Odysseys of agriculture sensors: Current challenges and forthcoming prospects
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[1] P. Ehrlich,et al. IMPACT OF POPULATION GROWTH , 1971, Science.
[2] S. K. Singh,et al. An approach to compute Photosynthetically Active Radiation using IRS P4 OCM , 2008 .
[3] Jan W. Hopmans,et al. Soil water flux density measurements near 1 cm d−1 using an improved heat pulse probe design , 2008 .
[4] Z. Ahmad. Integrated Capacitive and Resistive Humidity Transduction via Surface Type Nickel Phthalocyanine Based Sensor , 2017 .
[5] C. Tisdell,et al. The Persistence of Hunting and Gathering Economies , 2015 .
[6] R. Horton,et al. Measuring soil water content, electrical conductivity, and thermal properties with a thermo-time domain reflectometry probe , 1999 .
[7] William R. Salaneck,et al. Conductivity, morphology, interfacial chemistry, and stability of poly(3,4‐ethylene dioxythiophene)–poly(styrene sulfonate): A photoelectron spectroscopy study , 2003 .
[8] António Valente,et al. MEMS Devices in Agriculture , 2017 .
[9] Laurent Parrot,et al. Sustainable urban agriculture in developing countries. A review , 2011, Agronomy for Sustainable Development.
[10] N. K. Pandey,et al. ZnO–TiO2 nanocomposite: Characterization and moisture sensing studies , 2012, Bulletin of Materials Science.
[11] Narendra Singh Raghuwanshi,et al. Wireless sensor networks for agriculture: The state-of-the-art in practice and future challenges , 2015, Comput. Electron. Agric..
[12] Carlos D. Moreno-Moreno,et al. Wireless Sensor Network for Sustainable Agriculture , 2018, Proceedings.
[13] Ta-Te Lin,et al. An Automated and Continuous Plant Weight Measurement System for Plant Factory , 2016, Front. Plant Sci..
[14] Kunyanuth Kularbphettong,et al. An Automated System for Assisting and Monitoring Plant Growth , 2019 .
[15] Terry J. Gillespie,et al. Operational exposure of leaf wetness sensors , 2004 .
[16] G. Kluitenberg,et al. A heat-pulse method for measuring sap flow in corn and sunflower using 3D-printed sensor bodies and low-cost electronics , 2017 .
[17] J. Qian,et al. Positive impedance humidity sensors via single-component materials , 2016, Scientific Reports.
[18] D. Drew,et al. Climate and growth influences on wood formation and utilisation , 2008 .
[19] J. Šimůnek,et al. Multi-functional heat pulse probe measurements of coupled vadose zone flow and transport , 2006 .
[20] Zhuangde Jiang,et al. A MEMS resonant accelerometer for low-frequency vibration detection , 2018, Sensors and Actuators A: Physical.
[21] Marius Schmidt,et al. Improving the stem heat balance method for determining sap-flow in wheat , 2014 .
[22] T. Ochsner,et al. An Improved Approach for Measurement of Coupled Heat and Water Transfer in Soil Cells , 2007, Soil Science Society of America Journal.
[23] David Reiser,et al. 3-D Imaging Systems for Agricultural Applications—A Review , 2016, Sensors.
[24] C. Beadle,et al. Daily stem growth patterns in irrigated Eucalyptus globulus and E. nitens in relation to climate , 1999, Trees.
[25] Gerhard Müller,et al. A wireless sensor network using energy harvesting for agricultural machinery , 2010, Elektrotech. Informationstechnik.
[26] Juan Enrique Agudo,et al. A Low-Cost Real Color Picker Based on Arduino , 2014, Sensors.
[27] A. L. Gesing,et al. On the design of a MEMS piezoelectric accelerometer coupled to the middle ear as an implantable sensor for hearing devices , 2018, Scientific Reports.
[28] Kathy Steppe,et al. Sap flow as a key trait in the understanding of plant hydraulic functioning. , 2015, Tree physiology.
[29] Jamaluddin,et al. Identification of subsurface layer with Wenner-Schlumberger arrays configuration geoelectrical method , 2018 .
[30] Muhammad Saleem,et al. Humidity-dependent characteristics of methyl-red thin film-based Ag/methyl-red/Ag surface-type cell , 2008 .
