Control equipment
Through the wireless transmission module and control module of the control device, efficient and flexible control with multiple electronic devices is achieved, which solves the flexibility and efficiency of multi-device control and improves the ability to share equipment status recognition and configuration parameters.
Patent Information
- Application Number
- CN202422236489.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-09-11
AI Technical Summary
When the number and type of electronic devices are large, the flexibility of controlling multiple and various types of electronic devices through multiple control devices is insufficient and the efficiency is low.
It provides a control device, including a wireless transmission module and a control module, which can establish a K-channel communication connection with K electronic devices at the same time, receive and send data instructions to control the device status through the K-channel communication connection, support Bluetooth and WIFI communication, and combine storage module storage configuration parameters and device timing to realize two-way data transmission and automated control of the device status.
It improves the control accuracy and efficiency of multiple electronic devices, realizes high accuracy and flexible control of any device, reduces power consumption and spatial distance requirements, and enhances the sharing ability of device type identification and configuration parameters.
Smart Images

Figure CN223217909U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of control technology, in particular to a control device. Background Art
[0002] In practical applications, electronic devices are usually controlled by control devices that correspond one to one with the electronic devices. However, when there are many electronic devices and many types of electronic devices, controlling multiple and various types of electronic devices through multiple control devices is not flexible enough and is inefficient. Utility Model Content
[0003] Based on the above technical problems, the present invention provides a control device. The control device includes: a wireless transmission module and a control module; wherein:
[0004] The wireless transmission module is capable of establishing K communication connections with K electronic devices simultaneously, and receiving a kth data sent by a kth device among the K electronic devices through a kth connection among the K communication connections; wherein the kth data is used to at least represent a state of the kth device; k is an integer greater than or equal to 1 and less than or equal to K; and K is an integer greater than or equal to 2;
[0005] The control module is electrically connected to the wireless transmission module, and is used to receive the kth data sent by the wireless transmission module, and send the kth instruction corresponding to the kth data to the wireless transmission module, so that the wireless transmission module sends the kth instruction to the kth device; wherein, the kth instruction is used to control the state of the kth device.
[0006] In some embodiments, the wireless transmission module includes a Bluetooth transmission module; the Bluetooth transmission module includes K Bluetooth transmission components, which are used to establish the K communication connections with the K electronic devices respectively.
[0007] In some embodiments, the wireless transmission module includes a WIFI module; the WIFI module includes K WIFI components, which are used to establish the K communication connections with the K electronic devices respectively.
[0008] In some embodiments, the wireless transmission module is further configured to receive and send a kth type parameter sent by the kth device to the control module; wherein the kth type parameter includes a device type of the kth device;
[0009] The control module is used to receive the kth type parameter and send the kth instruction associated with the kth type parameter and the kth data to the wireless transmission module.
[0010] In some embodiments, the control device further includes a storage module for storing K configuration parameters associated with the K electronic devices; wherein the kth parameter of the K configuration parameters is associated with the operating period and / or operating state of the kth device;
[0011] The control module is electrically connected to the storage module, and is further used to obtain the kth parameter from the storage module and send the kth instruction to the wireless transmission module; wherein the kth parameter is associated with the kth data and the kth parameter.
[0012] In some embodiments, the K configuration parameters include a device timing sequence associated with the K electronic devices; the device timing sequence includes a startup time sequence of devices in the K electronic devices;
[0013] The control module is further configured to obtain the device timing from the storage module and send timing instructions associated with the device timing to the K electronic devices to control the states of the K electronic devices.
[0014] In some embodiments, the wireless transmission module is further used to receive the device timing sent by the K electronic devices and send the device timing to the storage module.
[0015] In some embodiments, the control device further comprises an input module for receiving the K configuration parameters input by a user of the control device;
[0016] The storage module is electrically connected to the input module and is configured to receive the K configuration parameters transmitted by the input module.
[0017] In some embodiments, the control device further includes a collection module for collecting schedule data of a user of the control device; wherein the schedule data is associated with the K configuration parameters;
[0018] The storage module is electrically connected to the acquisition module and is used to store the schedule data transmitted by the acquisition module.
