A method for providing automatic control of one or more devices in an environment including assessing information for the devices being paired with a hub or with a central server where the hub and the central server are configured to receive status messages from the devices and to issue commands to the devices; determining device-type handlers to use with the devices; installing the device-type handlers at the hub or the central server; installing an automation application on the hub or on the central server where the automation application responds to an event and issuing a command in response to the event; receiving a device-specific message from a source device at the hub or the central server; generating, using a device-type handler associated with the source device, a normalized event message; and providing the normalized event message to a processor in the hub or the central server.
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0. 20. A system for providing automatic control of one or more devices, the system comprising:
a central server, and
a hub,
wherein the central server comprises:
a memory configured to stored instructions; and
at least one processor configured to execute the instructions to:
control to receive a status message of a source device paired to a hub;
based on the status message being received, obtain, using an automation application that is installed on the central server, a first command for the source device;
translate, using a first translation component installed on the central server, the obtained first command to a second command for communicating with the source device, wherein the first command is a normalized command and the second command is a device-specific command; and
control to send, toward the source device, the second command to which the obtained first command is translated,
wherein a second translation component is installed on the hub for communicating control commands with the source device, and the first and second translation components are configured to translate to and from a first protocol, and
wherein the first command is generated by the central server, and
wherein the at least one processor is configured to install the automation application on the central server.
1. A node arranged for use in an An automation system for providing automatic control of one or more devices in an environment, the automation system including comprising:
a central server and a hub paired with the one or more devices, the node being selected from the group consisting of the central server and the hub,
wherein the node comprising central server comprises:
a processor; and
a memory coupled with the processor; and storing:
an automation application at least partially installed on the node central server and configured to execute in response to the receipt of a normalized event message from a source device and to issue a normalized command in response to the normalized event message; and
a first device-type handler installed on the node central server, the first device-type handler configured to receive the normalized command and to generate a device specific command to a target device among that is one of the one or more devices paired with the hub; and
wherein the memory is configured to provide the processor with instructions which when executed cause the processor to:
receive a the normalized event message, the normalized event message received from the source device via a second event handler installed on the hub and associated with a the source device, the normalized event message being generated based on a device-specific message from the source device;
in response to the normalized event message, execute the automation application on the node central server to cause the automation application to issue a the normalized command in response to the normalized event message;
use the first device-type handler installed at the node central server, to generate a the device-specific command based on the normalized command; and
send the device-specific command to the target device,
wherein both the hub and the central server include device-type handlers configured to translate between device-specific messages and normalized messages for communicating with the target device, and
wherein the memory is further configured to provide the processor with instructions which when executed cause the processor to:
install the automation application on the central server.
0. 2. The node as recited in
0. 3. The node as recited in
0. 4. The node as recited in
5. The node automation system as recited in
obtain identifying information associated with the one or more devices paired with the hub; and
determine using the identifying information device-type handlers to use with each of the one or more devices.
6. The node automation server as recited in
determine a set of devices being paired with a the hub;
determine a set of device-type handlers to use with the set of devices; and
install the a set of device-type handlers, to use with the set of devices, at the hub.
7. The node automation system as recited in
determine a set of devices being paired with a the hub;
determine a set of device-type handlers to use with the set of devices; and
install a second device-type handler from the a set of device-type handlers, to use with the set of devices, at the hub when a second automation application is installed at the hub to be executed on the hub to control or monitor a first device, the first device-type handler being associated with the first device.
0. 8. The node as recited in
install the automation application on the central server.
0. 9. The node as recited in
determine whether device-type handlers should be installed at the central server or the hub;
based on the determination, install device type handlers at the hub and the central server.
0. 10. The node as recited in
determine whether device-type handlers should be installed at the central server or the hub;
based on the determination, install the device-type handler at the central server and not the hub.
