Ngandu et al., 2013 - Google Patents
Evaluating effect of foliage on link reliability of wireless signalNgandu et al., 2013
View PDF- Document ID
- 18251701632921992563
- Author
- Ngandu G
- Nomatungulula C
- Rimer S
- Paul B
- Ouahada K
- Twala B
- Publication year
- Publication venue
- 2013 IEEE International Conference on Industrial Technology (ICIT)
External Links
Snippet
Applications of low cost wireless sensor nodes in precision agriculture are being gradually adopted by commercial agricultural cooperatives as part of the continuing industrialisation of commercial agriculture. Current applications require extensive testing and experimentation …
- 230000000694 effects 0 title abstract description 16
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Vuran et al. | Internet of underground things: Sensing and communications on the field for precision agriculture | |
Vuran et al. | Internet of underground things in precision agriculture: Architecture and technology aspects | |
Balachander et al. | RF propagation investigations in agricultural fields and gardens for wireless sensor communications | |
Dong et al. | Autonomous precision agriculture through integration of wireless underground sensor networks with center pivot irrigation systems | |
Vougioukas et al. | Influence of foliage on radio path losses (PLs) for wireless sensor network (WSN) planning in orchards | |
Dhanavanthan et al. | RF propagation experiments in agricultural fields and gardens for wireless sensor communications | |
Rao et al. | Ultra‐high frequency near‐ground short‐range propagation measurements in forest and plantation environments for wireless sensor networks | |
Rao et al. | RF propagation measurements in forest & plantation environments for Wireless Sensor Networks | |
Pal et al. | Machine learning regression for RF path loss estimation over grass vegetation in IoWSN monitoring infrastructure | |
Ngandu et al. | Evaluating effect of foliage on link reliability of wireless signal | |
Brinkhoff et al. | Characterization of WiFi signal range for agricultural WSNs | |
Giacomin et al. | Wireless sensor network as a measurement tool in precision agriculture | |
Paul et al. | A foliage scatter model to determine topology of wireless sensor network | |
Navarro et al. | An Adjusted Propagation Model for Wireless Sensor Networks in Corn Fields | |
Xu et al. | Measurement and analysis of wireless propagative model of 433MHz and 2.4 GHz frequency in Southern China orchards | |
Mahesh et al. | RF propagation measurements in agricultural fields for Wireless Sensor Communications | |
Zhang et al. | Sensing technologies and automation for precision agriculture | |
Hamasaki | Propagation characteristics of A 2.4 GHz wireless sensor module with a pattern antenna in forestry and agriculture field | |
Rao et al. | UHF short-range pathloss measurements in forest & plantation environments for wireless sensor networks | |
O’Shaughnessy et al. | Advanced tools for irrigation scheduling | |
Paul et al. | Wireless sensor node placement due to power loss effects from surrounding vegetation | |
Gay-Fernández et al. | Deployment of a wireless sensor network in a vineyard | |
Dhanaraju et al. | Smart Farming: Internet of Things (IoT)-Based Sustainable Agriculture. Agriculture 2022, 12, 1745 | |
Giacomin et al. | Estimating vegetation water content with wireless sensor network communication signals | |
Jain et al. | Review of multiparameter techniques for precision agriculture using wireless sensor network |