摘要:
A method and system for activating and cancelling a first or second turn signal indicator for an R/C vehicle are provided. The method may include determining that the R/C vehicle is stationary and reading a rotation of a steering input to a stationary activation threshold. In addition, the method may include activating the turn signal indicator on a side of the R/C vehicle and setting an active turn signal indicator to on. Further actions in the method may involve determining that the R/C vehicle is in motion and reading a rotation of the steering input to a moving initiation threshold. Still further actions may include reading a rotation of the steering input in another direction to a moving cancellation threshold and deactivating the first or second turn signal indicator and setting the active turn signal indicator to off.
摘要:
The present disclosure discloses an information processing system. The system includes at least two toy battle devices and control devices corresponding to the toy battle devices. A first control device is configured to send attack information to a first toy battle device. The first toy battle device is configured to modulate the attack information into a laser signal, and emit the laser signal. A second toy battle device is configured to receive the laser signal by using a laser receiving component, and obtain the attack information by demodulating the laser signal by using a demodulation circuit; and send the attack information to a second control device; determine an attacked status of the second toy battle device according to the attack information; and send a feedback instruction to the second toy battle device, the feedback instruction indicating the attacked status of the second toy battle device.
摘要:
A robotic activity system, which includes a board and an autonomous robotic device, is described herein. The board may display a line and one or more color patterns. The robotic device may traverse the line using one or more integrated sensors. For example, sensor data may include light intensity data for visible light reflected or emitted by the board. The sensor data may be analyzed to 1) ensure the robotic device follows the line and/or 2) detect color sequences associated with color patterns shown on the board. Upon detection of a color sequence, the robotic device may attempt to match the color sequence with a known color pattern definition. The color pattern definition may be associated with a function to be performed by the robotic device. Using multiple sets of color patterns and associated functions allows the robotic device to move in a variable and potentially unpredictable fashion.
摘要:
A robotic activity system, which includes a board and an autonomous robotic device, is described herein. The board may display a line and one or more color patterns. The robotic device may traverse the line using one or more integrated sensors. For example, sensor data may include light intensity data for visible light reflected or emitted by the board. The sensor data may be analyzed to 1) ensure the robotic device follows the line and/or 2) detect color sequences associated with color patterns shown on the board. Upon detection of a color sequence, the robotic device may attempt to match the color sequence with a known color pattern definition. The color pattern definition may be associated with a function to be performed by the robotic device. Using multiple sets of color patterns and associated functions allows the robotic device to move in a variable and potentially unpredictable fashion.
摘要:
An electronic system for stabilizing steering of a model vehicle may use different settings depending upon the RC model vehicle to be controlled. Different vehicles have different dynamic operation and responses and therefore may require different Electronic Steering Stability (ESS) system “settings”. The “settings” may be different “gains”, or different “coefficients” used with the control system algorithms. “Settings” may also mean that a completely different control algorithm may be used. For example, a vehicle A may be controlled adequately with a “P” control algorithm, while a vehicle B may require a complete “PID” control algorithm to be implemented.
摘要:
An example vehicle includes a rotational force control system (RFCS) coupled to a vehicle chassis. The RFCS includes a frame and a first flywheel mechanically coupled to the frame. The first flywheel is configured to spin about a first axis of the first flywheel and tilt about a second axis of the first flywheel. The example vehicle further includes a second flywheel mechanically coupled to the frame. The second flywheel is configured to spin about a first axis of the second flywheel and tilt about a second axis of the second flywheel. The RFCS is configured to cause a rotational force to be applied about at least one axis of the vehicle by changing an angular momentum of the first or second flywheels.
摘要:
A hand-held radio transmit controller for remotely controlling an aircraft, and a method for controlling a remote control aircraft offering ground vehicle-like control.
摘要:
A toy vehicle includes a vehicle body configured for moving along a support surface when disposed in a first orientation. A platform is rotatably coupled to an underside of the vehicle body, and a lever is pivotally coupled to the platform. The lever is movable between a first position disengaged from the support surface and a second position engageable with the support surface when the vehicle is disposed in its first orientation. The lever causes the vehicle to be overturned from its first orientation when the lever is moved from its first position to its second position.
摘要:
A motorized toy vehicle comprising a chassis with opposing, top and bottom sides and opposing, first and second longitudinal ends and a central plane extending in a vertical direction and a longitudinal direction through the chassis and at least generally bisecting the sides and ends; first and second wheels coupled with the chassis proximal the first end so as to pivot with respect to the chassis and steer the first end, the first and second wheels being located on opposite sides of the central plane; a third wheel coupled with the chassis proximal the second end so as to span the central plane and pivot with respect to the chassis at least along an axis located in the central plane, the axis being pitched away from the vertical direction and toward the longitudinal direction in the central plane; and a steering coupling operably connecting the first and second wheels with the third wheel to simultaneously pivot the first, second and third wheels with respect to the chassis so as to steer the toy vehicle at the first and second ends of the chassis in a selected direction.
摘要:
The present invention is directed to an interactive intelligent toy that provides the appearance and experience of a toy hamster moving in, and interacting with, its environment and habitat. In an exemplary embodiment, the interactive intelligent toy comprises an intelligent motive and control component enclosed by a cover resembling a hamster, with fur coat, eyes, ears, mouth, nose, and whiskers. The motive component includes a drive mechanism and circuitry operable to control the drive mechanism, monitor and detect user and event inputs, and detect and decode embedded codes from a pathway and perform predetermined actions or generate predetermined sounds in response. The motive component moves along and through a pathway component having one or more embedded codes detectable by the motive component, the embedded codes providing information to the motive component to direct desired action of the motive component.