0. 11. A method for providing automatic control of one or more devices in an environment using an automation system that includes a central server and a hub paired with the one or more devices, the hub and the central server each having device-type handlers installed thereon and being configured to receive status messages from the devices and to issue commands to the devices, the method comprising:
executing an automation application on a node selected from the group consisting of the central server and the hub, the automation application responding to an event and issuing a command in response to the event;
generating a normalized command for the target device at the node;
generating, using the device-type handler installed at the node, a device-specific command based on the normalized command; and
sending the device-specific command to the target device.
0. 12. The method of
0. 13. The method of
0. 14. The method of
receiving a device-specific message from the source device at the hub;
generating, using a device-type handler associated with the source device, a normalized event message at the hub;
providing the normalized event message to a processor in the hub;
sending the normalized event message from the hub to the central server; and
storing or processing the normalized event message at the central server.
0. 15. The method of
0. 16. The method of
0. 17. The method of
0. 18. The method of
receiving, at the hub, a device-specific message from a source device paired with the hub;
generating, using the device-type handler installed at the hub, a normalized event message based on the received device-specific message; and
providing the normalized event message to a processor in the nose wherein the execution of the automation application on the node is in response to the normalized event message and wherein the normalized command generated at the nose is based on the normalized event message.
0. 19. The method of
0. 21. The system of
0. 22. The system of
0. 23. The system of
0. 24. The system of
0. 25. The system of
0. 26. The system of
0. 27. The system of
0. 28. The system of
control to receive, at the central server, another status message of another source device that is not paired to the hub;
based on the other status message being received, obtain, using the automation application that is installed on the central server, a third command for the other source device;
translate, using the first translation component installed on the central server, the obtained third command to a fourth command for communicating with the other source device; and
control to send, toward the other source device, the fourth command to which the obtained third command is translated.
0. 29. The system of
0. 30. The system of
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This is a reissue application of U.S. Pat. No. 10,386,807, which was filed as U.S. patent application Ser. No. 15/357,433 on Nov. 21, 2016 and issued on Aug. 20, 2019, and which is a continuation application of U.S. Pat. No. 9,529,344, which was filed as U.S. patent application Ser. No. 13/838,687 on Mar. 15, 2013, and issued on Dec. 27, 2016, the disclosures of which are incorporated herein by reference in its entirety.
This application is a Continuation of U.S. application Ser. No. 13/838,687, filed on Mar. 15, 2013, which is herein incorporated by reference in its entirety.
The idea of the “smart home” has been around since the 1950s but never became mainstream. However, with the advent of the Internet and the wide adoption of smartphones, the smart home concept or home automation can now be realized where appliances and devices in a home can be connected to the Internet and be capable of being monitored and controlled remotely. However, implementation of Internet controllable devices requires knowledge of networking, server management, communication protocols and also network security.
Various embodiments of the invention are disclosed in the following detailed description and the accompanying drawings.
The invention can be implemented in numerous ways, including as a process; an apparatus; a system; a composition of matter; a computer program product embodied on a computer readable storage medium; and/or a processor, such as a processor configured to execute instructions stored on and/or provided by a memory coupled to the processor. In this specification, these implementations, or any other form that the invention may take, may be referred to as techniques. In general, the order of the steps of disclosed processes may be altered within the scope of the invention. Unless stated otherwise, a component such as a processor or a memory described as being configured to perform a task may be implemented as a general component that is temporarily configured to perform the task at a given time or a specific component that is manufactured to perform the task. As used herein, the term ‘processor’ refers to one or more devices, circuits, and/or processing cores configured to process data, such as computer program instructions.
A detailed description of one or more embodiments of the invention is provided below along with accompanying figures that illustrate the principles of the invention. The invention is described in connection with such embodiments, but the invention is not limited to any embodiment. The scope of the invention is limited only by the claims and the invention encompasses numerous alternatives, modifications and equivalents. Numerous specific details are set forth in the following description in order to provide a thorough understanding of the invention. These details are provided for the purpose of example and the invention may be practiced according to the claims without some or all of these specific details. For the purpose of clarity, technical material that is known in the technical fields related to the invention has not been described in detail so that the invention is not unnecessarily obscured.
