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相关概念视频

Time-Domain Interpretation of PD Control01:07

Time-Domain Interpretation of PD Control

364
Proportional-Derivative (PD) control is a widely used control method in various engineering systems to enhance stability and performance. In a system with only proportional control, common issues include high maximum overshoot and oscillation, observed in both the error signal and its rate of change. This behavior can be divided into three distinct phases: initial overshoot, subsequent undershoot, and gradual stabilization.
Consider the example of control of motor torque. Initially, a positive...
364
PD Controller: Design01:26

PD Controller: Design

611
In automotive engineering, car suspension systems often employ Proportional Derivative (PD) controllers to enhance performance. PD controllers are utilized to adjust the damping force in response to road conditions. A controller, acting as an amplifier with a constant gain, demonstrates proportional control, with output directly mirroring input.
Designing a continuous-data controller requires selecting and linking components like adders and integrators, which are fundamental in Proportional,...
611
Controller Configurations01:22

Controller Configurations

346
Controller configurations are crucial in a car's cruise control system because they manage speed over time to maintain a consistent pace regardless of road conditions, thereby meeting design goals. In traditional control systems, fixed-configuration design involves predetermined controller placement. System performance modifications are known as compensation.
Control-system compensation involves various configurations, most commonly series or cascade compensation, in which the controller...
346
Control Systems01:10

Control Systems

1.8K
Control systems are everywhere in contemporary society, influencing diverse applications from aerospace to automated manufacturing. These systems can be found naturally within biological processes, such as blood sugar regulation and heart rate adjustment in response to stress, as well as in man-made systems like elevators and automated vehicles. A control system is essentially a network of subsystems and processes that collaboratively convert specific inputs into desired outputs.
At the heart...
1.8K
Multi-input and Multi-variable systems01:22

Multi-input and Multi-variable systems

384
Cruise control systems in cars are designed as multi-input systems to maintain a driver's desired speed while compensating for external disturbances such as changes in terrain. The block diagram for a cruise control system typically includes two main inputs: the desired speed set by the driver and any external disturbances, such as the incline of the road. By adjusting the engine throttle, the system maintains the vehicle's speed as close to the desired value as possible.
In the absence of...
384
Feedback control systems01:26

Feedback control systems

685
Feedback control systems are categorized in various ways based on their design, analysis, and signal types.
Linear feedback systems are theoretical models that simplify analysis and design. These systems operate under the principle that their output is directly proportional to their input within certain ranges. For instance, an amplifier in a control system behaves linearly as long as the input signal remains within a specific range. However, most physical systems exhibit inherent nonlinearity...
685

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相关实验视频

Updated: Jan 13, 2026

Tactile Vibrating Toolkit and Driving Simulation Platform for Driving-Related Research
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自主驾驶系统的基于观察者的通信干扰延迟耐受性控制

Xincheng Cao1, Haochong Chen1, Levent Guvenc1

  • 1Automated Driving Lab, Ohio State University, 1320 Kinnear Rd, Columbus, OH 43212, USA.

Sensors (Basel, Switzerland)
|October 29, 2025
PubMed
概括

这项研究引入了连接自动驾驶汽车 (CAV) 的新控制框架,以提高路径跟踪精度,尽管通信和计算延迟. 拟议的方法确保在复杂的驾驶场景中遵循稳健的轨迹.

科学领域:

  • 自主系统 自主系统
  • 控制理论 控制理论
  • 机器人技术 机器人技术 机器人技术

背景情况:

  • 互联自动驾驶汽车 (CAV) 需要精确的路径跟踪,以确保安全和效率.
  • 通信和计算延迟降低了传统控制器的性能.
  • 现有的干扰观察器 (DOB) 面临着未知的时间延迟.

研究的目的:

  • 为CAV路径跟踪开发一个耐延迟的控制框架.
  • 为解决因连接系统的时间延迟造成的性能下降问题.
  • 为了在不确定的延迟条件下提高轨迹跟踪的准确性和稳定性.

主要方法:

  • 提出了一个新的延迟耐受性通信干扰观察员 (CDOB) 框架.
  • 实施的CDOB用于自动驾驶汽车的低级路径跟踪控制.
  • 进行了各种驾驶场景和时间延迟的模拟研究.

主要成果:

  • CDOB框架有效地弥补了时间延迟的不利影响.
  • 即使在不确定和变化的延迟条件下,也保持了准确的轨迹跟踪.
  • 拟议的方法在模拟中显示出与传统方法相比的优越性能.
关键词:
通信干扰 观察员 通信干扰 观察员互联互通的自动驾驶汽车干扰的观察者是干扰观察者.路径跟踪控制的控制方法

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结论:

  • CDOB框架为延迟自主系统的路径跟踪控制提供了一个强大的解决方案.
  • 这种方法显著提高了CAV的跟踪精度和延迟稳定性.
  • 该方法非常适合于现实世界连接的自动驾驶应用.