghahramani Afshin, Bowtell Les, Wang Chaoyuan, Li Baoming
Biosystems Engineering. 2020 199 p.4
Opportunities for Adaptation to Climate Change of Extensively Grazed Pastures in the Central Apennines (Italy)
Bellini Edoardo, Martin Raphaël, Argenti Giovanni, Staglianò Nicolina, Costafreda-Aumedes Sergi, Dibari Camilla, Moriondo Marco, Bellocchi Gianni
Land. 2023 12(2). p.351
Baseline and greenhouse-gas emissions in extensive livestock enterprises, with a case study of feeding lipid to beef cattle
Herd Robert M., Oddy V. Hutton, Bray Steven
Animal Production Science. 2015 55(2). p.159
Does establishing lucerne under a cover crop increase farm financial risk?
Nordblom T. L., Hutchings T. R., Hayes R. C., Li G. D., Finlayson J. D.
Crop and Pasture Science. 2017 68(12). p.1149
Increases in extreme heat stress in domesticated livestock species during the twenty‐first century
Thornton Philip, Nelson Gerald, Mayberry Dianne, Herrero Mario
Global Change Biology. 2021 27(22). p.5762
Vulnerabilities of Southwestern U.S. Rangeland-based animal agriculture to climate change
Havstad K. M., Brown J. R., Estell R., Elias E., Rango A., Steele C.
Climatic Change. 2018 148(3). p.371
Impact of climate changes on existing crop-livestock farming systems
Ghahramani Afshin, Moore Andrew D.
Agricultural Systems. 2016 146 p.142
Climate Variability Impacts on Land Use and Livelihoods in Drylands (2018)
Eldridge David J., Beecham Genevieve
Can animal genetics and flock management be used to reduce greenhouse gas emissions but also maintain productivity of wool-producing enterprises?
Alcock Douglas J., Harrison Matthew T., Rawnsley Richard P., Eckard Richard J.
Agricultural Systems. 2015 132 p.25
Systemic adaptations to climate change in southern Australian grasslands and livestock: Production, profitability, methane emission and ecosystem function
Ghahramani Afshin, Moore Andrew D.
Agricultural Systems. 2015 133 p.158
Drought Mitigation for Grazing Operations: Matching the Animal to the Environment
Scasta John Derek, Lalman David L., Henderson Leticia
Rangelands. 2016 38(4). p.204
Climate Change Impact, Adaptation, and Mitigation in Temperate Grazing Systems: A Review
Ghahramani Afshin, Howden S. Mark, del Prado Agustin, Thomas Dean T., Moore Andrew D., Ji Boyu, Ates Serkan
Sustainability. 2019 11(24). p.7224
(2019)
Ma Liwang, Derner Justin D., Harmel R. Daren, Tatarko John, Moore Andrew D., Rotz C. Alan, Augustine David J., Boone Randall B., Coughenour Michael B., Beukes Pierre C., van Wijk Mark T., Bellocchi Gianni, Cullen Brendan R., Wilmer Hailey
The challenges – and some solutions – to process-based modelling of grazed agricultural systems
Snow V.O., Rotz C.A., Moore A.D., Martin-Clouaire R., Johnson I.R., Hutchings N.J., Eckard R.J.
Environmental Modelling & Software. 2014 62 p.420
Post-experimental modelling of grazing systems to improve profit and environmental outcomes using AusFarm
Broadfoot K. M., Badgery W. B., Millar G. D.
Animal Production Science. 2017 57(9). p.1849
Applying a Delphi-Type Approach to Estimate the Adaptation Cost on Agriculture to Climate Change in Cyprus
Markou Marinos, Michailidis Anastasios, Loizou Efstratios, Nastis Stefanos A., Lazaridou Dimitra, Kountios Georgios, Allahyari Mohammad S., Stylianou Andreas, Papadavid George, Mattas Konstadinos
Atmosphere. 2020 11(5). p.536
Modelling of lucerne (Medicago sativa L.) for livestock production in diverse environments
Smith Andrew P., Moore Andrew D., Boschma Suzanne P., Hayes Richard C., Nie Zhongnan, Pembleton Keith G.
Crop and Pasture Science. 2017 68(1). p.74
Correlations of methane and carbon dioxide concentrations from feedlot cattle as a predictor of methane emissions
Bai Mei, Griffith David W. T., Phillips Frances A., Naylor Travis, Muir Stephanie K., McGinn Sean M., Chen Deli
Animal Production Science. 2016 56(1). p.108
Allocation of greenhouse gas production between wool and meat in the life cycle assessment of Australian sheep production
Cottle David J., Cowie Annette L.
The International Journal of Life Cycle Assessment. 2016 21(6). p.820
Sheep greenhouse gas emission intensities under different management practices, climate zones and enterprise types
Cottle D. J., Harrison M. T., Ghahramani A.
Animal Production Science. 2016 56(3). p.507

Committee on Publication Ethics

Abstract Full Text PDF (504 KB) Export Citation Get Permission

Share

Share on Facebook Share on Twitter Share on LinkedIn Share via Email