In the example shown in
Each of the devices 108 communicates with hub 104 to receive commands for actions to be performed or to report status or data. Devices 108 may communicate with hub 104 through a wired or a wireless connection. In one embodiment, devices 108 communicate with hub 104 using a low-power wireless protocol, such as Zigbee and Z-wave. Hub 104 in turn is connected to the data network 106, typically through a wired connection. In one embodiment, hub 104 maintains a persistent connection to the data network 106 to enable continuous monitoring and control of devices 108 by central server 102.
Central server 102 also supports communication with network-enabled computing devices, such as laptop computers, tablet computers, or smartphones. In the example shown in
In the present illustration, system 100 includes a single hub 104 communicating with a set of devices 108. The configuration shown in
Central server 102 includes an event processing and routing module 118 configured to process and route events within system 100. More specifically, the functions of the event processing and routing module 118 includes receiving and processing event data received from the hub connectivity interface 114 and determining how events should be routed in the system. Central server 102 further includes an application execution module 120 configured to handle execution of automation applications, also referred to as “Apps” on the central server, as will be explained in more detail below. The central server 102 includes a web interface 122 supporting communication with web services, APIs and mobile applications. Finally, central server 102 includes a database 124 of automation applications, and data, such as user login information, event data and other data. In physical implementations, the central server 102 may include one or more processors performing the functions of the logical blocks shown in
Automation applications or Apps are software components of the web-based device automation system 100 used to monitor, control and automate devices 108 that are installed in an environment or at a location. In system 100, an automation application or an App is a collection of event handlers or a collection of event handlers and controls that operates to respond to various types of events that occur within system 100. In the present description, an event handler is the software component for servicing an event to which an App is subscribed. In brief, an App defines event handlers, subscribes to events and the App is invoked when a specified event occurs.
In system 100, an event includes activities occurring at devices 108, or controls or queries received from web applications from mobile devices or from web services. For example, an event can be the detection of an opened door, the detection of the presence of a certain person at a certain location, the detection of a certain temperature reading, or the detection of motion at a certain location. An event can also be a control command from a web application on a mobile device, for example, to turn up the temperature on a thermostat or to turn on a light. The control command can also be received from web interfaces, such as from a laptop computer, or from other web services. Finally, an event can be a timer where an event is generated when the predetermined time set on the timer expires.
In embodiments of the present invention, an App includes a list of subscriptions to events, typically associated with devices, and a definition of event handlers to process those events, typically by taking action such as issuing commands. In some embodiments, an App may include a definition of preferences or user settings to allow a user to configure the App to operate on certain devices desired by the user. An App may further include event handlers for performing installation and update of the App. In one example, an App may subscribe to one or more events and generate responses based on the subscribed events where the responses may be an action or another event. In the simplest case, an App receives an event as an input and generates an action or raises other events as an output. In one embodiment, an event handler is the software code that describes the input event and the action to be taken or the output event to be raised.
In embodiments of the present application, an automation application implements one or more of the following functions. An App can subscribe to and receive events from devices, events from mobile devices, events from web services, or events from timers. An App can handle and process events. An App can define actions to be taken. In some embodiment, an App can raise events. An App can issue commands and set attributes on devices. For example, an App can make a web service call to an external data network. An App can access presence information, location, group and device information. An App can persist information in the database that is available across instantiations of the application. It is instructive to note that automation applications in system 100 are event driven, that is, they are not always running but are only invoked when a specified event occurs. It is instructive to note that an App is merely a collection of event handlers or a container of event handlers and that an App is installed in system 100 by installing the event handlers defined in the App. Once the App is installed, it is the individual event handlers that are executed in response to events and the App itself becomes a shell for identifying event handlers that belong to the same App. In the present description, references to “execution of the App” refers to the execution of (or invoking) the event handlers defined in the App. Thus, execution of an App refers to execution of the event handers associated with the App.
