Summaries of Literature's: Difference between revisions

From Control Systems Technology Group
Jump to navigation Jump to search
No edit summary
No edit summary
Line 4: Line 4:
*[[Can drones deliver?]]<ref></ref>
*[[Can drones deliver?]]<ref></ref>
*[[Autonomous Drones for Assisting Rescue Services within the context of Natural Disasters]]<ref></ref>
*[[Autonomous Drones for Assisting Rescue Services within the context of Natural Disasters]]<ref></ref>
*[[Simple GUI Wireless Controller of Quadcopter]]<ref></ref>
*[[Simple GUI Wireless Controller of Quadcopter]]<ref>Hanafi,D.january 2013,Simple GUI Wireless Controller of Quadcopter,International Journal of Communications, Network and System Sciences
*[[Modelling and control of quadcopter]]<ref></ref>
</ref>
*[[Quadcopter Flight Dynamics]]<ref></ref>
*[[Modelling and control of quadcopter]]<ref>Luukkonen,T.August 22, 2011,Modelling and control of quadcopter, Aalto University</ref>
*[[Method and system for detecting objects external to a vehicle]]<ref></ref>
*[[Quadcopter Flight Dynamics]]<ref>Khan,M.,8, AUGUST 2014,Quadcopter Flight Dynamics,INTERNATIONAL JOURNAL OF SCIENTIFIC & TECHNOLOGY RESEARCH
*[[Design and Control of an Unmanned Aerial Vehicle for Autonomous Parcel Delivery with Transition from Vertical Take-off to Forward Flight]]<ref></ref>
</ref>
*[[Drones in Logistics: A Feasible Future or a waste of effort]]<ref></ref>
*[[Method and system for detecting objects external to a vehicle]]<ref>Breed,D.,S.,Apr. 10, 2007,Method and system for detecting objects external to a vehicle, Intelligent Tech International Inc
*[[Implementing Delivery Drones in Logistics Business Process: Case of Pharmaceutical Industry]]<ref></ref>
</ref>
*[[Autonomous Measurement Drone for Remote Dangerous Source Location Mapping]]<ref></ref>
*[[Design and Control of an Unmanned Aerial Vehicle for Autonomous Parcel Delivery with Transition from Vertical Take-off to Forward Flight]]<ref>Hochstenbach,M. , Notteboom,C. , Theys, B., Schutter, J., D.,2015,Design and Control of an Unmanned Aerial Vehicle for Autonomous Parcel Delivery with Transition from Vertical Take-off to Forward Flight, International Journal of Micro Air Vehicles
*[[GPS Guided Autonomous Drone]]<ref></ref>
</ref>
*[[Self-Navigating Quadcopter]]<ref></ref>
*[[Drones in Logistics: A Feasible Future or a waste of effort]]<ref>Lotz, A. (2015, November 18). Drones in Logistics: A Feasible Future or a waste of effort. [Scholarly project]. In ScholarWorks@BGSU. Retrieved April 28, 2018, from https://scholarworks.bgsu.edu/cgi/viewcontent.cgi?article=1215&context=honorsprojects</ref>
*[[Self-Stabilizing Quad-Rotor Helicopter]]<ref></ref>
*[[Implementing Delivery Drones in Logistics Business Process: Case of Pharmaceutical Industry]]<ref>Vlahovic, N. , Knezevic, B. , Batalic, P. (2016). 'Implementing Delivery Drones in Logistics Business Process: Case of Pharmaceutical Industry'. World Academy of Science, Engineering and Technology, International Science Index 120, International Journal of Social, Behavioral, Educational, Economic, Business and Industrial Engineering, 10(12), 4026 - 4031.
*[[Flight Control and Hardware Design of Multi-Rotor Systems]]<ref></ref>
</ref>
*[[Towards autonomous navigation of multiple pocket-drones in real-world environments]]<ref></ref>
*[[Autonomous Measurement Drone for Remote Dangerous Source Location Mapping]]<ref>Croizé, P., Archez, M., Boisson, J., Roger, T., & Monsegu, V. (2015). Autonomous Measurement Drone for Remote Dangerous Source Location Mapping. International Journal of Environmental Science and Development, 6(5), 391-396. doi:10.7763/ijesd.2015.v6.624
*[[On-board Bluetooth-based Relative Localization for Collision Avoidance in Micro Air Vehicle Swarms]]<ref></ref>
</ref>
*[[Object detection and tracking for real time field surveilliance applications]]<ref></ref>
*[[GPS Guided Autonomous Drone]]<ref>Roberts, C. (2016, April 25). GPS Guided Autonomous Drone [Scholarly project]. In University of Evansville. Retrieved April 28, 2018, from https://www.evansville.edu/majors/eecs/downloads/projects2016/CameronRobertsReport.pdf
</ref>
*[[Self-Navigating Quadcopter]]<ref>Singh, O. G. (2015). Self-Navigating Quadcopter. International Journal of Computer Science and Information Technologies, 6(3), 2761-2765. doi:0975-9646
</ref>
*[[Self-Stabilizing Quad-Rotor Helicopter]]<ref>Rought, J., Goodhew, D., Sullivan, J., & Rodriguez, A. (n.d.). Self-Stabilizing Quad-Rotor Helicopter[Scholarly project]. In University of Central Florida. Retrieved April 28, 2018, from http://www.eecs.ucf.edu/seniordesign/su2010fa2010/g07/user/image/conferencepaper.pdf
</ref>
*[[Flight Control and Hardware Design of Multi-Rotor Systems]]<ref>Zimmerman, N. M. (2016). Flight Control and Hardware Design of MultiRotor Systems(Master's thesis, Marquette University, 2016) (pp. 1-123). Milwaukee: Marquette University. Retrieved April 28, 2018, from https://epublications.marquette.edu/cgi/viewcontent.cgi?referer=https://www.google.nl/&httpsredir=1&article=1370&context=theses_open
</ref>
*[[Towards autonomous navigation of multiple pocket-drones in real-world environments]]<ref>Mcguire, K., Coppola, M., Wagter, C. D., & Croon, G. D. (2017). Towards autonomous navigation of multiple pocket-drones in real-world environments. 2017 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS). doi:10.1109/iros.2017.8202164
</ref>
*[[On-board Bluetooth-based Relative Localization for Collision Avoidance in Micro Air Vehicle Swarms]]<ref>Coppola, M., Mcguire, K., Scheper, K. & Croon, G. (2016). On-board Bluetooth-based Relative Localization for Collision Avoidance in Micro Air Vehicle Swarms.
</ref>
*[[Object detection and tracking for real time field surveilliance applications]]<ref>Turkay, Mustafa. (2017). OBJECT DETECTION AND TRACKING FOR REAL TIME FIELD SURVELLIANCE APPLICATIONS. doi: 10.13140/RG.2.2.34716.49282. </ref>
*[[Privacy and Drones: Unmanned Aerial Vehicles]]<ref></ref>
*[[Privacy and Drones: Unmanned Aerial Vehicles]]<ref></ref>
*[[Moral Predators: The Duty to Employ Uninhabited Aerial Vehicles]]<ref></ref>
*[[Moral Predators: The Duty to Employ Uninhabited Aerial Vehicles]]<ref></ref>

