Artificial neural network modeling of microbial community structures in the Atlantic Forest of Brazil
暂无分享,去创建一个
David E. Crowley | D. Crowley | M. Lambais | Eder da Costa dos Santos | Eduardo Dutra Armas | Marcio Rodrigues Lambais | E. C. Santos | E. D. Armas
[1] G. Robertson,et al. Fatty acid methyl ester (FAME) profiles as measures of soil microbial community structure , 1995, Plant and Soil.
[2] P. Brookes,et al. Contrasting Soil pH Effects on Fungal and Bacterial Growth Suggest Functional Redundancy in Carbon Mineralization , 2009, Applied and Environmental Microbiology.
[3] C. Haddad,et al. Biodiversity Conservation Research, Training, and Policy in São Paulo , 2010, Science.
[4] D. White,et al. Quantitative comparisons ofin situ microbial biodiversity by signature biomarker analysis , 1996, Journal of Industrial Microbiology.
[5] D. White. In situ measurement of microbial biomass, community structure and nutritional status , 1993, Philosophical Transactions of the Royal Society of London. Series A: Physical and Engineering Sciences.
[6] J. C. D. Silva,et al. Desafios e oportunidades para a conservação da biodiversidade na Mata Atlântica brasileira , 2005 .
[7] G. Decocq,et al. Drivers of plant species assemblages in forest patches among contrasted dynamic agricultural landscapes , 2011 .
[8] H. Fritze,et al. Structure of a Microbial Community in Soil after Prolonged Addition of Low Levels of Simulated Acid Rain , 1998, Applied and Environmental Microbiology.
[9] D. Bossio,et al. Determinants of Soil Microbial Communities: Effects of Agricultural Management, Season, and Soil Type on Phospholipid Fatty Acid Profiles , 1998, Microbial Ecology.
[10] A. Ramette. Multivariate analyses in microbial ecology , 2007, FEMS microbiology ecology.
[11] Martin Hermy,et al. Influence of environmental and spatial variables on regional distribution of forest plant species in a fragmented and changing landscape , 2003 .
[12] Bill Shipley,et al. Abiotic drivers and plant traits explain landscape-scale patterns in soil microbial communities. , 2012, Ecology letters.
[13] David E. Crowley,et al. Application of self-organizing maps for assessing soil biological quality. , 2008 .
[14] L. Zelles,et al. Fatty acid patterns of phospholipids and lipopolysaccharides in the characterisation of microbial communities in soil: a review , 1999, Biology and Fertility of Soils.
[15] R. Reese. Geostatistics for Environmental Scientists , 2001 .
[16] R. Kaushik,et al. Phospholipid fatty acid - A bioindicator of environment monitoring and assessment in soil ecosystem , 2005 .
[17] G. Sparling. Ratio of microbial biomass carbon to soil organic carbon as a sensitive indicator of changes in soil organic matter , 1992 .
[18] Andries P. Engelbrecht,et al. Computational Intelligence: An Introduction , 2002 .
[19] Peter A. Noble,et al. Application of Neural Computing Methods for Interpreting Phospholipid Fatty Acid Profiles of Natural Microbial Communities , 2000, Applied and Environmental Microbiology.
[20] Edzer J. Pebesma,et al. Multivariable geostatistics in S: the gstat package , 2004, Comput. Geosci..
[21] J. Six,et al. Bacterial and Fungal Contributions to Carbon Sequestration in Agroecosystems , 2006 .
[22] R. B. Jackson,et al. The diversity and biogeography of soil bacterial communities. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[23] D. Bossio,et al. Impact of carbon and flooding on the metabolic diversity of microbial communities in soils , 1995, Applied and environmental microbiology.
[24] M. Chantigny,et al. Soil Aggregation and Fungal and Bacterial Biomass under Annual and Perennial Cropping Systems , 1997 .