In embodiments of the present invention, system 100 realizes a distributed control scheme where some event handlers are executed on central server 102 while other event handlers are executed on hub 104. By distributing the execution of event handlers between the central server and the hub, system 100 can be made more responsive to events in the system. Furthermore, better resource utilization is achieved by distributing the processing load over different processors in system 100.
In some embodiments, for handling execution of Apps (or its associated event handlers) on the central server, central server 102 includes the application execution module 120. The application execution module 120 receives events and an application identifier (App ID) of an automation application to be executed from the event processing and routing module 118. The application execution module 120 loads the App from the database 124, or from a cache memory, and determines which event handler needs to be invoked and invokes the event handler. The application execution module 120 also collects all of the information required by the event handler associated with the App and provides the information to the event handler. The application execution module 120 may further monitor the execution of the App and report execution information in the data base. The application execution module 120 may further send out-bound events generated by the event handler back to the event processing and routing module 118. In some embodiments, execution of Apps results in generation of commands for devices which are sent to the event processing and routing module 118 to be transmitted to the hub 104 to cause actions to be taken on one or more devices 108. In some embodiments, the commands may be in the form of “event wirings,” as will be explained in more detail below.
As thus configured, system 100 has stored there on one or more automation applications (Apps) and the automation applications are made available to users through the mobile application or web interface. The users, making use of one or more automation applications, operate one or more of devices 108 remotely based on specified events. For example, a user may select an automation application (e.g. Light.On) which detects motion at a motion sensor device and as a result of the detected motion, actuates a light switch to turn on a light. The detected motion constitutes an event while the actuation of the light switch constitutes an action. In another example, a user may select an automation application (e.g. Arrive.Home) which detects the opening of a door through a contact sensor and as a result of the detected state of the door, generates a web service call to check the weather or send a SMS message to a given mobile telephone number. The detected opening of the door constitutes an event while the web service call or SMS message constitutes another event raised by the App. By selecting the desired App, a user may configure one or more devices or appliances in his environment to respond to specified events.
In embodiments of the present invention, system 100 realizes a distributed control scheme where some events are serviced by Apps (or the associated event handlers) being executed on central server 102 while other events are serviced by Apps (or the associated event handlers) being executed on hub 104. The distributed control scheme ensures optimal configuration of an automation application at run-time where event handlers are executed efficiently, either on central server 102 or on hub 104. In some embodiments, central server 102 applies control policies to determine the best deployment strategy for executing the App. Various control polices can be applied to distribute the event handlers. In one embodiment, an event handler is configured to run on a hub that is located in closest proximity to the device. In another embodiment, when an event handler includes actions to raise events involving web service calls, the event handler is run at the central server. Other scenarios will be described in more detail below. In one embodiment, determination of distributing event handlers to the central server or to the hub is made when the App is installed by the user, as will be explained in more detail below.
As described above, an automation application or an App receives an event as an input and generates an action or raise other events as an output. An App is a collection of event handlers where an event handler is the software code that describes the input event and the action to be taken or an output event to be raised. In some embodiments, an event handler is compiled into Java bytecode and sits on the Java runtime environment (JRE). Such an event handler can be executed by the central server 102 or by a hub supporting the Java runtime environment.
