This invention relates to the control of electronic devices.
A typical surrounding environment, whether a home, a business setting or a vehicle, includes an increasing number of electronic devices. To a large extent, each electronic device is equipped with separate controls for its operation. Accordingly, it is often necessary to interact with a multitude of separate controls for different electronic devices. This becomes increasingly time-consuming as the number of available electronic devices increases. For instance, controls for electronic devices on a vehicle are disbursed throughout the vehicle and are generally located within the reach of the driver to the exclusion of other passengers. Passengers may have limited access to some controls, such as their adjacent window or seat. When a passenger moves to a different seat in a vehicle or transfers to a different vehicle, the passenger generally must manually reset local controls, such as for a window or a local speaker, to achieve individually-preferred settings.
An electronic controller is capable of controlling the function of external electrical devices located in a given environment, such as on a vehicle (e.g., an automobile or an airplane), as well as external electrical devices located in a remote location such as a building or another vehicle. As used herein, “external electronic devices” means devices at least a component of which are electronic and that are external to the electronic controller. The electronic controller is portable between different surrounding environments (e.g., from vehicle to vehicle or from a vehicle to a residential building). Additionally, the electronic controller is capable of storing preferred settings for the external electronic devices so that an individual may use the electronic controller to control the function of selected ones of the external electrical devices according to his or her preferred settings (e.g., audio volume or Internet user identification and password may be stored, preferred settings) without having to repeatedly reenter or reprogram the preferred setting into each respective device.
A typical surrounding environment containing external electronic devices has different zones or areas. A first set of external electronic devices is located in a first area and a second set of electronic devices is located in a second area. An operator of the electronic controller is able to scroll through a listing of available areas displayed on an integral display. The operator may select an area, and thereby establish control over the external electronic devices located in the selected area. Thus, an individual can move from area to area in a surrounding environment, such as a vehicle, conveniently controlling their immediate surrounding area via the electronic controller and quickly relaying preferred settings stored in the controller.
Accordingly, a portable electronic controller adapted for controlling the operation of external electronic devices includes a communication component. An integral display is operatively connected to the communication component. An operator input component is operatively connected to the integral display. Furthermore, a processing component is operatively connected to the operator input component, to the communication component and to the integral display. Preferably, the communication component has a software interface common with the external electronic devices to be controlled that permits the communication component to communicate with the external electronic devices to receive data from and to send data and control signals to the external electronic devices. The control signals control the operation of selected external electronic devices. The processing component processes operator input applied to the operator input component and the data received by the communication component to formulate the control signals sent by the communication component.
Preferably, the electronic controller also includes a data storage component that is operatively connected to the communication component and to the processing component. The data storage component is able to store an operator's input to the operator input component as well as data received by the communication component. The data storage component may have many uses such as storing preferred games, music and videos on the controller. Additionally, the data storage component is critical when the controller does not initially have a common software interface with one or more of the external electronic devices. In that instance, if the controller has a common communication protocol with the external electronic device(s), the communication component is able to receive data from the external electronic device(s) and the data is then stored in the data storage component (i.e., the data is information necessary to establish the common software interface; it is downloaded to the controller). The data is processed by the processing component to establish the necessary common software interface that permits the communication component to send data and control signals to the external electronic device(s).
Preferably, the electronic controller is selectively connectable to an external display screen for displaying the stored data on the display screen. Thus, downloaded or stored data, such as favorite videos may be displayed on the external display screen. The controller may include a sensor for measuring one or more surrounding conditions. The sensor sends data representing the measured conditions to the data storage component. The processing component then formulates the control signal in accordance with the measured conditions. Thus, an external electronic device, such as an HVAC system, may be adjusted by the control signal so that a measured condition (such as temperature) will reflect a preferred temperature setting.
The processing component may include an algorithm that is able to compare operator input currently being processed with previously processed operator input and thereby identify repeated processing of substantially identical operator input resulting in the repeated formulation of substantially identical control signals. The processing component may then selectively formulate such a substantially identical control signal even in the absence of immediate operator input. Preferably, the processing component is able to process time data that is either received by the communication component from one of the external electronic devices or is relayed by a clock mounted to the controller. The algorithm is then able to identify the times of day that the substantially identical operator input is entered. The selectively formulated identical control signal may then also be correlated with the identified times of entry.
Also preferably, the external electronic devices may be operatively connected to form a network. The external electronic devices may be operatively connected to the common software interface via the network.
The external electronic devices may be located in a first surrounding environment that includes and is defined by at least a first area and a different second area. A first set of the external electronic devices is in the first area and a second set of the external electronic devices is located in the second area. The data received by the communication component from the external electronic devices includes a listing of the first and second areas. The listing of the areas is displayed on the integral display. An operator of the controller is able to input a selection of one of the listed areas. The data sent to the external electronic devices from the communication component includes the operator's selection of one of the listed areas. The selection establishes operational control of the external electronic devices in the selected area by the control signal sent from the communication component. By so selecting and establishing operational control of the selected, listed area, the controller may exclude another portable electronic controller from establishing operational control of the selected area. Thus, for instance, a passenger in the left rear seat of the vehicle may control the volume of the speaker located in that region and exclude a passenger in the right rear seat of the vehicle from controlling the volume of that speaker.
