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Items where Subject is "Statistical software"

Group by: Creators | Item Type | Date
Jump to: 2025 | 2024 | 2023 | 2022 | 2021 | 2020 | 2019 | 2017 | 2016 | 2015 | 2012 | 2011 | 2010 | 2009 | 2005 | 2004 | 2002 | 1999 | 1996 | 1994
Number of items at this level: 34.

2025

Gautam, D., Mawardi, Z., Elliott, L., Loewensteiner, D., Whiteside, T. and Brooks, S. J. (2025) Detection of Invasive Species (Siam Weed) Using Drone-Based Imaging and YOLO Deep Learning Model. Remote Sensing, 17 (1). p. 120. https://doi.org/10.3390/rs17010120

2024

Forknall, C. R., Verbyla, A. P., Nazarathy, Y., Yousif, A., Osama, S., Jones, S. H., Kerr, E., Schulz, B. L., Fox, G. P. and Kelly, A. M. (2024) Covariance Clustering: Modelling Covariance in Designed Experiments When the Number of Variables is Greater than Experimental Units. Journal of Agricultural, Biological and Environmental Statistics, 29 . pp. 232-256. https://doi.org/10.1007/s13253-023-00574-x

Hutchison, W. J., Keyes, T. J., Crowell, H. L., Serizay, J., Soneson, C., Davis, E. S., Sato, N., Moses, L., Tarlinton, B. and The tidyomics, C. (2024) The tidyomics ecosystem: enhancing omic data analyses. Nature Methods, 21 (7). pp. 1166-1170. https://doi.org/10.1038/s41592-024-02299-2

Patane, P., Nothard, B., Thompson, M., Olayemi, M. and Stringer, J. (2024) Development of the decision-support tool ‘Harvest Mate’: agronomic algorithms. Zuckerindustrie, 149 (7-8). pp. 516-525. https://doi.org/10.36961/si31757

2023

Mumford, M. H., Forknall, C. R., Rodriguez, D., Eyre, J. X. and Kelly, A. M. (2023) Incorporating environmental covariates to explore genotype × environment × management (G × E × M) interactions: A one-stage predictive model. Field Crops Research, 304 . p. 109133. https://doi.org/10.1016/j.fcr.2023.109133

2022

Dahanayaka, B. A., Snyman, L., Vaghefi, N. and Martin, A. (2022) Using a Hybrid Mapping Population to Identify Genomic Regions of Pyrenophora teres Associated With Virulence. Frontiers in Plant Science, 13 . https://doi.org/10.3389/fpls.2022.925107

Durrington, G., Brider, J., Holzworth, D., Hammer, G. L. and Wu, A. (2022) CropGen: A novel tool for optimising sorghum crop design. In: TropAg 2022 International Agriculture Conference, 31 October - 2 November 2022, Brisbane, Australia.

George-Jaeggli, B., Zhi, X., Massey-Reed, S. R., Potgieter, A. B., Hunt, C. H., Watson, J., Chapman, S. C., Laws, K., Borrell, A., Tao, Y., Mace, E. S., Jordan, D. R., Van Oosterom, E. J., Hammer, G. L. and Wu, A. (2022) Deriving radiation use efficiency from hyperspectral sensing for enhanced sorghum production. In: TropAg 2022 International Agriculture Conference, 31 October - 2 November 2022, Brisbane, Australia.

Goswami, S. (2022) Using data to create value: Interactive market intelligence for export growth. In: TropAg 2022 International Agriculture Conference, 31 October - 2 November 2022, Brisbane, Australia.

Keller, B., Russo, T., Rembold, F., Chauhan, Y. S., Battilani, P., Wenndt, A. and Connett, M. (2022) The potential for aflatoxin predictive risk modelling in sub-Saharan Africa: a review. World Mycotoxin Journal, 15 (2). pp. 101-118. https://doi.org/10.3920/WMJ2021.2683

2021

Fraser, G., Carter, J., Stone, G., Irvine, S., Whish, G., Willcocks, J., McKeon, G. and Zhang, B. (2021) An online system for calculating and delivering long-term carrying capacity information for Queensland grazing properties. Part 2: modelling and outputs. The Rangeland Journal, 43 (3). pp. 159-172. https://doi.org/10.1071/RJ20088

Munroe, S., Guerin, G., Saleeba, T., Martín-Forés, I., Blanco-Martin, B., Sparrow, B. and Tokmakoff, A. (2021) ausplotsR: An R package for rapid extraction and analysis of vegetation and soil data collected by Australia's Terrestrial Ecosystem Research Network. Journal of Vegetation Science, 32 (3). e13046. https://doi.org/10.1111/jvs.13046

Stone, G., Carter, J., Fraser, G., Whish, G., Paton, C., McKeon, G. and Zhang, B. (2021) An online system for calculating and delivering long-term carrying capacity information for Queensland grazing properties. Part 1: background and development. The Rangeland Journal, 43 (3). pp. 143-157. https://doi.org/10.1071/RJ20084

2020

Srivastava, S. K., Lewis, T., Behrendorff, L. and Phinn, S. (2020) Spatial databases and techniques to assist with prescribed fire management in the south-east Queensland bioregion. International Journal of Wildland Fire, 30 (2). pp. 90-111. https://doi.org/10.1071/WF19105

2019

Ergashev, A. (2019) Real Statistics for Policy-Makers: Exercises in the Queensland Context. Manual. State of Queensland.

O'Halloran, J. (2019) Challenges and opportunities for PA adoption in vegetables. In: TropAg 2019 International Tropical Agriculture Conference - Shaping the Science of Tomorrow, 11 - 13 November 2019, Brisbane, Australia.