In some system configuration, a hub may be configured without the ability to execute applications locally (such as executing applications using the Java Runtime environment). In embodiments of the present invention, central server 102 generates “event wiring” from an event handler and forwards the event wiring to the hub, or installs the event wiring at the hub, for execution. In embodiments of the present invention, an event handler is compiled into machine code as the “event wiring” to run on the hub. In one embodiment, the event wiring consists of JSON or xml data. In the present description, an event wiring defines the direct connection (or “wiring”) of an event on a first device to a specific action on a second device, which can be the same device or a different device). While event handers may incorporate logical operations in the software codes, event wiring does not involve any logical operations. In event wiring, there is no programmable logic between the event and the action and the event directly causes the action. For example, an event wiring is used when a specific event on a specific device, such as a motion detected event on a motion detector, always results in the same response, such as turn on a light. Event wirings are commands send down to be stored on the hub for execution and do not have to rely on further communication with the central server 102 for execution.
In embodiments of the present invention, an automation application may include preferences to allow users to select a specific device or a group of devices to use with the application. The App may specify the device type and capabilities of the device required for the App. For example, the App may require a motion detector (device type) with night-vision capability. In another example, an App may require a switch that can provide an on-off function. The central server identifies all of the devices meeting the requirements of the App and provides a user interface to the user to select the preferred device as user configuration preferences.
In the embodiment shown in
An example of an event wiring table 156 is shown in
An example of an event handler table 158 is shown in
Device 108 may be applied in many applications in an environment. Device 108 may be configured as a sensing device for sensing certain environmental data or status condition data, such as temperature, humidity, pressure and open and close conditions. Device 108 may also be configured as an actuating device for controlling an object. For example, device 108 may be an actuator for activating a door lock, or a light switch, or a thermostat. In some cases, device 108 may be both a sensing device and an actuating device. In the present illustration, device 108 includes a sensor 166 or an interface to a sensor and further includes an actuator 168 or an interface to an actuator. Sensor 166 provides data to controller 160 while actuator 168 receives control signals from the controller 160. The configuration for device 108 shown in
In an automatic application in system 100, a device is associated with a device type and is defined by its capabilities, its attributes and the events it can generate. For example, an on-off switch device has the capabilities of turning on and turning off, has an attribute of a current state being on or off, and has an On event and an Off event. The controller 160 in device 108 accepts commands that may change the attributes or doing something physically in device 108. The device may further report events, such as the current state of the device or the current state of the attributes of the device. For example, a device may be a door and the attributes may be the position and the current state of the attribute may be open, close or locked.
In embodiments of the present invention, a composite device type can be formed by aggregating multiple physical devices into one logical device. An automation application can be written using the composite device type so that the device is treated as a single logical device, without regard to how many separate physical devices there may be. For example, a virtual device type can be a garage door opener which consists of an accelerometer and a relay as the separate physical devices. An automation application may be created to respond to events from the garage door opener and issues actions and commands to the garage door opener. With the use of the composite device type, the fact that the garage door opener includes separate lower level devices is irrelevant to the user. The central server 102 of system 100 takes care of the installation and execution of the automation application for interacting with a device having the composite device type.
In
Then, the central server 102 receives an App selection (206). For example, the user may select the onDoorOpen App in
Central server 102 filters the devices in the user's physical graph based on the requirements or specification of the App (210). Of all the devices in the user's physical graph, central server 102 selects those that meet the device type and the capabilities called out by the App. The list of possible source devices and target devices is then provided to the user through a user interface where the user may make selections. The central server 102 then receives user configuration preferences (212). The central server 102 then determines the optimal deployment strategy for the App (214). In some cases, the App is more efficiently executed at the central server. In that case, the App (or the associated event hander) is installed at the central server 102 (218) and the central server 102 issues commands to the hub to execute the actions described in the App. In other cases, the App is more efficiently executed at the hub 104 in the user's environment. In that case, the central server 102 installs the App (or its associated event handler) at the hub (216). In one embodiment, the central server 102 generates event wiring from the event handler and sends the event wiring down to the hub to be installed at the hub. The hub stores the event wiring in its local memory and executes the actions described in the event wiring in response to the subscribed event. Alternately, the central server 102 may send the event handler associated with the App down to the hub when the hub is capable of executing software codes and the event handlers are stored in the hub and executed by the hub.