[0019] In some embodiments, the wireless transmission module is further used to receive the K configuration parameters transmitted by other control devices, transmit the K configuration parameters to the storage module, and transmit the K configuration parameters to the other control devices.
[0020] In the control device provided by the present invention, the wireless transmission module can establish K communication connections with K electronic devices at the same time, and receive the kth data sent by the kth device in the K electronic devices through the kth connection in the K communication connections, and the kth data is at least used to characterize the state of the kth device, k is an integer greater than or equal to 1 and less than or equal to K, and K is an integer greater than or equal to 2. In this way, through the wireless transmission module, the control device can establish K communication connections with K electronic devices at the same time, and the control device can also obtain the state of any device in the K electronic devices through the K communication connections; and the control module is electrically connected to the wireless transmission module, for receiving the kth data sent by the wireless transmission module, and sending the kth instruction to the wireless transmission module. A transmission module is provided for the wireless transmission module to send the kth instruction to the kth device, and the kth instruction is used to control the state of the kth device. In this way, through the control module and the wireless transmission module, two-way data transmission is realized between the control device and any device among the K electronic devices, and the control device can flexibly control the state of any device among the K electronic devices; on the other hand, since the kth instruction corresponds to the kth data, the accuracy of the kth instruction can be improved, thereby improving the accuracy and pertinence of the control device's control over the kth device, and realizing automated control of the K electronic devices, so that at least two electronic devices can be simultaneously controlled with high precision and flexibility through a single device, thereby improving the control efficiency of the K electronic devices. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 A schematic diagram of the structure of the control device provided by the utility model;
[0022] Figure 2 A schematic diagram of the structure of establishing a Bluetooth connection between the wireless transmission module provided by the present invention and an electronic device;
[0023] Figure 3 A schematic diagram of the structure of the control device provided by the utility model controlling the same electronic device;
[0024] Figure 4 A schematic diagram of the process of testing an electronic device with a specified serial number provided by the present invention;
[0025] Figure 5 Another structural diagram of the control device provided by the utility model;
[0026] Figure 6 This is a flow chart of the control device provided by the present invention for obtaining and storing device timing. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the present invention will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present invention.
[0028] It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0029] In modern factories, the increasing number and variety of automated production equipment has not only led to a sharp increase in product production capacity, but also a significant increase in the diversification of product functions. At the same time, after the production of a large number of products is completed, for products with wireless communication capabilities, the actual test acceptance process is usually based on a one-to-one correspondence between the test equipment and the products under test. The wireless communication functions of the products under test are tested sequentially using the test equipment, and after the test of the current product is completed, the next product under test is tested.
[0030] The above-mentioned test solution has high time and labor costs. For example, for a device under test equipped with a Bluetooth module, it takes 1 minute to connect the test device to the product under test, the test lasts 10 minutes, and it takes 30 seconds to turn off the Bluetooth module. In this way, the functional test of the Bluetooth module of a test device takes 11.5 minutes. If the Bluetooth modules of 1,000 devices under test are tested using the same test device, the total test time is as long as 11,500 minutes. If the tester's daily working time is configured as eight hours, a single tester will need 24 days to complete the test of the Bluetooth modules of 1,000 devices under test.
[0031] On the other hand, in daily office or home scenarios, derivative products of mobile phones, tablets, laptops, etc., including headphones, pens, keyboards, mice, writing cloths, and mobile cameras, are emerging in an endless stream; and in home scenarios, the demand for controlling air conditioners, smart seats, water heaters, and humidifiers in each room through mobile terminals is also becoming increasingly diverse.
[0032] However, smart terminals including mobile phones are not sufficient to support the above-mentioned derivative products and electrical appliance control needs in home scenarios, which makes it impossible for users to connect the above-mentioned derivative products and electrical appliances in home scenarios through mobile smart terminals. For example, at present, no mobile phone can connect two headphones at the same time via Bluetooth to play audio at the same time.
