citation_title=Fundamentals of vibrations; citation_publication_date=2001; citation_id=CR1; citation_author=L Meirovitch; citation_publisher=McGraw-Hill
Kailath T (1980) Linear systems. Information and system sciences series. Prentice-Hall, Englewood Cliffs.
https://books.google.com/books?id=ggYqAQAAMAAJ
citation_journal_title=J Dyn Syst Meas Control; citation_title=Impedance control: an approach to manipulation: Part I—theory, Part II—implementation, Part III—applications; citation_author=N Hogan; citation_volume=107; citation_issue=1; citation_publication_date=1985; citation_pages=1-24; citation_doi=10.1115/1.3140713; citation_id=CR3
Saldarriaga C, Chakraborty N, Kao I (2020) Design of damping matrices for cartesian impedance control of robotic manipulators. In: Xiao J, Kröger T, Khatib O (eds) Proceedings of the 2018 international symposium on experimental robotics. Springer, Cham, pp 665–674
citation_journal_title=Int J Robot Res; citation_title=Conservative congruence transformation for joint and cartesian stiffness matrices of robotic hands and fingers; citation_author=S-F Chen, I Kao; citation_volume=19; citation_issue=9; citation_publication_date=2000; citation_pages=835-847; citation_doi=10.1177/02783640022067201; citation_id=CR5
Saldarriaga C, Chakraborty N, Kao I (2020) Joint space stiffness and damping for cartesian and null space impedance control of redundant robotic manipulators. In: Proceedings ISRR 2019
citation_journal_title=IEEE J Robot Autom; citation_title=A unified approach for motion and force control of robot manipulators: the operational space formulation; citation_author=O Khatib; citation_volume=3; citation_issue=1; citation_publication_date=1987; citation_pages=43-53; citation_doi=10.1109/JRA.1987.1087068; citation_id=CR7
citation_journal_title=IEEE ICRA; citation_title=Cartesian impedance control of redundant robots: recent results with the DLR-light-weight-arms; citation_author=A Albu-Schaffer, C Ott, U Frese, G Hirzinger; citation_volume=3; citation_publication_date=2003; citation_pages=3704-37093; citation_doi=10.1109/ROBOT.2003.1242165; citation_id=CR8
Kao I (2010) Lecture notes from MEC 532 Vibration and Control, Stony Brook. Stony Brook University, NY. Department of Mechanical Engineering
citation_title=Introduction to linear algebra; citation_publication_date=2009; citation_id=CR10; citation_author=G Strang; citation_publisher=Wellesley-Cambridge Press
citation_title=A mathematical introduction to robotic manipulation; citation_publication_date=1994; citation_id=CR11; citation_author=RM Murray; citation_author=Z Li; citation_author=SS Sastry; citation_publisher=CRC Press
Ajoudani A, Tsagarakis NG, Bicchi A (2015) On the role of robot configuration in cartesian stiffness control. In: 2015 IEEE international conference on robotics and automation (ICRA), pp 1010–1016
Rao P, Deshpande AD (2018) Analyzing and improving cartesian stiffness control stability of series elastic tendon-driven robotic hands. In: 2018 IEEE international conference on robotics and automation (ICRA), pp 5415–5420
Siciliano B, Slotine JE (1991) A general framework for managing multiple tasks in highly redundant robotic systems. In: 5th international conference on advanced robotics 'robots in unstructured environments', pp 1211–12162.
https://doi.org/10.1109/ICAR.1991.240390
citation_journal_title=Int J Robot Res; citation_title=Task-priority based redundancy control of robot manipulators; citation_author=Y Nakamura, H Hanafusa, T Yoshikawa; citation_volume=6; citation_issue=2; citation_publication_date=1987; citation_pages=3-15; citation_doi=10.1177/027836498700600201; citation_id=CR15
citation_journal_title=Int J Robot Res; citation_title=Inertial properties in robotic manipulation: an object-level framework; citation_author=O Khatib; citation_volume=14; citation_issue=1; citation_publication_date=1995; citation_pages=19-36; citation_doi=10.1177/027836499501400103; citation_id=CR16