Central server 102 applies various policies to determine the optimal deployment strategy for an App. In particular, the deployment of the App is determined when the App is installed so that the deployment strategy is made pertaining to each user's specific configuration of devices and hubs. In one example, in a user environment with two or more hubs, the central server may install an App to be executed on one of the hubs if all the devices called out by that App is associated with that one hub. However, if the devices are connected to different hubs, then the App will be executed from the central server.
In another example, in a user environment where a hub is provided with the capability to execute event handlers, that is, to process and execute the programming language of event handlers, then the central server may install an App to be executed on the hub. In yet another example, the central server examines actions called out by the App. When the action called out by the App results in actions taken at the central server, such as a web service call, then the App should be executed from the central server rather than at the hub.
It is instructive to note that in system 100, automation applications are written without knowledge or without taking in consideration how the automation applications or the associated event handlers will be distributed at deployment. In particular, an automation application may be deployed differently in different environments. The deployment characteristics of an automation application is a function of the configuration of hubs (if any) and devices in a user's environment, as described by the physical graph associated with the user.
In embodiments of the present invention, the event handler is the boundary for the automatic deployment analysis. That is, an event handler is the boundary where the central server will analyze the actions in the event handler and makes an automatic determination where the event handler can run. The determination is made at the App installation time when the specific user configuration information can be obtained to determine how the event handler should be executed. Thus, an App can be structured so that execution of the event handlers is distributed optimally between the central server or the hub. For example, an App may be created to detect a door opening event and turn on a light and make a web service call to check the weather. When the App is structured as such, the App will be installed to run from the central server as the App requires making a web service call. However, the App may be structured with separate event handlers so that some of the actions can take place on the hub instead of the central server. For example, the App can be structure to include a first event handler to detect a door opening event and turn on a light and then raise a second event handler. The second event handler makes a web service call to check the weather. In this case, the central server will determine that the first event handler can be installed at the hub while the second event handler is installed at the central server. In this manner, optimal deployment of event handlers is realized.
For each matched event ID in the event wiring table, the hub issues the action to the target device (310). For each matched event ID in the event handler table, the hub executes the codes and takes the action specified by the codes (310). In some embodiments, the hub may then report the event to the central server with the actions that were taken (312).
In embodiments of the present invention, events received at the hub are sent up to the central server to the event processing and routing module. The event processing and routing module processes the events to determine if event handlers that are installed on the central server may subscribe to the event. An event handler may be invoked and executed at the Application Execution module when a subscribed event is received. The execution of App or event handlers at the central server is described above with reference to
In the present embodiment, central server 502 further supports direct communication with devices, such as device 509. That is, central server 502 may communicate with devices directly without going through a hub. For example, a device 509 may communicate with central server 502 through a cellular network (not shown) and using the phone connectivity interface 516. In one example, the device 509 is a sensor module installed in a car for monitoring the traveling speed of the car. Device 509 supports cellular communication and generates status data (car speed) which are reported back to the central server 502 as events. In other examples, device 509 can be a location determination device or an outdoor temperature sensor.
In the present embodiment, central server 502 further supports network-to-network, or cloud-to-cloud, communication. In one example, a device 562 installed in the same environment as other devices 508 may be configured to communicate only with a third party private data network, such as a data network 560 associated with the manufacturer of the device 562. For example, manufacturers of remote control door locks typically required the lock to communicate only with the manufacturers' own data network in order to ensure security. In embodiments of the present invention, central sever 502 supports communication with third party private data networks, such as network 560, to enable a user to control and operate device 562 seamlessly through central server 502 and using the automation applications that are part of system 500.
