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1. Adamchuk, V.I., J.W. Hummel, M.T. Morgan, S.K. Upadhyaya. 2004. On-the-go soil sensors for precision agriculture. Comput. Electron. Agric. 44:71¨C91.
2. Christy, C.D. 2008. Real-Time Measurement of Soil Attributes Using On-the-go Near Infrared Reflectance Spectroscopy. Computers and Electronics in Agriculture. 61:1. pp.10-19
3. Kitchen, N.R., S.T. Drummond, E.D. Lund, K.A. Sudduth, G.W. Buchleiter. 2003. Soil electrical conductivity and other soil and landscape properties related to yield for three contrasting soil and crop systems. Agron. J. 95:483¨C495.
4. Kweon, G., E.D. Lund, and C.R. Maxton. 2013. Soil organic matter and cation-exchange capacity sensing with on-the-go electrical conductivity and optical sensors. Geoderma 199:80¨C89.
5. Lund, E.D. 2008. Soil electrical conductivity. p.137-146. In: S. Logsdon et al. (ed.) Soil Science Step by Step Field Analysis. SSSA, Madison, WI.
6. Lund, E.D., C.R. Maxton, T.J. Lund. 2015. Assuring data quality and providing actionable maps using a multi-sensor system. Proceedings of Global Workshop on Proximal Soil Sensing. Hangzhou China. 266-278.
7. Eric Lund, Chase Maxton. 2019. Comparing Organic Matter Estimations Using Two Farm Implement Mounted Proximal Sensing Technologies. 5TH GLOBAL WORKSHOP ON PROXIMAL SOIL SENSING. P35-40.
8. Jos¨¦ Paulo Molin, Tiago Rodrigues Tavares. 2019. SENSOR SYSTEMS FOR MAPPING SOIL FERTILITY ATTRIBUTES: CHALLENGES, ADVANCES, AND PERSPECTIVES IN BRAZILIAN TROPICAL SOILS. Eng. Agr¨ªc. vol.39.
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