• 제목/요약/키워드: Robot Controller

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적응 제어기를 이용한 자율 운반체 제어 (Control of a mobile robot using a self-tuning controller)

  • 이기성;신동호
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1993년도 한국자동제어학술회의논문집(국내학술편); Seoul National University, Seoul; 20-22 Oct. 1993
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    • pp.20-25
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    • 1993
  • The control of the motion of a mobile robot is studied. The driving and steering motor assembly is located in the front of the mobile robot. The position of the mobile robot is determined by the steering angle and driving distance. For the controller design, a time-series multivariate model of the autogressive exogenous (ARX) type is used to describe the input-output relation. The discounted least square method is used to estimate parameters of the time-series model. A self-tuning controller is so designed that the position of the center of the mobile robot track the given trajectory. Simulation result controlled by a self-tuning controller is presented to illustrate the approach.

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16 bit CPU와 Modula-2 언어를 사용한 6측 산업용 로보트의 디지탈 제어기 제작에 관한 연구 (Design of digital controller of six degree of freedom industrial robot using 16 bit CPU and modula-2 language)

  • 이주장;김양한;윤형우
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1987년도 한국자동제어학술회의논문집; 한국과학기술대학, 충남; 16-17 Oct. 1987
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    • pp.10-13
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    • 1987
  • The main work of this paper are the manufacture of six degree of freedom industrial robot control hardware of 16 bit CPU and the development of five motion control software. The work would draw on KIT of Robotics Laboratory whose extensive experience in these areas; in particular the 68000 assembler and Modula-2 languages, and existing robot control systems. We found that this controller is good for the robot controller of PID types. But, for the use of self-tuning algorithms and real time calculations we need 32 bit CPU robot controller such as MC 68020 microprocessor.

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TMS320C5X칩을 사용한 스카라 로봇의 극점 배치 자기동조 적응제어기의 실현 (Implementation of a Pole-Placement Self-Tuning Adaptive Controller for SCARA Robot Using TMS320C5X Chip)

  • 배길호;한성현
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 1996년도 추계학술대회 논문집
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    • pp.754-758
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    • 1996
  • This paper presents a new approach to the design of self-tuning adaptive control system that is robust to the changing dynamic configuration as well as to the load variation factors using Digital signal processors for robot manipulators. TMS320C50 is used in implementing real-time adaptive control algorithms to provide advanced performance for robot manipulator, In this paper, an adaptive control scheme is proposed in order to design the pole-placement self-tuning controller which can reject the offset due to any load disturbance without a detailed description of robot dynamics. Parameters of discrete-time difference model are estimated by the recursive least-square identification algorithm, and controller parameters we determined by the pole-placement method. Performance of self-tuning adaptive controller is illusrated by the simulation and experiment for a SCARA robot.

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DSP를 사용한 소형 인간형 로봇의 제어기 (A DSP-based Controller for a Small Humanoid Robot)

  • 조정산;성영휘
    • 융합신호처리학회논문지
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    • 제6권4호
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    • pp.191-197
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    • 2005
  • 2족 보행을 특징으로 하는 인간형 로봇은 구동해야할 관절의 수가 매우 많으며, 로봇의 보행 상태 등을 인식하기 위하여 다양한 센서의 활용이 필요하다. 본 논문에서는 21개의 RC 서보 모터를 사용한 소형의 2족 보행 로봇의 제어기의 구조를 제안하고 구현한다. 제안된 제어기는 호스트 PC와 DSP를 사용한 주 제어기, 그리고 FPGA를 사용한 보조 제어기의 계층 구조를 갖는다. 호스트 PC에서는 보폭, 보행 시간 등과 같은 보행 파라미터에 따른 로봇의 보행 데이터를 생성하여 주 제어기로 전송하고, TI사에서 제어용으로 출시된 DSP 칩인 TMS320LF2407A를 사용하여 구현된 주 제어기에서는 보조 제어기를 통하여 21개의 RC 서보 모터를 구동한다. 또한 주 제어기와 2축 가속도 센서를 인터페이스하여 보행 바닥면의 경사도에 따른 균형잡기 실험과 기울어진 바닥면의 기울기를 검출하여 경사면 보행이 가능함을 보인다.

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RTOS와 FPGA를 기반으로 한 소형 휴머노이드 로봇 제어기 구현 (Implementation of a Small Humanoid Robot Controller On the Basis of RTOS and FPGA)

  • 전재민;서규태;오준영;유인환;이보희
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2006년 학술대회 논문집 정보 및 제어부문
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    • pp.548-550
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    • 2006
  • This paper deals with the implementation of a small humanoid robot controller on the basis of Real Time Operating System(RTOS) and the FPGA. This controller was adapted to the humanoid robot with 25 DOFs, which are 12 DOFs in each leg, 8 DOFs in each arm, 3 DOFs in waist, and 2 DOFs in head. The robot actuators were used DX-117 servo motors that have all of the controller components in one module in order to simplify the control structure. In addition, the main controller is FPGA of Virtex4-FX from Xilinx, and ported on VxWorks that is kind of RTOS. It is essential to install this RTOS on the complex control system and to do control activity at the multitasking environments. This paper suggested the method of distributing the computational load in the humanoid robot controller using the FPGA and RTOS concepts. All of the control process was verified through the real action of the humanoid.