Central server 502 includes a device-type handler module 517 and an event processing and routing module 518. Device-type handler module 517 implements device-type handlers that are an abstraction of devices from their distinct capabilities. More specifically, device-type handlers enable automation applications to be written using generic or normalized language for commands and status with respect to devices and the device-type handlers in module 517 perform the translation of the normalized language to device-specific language required to communicate with the physical devices. The operation of the device-type handler module 517 in central server 502 will be explained in more detail below. In brief, the device-type handler module 517 receives device-specific events and status and generates normalized events and status for the event processing and routing module 518. The device-type handler module 517 also receives normalized commands from the event processing and routing module 518 and generates device-specific commands to be sent to the devices 508 or 509.
Event processing and routing module 518 operates in the same manner as described above to process and route events within system 500. The functions of the event processing and routing module 518 includes receiving and processing event data received from the hub connectivity interface 514 and phone connectivity interface 516 and determining how events should be routed in the system 500. Central server 502 further includes an application execution module 520 configured to handle execution of automation applications or Apps on the central server. The central server 502 includes an App and Data management module 530 for supporting data transfer with a web interface 522 and an API 523. For example, web interface 522 supports communication with external web services. Alternately, API 523 can be used to communicate with external services 550, such as external web services. API 523 can also be used to communicate with third party private data network 560. Finally, central server 502 includes a database 524 for storing automation applications, user physical graphs, event store and other data. In physical implementations, the central server 502 may include one or more processors performing the functions of the logical blocks shown in
In system 500, device-type handlers are virtual representations of devices in the environment that enable the separation of devices with their capabilities from automation applications that are used to control or monitor the devices. In this manner, an automation application is not necessarily tightly coupled to a specific device but rather can be used on a class of devices meeting the requirements specified in the App.
In the present description, a device is associated with a device type and a device type is defined by its capabilities, its attributes and the events it can generate. For example, a device type “switch” describes devices that have the On and Off capabilities. Switches many different physical configuration and may employ different wireless communication protocols. A simple light switch or a multi-sensor can both belong to the device type “switch.” A multi-sensor can belong to the device type “switch” or the device type “sensor” describing sensing capabilities. Through the use of device type and device-type handlers, an automation application can be written for a certain device type instead of a specific device. That is, an automation application can be written without regard to the actual configuration or implementation of the physical device. The exact physical configuration of the device is not critical to the App but rather all the App looks for is a device that can perform certain functions or a device that has certain attributes. With the use of device types and device-type handlers, an App can be used on any devices belonging to the device type (e.g. “switch”) without knowing the exact nature of the device.
In another example, a device type can be defined by its capabilities and attributes. For example, a device type “ACME wireless door lock version 4” describes a fourth generation door lock device from the manufacturer ACME that has a locking and unlocking capabilities and wireless communication ability.
In embodiments of the present invention, device-type handlers are software components that act as a translator between a device and an automation application that makes use of the device. In system 500, device-type handlers are the bridge between generic capabilities at the automation application level and the device-specific (or protocol-specific) interface actually used to communicate with the device. Device-type handlers enable automation applications to be developed without knowing the specific details of the physical devices. Device-type handlers enable automation applications to be written using generic or normalized commands so that an automation application can be applied to any devices having the capabilities of a specific device type, including devices to be developed in the future.
In embodiments of the present invention, device-type handlers are installed at the central server 502 in device-type handler module 517. Furthermore, in some embodiments, device-type handlers may also be installed at the hub 504 when the hub is used to execute event handlers. Device-type handlers can be installed at the hub in one of several ways. In some embodiments, when a user sets up a hub in his or her environment, the hub, as part of the set up procedure, is placed in the “join” mode to join or pair with devices that are within its communication range. During the pairing process, the hub discovers the device type of the device using identifying information associated with the device, referred to as “device fingerprints.” Device fingerprints can include information such as the manufacturer identification, the product identification, the device identification and other unique identifier for the device. The hub may further discover the capabilities of the device, including the communication protocol used by the device. Once a device is paired with the hub, the hub sends information associated with the device to the central server and the device is added to the user's physical graph.
