Detailed Description
So that the manner in which the features and elements of the disclosed embodiments can be understood in detail, a more particular description of the disclosed embodiments, briefly summarized above, may be had by reference to the embodiments, some of which are illustrated in the appended drawings. In the following description of the technology, for purposes of explanation, numerous details are set forth in order to provide a thorough understanding of the disclosed embodiments. However, one or more embodiments may be practiced without these details. In other instances, well-known structures and devices may be shown in simplified form in order to simplify the drawing.
The embodiments are described in a progressive manner, each embodiment focuses on differences from other embodiments, and the same and similar parts among the embodiments are referred to each other.
It is understood that the air conditioning apparatus of the present disclosure refers to an apparatus for supplying treated air to a designated space to maintain a prescribed temperature, humidity, and control the contents of dust and harmful gas, for example, an air conditioner, a humidifier, a fan, and the like. The other air conditioning equipment is air conditioning equipment other than the target air conditioning equipment.
The embodiment of the present disclosure provides a control method of an air conditioning apparatus, as shown in fig. 1, including the following steps:
s101: and correcting the scene template of the target air conditioning equipment according to the operation parameters of other air conditioning equipment.
Alternatively, the other air conditioning devices are operating air conditioning devices other than the target air conditioning device within a preset geographical range. For example, the other air conditioning devices are operating air conditioning devices that are a preset distance (e.g., 500 meters) from the target air conditioning device.
Optionally, the target air conditioning device is interconnected with other air conditioning devices (e.g., by 5G), and the target air conditioning device may directly obtain its geographical location and operating parameters from the other air conditioning devices; or the target air conditioning device acquires the geographic position and the operating parameters of other air conditioning devices from the cloud platform.
S102: and controlling the target air conditioning equipment to operate according to the corrected scene template.
Generally, in the case where the geographical location of a target air conditioning device is close to the geographical locations of other air conditioning devices, the air conditioning demand of an ordinary user for the target air conditioning device is also close to the air conditioning demand of the other air conditioning devices. Therefore, the scene template of the target air conditioning equipment can be corrected by using the operation parameters of other air conditioning equipment. In this embodiment, the scene template of the target air conditioning device is corrected according to the operating parameters of the other air conditioning devices, and the target air conditioning device is controlled to operate according to the corrected scene template, so that the air conditioning requirements of the user can be better met.
In some embodiments, the scene template includes trigger conditions and control instructions for preset operations of the target air conditioning device.
And when the triggering condition of the scene template is met, starting preset operation by the target air conditioning equipment, and carrying out specific air conditioning operation according to the control instruction.
For example, the preset operation of the target air conditioning equipment is "start cooling", the trigger condition is "the indoor temperature is 28 ℃", and the control instruction is "adjust the indoor temperature to 26 ℃"; or the preset operation of the target air conditioning equipment is 'start dehumidification', the trigger condition is 'the indoor humidity is 50%', and the control instruction is 'adjust the indoor humidity to 40%'; or the preset operation of the target air conditioning equipment is ' start fresh air ', and the triggering condition is that ' the concentration of indoor PM2.5 is 90 mu g/m3(microgram/cubic meter) ", and the control instruction is that the ventilation time is 20min (minutes)". The target air conditioning equipment can perform air conditioning operation according to the scene template to complete the air conditioning function in the intelligent home scene.
In some embodiments, modifying the scene template for the target air conditioning device includes: and correcting one or more of the trigger condition and the control instruction.
Optionally, the scene template of the target air conditioning device is modified, including modifying the trigger condition, or modifying the control instruction, or modifying the trigger condition and the control instruction.
Optionally, the trigger condition comprises a temperature condition, a humidity condition, or a particulate matter concentration condition.
Optionally, the control instruction includes a temperature adjustment instruction, a humidity adjustment instruction, or a fresh air adjustment instruction.
The trigger condition and the control instruction of the scene template are configured uniformly. But different users have different requirements for trigger conditions or control instructions. Because the air conditioning demand of the user on the target air conditioning equipment is close to the air conditioning demand on other air conditioning equipment, one or more of the trigger condition and the control instruction are corrected according to the operating parameters of other air conditioning equipment, and the air conditioning equipment is controlled to operate according to the corrected trigger condition and the control instruction, so that the air conditioning demands of different users can be better adapted.
In some embodiments, the operating parameter comprises a start temperature operating value, a start humidity operating value, or a start particulate matter concentration operating value. Wherein, the starting temperature operation value is a temperature value for starting temperature regulation of other air conditioning equipment; the starting humidity operation value is a humidity value for starting humidity adjustment of other air conditioning equipment; the starting particulate matter concentration operation value is a particulate matter concentration value of other air conditioning equipment starting fresh air regulation.