[0033] Therefore, whether in the production and testing of electronic devices or in daily work or home scenarios, electronic devices are usually controlled by control devices that correspond to each electronic device. However, when there are a large number of electronic devices and a large number of types, using multiple control devices to control multiple and various types of electronic devices is inflexible and inefficient.
[0034] In order to solve the above technical problems, the utility model provides a control device. Figure 1 The schematic diagram of the structure of the control device provided by the utility model is as follows: Figure 1 As shown, the control device 100 may include a wireless transmission module 101 and a control module 102; wherein:
[0035] The wireless transmission module 101 can simultaneously establish K communication connections with K electronic devices, and receive the kth data sent by the kth device among the K electronic devices through the kth connection in the K communication connections; the control module 102 is electrically connected to the wireless transmission module 101, for receiving the kth data sent by the wireless transmission module 101, and sending the kth instruction corresponding to the kth data to the wireless transmission module 101, so that the wireless transmission module 101 can send the kth instruction to the kth device.
[0036] Among them, the kth data is at least used to represent the state of the kth device; k is an integer greater than or equal to 1 and less than or equal to K; K is an integer greater than or equal to 2; the kth instruction is used to control the state of the kth device.
[0037] In one embodiment, at least one of the types, models, functions, operating states, and spatial locations of different devices among the K electronic devices may be the same or different.
[0038] In one embodiment, the K electronic devices may include devices that have been manufactured and are in a state to be tested, or devices in office or home scenarios that have at least one function.
[0039] In one embodiment, the K communication connections may be wireless connections, and at least one of the frequency bands, communication standards, and channels corresponding to the respective connections in the K communication connections may be different or the same.
[0040] In one embodiment, the wireless transmission module 101 may include a hardware module or a software module.
[0041] In one embodiment, the wireless transmission module 101 can divide the first frequency band range based on the matching between the first frequency band range it supports and the second frequency band range supported by the wireless communication modules of K electronic devices, thereby obtaining K sub-frequency bands corresponding to the second frequency band range, and establishing K communication connections based on the K sub-frequency bands.
[0042] In one implementation, the kth data may represent the current operating state of the kth device.
[0043] In one embodiment, the wireless transmission module 101 can simultaneously receive data sent by at least two of the K electronic devices through K communication connections.
[0044] In one embodiment, after receiving the kth data, the control module 102 can determine the current state of the kth device based on the kth data and generate a kth instruction based on the above state; wherein the target state indicated by the kth instruction may be different from the current state of the kth device.
[0045] From the above, it can be seen that in the control device provided by the present invention, the wireless transmission module can establish K communication connections with K electronic devices at the same time, and receive the kth data sent by the kth device among the K electronic devices through the kth connection in the K communication connections, and the kth data is at least used to characterize the state of the kth device, k is an integer greater than or equal to 1 and less than or equal to K, and K is an integer greater than or equal to 2. In this way, through the wireless transmission module, the control device can establish K communication connections with K electronic devices at the same time, and can also obtain the state of any device among the K electronic devices through the K communication connections; and the control module is electrically connected to the wireless transmission module, for receiving the kth data sent by the wireless transmission module, and sending the kth instruction. to the wireless transmission module, so that the wireless transmission module sends the kth instruction to the kth device, and the kth instruction is used to control the state of the kth device. In this way, through the control module and the wireless transmission module, two-way data transmission is realized between the control device and any device among the K electronic devices, and the control device can flexibly control the state of any device among the K electronic devices; on the other hand, since the kth instruction corresponds to the kth data, the accuracy of the kth instruction can be improved, thereby improving the accuracy and pertinence of the control device's control over the kth device, and realizing automated control of the K electronic devices, so that at least two electronic devices can be simultaneously controlled with high precision and flexibility through a single device, thereby improving the control efficiency of the K electronic devices.
[0046] Based on the above embodiments, in the control device 100 provided by the present invention, the wireless transmission module 101 includes a Bluetooth transmission module, and the Bluetooth transmission module includes K Bluetooth transmission components for establishing K communication connections with K electronic devices respectively.
[0047] In one implementation, a kth component among the K Bluetooth transmission components may establish a kth connection with a kth device among the K electronic devices.
