Cutting-Edge Robotics Research in Interdisciplinary Field

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Blink Sakulkueakulsuk
 
1.
D. Wilking, and T. Rofer, Realtime Object Recognition Using
Decision Tree Learning, 2005
 
http://www.informatik.uni-bremen.de/kogrob/papers/rc05-objectrecognition.pd
2.
J. Li, Q. Pan, and B. Hong, A New Approach of Multi-robot
Cooperative Pursuit Based on Association Rule Data Mining,
2009
 
http://cdn.intechopen.com/pdfs-wm/6967.pd
f
3.
A. Ravankar, Y. Hoshino, T. Emaru, and Y. Kobayashi, Robot
Mapping Using k-means Clustering Of Laser Range Sensor
Data, 2012
 
http://bncss.org/index.php/bncss/article/view/2/2
4.
H. Lipson, 
Mining experimental data for dynamical
invariants - from cognitive robotics to computational
biology, 2010
  
http://videolectures.net/ecmlpkdd2010_lipson_med/
 
Interdisciplinary Field
 
RBE = ME + EE + CS
 
Computer Science components
Computer Vision
Artificial Intelligence
Machine Learning
 
DATA MINING!!!
 
Realtime Object Recognition Using Decision
Tree Learning
 
From Ref.1 page 2
 
From Ref.1 page 3
 
Robot Mapping Using k-means Clustering Of
Laser Range Sensor Data
Create a map of the environment
 
From Ref.3 page 2
 
From Ref.3
page 2-3
 
Not good with noise.
 
From Ref.3 page 3
 
Association Rules
Multi-robot Cooperative Pursuit Based on
Association Rule Data Mining
The robots try to pursuit a target. Using association
rules, the robots form a group.
 
Other applications
Mining experimental data for dynamical invariants -
from cognitive robotics to computational biology
Invariants = Something that is constant in the system
Finding invariants = using unsupervised learning to
find 
patterns
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Explore the cutting-edge research in robotics and artificial intelligence, focusing on topics such as real-time object recognition, robot mapping, and multi-robot cooperative pursuit. Discover how decision tree learning, data mining, and association rules play a crucial role in advancing the field of robotics. From improving object recognition accuracy to forming robot groups based on rules, this research delves into the realm of computational biology and cognitive robotics. Uncover the fascinating world of robotics and its applications in various domains.

  • Robotics Research
  • Artificial Intelligence
  • Data Mining
  • Decision Tree Learning
  • Multi-Robot Cooperation

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  1. Blink Sakulkueakulsuk

  2. D. Wilking, and T. Rofer, Realtime Object Recognition Using Decision Tree Learning, 2005 http://www.informatik.uni-bremen.de/kogrob/papers/rc05-objectrecognition.pd J. Li, Q. Pan, and B. Hong, A New Approach of Multi-robot Cooperative Pursuit Based on Association Rule Data Mining, 2009 http://cdn.intechopen.com/pdfs-wm/6967.pdf A. Ravankar, Y. Hoshino, T. Emaru, and Y. Kobayashi, Robot Mapping Using k-means Clustering Of Laser Range Sensor Data, 2012 http://bncss.org/index.php/bncss/article/view/2/2 H. Lipson, Mining experimental data for dynamical invariants - from cognitive robotics to computational biology, 2010 http://videolectures.net/ecmlpkdd2010_lipson_med/ 1. 2. 3. 4.

  3. Interdisciplinary Field RBE = ME + EE + CS Computer Science components Computer Vision Artificial Intelligence Machine Learning DATA MINING!!!

  4. Realtime Object Recognition Using Decision Tree Learning From Ref.1 page 2

  5. From Ref.1 page 3

  6. Robot Mapping Using k-means Clustering Of Laser Range Sensor Data Create a map of the environment From Ref.3 page 2

  7. From Ref.3 page 2-3

  8. Not good with noise. From Ref.3 page 3

  9. Association Rules Multi-robot Cooperative Pursuit Based on Association Rule Data Mining The robots try to pursuit a target. Using association rules, the robots form a group. Other applications Mining experimental data for dynamical invariants - from cognitive robotics to computational biology Invariants = Something that is constant in the system Finding invariants = using unsupervised learning to find patterns

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