Because the electronic controller is portable, it may be transported from a first surrounding environment such as a vehicle to a second surrounding environment such as a building. Other external electronic devices are located in the second environment as well. Preferably, the communication component shares a common software interface with those other external electronic devices. Accordingly, the communication component is likewise able to communicate with those other external electronic devices via the common software interface to receive data from and to send data and control signals to those external electronic devices. Likewise, the processing component processes an operator's input to the operator input component and the data received by the communication component to formulate the control signals to be sent to such other external electronic devices by the communication component.
The external electronic devices may be located on a vehicle and may include an on-board engine diagnostic unit, on-board sensors, a vehicle video system, a vehicle audio system, a vehicle heating, ventilation and air conditioning (HVAC) system, display screens, vehicle windows and vehicle seats. A second surrounding environment to which the controller is portable may be a second vehicle. Furthermore, the second surrounding environment may be a building. External electronic devices that may be located either on a vehicle or at a remote location such as a building may include a satellite-based navigation system, a phone, a satellite-based entertainment system, an Internet access component and a digital broadcast system. The surrounding environment may be a residential building and the external electronic devices may include a home audio system, a security system for the building, lighting for the building or electronic appliances.
The communication component may receive the data from and send the formulated control signals to the external electronic devices in a “plug-and-play” manner. As will be know to those skilled in the art, “plug-and-play” means that the electronic controller physically connects to the external electronic devices, e.g., via a USB cable, and can communicate with the external electronic devices instantaneously (without “rebooting” the controller) after the connection is made. Alternatively, the communication component may receive data from and send formulated control signals to the external electronic devices in a wireless manner. Those skilled in the art will recognize a variety of wireless technologies applicable, including Bluetooth.
Within the scope of the invention, the surrounding environment may be a vehicle having a structural frame to which the external electronic devices are mounted. A second electronic controller may be mounted to the vehicle and able to receive operator input and data from the external electronic devices and send control signals to the external electronic devices for controlling the function thereof, based on the operator input and received data. Preferably, the vehicle includes a vehicle operation sensor that is mounted to the vehicle for sensing when the vehicle is being driven. A lockout component is operatively connected to the vehicle operation sensor and to the second electronic controller. The lockout component prevents the second electronic controller from sending control signals to at least one of the external electronic devices when the vehicle operation sensor senses that the vehicle is being driven. For instance, the second electronic controller may be mounted to the steering wheel and the lockout component may prevent the operator (i.e., the driver) from adjusting the audio system treble while driving.
A method of controlling electronic devices via a portable electronic controller is provided. The external electronic devices are located in a first surrounding environment and include a first external electronic device. The method includes positioning the portable electronic controller in the first surrounding environment. The method further includes communicating with the first external electronic device via a communication component of the portable electronic controller to send data to and to receive data from the first external electronic device. The external electronic devices and the communication component have a common software interface enabling such communication. The method further includes displaying the received data on a display of the portable electronic controller. The method further includes processing an operator's input based on the displayed received data in a processing component of the electronic controller to formulate a control signal. The operator input is applied to an operator input component of the electronic controller. The method also includes sending the formulated control signal via the communication component to the first external electronic device for controlling the function thereof.
Preferably, the operator input represents a preferred setting of the first external electronic device. The method then further includes storing the operator input in a data storage component of the portable electronic controller. The method includes repositioning the electronic controller to a second surrounding environment different than the first surrounding environment and having other external electronic devices including a second external electronic device. The first and second external electronic devices have an equivalent function. For example, they may each be speakers in a vehicle. The method then includes sending another formulated control signal to the second external electronic device for controlling the equivalent function thereof. This formulated control signal is formulated based upon the stored operator input representing the preferred setting (e.g., a preferred audio volume level). Accordingly, the second external electronic device is controlled according to the preferred setting without reentering the preferred setting into the controller.
The above features and other features and advantages of the present invention are readily apparent from the following detailed description of the best modes for carrying out the invention when taken in connection with the accompanying drawings.
Referring to the drawings, wherein like reference numerals refer to like components,
The vehicle 10A includes a plurality of windows including a left passenger window 34A, a right passenger window 34B, a driver's window 34C and a front passenger window 34D. The vehicle 10A further includes a plurality of seats including a left passenger seat 38A, a right passenger seat 38B, a driver's seat 38C and a front passenger seat 38D. The left passenger window 34A and the left passenger seat 38A are located generally within a first zone or area A denoted by phantom lines. The right passenger seat 38B and the right passenger window 34B are generally located within a zone or area B denoted by phantom lines. The zones A, B partially define the structural frame 32. The zones are representational and may extend to include additional electronic devices within the vehicle 10A; alternatively, the vehicle 10A may be divided into a plurality of differently configured zones. For instance, an area surrounding the driver's seat 38C and an area surrounding the front passenger seat 38D may constitute additional zones within the vehicle 10A. Vehicles of different body types (i.e., different structural frames) such as sport coupes, pick-up trucks and vans may be characterized by a variety of differently configured zones.
