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    Dealing with biped locomotion as a dynamic object manipulation problem: Manipulating of body using legs

    , Article ASME International Mechanical Engineering Congress and Exposition, IMECE 2007, Seattle, WA, 11 November 2007 through 15 November 2007 ; Volume 9 PART B , 2008 , Pages 1209-1216 ; 0791843033 (ISBN); 9780791843031 (ISBN) Beigzadeh, B ; Meghdari, A ; Beigzadeh, Y ; Sharif University of Technology
    2008
    Abstract
    In this paper, we try to show that it is possible to deal with biped locomotion as a dynamic object manipulation problem. We show that during locomotion, a biped locomotion can be seen as manipulating of upper part of biped robot using a leg, which now plays the role of a manipulator. So the whole locomotion process can be seen as a dynamic manipulation of an object (upper part of a biped robot) using a numerous series of manipulators each of which placed in a proper place where the object tends to land, so it catches the object and throws it to the next point which another manipulator waits for catching it. The authors in the previous works have explored the problem of dynamic manipulation... 

    Active control of a passive bipedal walking robot

    , Article International Journal of Dynamics and Control ; Volume 5, Issue 3 , 2017 , Pages 733-740 ; 2195268X (ISSN) Ebrahimi, A ; Heydari, M ; Alasty, A ; Sharif University of Technology
    Abstract
    A passive bipedal walking robot can descend down a small slope without any exertion of external force and only by using the gravity force. By exerting a proper energy to a passive biped robot, its walking speed can be controlled and also it can be forced to walk on flat planes and ascending slopes. In this paper, the proper energy is applied to the robot in three different methods: applying a proper moment to the robot joints, applying a proper moment to the robot’s stance leg, and applying a proper movement to the robot’s upper body. It is found that the first method is not practical, but the second and third methods enhance the stability and speed regulation of the robot. Additionally, the... 

    Four suggested plans of underwater Robo-snake

    , Article World Academy of Science, Engineering and Technology ; Volume 38 , 2009 , Pages 1094-1099 ; 2010376X (ISSN) Babaee, S ; Sharifazadeh, H ; Sharif University of Technology
    2009
    Abstract
    Throughout this paper four locomotion mechanisms have been presented for underwater robo-sankes. In this respect; initially, two methods of locomotion including traveling and standing wave have been examined. Next, applications of these methods are described. Ultimately, assessing and comparison of those mechanisms have been studied and the best plan is determined. © 2009 WASET.ORG  

    A dynamic object manipulation approach to dynamic biped locomotion

    , Article Robotics and Autonomous Systems ; Volume 56, Issue 7 , 31 July , 2008 , Pages 570-582 ; 09218890 (ISSN) Beigzadeh, B ; Nili Ahmadabadi, M ; Meghdari, A ; Akbarimajd, A ; Sharif University of Technology
    2008
    Abstract
    In this paper, we aim at an integrated approach to Dynamic Biped Walking (DBW) and Dynamic Object Manipulation (DOM) at an abstract level. To this end, we offer a unified and abstract concept with a dual interpretation as a DOM and as a DBW system. We validate the proposed approach by using a set of simulations on an illustrative case study and show how it can be used in modeling as well as design of planning and control algorithms for DOM and DBW systems. In the case study, we describe the proposed approach and show its dual interpretation by identifying the relations between 2D dynamic object manipulation of a disc using two planar manipulators and 2D dynamic object locomotion of lower... 

    Kinematical and dynamic analysis of biped robots' locomotion using dynamic object manipulation approach

    , Article 8th Biennial ASME Conference on Engineering Systems Design and Analysis, ESDA2006, Torino, 4 July 2006 through 7 July 2006 ; Volume 2006 , 2006 ; 0791837793 (ISBN); 9780791837795 (ISBN) Beigzadeh, B ; Nili Ahmadabadi, M ; Meghdari, A ; Sharif University of Technology
    2006
    Abstract
    In this paper, we try to interpret "Duality of Dynamic Locomotion and Dynamic Object Manipulation". Since our main goal in this paper is to offer the duality concept and to validate it with a case study, we deal with the problem in a simple and abstract system. As a case study, we describe the duality between the problem of 2D dynamic object manipulation of a sphere using two planar manipulators and 2D dynamic locomotion of lower part of a biped robot. Having obtained the equations of dynamic object manipulation, we change the boundary conditions of the problem in such a way that both radius and mass of sphere object tend to infinity. Simultaneously, both of size and mass of manipulators'... 