[0048] Figure 2 This is a schematic diagram of the structure of the wireless transmission module provided by the utility model and the electronic device establishing a Bluetooth connection, such as Figure 2As shown, taking the wireless transmission module including three Bluetooth transmission components as an example, a first Bluetooth connection can be established with the first device 201 through the first Bluetooth transmission component, a second Bluetooth connection can be established with the second device 202 through the second Bluetooth transmission component, and at the same time, a third Bluetooth connection can be established with the third device 203 through the third Bluetooth transmission component.
[0049] As can be seen from the above, in the control device provided by the present invention, the wireless transmission module includes a Bluetooth transmission module, and the Bluetooth transmission module includes K Bluetooth transmission components, which are used to establish K communication connections with K electronic devices respectively. In this way, by leveraging the advantages of low power consumption and high stability of the K Bluetooth transmission components, not only can the power consumption of the control device in establishing the K communication connections be reduced, but the stability of the K communication connections can also be improved, thereby improving the stability of the control of the K electronic devices.
[0050] Based on the above embodiment, in the control device 100 provided by the present invention, the wireless transmission module 101 includes a WIFI module; the WIFI module includes K WIFI components, which are used to establish K communication connections with K electronic devices respectively.
[0051] In one implementation, a kth component among the K WIFI components may establish a kth connection with a kth device among the K electronic devices.
[0052] As can be seen from the above, in the control device provided by the present invention, the wireless transmission module includes a WiFi module, and the Bluetooth transmission module includes K WiFi components, each of which is configured to establish K communication connections with the K electronic devices. In this way, by leveraging the high speed, high reliability, and wide coverage of the WiFi protocol underlying the K WiFi components, the control device's control of the K electronic devices can be improved in terms of efficiency and stability. Furthermore, the required spatial distance between the K electronic devices and the control device can be reduced, thereby increasing the flexibility of controlling the K electronic devices.
[0053] Based on the above embodiments, in the control device 100 provided by the present invention, the wireless transmission module 101 is also used to receive and send the kth type parameter sent by the kth device to the control module; the control module 102 is used to receive the kth type parameter and send the kth instruction associated with the kth type parameter and the kth data to the wireless transmission module 101.
[0054] The k-th type parameter includes the device type of the k-th device.
[0055] In one embodiment, the device type of the kth device can represent whether the kth device is a physical machine or a virtual machine, and can also represent the function type of the kth device; wherein the function type may include a cleaning function, a heat preservation function, or a printing function, etc.
[0056] In one embodiment, the device type may also represent the name of the manufacturer of the kth device, or the product series to which it belongs.
[0057] In one embodiment, the wireless transmission module 101 may simultaneously receive at least two type parameters sent by at least two of the K electronic devices through at least two of the K Bluetooth transmission components or at least two of the K WIFI components.
[0058] In one embodiment, after receiving the kth type parameter, the control module 102 can judge the kth type parameter. If the kth type parameter is a specified parameter, a kth instruction corresponding to the kth data can be generated; for example, if the kth type parameter indicates that the manufacturer of the kth device is a specified manufacturer, a kth instruction can be generated and sent to the kth device, thereby realizing targeted control of electronic equipment produced by the specified manufacturer.
[0059] Figure 3 The schematic diagram of the structure of the control device provided by the utility model controlling the same electronic device is as follows: Figure 3 As shown, taking the wireless transmission module including three WIFI components as an example, when K electronic devices are the same electronic device 301, and the same electronic device 301 includes the first device 201 to the third device 203, after the control module 102 receives the first type parameter to the third type parameter, when it is determined that the manufacturer represented by the m-th type parameter is the specified manufacturer, it can generate an m-th instruction based on the m-th data, and send the m-th instruction to the m-th WIFI component, and then send it to the m-th device through the m-th WIFI component; where m is an integer greater than or equal to 1 and less than or equal to 3.
[0060] In one embodiment, the kth type parameter may also represent the product serial number of the kth device. In this case, if the control module 102 determines that the product serial number represented by the kth type parameter is the designated serial number, the kth instruction may be sent to the kth device.