O'Halloran, J. (2019) Using precision information systems for advanced decision making in vegetables. In: TropAg 2019 International Tropical Agriculture Conference - Shaping the Science of Tomorrow, 11 - 13 November 2019, Brisbane, Australia.

Phan, T. D., Smart, J. C. R., Stewart-Koster, B., Sahin, O., Hadwen, W. L., Dinh, L. T., Tahmasbian, I. and Capon, S. J. (2019) Applications of Bayesian Networks as Decision Support Tools for Water Resource Management under Climate Change and Socio-Economic Stressors: A Critical Appraisal. Water, 11 (12). p. 2642. https://doi.org/10.3390/w11122642

Van Sprang, C. (2019) Using precision information technologies to understand crop variability. In: TropAg 2019 International Tropical Agriculture Conference - Shaping the Science of Tomorrow, 11 - 13 November 2019, Brisbane, Australia.

2017

Seyoum, S., Chauhan, Y. S., Rachaputi, R., Fekybelu, S. and Prasanna, B. (2017) Characterising production environments for maize in eastern and southern Africa using the APSIM Model. Agricultural and Forest Meteorology, 247 . pp. 445-453. https://doi.org/10.1016/j.agrformet.2017.08.023

2016

Courtney, A. J., Campbell, A. B., Quinn, R., O'Neill, M. F., Campbell, M. J., Shen, J. and Emery, M. (2016) TrackMapper Rises. Project Report. Department of Agriculture and Fisheries, State of Queensland.

Merz, T., Hrabar, S., Kendoul, F. and Jeffery, M. (2016) Unmanned helicopter system for miconia weed surveys. In: 20th Australasian Weeds Conference.

Wang, M., Thorp, G., Hofman, H., White, N., Wherritt, E. and Hanan, J. (2016) Pattern-oriented modelling of plant architecture: A new approach for constructing functional-structural plant models. In: IEEE International Conference on Functional-Structural Plant Growth Modeling, Simulation, Visualization and Applications (FSPMA), 7-11 Nov. 2016, Qingdao, China. https://doi.org/10.1109/FSPMA.2016.7818308

2015

Innes, D. J., Dillon, N. L., Smyth, H., Karan, M., Holton, T. A., Bally, I. S.E. and Dietzgen, R. G. (2015) Mangomics: Information Systems Supporting Advanced Mango Breeding. In: Genomics and Proteomics. Apple Academic Press. https://doi.org/10.1201/b18597-12

2012

Robson, A., Abbott, C., Lamb, D. and Bramley, R. (2012) Developing sugar cane yield prediction algorithms from satellite imagery. In: 34th Annual Conference Australian Society of Sugar Cane Technologists, Cairns.

2011

Hamilton, J. and Banney, S. (2011) Preliminary investigation into the development of an electronic forage budget and land condition application, for use on existing hand-held devices, for the northern grazing industry. Project Report. Meat & Livestock Australia Limited.

2010

Holzworth, D.P., Huth, N.I. and de Voil, P.G. (2010) Simplifying environmental model reuse. Environmental Modelling and Software, 25 (2). pp. 269-275. https://doi.org/10.1016/j.envsoft.2008.10.018

2009

Collard, B., Mace, E. S., McPhail, M., Wenzl, P., Cakir, M., Fox, G., Poulsen, D. and Jordan, D. (2009) How accurate are the marker orders in crop linkage maps generated from large marker datasets? Crop & Pasture Science, 60 (4). pp. 362-372. https://doi.org/10.1071/CP08099

2005

Mayer, D. G., Kinghorn, B. P. and Archer, A. A. (2005) Differential evolution – an easy and efficient evolutionary algorithm for model optimisation. Agricultural Systems, 83 (3). pp. 315-328. https://doi.org/10.1016/j.agsy.2004.05.002

2004

Ovenden, J., Street, R., Peel, D., Peel, S., Courtney, T., Podlich, H., Basford, K. and Dichmont, C. (2004) A new data source for fisheries resource assessment: genetic estimates of the effective number of spawners. Final Report to the Fisheries Research and Development Corporation. Project Report. QO 04010. Department of Primary Industries & Fisheries. Queensland..

2002

Wang, E., Robertson, M. J., Hammer, G. L., Carberry, P. S., Holzworth, D., Meinke, H., Chapman, S. C., Hargreaves, J. N. G., Huth, N. I. and McLean, G. (2002) Development of a generic crop model template in the cropping system model APSIM. European Journal of Agronomy, 18 (1). pp. 121-140. https://doi.org/10.1016/S1161-0301(02)00100-4

1999

Kerr, D. V., Cowan, R. T. and Chaseling, J. (1999) DAIRYPRO—a knowledge-based decision support system for strategic planning on sub-tropical dairy farms. I. System description. Agricultural Systems, 59 (3). pp. 245-255. https://doi.org/10.1016/S0308-521X(99)00007-4

1996

McCown, R.L., Hammer, G. L., Hargreaves, J. N.G., Holzworth, D.P. and Freebairn, D.M. (1996) APSIM: a novel software system for model development, model testing and simulation in agricultural systems research. Agricultural Systems, 50 (3). pp. 255-271. https://doi.org/10.1016/0308-521X(94)00055-V

1994

Jones, P.N. and Carberry, P.S. (1994) A technique to develop and validate simulation models. Agricultural Systems, 46 (4). pp. 427-442. https://doi.org/10.1016/0308-521X(94)90105-O

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