    Rigid vs compliant contact: an experimental study on biped walking

    , Article Multibody System Dynamics ; Volume 45, Issue 4 , 2019 , Pages 379-401 ; 13845640 (ISSN) Khadiv, M ; Moosavian, S. A. A ; Yousefi-Koma, A ; Sadedel, M ; Ehsani Seresht, A ; Mansouri, S ; Sharif University of Technology
    Springer Netherlands  2019
    Abstract
    Contact modeling plays a central role in motion planning, simulation and control of legged robots, as legged locomotion is realized through contact. The two prevailing approaches to model the contact consider rigid and compliant premise at interaction ports. Contrary to the dynamics model of legged systems with rigid contact (without impact) which is straightforward to develop, there is no consensus among researchers to employ a standard compliant contact model. Our main goal in this paper is to study the dynamics model structure of bipedal walking systems with rigid contact and a novel compliant contact model, and to present experimental validation of both models. For the model with rigid... 

    New robust control method applied to the locomotion of a 5-link biped robot

    , Article Robotica ; 2019 ; 02635747 (ISSN) Mehdi Kakaei, M ; Salarieh, H ; Sharif University of Technology
    Cambridge University Press  2019
    Abstract
    This paper proposes a new design of robust control combining feedback linearization, backstepping, and sliding mode control called FLBS applied to the locomotion of five-link biped robot. Due to the underactuated robot's model, the system has a hybrid nature, while the FLBS control can provide a stabilized walking movement even with the existence of large disturbances and uncertainties by implementing smooth chatter-free signals. Stability of the method is proven using the Lyapunov theorem based on the hybrid zero dynamics and Poincaré map. The simulations show the controller performance such as robustness and chatter-free response in the presence of uncertainty and disturbance. © 2020... 

    New robust control method applied to the locomotion of a 5-link biped robot

    , Article Robotica ; 2019 ; 02635747 (ISSN) Mehdi Kakaei, M ; Salarieh, H ; Sharif University of Technology
    Cambridge University Press  2019
    Abstract
    This paper proposes a new design of robust control combining feedback linearization, backstepping, and sliding mode control called FLBS applied to the locomotion of five-link biped robot. Due to the underactuated robot's model, the system has a hybrid nature, while the FLBS control can provide a stabilized walking movement even with the existence of large disturbances and uncertainties by implementing smooth chatter-free signals. Stability of the method is proven using the Lyapunov theorem based on the hybrid zero dynamics and Poincaré map. The simulations show the controller performance such as robustness and chatter-free response in the presence of uncertainty and disturbance. © 2020... 

    New robust control method applied to the locomotion of a 5-link biped robot

    , Article Robotica ; Volume 38, Issue 11 , January , 2020 , Pages 2023-2038 Kakaei, M. M ; Salarieh, H ; Sharif University of Technology
    Cambridge University Press  2020
    Abstract
    This paper proposes a new design of robust control combining feedback linearization, backstepping, and sliding mode control called FLBS applied to the locomotion of five-link biped robot. Due to the underactuated robot's model, the system has a hybrid nature, while the FLBS control can provide a stabilized walking movement even with the existence of large disturbances and uncertainties by implementing smooth chatter-free signals. Stability of the method is proven using the Lyapunov theorem based on the hybrid zero dynamics and Poincaré map. The simulations show the controller performance such as robustness and chatter-free response in the presence of uncertainty and disturbance. Copyright ©... 

    Stabilization of periodic orbits for planar walking with noninstantaneous double-support phase

    , Article IEEE Transactions on Systems, Man, and Cybernetics Part A:Systems and Humans ; Volume 42, Issue 3 , 2012 , Pages 685-706 ; 10834427 (ISSN) Hamed, K. A ; Sadati, N ; Gruver, W. A ; Dumont, G. A ; Sharif University of Technology
    Abstract
    This paper presents an analytical approach to design a continuous time-invariant two-level control scheme for asymptotic stabilization of a desired period-one trajectory for a hybrid model describing walking by a planar biped robot with noninstantaneous double-support phase and point feet. It is assumed that the hybrid model consists of both single- and double-support phases. The design method is based on the concept of hybrid zero dynamics. At the first level, parameterized continuous within-stride controllers, including single- and double-support-phase controllers, are employed. These controllers create a family of 2-D finite-time attractive and invariant submanifolds on which the dynamics... 