[0061] Figure 4 This is a flow chart of testing an electronic device with a specified serial number provided by the present invention. Figure 4 As shown, the process may include the following steps:
[0062] Step 401, start.
[0063] Step 402: Determine whether the product serial number is a specified serial number.
[0064] Exemplarily, the product serial number may be a type parameter pre-stored in the control device 100 .
[0065] Exemplarily, if the product serial number is not a designated serial number, step 403 is executed; if the product serial number is a designated serial number, step 404 is executed.
[0066] Step 403: No control instruction is sent.
[0067] Step 404: Determine the number of electronic devices to be tested.
[0068] Exemplarily, the number of specified serial numbers in the product serial number may be determined as the number of electronic devices to be tested.
[0069] Step 405: Establish a Bluetooth connection.
[0070] For example, multiple Bluetooth connections may be established between the Bluetooth transmission component included in the wireless transmission module and the electronic device under test.
[0071] Step 406: Send a test instruction.
[0072] Exemplarily, the test instructions may be transmitted to the electronic device to be tested respectively via multiple Bluetooth connections.
[0073] Exemplarily, the test instruction may include the kth instruction in the aforementioned embodiment.
[0074] Step 407: Receive the test instruction and start the test process.
[0075] Illustratively, each electronic device to be tested may receive a test instruction and start a test process simultaneously.
[0076] Through the above process, the control device can realize simultaneous control of the test processes of multiple electronic devices to be tested.
[0077] As can be seen from the above, in the control device provided by the present invention, the wireless transmission module is further configured to receive and transmit a kth type parameter sent by a kth device to the control module, while the control module is configured to receive the kth type parameter and transmit a kth instruction associated with the kth type parameter and the kth data to the wireless transmission module. Thus, through the above method, the correlation between the kth instruction, the kth type parameter, and the kth data is enhanced, thereby improving the correlation between the kth instruction and the kth device, and increasing the specificity of the kth instruction.
[0078] Figure 5 Another structural diagram of the control device provided by the utility model is as follows Figure 5 As shown, the control device 100 provided by the present invention also includes a storage module 103 for storing K configuration parameters associated with K electronic devices; the control module 102 is electrically connected to the storage module 103, and is also used to obtain the kth parameter from the storage module 103 and send the kth instruction to the wireless transmission module.
[0079] The kth parameter is associated with the kth data and the kth parameter; the kth parameter among the K configuration parameters is associated with the operating period and / or operating status of the kth device.
[0080] In one embodiment, the operating period of the kth device may include at least one period during which the kth device needs to be in an operating state.
[0081] In one embodiment, the operating state of the kth device may include the operating state that the kth device should be in during the operating period of the kth device.
[0082] In one embodiment, the kth parameter may be pre-set and stored in the storage module 103 .
[0083] In one embodiment, after the control module 102 obtains the kth parameter, if it is determined that the current time period matches the operating time period represented by the kth parameter, then when the state represented by the kth data is different from the operating state corresponding to the current time period, a kth instruction for controlling the kth device to be in the operating state corresponding to the current time period is generated and sent to the wireless transmission module 101.
[0084] In one embodiment, the control module 102 may obtain at least two configuration parameters from the storage module 103 , generate at least two instructions, and then send the at least two instructions to the wireless transmission module.
[0085] As can be seen from the above, the control device provided by the present invention also includes a storage module for storing K configuration parameters associated with K electronic devices, and the kth parameter among the K configuration parameters is associated with the operating period and / or operating status of the kth device, and the control module is used to obtain the kth parameter from the storage module and send the kth instruction associated with the kth data and the kth parameter to the wireless transmission module. In this way, through the above operation, not only is the storage and memory of the kth configuration parameter achieved, which can reduce the probability of loss of the kth configuration parameter, but also the probability of generating and sending the kth instruction can be increased, thereby improving the control efficiency of the kth device and improving the accuracy and pertinence of the kth instruction.
[0086] Based on the above embodiment, in the control device 100 provided by the present invention, the kth parameter includes the device timing of K electronic devices; and the device timing includes the startup time sequence of the devices in the K electronic devices.
