Abstract:
A remote control with a solar-powered battery, a remote body includes the control panel. The control panel has a plurality of buttons. The solar-powered battery module is disposed in the remote and comprises the solar panel, the control unit and the storage unit. The solar panel is a rigid or flexible solar panel and is used for receiving light energy. The wireless control module disposed in the remote comprises the transmitting unit, the sensing unit and the activating unit. Therefore, the solar-powered battery module converts and stores the light energy and provides power to the wireless control module, thereby providing energy savings and environmental conservation benefits.
Abstract:
A system and method is described for allowing a mobile communication device using location data to control electronic devices located within a predefined area of coverage.
Abstract:
A solar powered portable control panel is disclosed herein for wirelessly controlling one or more lights or other devices. An embodiment of the control panel includes a solar panel, a regulator connected to the solar panel, a power storage device connected to the regulator, a wireless transceiver, a controller connected to the power storage device, and a user interface connected to the controller. The user interface is adapted to accept control input and provide it to the controller. The controller is adapted to transmit commands on the wireless transceiver.
Abstract:
An operating control method of a motorized driving device of a home automation installation comprises at least one step for entering a configuration mode of the device, a step for pairing a control point with an electronic control unit of the device, a step for activating at least one selection element of the control point during a predetermined time period beginning after the pairing step and a step for entering a second standby state of a control order receiving module of the electronic control unit. The second standby state of the control order receiving module has a wake-up frequency of the control order receiving module lower than the wake-up frequency of the control order receiving module in a first standby state.
Abstract:
A facility comprising systems, methods, and techniques for collecting data indicative of energy consumption and/or energy production by energy systems and devices and providing the data to interested users and devices in real-time is described. The facility may comprise an energy gateway device coupled to one or more monitored devices, one or more energy data extraction servers, and one or more client computers. The energy gateway devices and energy data extraction servers are coupled to a network and are configured to collect energy consumption and/or energy production data from one or more devices and provide an indication of the collected data in real-time or near real-time. The facility may collect current energy consumption or production rates, predicted energy consumption or production levels over a future period of time, and/or amounts of energy that has been consumed or produced by the device over a previous period of time.
Abstract:
A personalized home situation control system has a personalized situation control device, and at least one repeating device and at least one sensing device located in an environment of multiple users. The situation control device serves for editing a situation list. Each one of the at least one repeating device is connected to an electric appliance module capable of changing atmosphere in the environment, receives commands transmitted from the situation control device, and controls an operating state of the electric appliance. When activated by the situation control device, multiple electric appliance modules in the environment can be controlled by corresponding repeating devices, which are instructed by corresponding sensing devices, according to the situation list. Accordingly, the situation control device can be used to generate an editable and personalized home situation effect in a portable and less environmentally restrictive manner, thereby enhancing operational convenience and flexibility.
Abstract:
According to one aspect, an electronic device adapted to be controlled by an audio accessory. The electronic device includes at least one resonator. Each resonator is tuned to respond to a particular frequency that corresponds to a particular message generated by the audio accessory. When the particular message is received, the corresponding resonator resonates to generate an output signal that controls the electronic device.
Abstract:
Disclosed is a control method of a communication system including at least one sensor that a user wears, a wireless communication apparatus and a coordinator. The control method of the communication system includes: in the coordinator, receiving a proxy authority request for proxy with respect to the at least one sensor and the coordinator from the wireless communication apparatus, and granting the proxy authority to the wireless communication apparatus; in the wireless communication apparatus, creating a user identifier corresponding to the user; in the wireless communication apparatus, searching for the at least one sensor that the user wears, and forming a pairing with the at least one found sensor; in the wireless communication apparatus, making a request to the at least one found sensor for association information for the association with the coordinator and the sensor, and receiving the association information; in the wireless communication apparatus, making a request to the coordinator for association proxy for an association between the at least one found sensor and the coordinator, and receiving the association proxy in response to the request; and in the coordinator, requesting data by forming an association with the at least one found sensor, and receiving data corresponding to the data request.
Abstract:
A transmitter for remote control includes a first analog-to-digital converter (ADC) to receive a first audio signal from a electronic device and convert the first audio signal to a first direct-current (DC) signal, a first boost circuit connected to the first ADC to receive and amplify the first DC signal, a second ADC receives a second audio signal from the electronic device and converts the second audio signal to a second DC signal, a second boost circuit connected to the second ADC to receive and amplify the second DC signal, an energy storage element and a transmission module is powered by the energy storage element and generates a carrier signal, the transmission module receives the amplified first DC signal from the first boost circuit, the amplified first DC signal modulates the carrier signal generated by the transmission module, and the amplified second DC signal charges the energy storage element.
Abstract:
Receivers, apparatuses, and methods associated with packet classification based power saving receiver are described. In one embodiment, an 802.11 receiver includes receive and control units. The receive unit has a higher power receive frame state and a lower power ignore frame state. The receive unit, when in the receive frame state, receives radio frequency (RF) signals associated with an incoming frame and provides decoded information concerning the incoming frame. The receive unit, when in the ignore frame state, does not receive RF signals associated with the incoming frame and/or does not decode RF signals associated with the incoming frame. The control unit controls the receive unit to enter the ignore frame state upon determining that the incoming frame is to be filtered and to return to the receive frame state in time to receive a subsequent incoming frame and perform end of frame processing consistent with the CSMA/CA protocol.