    Radial basis function network for exponential stabilisation of periodic orbits for planar bipedal walking

    , Article Electronics Letters ; Volume 47, Issue 12 , 2011 , Pages 692-694 ; 00135194 (ISSN) Sadati, N ; Hamed, K.A ; Gruver, W. A ; Dumont, G. A ; Sharif University of Technology
    2011
    Abstract
    Presented is a novel and analytical approach to design a hybrid controller based on hybrid zero dynamics for exponential stabilisation of a desired periodic orbit for a hybrid model of walking composed of single and double support phases. To achieve this goal, the effect of a double support phase on angular momentum transfer and stabilisation is investigated. Also, the class of control inputs corresponding to an orbit during double support is presented. A smooth feedback law based on a radial basis function network is then proposed for the double support phase such that (i) the desired orbit is exponentially stable and (ii) the control vector minimises the least square control cost  

    Numerical investigation of the forward and backward travelling waves through an undulating propulsor: performance and wake pattern

    , Article Ships and Offshore Structures ; Apr , 2015 ; 17445302 (ISSN) Ebrahimi, M ; Abbaspour, M ; Sharif University of Technology
    Taylor and Francis Ltd  2015
    Abstract
    Recently, the mechanisms of natural undulatory locomotion of aquatic animal swimming have become one of the most significant issues for the researchers, swimmers and engineers. This study aims to elucidate and compare the propulsive vortical signature and performance of backward (negative undulation) and forward (positive undulation) travelling waves through a typical fishlike propulsor by a systematic numerical study. The numerical approach uses a pressure-based finite volume method solver to solve Navier–Stokes equations in an arbitrary Lagrangian–Eulerian framework domain containing a two-dimensional NACA 0012 foil moving with prescribed kinematics. Some of the important findings are: (1)... 

    Continuous-time update laws with radial basis step length for control of bipedal locomotion

    , Article Electronics Letters ; Volume 46, Issue 21 , 2010 , Pages 1431-1433 ; 00135194 (ISSN) Hamed, K. A ; Sadati, N ; Gruver, W. A ; Dumont, G. A ; Sharif University of Technology
    2010
    Abstract
    Presented is a novel approach for designing continuous-time update laws to update the parameters of stabilising controllers during continuous phases of bipedal walking such that (i) a general cost function, such as the energy of the control input over single support, can be minimised in an online manner, and (ii) the exponential stability of the corresponding limit cycle for the closed-loop impulsive system is not affected. Formally, a class of update laws with a radial basis step length is developed to minimise a cost function in terms of the stabilising controller parameters and initial states of the mechanical system  

    Biped hopping control bazsed on spring loaded inverted pendulum model

    , Article International Journal of Humanoid Robotics ; Volume 7, Issue 2 , 2010 , Pages 263-280 ; 02198436 (ISSN) Tamaddoni, S. H ; Jafari, F ; Meghdari, A ; Sohrabpour, S ; Sharif University of Technology
    2010
    Abstract
    Human running can be stabilized in a wide range of speeds by automatically adjusting muscular properties of leg and torso. It is known that fast locomotion dynamics can be approximated by a spring loaded inverted pendulum (SLIP) system, in which leg is replaced by a single spring connecting body mass to ground. Taking advantage of the inherent stability of SLIP model, a hybrid control strategy is developed that guarantees a stable biped locomotion in sagittal plane. In the presented approach, nonlinear control methods are applied to synchronize the biped dynamics and the spring-mass dynamics. As the biped center of mass follows the mass of the mass-spring model, the whole biped performs a... 

    Numerical investigation of the forward and backward travelling waves through an undulating propulsor: performance and wake pattern

    , Article Ships and Offshore Structures ; Volume 11, Issue 5 , 2016 , Pages 517-539 ; 17445302 (ISSN) Ebrahimi, M ; Abbaspour, M ; Sharif University of Technology
    Taylor and Francis Ltd  2016
    Abstract
    Recently, the mechanisms of natural undulatory locomotion of aquatic animal swimming have become one of the most significant issues for the researchers, swimmers and engineers. This study aims to elucidate and compare the propulsive vortical signature and performance of backward (negative undulation) and forward (positive undulation) travelling waves through a typical fishlike propulsor by a systematic numerical study. The numerical approach uses a pressure-based finite volume method solver to solve Navier–Stokes equations in an arbitrary Lagrangian–Eulerian framework domain containing a two-dimensional NACA 0012 foil moving with prescribed kinematics. Some of the important findings are: (1)... 