In some embodiments, the operating parameter includes a target temperature operating value, a target humidity operating value, or a target ventilation time operating value. The target temperature operation value is a target temperature value for temperature regulation of other air conditioning equipment; the target humidity operation value is a target humidity value for humidity adjustment of other air conditioning equipment; the target ventilation time operation value is a target ventilation time value for performing fresh air regulation by other air conditioning equipment.
One embodiment of the control method of the air conditioning apparatus, shown in fig. 2-1, includes the steps of, when the trigger condition is a temperature condition:
s211: the start-up temperature default in the temperature condition is modified in accordance with the operating parameters of the other air conditioning equipment.
Optionally, the start-up temperature default is modified according to the start-up temperature operational value. The starting temperature default value refers to a temperature value for starting temperature adjustment in the scene template.
Optionally, modifying the start-up temperature default value according to the start-up temperature operation value includes: the start-up temperature default value is modified to a start-up temperature operational value of the first air conditioning unit.
For example, the start-up temperature default value in the temperature condition is 28 ℃, the start-up temperature operation value of the first air conditioning device is 26 ℃, and the start-up temperature default value is modified to 26 ℃.
Alternatively, the first air conditioning device is the other air conditioning device closest to the geographical location of the target air conditioning device.
When the starting temperature operation values of two or more than two other air conditioning equipment are acquired, an optimal starting temperature operation value is determined so as to correct the starting temperature default value in the temperature condition. Generally, the closer the geographic locations of the users, the closer the temperature regulation requirements of the air conditioning apparatus. The closest geographical location of the first air conditioning unit from the target air conditioning unit of all other air conditioning units indicates that the temperature regulation needs of the user at the target air conditioning unit location are closest to the user at the first air conditioning unit location. Therefore, the starting temperature default value of the target air conditioning equipment is modified into the starting temperature operation value of the first air conditioning equipment, and the temperature regulation requirement of the user can be better met.
S212: and controlling the target air conditioning equipment to operate according to the corrected starting temperature default value.
The starting temperature default value in the temperature condition is a uniformly configured temperature value. Different users have different requirements for the default value of the starting temperature. Because the temperature regulation demand of the user to the target air conditioning equipment is close to the temperature regulation demand of the user to other air conditioning equipment, the starting temperature default value of the target air conditioning equipment is corrected according to the starting temperature operation value of other air conditioning equipment, and the target air conditioning equipment is controlled to operate according to the corrected starting temperature default value, the temperature regulation demands of different users can be better met, and the user experience is improved.
When the control command is a temperature adjustment command, one embodiment of a control method of an air conditioning apparatus, shown in fig. 2-2, includes the steps of:
s221: and correcting the target temperature default value in the temperature adjusting instruction according to the operation parameters of other air conditioning equipment.
Optionally, the target temperature default value is modified according to the target temperature operation value. The target temperature default value refers to a target temperature value for temperature adjustment in the scene template.
Optionally, modifying the target temperature default value according to the target temperature operation value includes: and modifying the target temperature default value into a target temperature operation value with the highest occurrence frequency. Wherein the target temperature operation value occurring at the highest frequency is a target temperature operation value occurring at the highest frequency among target temperature operation values of two or more other air conditioning devices. For example, if the target temperature operation value of the first other air conditioning equipment is 24 ℃, the target temperature operation value of the second other air conditioning equipment is 24 ℃, and the target temperature operation value of the third other air conditioning equipment is 23 ℃, the target temperature operation value that occurs most frequently is 24 ℃.
After the target temperature operation values of two or more other air conditioning equipment are obtained, an optimal target temperature operation value is determined so as to correct the target temperature default value in the temperature adjustment instruction. Generally, the target temperature operation value with the highest frequency among the target temperature operation values of two or more other air conditioning devices is more consistent with the actual temperature regulation requirement of the user. Therefore, the target temperature default value is modified into the target temperature operation value with the highest occurrence frequency, and the temperature regulation requirement of a user can be better met.
S222: and controlling the target air conditioning equipment to operate according to the corrected target temperature default value.
And the target temperature default value in the temperature adjusting instruction is a uniformly configured temperature value. Different users have different requirements for the target temperature default. Because the temperature regulation demand of the user on the target air conditioning equipment is close to the temperature regulation demand on other air conditioning equipment, the target temperature default value of the target air conditioning equipment is corrected according to the target temperature operation value of other air conditioning equipment, and the target air conditioning equipment is controlled to operate according to the corrected target temperature default value, so that the temperature regulation demands of different users can be better met, and the user experience is improved.
One embodiment of the control method of the air conditioning apparatus, shown in fig. 3-1, includes the steps of, when the trigger condition is a humidity condition:
s311: the start-up humidity default in the humidity condition is modified according to the operating parameters of the other air conditioning equipment.