A first electronic controller 44 is depicted within the first zone A. The first electronic controller 44 is portable and may be moved to the second zone B as shown in phantom or to another location within the vehicle 10A. The left passenger audio system 28A is located within the zone A and the right passenger audio system 28B is located within the zone B. Additionally, as shown in
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Preferably, the data storage component 88A has at least 30 gigabytes of memory. Accordingly, the data storage component 88A is sufficiently sized to upload favorite music, videos and other information (i.e., data 84) to the external electronic devices via the communication component 80A or download such from the external electronic devices. Once established (i.e., once initially entered as operator input), preferred settings may be communicated from the controller 44 to an external data storage component (not shown) and later accessed by the controller 44. In fact, because the controller 44 has communication, processing and data storage capabilities, it may be designed such that it may separately and independently function as a device such as a phone, PDA or an MP3 player, in addition to its capabilities in functioning as a controller of external electronic devices.
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Within the scope of the invention, some or all of the external electronic devices may be interconnected to form a network. Referring to
To establish operational control over external electronic devices in a specific area, such as Area A or B in
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As an alternative to storing one preferred setting to be applied to all external electronic devices of a given type in different surrounding areas that the controller is used in (e.g., one audio volume level to be applied to audio system 28A in vehicle 10A and then to audio system 28C in vehicle 10B when the controller is taken from vehicle 10A to vehicle 10B), the operator may choose to store a preferred audio volume level for vehicle 10A and store a different (e.g., louder) preferred audio volume level for vehicle 10B. Thus, duplicate sets of preferred settings for different external electronic components having the same function are possible. The processing component may be equipped to recognize which of equivalent-function electronic devices it is communicating with, and thus automatically send the correct respective stored preference to control the electronic device (e.g., the controller would recognize that it is communicating with audio system 28A rather than audio system 28B, and thus send the preferred setting for audio system 28A). This may be accomplished via component-specific (or network-specific) identity code data that is received by the controller. One of the multiple stored preferences for equivalent devices may be chosen by the operator as a “default” preference. When the controller interacts with an external electronic device that is has not yet controlled (i.e., no device-specific preference is yet stored), the controller will then automatically send the default preference to the new external electronic device. For example, if the controller 44 of
Within the scope of the invention, a preferred setting may be stored as an “absolute value” measurement rather than a device-specific setting level. For instance, a preferred audio level may be stored in decibels, rather than as “volume level 5 of 8” for a given audio system. A preferred climate temperature may be stored as 75 degrees Fahrenheit rather than as “high heat” for a given HVAC system.
The processing component of the controller may include an algorithm that enables the controller to “learn” an operator's preferences (rather than requiring the operator to actually input a preferred setting) and automatically control selected external electronic devices in accordance with these learned preferences. For instance, even if an operator does not store a preferred audio volume level setting, if the controller repeatedly receives operator input corresponding to a given setting (i.e., substantially identical operator input corresponding to a substantially identical formulated control signal), the controller will “learn” that the operator prefers such a setting, and may automatically set the audio volume to such a preferred setting (i.e., the processing component will formulate a substantially identical control signal based on the learned operator input and in the absence of “new” operator input). (The operator may choose to override the automatic setting by inputting a different setting.) The communication component may be able to receive time data from an external electronic device (or the controller may include an integral, controller-mounted (internal) clock). Referring to
The controller may also be equipped with one or more controller-based sensors that enable the controller to closely monitor surrounding conditions and send control signals to external electronic devices to keep the conditions in accordance with an operator's preferences (whether stored on or learned by the controller). For instance, referring to
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The electronic controller 54 also includes a lockout component 90. Referring again to
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The method 200 further includes displaying 212 the received data on an integral display of the portable electronic controller. The method 200 further includes processing 216 operator input in a processing component of the electronic controller to formulate a control signal. The operator input is based on the displayed received data and is applied to an operator input component of the electronic device. The method 200 further includes sending the formulated control signal 220 via the communication component to the first external electronic device for controlling the function thereof.
Under the method 200, the operator input may represent a preferred setting of the first external electronic device. The method 200 may further include storing 224 the operator input in a data storage component of the portable electronic controller. The method 200 may further include repositioning 228 the electronic controller to a second surrounding environment that is different than the first surrounding environment and has other external electronic devices, including a second external electronic device. The first and second external electronic devices have an equivalent function. The method 200 may further include sending another formulated control signal 232 to the second external electronic device for controlling the equivalent function thereof. This other formulated control signal is formulated based on the stored operator input representing the preferred setting.
While the best modes for carrying out the invention have been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.