[0087] Correspondingly, the control module 102 is further configured to obtain the device timing from the storage module 103 and send timing instructions associated with the device timing to the K electronic devices to control the states of the K electronic devices.
[0088] In one embodiment, the device timing includes the time sequence of device startup and the time period of continuous operation state of the K electronic devices.
[0089] In one embodiment, the device timing can be pre-set.
[0090] In one embodiment, after obtaining the device timing, the control module 102 can generate and send a timing instruction to the kth device when the startup time of the kth device represented by the device timing arrives. It can also directly generate a timing instruction including the kth countdown information and immediately send the timing instruction to the kth device; wherein the kth countdown information may include the length of the time period from the current moment to the startup time of the kth device.
[0091] In one embodiment, the control module 102 may generate a timing instruction for controlling all devices in the K electronic devices based on the device timing, and send the timing instruction to the K electronic devices simultaneously.
[0092] In one embodiment, the control module 102 may sequentially generate timing instructions for controlling K electronic devices based on the device timing, and send the timing instructions to the K electronic devices simultaneously or sequentially.
[0093] In one embodiment, the sequential instructions may include a kth instruction.
[0094] As can be seen from the above, the control device provided by the present invention has K configuration parameters including device timings associated with K electronic devices, and the device timings include the startup time sequence of the devices in the K electronic devices. The control module is used to obtain the device timings from the storage module and send timing instructions associated with the device timings to the K electronic devices to control the states of the K electronic devices. In this way, through the above operations, the control device can achieve flexible control of the K electronic devices in the time dimension, thereby improving the flexibility of the control device in controlling the K electronic devices.
[0095] Based on the above embodiments, in the control device 100 provided by the embodiment of the present invention, the wireless transmission module 101 is further configured to receive device timings sent by K electronic devices and send the device timings to the storage module 103 .
[0096] In one embodiment, a communication connection can be established between K electronic devices, and the K electronic devices can include a master device and a slave device. The master device can obtain the startup time of the slave device through the above-mentioned communication connection, and then integrate the startup time of the master device and the startup time of each slave device to determine and send the device timing to the control device; wherein, the master device and the slave device can be specified by the user or the control device 100, or can be determined by negotiation among the K electronic devices. The master device may include the first device among the K electronic devices that needs to be switched to the running state.
[0097] Figure 6 The following is a flow chart of the control device obtaining and storing the device timing according to the embodiment of the present utility model. Figure 6 As shown, the process may include the following steps:
[0098] Step 601, start.
[0099] Step 602: Start the Bluetooth connection.
[0100] For example, the wireless transmission module is described here as a Bluetooth transmission module.
[0101] Exemplarily, K communication connections may be established between the control device and K electronic devices.
[0102] Step 603: Determine the number of connected electronic devices and determine the master device and slave devices.
[0103] Exemplarily, one of steps 604 to 605 and 606 may be selected for execution according to the number of slave devices.
[0104] Exemplarily, if the number of slave devices is less than 2, steps 604 to 605 may be performed, and if the number of slave devices is greater than or equal to 2, step 606 may be performed.
[0105] Step 604: If the number of slave devices is less than 2, synchronize device timings between the electronic devices.
[0106] For example, if the number of slave devices is less than 2, the value of K is 2. In this case, the device timing may include a startup timing between the master device and the slave device.
[0107] Step 605: The control device stores the device timing.
[0108] For example, the master device may send the device timing to the Bluetooth transmission module of the control device, so that the Bluetooth transmission module transmits the device timing to the storage module, thereby completing the storage of the device timing by the control device.
[0109] Step 606: If the number of slave devices is greater than or equal to 2, the master device obtains the device timing of the slave device and transmits the device timing to the control device.
[0110] Exemplarily, if the number of slave devices is greater than or equal to 2, the master device may obtain the device timings of all slave devices, and send the device timings of the slave devices and the device timings of the master device to the control device.
[0111] Exemplarily, after step 606 is completed, step 605 may be continued.