Optionally, the start-up humidity default value is modified according to the start-up humidity operation value. The starting humidity default value refers to a humidity value for starting humidity adjustment in the scene template.
Optionally, modifying the start humidity default according to the start humidity operation value includes: the start-up humidity default value is modified to a start-up humidity operational value of the first air conditioning unit.
For example, if the start-up humidity default value in the humidity condition is 50% and the start-up humidity operation value of the first air conditioning device is 46%, the start-up humidity default value is modified to 46%.
When the starting humidity operation values of two or more other air conditioning equipment are acquired, an optimal starting humidity operation value is determined so as to correct the starting humidity default value in the humidity condition. Generally, the closer the geographical locations of the users, the closer the humidity regulation needs of the air conditioning device. The closest geographical location of the first air conditioning unit from among all the other air conditioning units indicates that the humidity conditioning needs of the user at the target air conditioning unit location are closest to the humidity conditioning needs of the user at the first air conditioning unit location. Therefore, the starting humidity default value of the target air conditioning equipment is modified into the starting humidity operation value of the first air conditioning equipment, and the humidity adjusting requirement of a user can be better met.
S312: and controlling the target air conditioning equipment to operate according to the corrected starting humidity default value.
The starting humidity default value in the humidity condition is a uniformly configured humidity value. Different users have different requirements for activating the humidity default. Because the humidity adjusting requirements of the user on the target air conditioning equipment are close to the humidity adjusting requirements on other air conditioning equipment, the starting humidity default value of the target air conditioning equipment is corrected according to the starting humidity operation value of other air conditioning equipment, and the target air conditioning equipment is controlled to operate according to the corrected starting humidity default value, the humidity adjusting requirements of different users can be better met, and the user experience is improved.
When the control command is a humidity adjustment command, one embodiment of a control method of an air conditioning apparatus, as shown in fig. 3-2, includes the steps of:
s321: and correcting the target humidity default value in the humidity adjusting instruction according to the operating parameters of other air conditioning equipment.
Optionally, the target humidity default value is modified according to the target humidity operation value. The target humidity default value is a target humidity value for humidity adjustment in the scene template.
Optionally, modifying the target humidity default value according to the target humidity operation value includes: and modifying the target humidity default value into a target humidity operation value with the highest occurrence frequency. The target humidity operation value with the highest frequency is the target humidity operation value with the highest frequency in the target humidity operation values of two or more other air conditioning equipment. For example, if the target humidity operation value of the first other air conditioning unit is 38%, the target humidity operation value of the second other air conditioning unit is 36%, and the target humidity operation value of the third other air conditioning unit is 38%, the target humidity operation value occurring at the highest frequency is 38%.
After the target humidity operation values of two or more other air conditioning equipment are obtained, an optimal target humidity operation value is determined so as to correct the target humidity default value in the humidity adjustment instruction. Generally, the target humidity operation value with the highest frequency among the target humidity operation values of two or more other air conditioning devices is more consistent with the actual humidity adjustment requirement of the user. Therefore, the target humidity default value is modified into the target humidity operation value with the highest occurrence frequency, and the humidity adjusting requirement of a user can be better met.
S322: and controlling the target air conditioning equipment to operate according to the corrected target humidity default value.
The target humidity default value in the humidity adjusting instruction is a uniformly configured humidity value. Different users have different requirements for the target humidity default. Because the humidity adjusting requirements of the user on the target air conditioning equipment are close to the humidity adjusting requirements on other air conditioning equipment, the target humidity default value of the target air conditioning equipment is corrected according to the target humidity operation value of other air conditioning equipment, and the target air conditioning equipment is controlled to operate according to the corrected target humidity default value, so that the humidity adjusting requirements of different users can be better met, and the user experience is improved.
One embodiment of the control method of the air conditioning apparatus, shown in fig. 4-1, includes the steps of, when the trigger condition is a particulate matter concentration condition:
s411: the start-up particulate matter concentration default value in the particulate matter concentration condition is corrected based on operating parameters of other air conditioning equipment.
Optionally, the particulate matter concentration comprises a PM2.5 concentration, a PM10 concentration, or a HCL concentration.
Optionally, the start particulate matter concentration default value is modified based on the start particulate matter concentration operational value. The starting particulate matter concentration default value refers to a particulate matter concentration value for starting fresh air regulation in the scene template.
Optionally, the correcting the start particulate matter concentration default value according to the start particulate matter concentration operation value includes: the start-up particulate matter concentration default value is modified to a start-up particulate matter concentration operational value of the first air conditioning plant.