[31] N. Pecchioni,et al. Measurement of leaf lamina moisture with a low-cost electrical humidity sensor: case study on a wheat water-mutant , 2019, BMC Plant Biology.
[32] Raul Morais,et al. Multi-functional probe for small-scale simultaneous measurements of soil thermal properties, water content, and electrical conductivity , 2006 .
[33] J. Cermak,et al. Improvement of the trunk heat balance method including measurement of zero and reverse sap flows , 2012 .
[34] J. Méndez‐Ramos,et al. Shifting the Sun: Solar Spectral Conversion and Extrinsic Sensitization in Natural and Artificial Photosynthesis , 2015, Advanced science.
[35] M. Kirkham,et al. Laboratory Evaluation of the Dual‐Probe Heat‐Pulse Method for Measuring Soil Water Content , 2003 .
[36] Chii-Chang Chen,et al. Application of the deep learning for the prediction of rainfall in Southern Taiwan , 2019, Scientific Reports.
[37] Javier Cubas,et al. The Cup Anemometer, a Fundamental Meteorological Instrument for the Wind Energy Industry. Research at the IDR/UPM Institute , 2014, Sensors.
[38] Keith L. Bristow,et al. A small multi-needle probe for measuring soil thermal properties, water content and electrical conductivity , 2001 .
[39] Angel Sanz-Andrés,et al. On sonic anemometer measurement theory , 2000 .
[40] Vladimir P. Lukin,et al. Measurement of Atmospheric Turbulence Characteristics by the Ultrasonic Anemometers and the Calibration Processes , 2019, Atmosphere.
[41] J. Hopmans,et al. Multi‐Functional Heat Pulse Probe for the Simultaneous Measurement of Soil Water Content, Solute Concentration, and Heat Transport Parameters , 2003 .
[42] John H. Xin,et al. Polyethylenedioxythiophene coatings for humidity, temperature and strain sensing polyamide fibers , 2005 .
[43] Roy A. Colclaser,et al. Microelectronics: Processing and device design , 1980 .
[44] Andrea Peruzzi,et al. Sensors in Agriculture and Forestry , 2013, Sensors.
[45] Ernesto Serrano-Finetti,et al. A novel low-cost smart leaf wetness sensor , 2017, Comput. Electron. Agric..
[46] Noboru Noguchi,et al. Development of a laser scanner-based navigation system for a combine harvester , 2014 .
[47] Mohamed Saafi,et al. Measuring soil temperature and moisture using wireless MEMS sensors , 2008 .
[48] J. Ham,et al. On the Construction and Calibration of Dual-Probe Heat Capacity Sensors , 2004 .
[49] Jun Ni,et al. Design and Test of a Soil Profile Moisture Sensor Based on Sensitive Soil Layers , 2018, Sensors.
[50] R. Horton,et al. Test of a dual-probe heat-pulse method for determining thermal properties of porous materials , 1998 .
[51] David Nilsson,et al. An all-organic sensor-transistor based on a novel electrochemical transducer concept printed electrochemical sensors on paper , 2002 .
[52] Haibiao Chen,et al. CdS-Nanowires Flexible Photo-detector with Ag-Nanowires Electrode Based on Non-transfer Process , 2016, Scientific Reports.
[53] Generose Nziguheba,et al. The African Green Revolution moves forward , 2009, Food Security.
[54] R. L. Kelly,et al. Agriculture, population growth, and statistical analysis of the radiocarbon record , 2015, Proceedings of the National Academy of Sciences.
[55] Jarek Antoszewski,et al. MEMS-based Fabry-Perot microspectrometers for agriculture , 2009, Defense + Commercial Sensing.
[56] Jordan Chamberlin,et al. How does population density influence agricultural intensification and productivity? Evidence from Malawi , 2014 .
[57] G. Campbell,et al. Probe for Measuring Soil Specific Heat Using A Heat-Pulse Method , 1991 .
[58] H. Roberts,et al. The Challenge of Managing Undernutrition in Older People with Frailty , 2019, Nutrients.
[59] Giovanni Ravazzani,et al. Open hardware portable dual-probe heat-pulse sensor for measuring soil thermal properties and water content , 2017, Comput. Electron. Agric..