[0112] Through the above steps, the control device can flexibly and efficiently obtain and store the device timing.
[0113] As can be seen from the above, the wireless transmission module in the control device provided by the present invention is also used to receive the device timings sent by K electronic devices and send the device timings to the storage module. In this way, through the above operation, the flexibility of the control device in obtaining the device timings is improved.
[0114] Based on the above embodiments, the control device 100 provided by the present invention further includes an input module 104 for receiving K configuration parameters input by a user of the control device 100 ; the storage module 103 is electrically connected to the input module 104 for receiving the K configuration parameters transmitted by the input module 104 .
[0115] In one embodiment, the input module 104 may have at least one function of key input, audio input, gesture input, and touch input.
[0116] As can be seen from the above, the control device provided by the present invention further includes an input module for receiving K configuration parameters input by a user of the control device. Thus, through the above operation, the flexibility and controllability of setting the K configuration parameters can be improved.
[0117] Based on the above embodiments, the control device provided by the present invention further includes a collection module 105 for collecting schedule data of the user of the control device; the storage module 103 is electrically connected to the collection module 105 for storing the schedule data transmitted by the collection module 105.
[0118] The schedule data is associated with K configuration parameters.
[0119] In one embodiment, the acquisition module 105 may include at least one module with a data acquisition function provided in the control device 100; illustratively, the acquisition module may have sound, video, image, location, and time acquisition functions.
[0120] In one embodiment, with the user's permission, the control device 100 can control the collection module 105 to start the collection function and collect the user's schedule data.
[0121] In one embodiment, the schedule data may include the daily routine, work scene change pattern, and commuting pattern of the user of the control device 100; for example, the daily routine may include the changing pattern of the user's waking time and sleeping time, the work scene change pattern may include the switching pattern of the user's different work scenes when working, and the commuting pattern may include the changing pattern of the user's commuting time and route, etc.
[0122] In one embodiment, the schedule data is associated with K configuration parameters and may include device timing represented by the K configuration parameters, corresponding to the schedule time of the user represented by the schedule data. For example, if the schedule data represents that the user gets home from get off work at a first time, the device timing may include turning on the lights at a second time and turning on the water heater at a third time; wherein the second time may be later than the first time, and the third time may be later than the second time.
[0123] As can be seen from the above, the control device provided by the present invention also includes a collection module for collecting schedule data of the user of the control device. The storage module is electrically connected to the collection module for storing the schedule data transmitted by the collection module. The schedule data is associated with K configuration parameters. In this way, the collection module not only enables flexible collection of the user's schedule data, but also, through the association between the K configuration parameters and the schedule data, improves the matching degree between the K configuration parameters and the schedule data.
[0124] Based on the above embodiments, in the control device provided by the present invention, the wireless transmission module 101 is further used to receive K configuration parameters transmitted by other control devices, and transmit the K configuration parameters to the storage module, and transmit the K configuration parameters to other control devices.
[0125] In one embodiment, the other control devices may be the same as or different from the control device.
[0126] In some scenarios, the user controls K configuration parameters of K electronic devices through a first control device, which are usually closely related to the usage scenarios set by the user, the user's schedule data, and the user's personal hobbies, and the K configuration parameters are usually determined by the user repeatedly adjusting the parameters of the initial configuration; in this case, if the user switches from the first control device to the second control device, it may be necessary to reset, adjust, and adapt the K configuration parameters for the second control device, which makes the setting process of the K configuration parameters complicated.
[0127] In order to solve the problem of resetting the configuration parameters of the first control device used by the user due to power outages and / or failures, as well as device switching of the first control device, in the control device provided by the present invention, K configuration parameters can be stored in a storage module, so that the control device can store and memorize K configuration parameters, thereby reducing the probability of loss or damage of K configuration parameters.
[0128] For example, in other scenarios, a first user who controls K electronic devices through a first control device can share K configuration parameters with a second user who owns a second control device. In this way, when the K electronic devices corresponding to the first user are the same or similar to the K electronic devices corresponding to the second user, and the daily habits of the first user and the second user are the same or similar, the second user can directly control the K electronic devices corresponding to him through the second control device based on the K configuration parameters without having to set or configure the K configuration parameters again.
