Self-reconfiguring modular robot

Self-reconfiguring modular robot

Modular self-reconfiguring robotic systems or self-reconfigurable modular robots are autonomous kinematic machines with variable morphology. Beyond conventional actuation, sensing and control typically found in fixed-morphology robots, self-reconfiguring robots are also able to deliberately change their own shape by rearranging the connectivity of their parts, in order to adapt to new circumstances, perform new tasks, or recover from damage.

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enModular self-reconfiguring robotic systems or self-reconfigurable modular robots are autonomous kinematic machines with variable morphology. Beyond conventional actuation, sensing and control typically found in fixed-morphology robots, self-reconfiguring robots are also able to deliberately change their own shape by rearranging the connectivity of their parts, in order to adapt to new circumstances, perform new tasks, or recover from damage.
Date
enMay 2018
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4leg2Cat.jpg
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MolecubesInMotion.jpg
Moteins (Robotic Universally Foldable Strings).jpg
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enModular self-reconfiguring robotic systems or self-reconfigurable modular robots are autonomous kinematic machines with variable morphology. Beyond conventional actuation, sensing and control typically found in fixed-morphology robots, self-reconfiguring robots are also able to deliberately change their own shape by rearranging the connectivity of their parts, in order to adapt to new circumstances, perform new tasks, or recover from damage. For example, a robot made of such components could assume a worm-like shape to move through a narrow pipe, reassemble into something with spider-like legs to cross uneven terrain, then form a third arbitrary object (like a ball or wheel that can spin itself) to move quickly over a fairly flat terrain; it can also be used for making "fixed" objects, such as walls, shelters, or buildings. In some cases this involves each module having 2 or more connectors for connecting several together. They can contain electronics, sensors, computer processors, memory and power supplies; they can also contain actuators that are used for manipulating their location in the environment and in relation with each other. A feature found in some cases is the ability of the modules to automatically connect and disconnect themselves to and from each other, and to form into many objects or perform many tasks moving or manipulating the environment. By saying "self-reconfiguring" or "self-reconfigurable" it means that the mechanism or device is capable of utilizing its own system of control such as with actuators or stochastic means to change its overall structural shape. Having the quality of being "modular" in "self-reconfiguring modular robotics" is to say that the same module or set of modules can be added to or removed from the system, as opposed to being generically "modularized" in the broader sense. The underlying intent is to have an indefinite number of identical modules, or a finite and relatively small set of identical modules, in a mesh or matrix structure of self-reconfigurable modules. Self-reconfiguration is different from the concept of self-replication, which is not a quality that a self-reconfigurable module or collection of modules needs to possess. A matrix of modules does not need to be able to increase the quantity of modules in its matrix to be considered self-reconfigurable. It is sufficient for self-reconfigurable modules to be produced at a conventional factory, where dedicated machines stamp or mold components that are then assembled into a module, and added to an existing matrix in order to supplement it to increase the quantity or to replace worn out modules. A matrix made up of many modules can separate to form multiple matrices with fewer modules, or they can combine, or recombine, to form a larger matrix. Some advantages of separating into multiple matrices include the ability to tackle multiple and simpler tasks at locations that are remote from each other simultaneously, transferring through barriers with openings that are too small for a single larger matrix to fit through but not too small for smaller matrix fragments or individual modules, and energy saving purposes by only utilizing enough modules to accomplish a given task. Some advantages of combining multiple matrices into a single matrix is ability to form larger structures such as an elongated bridge, more complex structures such as a robot with many arms or an arm with more degrees of freedom, and increasing strength. Increasing strength, in this sense, can be in the form of increasing the rigidity of a fixed or static structure, increasing the net or collective amount of force for raising, lowering, pushing, or pulling another object, or another part of the matrix, or any combination of these features. There are two basic methods of segment articulation that self-reconfigurable mechanisms can utilize to reshape their structures: chain reconfiguration and lattice reconfiguration.
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Machines
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Self-reconfiguring modular robot
Label
enSelf-reconfiguring modular robot
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www.cs.cmu.edu/~claytronics
doi.org/10.1007%2Fs11432-007-0068-8
link.springer.com/chapter/10.1007/978-3-030-25332-5_27
ieeexplore.ieee.org/xpls/abs_all.jsp%3Farnumber=1708645
www.isi.edu/robots/conro
mitpress.mit.edu/catalog/item/default.asp%3Fttype=2&tid=12151
web.archive.org/web/20110805013233/http:/mitpress.mit.edu/catalog/item/default.asp%3Fttype=2&tid=12151
web.archive.org/web/20130602071832/http:/www.idsc.ethz.ch/Research_DAndrea/DFA
groups.csail.mit.edu/drl
biorob.epfl.ch/
jinguoliu.sia.googlepages.com/
modlab.seas.upenn.edu/
modlabupenn.org/smores/
rebis.inobotics.com/
www.mein.nagoya-u.ac.jp/
www2.parc.com/spl/projects/modrobots/
web.archive.org/web/20061011152113/http:/sveiks.ee.washington.edu/video/
web.archive.org/web/20061027060910/http:/unit.aist.go.jp/is/dsysd/mtran3/
web.archive.org/web/20070220163745/http:/www2.parc.com/spl/projects/modrobots/
www.creativemachineslab.com/
www.linkedin.com/in/ruke-keragala-53a97a11/
groups.csail.mit.edu/drl/wiki/index.php/Main_Page
modular.mmmi.sdu.dk/wiki/Main_Page
web.archive.org/web/20090707095607/http:/modular.mmmi.sdu.dk/wiki/Main_Page
groups.google.com/forum/%3Ffromgroups%23!forum/modular-robotics
unit.aist.go.jp/is/dsysd/mtran3/papers/RAMmurata2007.pdf
groups.google.com/group/selfreconfigurable
www.flexibilityenvelope.com/self-reconfiguring-modular-robotics-essentials
www.creativemachineslab.com/self-replication.html
www.isi.edu/robots/superbot
www.youtube.com/watch%3Fv=FEZcE3UjF2w
www.3rdvector.com
www.flexibilityenvelope.com
www.selfreconfigurable.com
www.cs.rice.edu/~mmoll/publications/yim2007modular-self-reconfigurable-robot-systems.pdf
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Actuator
Assembly line
Bionics
Blood–brain barrier
Carnegie Mellon University
Category:Emerging technologies
Category:Modular design
Category:Robot architectures
Computer processor
Cornell
Electronics
File:4leg2Cat.jpg
File:G3dock.jpg
File:MicroUnit.png
File:MolecubesInMotion.jpg
File:Moteins (Robotic Universally Foldable Strings).jpg
File:SpaceMolecubes.JPG
File:Taxonomy of the reconfigurable robots.png
File:The Distributed Flight Array.jpg
Francesco Mondada
Free robotics
Gregory S. Chirikjian
Grey goo
Hod Lipson
Killer application
Legged robot
Lunar colonization
Machine
Memory
Molecubes
Morphogenetic robotics
Power supplies
Programmable matter
Prosthesis
Robot
S-bot mobile robot
Self-assembly
Self-replicating machine
Self-replication
Sensor
Snakebot
Space colonization
Space exploration
Space group
Spider
Stochastic
Swarm intelligence
Swarm robotics
Symbrion
The Invincible
Utility fog
Worm
Manufacture
enyes
Materials
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Robotics
enyes
SameAs
g2Dj
m.0267v07
Q17165512
Self-reconfiguring modular robot
Модульный робот
自己組織化ロボット
SeeAlso
Modular design
Subject
Category:Emerging technologies
Category:Modular design
Category:Robot architectures
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