Revision as of 01:44, 29 April 2018

References

  1. Hanafi,D.january 2013,Simple GUI Wireless Controller of Quadcopter,International Journal of Communications, Network and System Sciences
  2. Luukkonen,T.August 22, 2011,Modelling and control of quadcopter, Aalto University
  3. Khan,M.,8, AUGUST 2014,Quadcopter Flight Dynamics,INTERNATIONAL JOURNAL OF SCIENTIFIC & TECHNOLOGY RESEARCH
  4. Breed,D.,S.,Apr. 10, 2007,Method and system for detecting objects external to a vehicle, Intelligent Tech International Inc
  5. Hochstenbach,M. , Notteboom,C. , Theys, B., Schutter, J., D.,2015,Design and Control of an Unmanned Aerial Vehicle for Autonomous Parcel Delivery with Transition from Vertical Take-off to Forward Flight, International Journal of Micro Air Vehicles
  6. Lotz, A. (2015, November 18). Drones in Logistics: A Feasible Future or a waste of effort. [Scholarly project]. In ScholarWorks@BGSU. Retrieved April 28, 2018, from https://scholarworks.bgsu.edu/cgi/viewcontent.cgi?article=1215&context=honorsprojects
  7. Vlahovic, N. , Knezevic, B. , Batalic, P. (2016). 'Implementing Delivery Drones in Logistics Business Process: Case of Pharmaceutical Industry'. World Academy of Science, Engineering and Technology, International Science Index 120, International Journal of Social, Behavioral, Educational, Economic, Business and Industrial Engineering, 10(12), 4026 - 4031.
  8. Croizé, P., Archez, M., Boisson, J., Roger, T., & Monsegu, V. (2015). Autonomous Measurement Drone for Remote Dangerous Source Location Mapping. International Journal of Environmental Science and Development, 6(5), 391-396. doi:10.7763/ijesd.2015.v6.624
  9. Roberts, C. (2016, April 25). GPS Guided Autonomous Drone [Scholarly project]. In University of Evansville. Retrieved April 28, 2018, from https://www.evansville.edu/majors/eecs/downloads/projects2016/CameronRobertsReport.pdf
  10. Singh, O. G. (2015). Self-Navigating Quadcopter. International Journal of Computer Science and Information Technologies, 6(3), 2761-2765. doi:0975-9646
  11. Rought, J., Goodhew, D., Sullivan, J., & Rodriguez, A. (n.d.). Self-Stabilizing Quad-Rotor Helicopter[Scholarly project]. In University of Central Florida. Retrieved April 28, 2018, from http://www.eecs.ucf.edu/seniordesign/su2010fa2010/g07/user/image/conferencepaper.pdf
  12. Zimmerman, N. M. (2016). Flight Control and Hardware Design of MultiRotor Systems(Master's thesis, Marquette University, 2016) (pp. 1-123). Milwaukee: Marquette University. Retrieved April 28, 2018, from https://epublications.marquette.edu/cgi/viewcontent.cgi?referer=https://www.google.nl/&httpsredir=1&article=1370&context=theses_open
  13. Mcguire, K., Coppola, M., Wagter, C. D., & Croon, G. D. (2017). Towards autonomous navigation of multiple pocket-drones in real-world environments. 2017 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS). doi:10.1109/iros.2017.8202164
  14. Coppola, M., Mcguire, K., Scheper, K. & Croon, G. (2016). On-board Bluetooth-based Relative Localization for Collision Avoidance in Micro Air Vehicle Swarms.
  15. Turkay, Mustafa. (2017). OBJECT DETECTION AND TRACKING FOR REAL TIME FIELD SURVELLIANCE APPLICATIONS. doi: 10.13140/RG.2.2.34716.49282.