[0129] As can be seen from the above, in the control device provided by the present invention, the wireless transmission module is also used to receive K configuration parameters transmitted by other control devices, and transmit the K configuration parameters to other control devices. Thus, through the above operation, different control devices can share K configuration parameters online, thereby reducing the time cost of configuring K configuration parameters for all control devices. Furthermore, after receiving the K configuration parameters, the control device transmits them to the storage module. With the help of the storage function of the storage module, the K configuration parameters can be memorized and backed up, thereby reducing the probability of losing the K configuration parameters.
[0130] The above description of the various embodiments tends to emphasize the differences between the various embodiments. The same or similar aspects can be referenced with each other and will not be repeated herein for the sake of brevity.
[0131] The features disclosed in the various product embodiments provided by the present invention can be arbitrarily combined without conflict to obtain new product embodiments.
[0132] The above are only preferred embodiments of the present invention and are not intended to limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made using the contents of the present invention specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. A control device, characterized in that: The control device includes: a wireless transmission module and a control module; wherein: The wireless transmission module is capable of establishing K communication connections with K electronic devices simultaneously, and receiving a kth data sent by a kth device among the K electronic devices through a kth connection among the K communication connections; wherein the kth data is used to at least represent a state of the kth device; k is an integer greater than or equal to 1 and less than or equal to K; and K is an integer greater than or equal to 2; The control module is electrically connected to the wireless transmission module, and is used to receive the kth data sent by the wireless transmission module, and send the kth instruction corresponding to the kth data to the wireless transmission module, so that the wireless transmission module sends the kth instruction to the kth device; wherein, the kth instruction is used to control the state of the kth device.
2. The control device according to claim 1, characterized in that The wireless transmission module includes a Bluetooth transmission module; the Bluetooth transmission module includes K Bluetooth transmission components, which are used to establish the K communication connections with the K electronic devices respectively.
3. The control device according to claim 1, characterized in that The wireless transmission module includes a WIFI module; the WIFI module includes K WIFI components, which are used to establish the K communication connections with the K electronic devices respectively.
4. The control device according to claim 1, characterized in that The wireless transmission module is further configured to receive and send a kth type parameter sent by the kth device to the control module; wherein the kth type parameter includes a device type of the kth device; The control module is used to receive the kth type parameter and send the kth instruction associated with the kth type parameter and the kth data to the wireless transmission module.
5. The control device according to any one of claims 1 to 4, characterized in that: The control device further includes a storage module for storing K configuration parameters associated with the K electronic devices; wherein the kth parameter of the K configuration parameters is associated with the operating period and / or operating state of the kth device; The control module is electrically connected to the storage module, and is further used to obtain the kth parameter from the storage module and send the kth instruction to the wireless transmission module; wherein the kth parameter is associated with the kth data and the kth parameter.
6. The control device according to claim 5, characterized in that The K configuration parameters include a device timing sequence associated with the K electronic devices; the device timing sequence includes a startup time sequence of devices in the K electronic devices; The control module is further configured to obtain the device timing from the storage module and send timing instructions associated with the device timing to the K electronic devices to control the states of the K electronic devices.
7. The control device according to claim 6, characterized in that The wireless transmission module is further used to receive the device timing sent by the K electronic devices and send the device timing to the storage module.
8. The control device according to claim 5, characterized in that The control device further includes an input module for receiving the K configuration parameters input by a user of the control device; The storage module is electrically connected to the input module and is configured to receive the K configuration parameters transmitted by the input module.
9. The control device according to claim 5, characterized in that The control device further includes a collection module for collecting schedule data of a user of the control device; wherein the schedule data is associated with the K configuration parameters; The storage module is electrically connected to the acquisition module and is used to store the schedule data transmitted by the acquisition module.
10. The control device according to claim 5, characterized in that The wireless transmission module is further used to receive the K configuration parameters transmitted by other control devices, transmit the K configuration parameters to the storage module, and transmit the K configuration parameters to the other control devices.