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관로 검사로봇 자세의 퍼지 PID제어 (A Fuzzy PID Control of Robot for Pipes Inspection)

  • 김도욱;양해원;윤지섭
    • 대한전기학회논문지:시스템및제어부문D
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    • 제49권8호
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    • pp.473-480
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    • 2000
  • A fuzzy PID controller is proposed for the posture control of a two DOF robot vehicle inspecting the defects of the inner wall of sewage pipes. The main difficulty in controlling these kinds of vehicles lies in that the center of two mobile shafts does not coincide with the weight center of the vehicle due to its long and wide shape. In this case the previous controller, based on the assumption that the gap between these centers are small, can not guarantee satisfactory transient response characteristics. In this paper, this gap is included in the mathematical modelling of the robot kinematics, and in order to compensate the unsatisfactory transient response characteristics, the fuzzy PID controller is proposed. This controller tunes the PID control gains with respect to the current state of the errors between the reference and the current postures. A series of simulations has been performed to investigate the tracking performance of the proposed controller for the lane changing path and the robustness to the external disturbance. The simulation results show that the proposed controller has a satisfactory tracking performance in the transient state as compared with that of the backstepping control given in reference.

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PID and Adaptive Controllers for a Transportation Mobile Robot with Fork-Type Lifter

  • Nguyen, Van Vui;Tran, Huu Luat;Kim, Yong-Tae
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제16권3호
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    • pp.216-223
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    • 2016
  • This paper proposes a new controller design method for a fork-type lifter (FTL) of a transportation mobile robot. The transportation robot needs to pick up a package from a stack on a storage shelf and move on by a planned path in a logistics center environment. The position of the storage shelf is recognized by reading a QR code on the floor, and using this position, the robot can move to reach the storage shelf and pick up the package. PID controllers and an adaptive controller are designed to control the velocity of two wheels and the position of the FTL. An adaptive controller for the lifter is designed to elevate up and down on a slideway to the correct height position of the package on the stack of the storage shelf. The simulation results show that the PID controllers can respond smoothly to the desired angular velocity and the adaptive controller can adapt quickly and correctly to the desired height.

인공신경망을 이용한 병렬로봇의 정밀한 추적제어 (Precise Tracking Control of Parallel Robot using Artificial Neural Network)

  • 송낙윤;조황
    • 한국정밀공학회지
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    • 제16권1호통권94호
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    • pp.200-209
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    • 1999
  • This paper presents a precise tracking control scheme for the proposed parallel robot using artificial neural network. This control scheme is composed of three feedback controllers and one feedforward controller. Conventional PD controller and artificial neural network are used as feedback and feedforward controller respectively. A backpropagation learning strategy is applied to the training of artificial neural network, and PD controller outputs are used as target outputs. The PD controllers are designed at the robot dynamics based on inter-relationship between active joints and moving platform. Feedback controllers insure the total stability of system, and feedforward controller generates the control signal for trajectory tracking. The precise tracking performance of proposed control scheme is proved by computer simulation.

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Adaptive Tracking Control of Two-Wheeled Welding Mobile Robot with Smooth Curved Welding Path

  • Bui, Trong-Hieu;Chung, Tan-Lam;Kim, Sang-Bong;Nguyen, Tan-Tien
    • Journal of Mechanical Science and Technology
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    • 제17권11호
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    • pp.1682-1692
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    • 2003
  • This paper proposes an adaptive controller for partially known system and applies to a two-wheeled Welding Mobile Robot (WMR) to track a reference welding path at a constant velocity of the welding point. To design the tracking controller, the errors from WMR to steel wall is defined, and the controller is designed to drive the errors to zero as fast as desired. Additionally, a scheme of error measurement is implemented on the WMR to meet the need of the controller. In this paper, the system moments of inertia are considered to be partially unknown parameters which are estimated using update laws in adaptive control scheme. The simulations and experiments on a welding mobile robot show the effectiveness of the proposed controller.

자기구성 퍼지제어기를 이용한 이동로봇의 구동제어 (A Self-Organizing Fuzzy Control Approach to the Driving Control of a Mobile Robot)

  • 배강열
    • 한국정밀공학회지
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    • 제23권12호
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    • pp.46-55
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    • 2006
  • A robust motion controller based on self-organizing fuzzy control(SOFC) and feed-back tracking control technique is proposed for a two-wheel driven mobile robot. The feed-back control technique of the controller guarantees the robot follows a desired trajectory. The SOFC technique of the controller deals with unmodelled dynamics of the vehicle and uncertainties. The computer simulations are carried out to verify the tracking ability of the proposed controller with various driving situations. The results of the simulations reveal the effectiveness and stability of the proposed controller to compensate the unmodelled dynamics and uncertainties.