Based on the device fingerprint information, the central server determines the device-type handler to be used with the device. If a specific device-type handler cannot be find, then a generic device-type handler can be used. In a first embodiment, the central server deploys to the hub all device-type handlers for devices that have paired with the hub. The hub stores the device-type handlers for future use. The central server may also dynamically download updates of the device-type handlers that have been deployed to the hub. In a second embodiment, the central server deploys device-type handlers to the hub only when an App is to be installed on the hub to be executed on the hub. In that case, device-type handlers are deployed to the hub in an on-demand basis. In either case, the hub is provided with the device-type handlers that it needs to execute Apps or device handlers on the hub.
During execution of event handlers, whether at the central server or at the hub, the device-type handlers operate to translate communications between the device and the automation applications from device-specific (or protocol-specific) communication to normalized communication and vice versa.
More specifically, the device 608 may report a status to the central server or the hub. The connectivity layer 614 (of the central server or the hub) receives the protocol-specific status message from the device 608 and forwards the message to the device-type handler 660. The device-type handler 660 implements a parse method 662 to parse the incoming protocol-specific status message and to generate a normalized event (e.g. “On” event or “Off” event). The normalized event can then be sent to the event processing and routing module 630 to be processed. The event processing and routing module 630 determines the event handler that subscribes to the event and forwards the event with the event handler to the application execution module 620. The normalized event may also be made available to external services, such as through an API 623.
In one example, assume device 608 is a Z-Wave compatible on-off switch. The protocol-specific status messages to report an “on” state or an “off” state are as follows. The normalized event generated by the device-type handler is simply an “On” or “Off” event.
Device Status
Protocol-specific Status Message
Normalized Event
On
command: 2003, payload: FF
On
Off
command: 2003, payload: 00
Off
When the execution of the event handler at the application execution module 620 results in generation of commands for actions to be taken on the device 608 (or another device), the event handler generates a normalized command which is sent to the event processing and routing module 630. Normalized commands may also be received from the API 623. The event processing and routing module 630 forwards the normalized command intended for device 608 to device-type handler 660. The device-type handler 660 implements device capability methods 664 to translate the normalized command (On or Off) to a protocol-specific command. The protocol-specific command is then forwarded to device 608 through the connectivity layer 614.
Following the above example, assume again that device 608 is a Z-Wave compatible on-off switch. The normalized commands and the protocol-specific commands are as follows:
Device Command
Protocol-specific Command Message
On
2001FF
Off
200100
It is instructive to note that during the operation of the automation system 500, status messages generated by devices and received at the hub are normalized by the local device-type handler into normalized events and these events can be operated on at the hub but are also sent up to the central server. Because the event has already been normalized, the central server does not need to apply the device-type handler to the received event again and may process and route the event and store the events in the event store database. In other embodiments, the central server may receive status messages directly from devices. In that case, the protocol-specific status messages are provided to the device-type handler module in the central server to be translated into normalized events.
Similarly, when the application execution module at the central server generates commands for a device, the commands will be translated into protocol-specific commands by the device-type handler at the central server before the commands are sent down to the hub or directly to the device. The hub, upon receiving the protocol-specific commands, forwards the commands to the device and does not need to invoke the device-type handler again.
Referring to
In the above-described embodiments, an event handler, in response to an event, may issue an action to a target device or the event handler may raise another event. The event being raised—referred to as a custom event—can be subscribed by other event handlers. Accordingly, the automation system of the present invention may use custom events as a means for event handler communications. When one event handler raises a custom event, that custom event can be treated as a message from one event handler to another event handler. In this manner, custom events become a convenient method in the automation system to relay messages from one event handler to another event handler.
Although the foregoing embodiments have been described in some detail for purposes of clarity of understanding, the invention is not limited to the details provided. There are many alternative ways of implementing the invention. The disclosed embodiments are illustrative and not restrictive.
Hagins, Jeffrey, Hawkinson, Alexander
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