[60] Alex Alves Freitas,et al. An extensive evaluation of seven machine learning methods for rainfall prediction in weather derivatives , 2017, Expert Syst. Appl..
[61] Rosdiadee Nordin,et al. Energy-Efficient Wireless Sensor Networks for Precision Agriculture: A Review , 2017, Sensors.
[62] J. Hopmans,et al. A dual-probe heat-pulse sensor with rigid probes for improved soil water content measurement , 2015 .
[63] O. Dünisch,et al. FORMATION OF INCREMENT ZONES AND INTRAANNUAL GROWTH DYNAMICS IN THE XYLEM OF SWIETENIA MACROPHYLLA, CARAPA GUIANENSIS, AND CEDRELA ODORATA (MELIACEAE) , 2002 .
[64] Wouter Saeys,et al. Estimation of the crop density of small grains using LiDAR sensors. , 2009 .
[65] R. Florax,et al. How Does Population Density Influence Agricultural Intensification and Productivity , 2014 .
[66] L. C. Grappadelli,et al. A Low-cost Device for Accurate and Continuous Measurements of Fruit Diameter , 2007 .
[67] Sergey Shevchenko,et al. Surface-Acoustic-Wave Sensor Design for Acceleration Measurement , 2018, Sensors.
[68] Salvador Mir,et al. Generation of Electrically Induced Stimuli for MEMS Self-Test , 2001, J. Electron. Test..
[69] Pawan Kumar,et al. Smart and Precision Polyhouse Farming Using Visible Light Communication and Internet of Things , 2018 .
[70] S. Fountas,et al. Exploring the adoption of precision agricultural technologies: A cross regional study of EU farmers , 2019, Land Use Policy.
[71] R. Lemeur,et al. An experimental system for analysis of the dynamic sap-flow characteristics in young trees: results of a beech tree. , 2004, Functional plant biology : FPB.
[72] A. Krysa,et al. InGaP (GaInP) mesa p-i-n photodiodes for X-ray photon counting spectroscopy , 2017, Scientific Reports.
[73] R. Horton,et al. Development and Application of the Heat Pulse Method for Soil Physical Measurements , 2018, Reviews of Geophysics.
[74] J. Wei,et al. Autonomous Guidance of a Corn Harvester using Stereo Vision , 2007 .
[75] Reinoud F. Wolffenbuttel,et al. Silicon sensors and circuits : on-chip compatibility , 1996 .
[76] A. Colantoni,et al. Revolution 4.0: Industry vs. Agriculture in a Future Development for SMEs , 2019, Processes.
[77] R. Horton,et al. Measurement of Soil Thermal Properties with a Dual‐Probe Heat‐Pulse Technique , 1994 .
[78] B. Cheng,et al. High-responsivity vertical-illumination Si/Ge uni-traveling-carrier photodiodes based on silicon-on-insulator substrate , 2015, Scientific reports.
[79] Zhuangde Jiang,et al. A Novel Single-Axis MEMS Tilt Sensor with a High Sensitivity in the Measurement Range from 0∘ to 360∘ † , 2018, Sensors.
[80] G. Kluitenberg,et al. Comparison of Single and Dual Probes for Measuring Soil Thermal Properties with Transient Heating , 1994 .
[81] Bin Han,et al. Research on Real-Time Local Rainfall Prediction Based on MEMS Sensors , 2018, J. Sensors.
[82] C. Tebaldi,et al. Prioritizing Climate Change Adaptation Needs for Food Security in 2030 , 2008, Science.
[83] Qing‐An Huang,et al. Octagon-Shaped 2-D Micromachined Thermal Wind Sensor for High-Accurate Applications , 2018, Journal of Microelectromechanical Systems.
[84] Filippo Renga,et al. Irrig‐OH: An Open‐Hardware Device for Soil Water Potential Monitoring and Irrigation Management , 2016 .
[85] Ming Xu,et al. Stable and Fast-Response Capacitive Humidity Sensors Based on a ZnO Nanopowder/PVP-RGO Multilayer , 2017, Sensors.
[86] Yiyong Cai,et al. The impact of climate change on food crop productivity, food prices and food security in South Asia , 2014 .
[87] Risto Jalkanen,et al. Seasonal dynamics of wood formation: a comparison between pinning, microcoring and dendrometer measurements , 2008, European Journal of Forest Research.