    Feedback control of the neuromusculoskeletal system in a forward dynamics simulation of stair locomotion

    , Article Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine ; Volume 223, Issue 6 , August , 2015 , Pages 663-675 ; 09544119 (ISSN) Selk Ghafari, A ; Meghdari, A ; Vossoughi, G ; Sharif University of Technology
    Abstract
    The aim of this study is to employ feedback control loops to provide a stable forward dynamics simulation of human movement under repeated position constraint conditions in the environment, particularly during stair climbing. A ten-degrees-of-freedom skeletal model containing 18 Hill-type musculotendon actuators per leg was employed to simulate the model in the sagittal plane. The postural tracking and obstacle avoidance were provided by the proportional - integral - derivative controller according to the modulation of the time rate change of the joint kinematics. The stability of the model was maintained by controlling the velocity of the body's centre of mass according to the desired... 

    A novel method of gait synthesis for bipedal fast locomotion

    , Article Journal of Intelligent and Robotic Systems: Theory and Applications ; Volume 53, Issue 2 , 2008 , Pages 101-118 ; 09210296 (ISSN) Meghdari, A ; Sohrabpour, S ; Naderi, D ; Tamaddoni, S. H ; Jafari, F ; Salarieh, H ; Sharif University of Technology
    2008
    Abstract
    Common methods of gait generation of bipedal locomotion based on experimental results, can successfully synthesize biped joints' profiles for a simple walking. However, most of these methods lack sufficient physical backgrounds which can cause major problems for bipeds when performing fast locomotion such as running and jumping. In order to develop a more accurate gait generation method, a thorough study of human running and jumping seems to be necessary. Most biomechanics researchers observed that human dynamics, during fast locomotion, can be modeled by a simple spring loaded inverted pendulum system. Considering this observation, a simple approach for bipedal gait generation in fast... 

    A two-phase linear programming methodology for fuzzy multi-objective mixed-model assembly line problem

    , Article International Journal of Advanced Manufacturing Technology ; Volume 44, Issue 9-10 , 2009 , Pages 1010-1023 ; 02683768 (ISSN) Mahdavi, I ; Javadi, B ; Sahebjamnia, N ; Mahdavi Amiri, N ; Sharif University of Technology
    2009
    Abstract
    We develop a fuzzy multi-objective linear programming (FMOLP) model for solving multi-objective mixed-model assembly line problem. In practice, vagueness and imprecision of the goals in this problem make the fuzzy decision-making complicated. The proposed model considers minimizing total utility work, total production rate variation, and total setup cost, using a two-phase linear programming approach. In the first phase, the problem is solved using a max-min approach. The max-min solution not being efficient, in general, we propose a new model in the second phase to maximize a composite satisfaction degree at least as good as the degrees obtained by phase one. To show the effectiveness of... 

    Neural control of an underactuated biped robot

    , Article 2006 6th IEEE-RAS International Conference on Humanoid Robots, HUMANOIDS, Genoa, 4 December 2006 through 6 December 2006 ; 2006 , Pages 593-598 ; 142440200X (ISBN); 9781424402007 (ISBN) Sadati, N ; Hamed, K. A ; Sharif University of Technology
    2006
    Abstract
    According to the fact that humans and animals show marvelous capacities in walking on irregular terrain, there is a strong need for adaptive algorithms in walking of biped robots to behave like them. Since the stance leg can easily rise from the ground, the problem of controlling the biped robots is difficult. In other words, the biped walkers have fewer actuators than the degrees of freedom. So they are underactuated mechanical systems. In this paper according to the humans and animals locomotion algorithms, the stability of an underactuated biped walker having point feet is investigated by central pattern generators. For tuning the parameters of the CPG, an effective energy based... 

    Muscle-driven forward dynamics simulation for the study of differences in muscle function during stair ascent and descent

    , Article Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine ; Volume 223, Issue 7 , 2009 , Pages 863-874 ; 09544119 (ISSN) Ghafari, A. S ; Meghdari, A ; Vossoughi, G. R ; Sharif University of Technology
    2009
    Abstract
    The main scope of this study is to analyse muscle-driven forward dynamics simulation of stair locomotion to understand the functional differences of individual muscles during the movement. A static optimization was employed to minimize a performance criterion based on the muscle energy consumption to resolve muscle redundancy during forward dynamics simulation. The proposed method was employed to simulate a musculoskeletal system with ten degrees of freedom in the sagittal plane and containing 18 Hill-type musculotendon actuators per leg. Simulation results illustrated that simulated joint kinematics closely tracked experimental quantities with root-mean-squared errors less than 1°. In...