[88] S. Robinson,et al. Food Security: The Challenge of Feeding 9 Billion People , 2010, Science.
[89] Beth A. Middleton,et al. Dendrometer bands made easy: Using modified cable ties to measure incremental growth of trees1 , 2013, Applications in plant sciences.
[90] J. Michel,et al. High-performance Ge-on-Si photodetectors , 2010 .
[91] Vinay S. Palaparthy,et al. Review of polymer-based sensors for agriculture-related applications , 2013 .
[92] Mohd Nizar Hamidon,et al. Humidity Sensors Principle, Mechanism, and Fabrication Technologies: A Comprehensive Review , 2014, Sensors.
[93] M. Madou. Fundamentals of microfabrication and nanotechnology , 2012 .
[94] José Higino Correia,et al. Modeling, simulation and testing of a silicon soil moisture sensor based on the dual-probe heat-pulse method , 2004 .
[95] P. Sharma,et al. Block Copolymer Nanostructures and Their Applications: A Review , 2015 .
[96] Lama Nachman,et al. Mago: Mode of Transport Inference Using the Hall-Effect Magnetic Sensor and Accelerometer , 2017, Proc. ACM Interact. Mob. Wearable Ubiquitous Technol..
[97] Toshihide Kamata,et al. Influence of moisture on device characteristics of polythiophene-based field-effect transistors , 2004 .
[98] Mangilal Agarwal,et al. Polymer-based microsensor for soil moisture measurement , 2008 .
[99] Guriqbal Singh,et al. Traditional agriculture: a climate-smart approach for sustainable food production , 2017, Energy, Ecology and Environment.
[100] Paul C. Stern,et al. A strategy for assessing science : behavioral and social research on aging , 2007 .
[101] David Harrison,et al. Capacitive-type humidity sensors fabricated using the offset lithographic printing process , 2002 .
[102] David Michael Drew,et al. The use of precision dendrometers in research on daily stem size and wood property variation: A review , 2009 .
[103] Tommaso Anfodillo,et al. Dendrometer and intra-annual tree growth: What kind of information can be inferred? , 2007 .
[104] R. Zweifel,et al. Dynamics of water storage in mature subalpine Picea abies: temporal and spatial patterns of change in stem radius. , 2001, Tree physiology.
[105] Antonio Serrano-Mislata,et al. The pillars of land plants: new insights into stem development , 2018, Current opinion in plant biology.
[106] D. Chauhan,et al. Paradigms of climate change impacts on some major food sources of the world: A review on current knowledge and future prospects , 2016 .
[107] C. Meskers,et al. High risk of malnutrition is associated with low muscle mass in older hospitalized patients - a prospective cohort study , 2017, BMC Geriatrics.
[108] T. Gillespie,et al. Electronic leaf wetness duration sensor: why it should be painted , 2004, International journal of biometeorology.
[109] Z A M Hazreek,et al. The Behaviour of Laboratory Soil Electrical Resistivity Value under Basic Soil Properties Influences , 2015 .
[110] William R. Cline,et al. Global warming and agriculture , 2007 .
[111] Imran Ali Lakhiar,et al. Monitoring and Control Systems in Agriculture Using Intelligent Sensor Techniques: A Review of the Aeroponic System , 2018, J. Sensors.
[112] Daniel K. Fisher,et al. Open-Source Hardware Is a Low-Cost Alternative for Scientific Instrumentation and Research , 2012 .
[113] Rui-Jun Li,et al. Development of a High-Sensitivity Optical Accelerometer for Low-Frequency Vibration Measurement , 2018, Sensors.
[114] Jiaojun Zhu,et al. Application of Wenner Configuration to Estimate Soil Water Content in Pine Plantations on Sandy Land , 2007 .
[115] Robert Horton,et al. Determining Soil Water Flux and Pore Water Velocity by a Heat Pulse Technique , 2000 .
[116] R. Jaeger. Introduction to microelectronic fabrication , 1987 .
[117] H. Mäkinen,et al. Seasonal changes in stem radius and production of new tracheids in Norway spruce. , 2003, Tree physiology.
[118] J. Knapp,et al. Measurement of shock events by means of strain gauges and accelerometers , 1998 .