For example, the start-up PM2.5 concentration default in the PM2.5 concentration condition is 90 μ g/m3The startup PM2.5 concentration operation value of the first air conditioning equipment is 80 μ g/m3Then, the default value of the concentration of the PM2.5 to be started is modified to 80 mu g/m3。
When the start particulate matter concentration operation values of two or more other air conditioning devices are acquired, an optimal start particulate matter concentration operation value is determined from the acquired start particulate matter concentration operation values to correct a start particulate matter concentration default value in the particulate matter concentration condition. Generally, the closer the geographical locations of the users, the closer the fresh air conditioning requirements of the air conditioning device. The closest geographical location of the first air conditioning unit from the target air conditioning unit among all other air conditioning units indicates that the fresh air conditioning needs of the user at the target air conditioning unit location are closest to the fresh air conditioning needs of the user at the first air conditioning unit location. Therefore, the starting particulate matter concentration default value of the target air conditioning equipment is modified into the starting particulate matter concentration operation value of the first air conditioning equipment, and the fresh air conditioning requirement of a user can be better met.
S412: and controlling the target air conditioning equipment to operate according to the corrected default value of the concentration of the starting particulate matters.
The starting particulate matter concentration default value in the particulate matter concentration condition is a uniformly configured particulate matter concentration value. Different users have different requirements for initiating a particulate matter concentration default. Because the new trend regulation demand of user to target air conditioning equipment is close with the new trend regulation demand to other air conditioning equipment, consequently revise target air conditioning equipment's the start-up particulate matter concentration default according to other air conditioning equipment's start-up particulate matter concentration running value and according to the start-up particulate matter concentration default after the revision control target air conditioning equipment operation, can satisfy different users ' new trend regulation demand better to promote user experience.
When the control command is a fresh air adjustment command, one embodiment of the control method of the air conditioning equipment is shown in fig. 4-2, and comprises the following steps:
s421: and correcting the target ventilation time default value in the fresh air adjusting instruction according to the operating parameters of other air adjusting equipment.
Optionally, the target ventilation time default value is modified according to the target ventilation time operation value. The target ventilation time default value refers to a target ventilation time value for performing fresh air regulation in the scene template.
Optionally, modifying the target ventilation time default value according to the target ventilation time operation value includes: and modifying the default value of the target ventilation time into a target ventilation time operation value with the highest occurrence frequency. The target ventilation time operation value with the highest occurrence frequency is a target ventilation time operation value with the highest occurrence frequency in the target ventilation time operation values of the two or more other air conditioning equipment. For example, if the target ventilation time operation value of the first other air conditioning equipment is 30min, the target ventilation time operation value of the second other air conditioning equipment is 30min, and the target ventilation time operation value of the third other air conditioning equipment is 32min, the highest-frequency target ventilation time operation value is 30 min.
After the target ventilation time operation values of two or more other air conditioning equipment are obtained, an optimal target ventilation time operation value is determined so as to modify a target ventilation time default value in the fresh air conditioning instruction. Generally, the target ventilation time operation value with the highest frequency among the target ventilation time operation values of two or more other air conditioning devices better meets the actual fresh air conditioning requirement of a user. Therefore, the target ventilation time default value is modified into the target ventilation time operation value with the highest occurrence frequency, and the fresh air regulation requirement of a user can be better met.
S422: and controlling the target air conditioning equipment to operate according to the corrected target ventilation time default value.
And the target ventilation time default value in the fresh air adjusting instruction is a uniformly configured ventilation time value. Different users have different requirements for the target ventilation time default. Because the fresh air adjusting demand of the user on the target air conditioning equipment is close to the fresh air adjusting demand of the user on other air conditioning equipment, the target ventilation time default value of the target air conditioning equipment is corrected according to the target ventilation time running value of the other air conditioning equipment, and the target air conditioning equipment is controlled to run according to the corrected target ventilation time default value, the fresh air adjusting demands of different users can be better met, and the user experience is improved.
An embodiment of the present disclosure provides a control apparatus of an air conditioning device, as shown in fig. 5, including:
a correction unit 10 configured to correct the scene template of the target air conditioning device according to the operation parameters of the other air conditioning devices; and
and a control unit 20 configured to control the target air conditioning device to operate according to the corrected scene template.
In some embodiments, the scene template includes trigger conditions and control instructions for preset operations of the target air conditioning device.
In some embodiments, the correction unit 10 is configured to: and correcting one or more of the trigger condition and the control instruction.
Optionally, the trigger condition comprises a temperature condition, a humidity condition, or a particulate matter concentration condition.
Optionally, the control instruction includes a temperature adjustment instruction, a humidity adjustment instruction, or a fresh air adjustment instruction.
In some embodiments, the correction unit 10 is configured to: when the triggering condition of the scene template is a temperature condition, correcting a starting temperature default value in the temperature condition according to the operating parameters of other air conditioning equipment; the control unit 20 is configured to: and controlling the target air conditioning equipment to operate according to the corrected starting temperature default value.
Optionally, the correction unit 10 is configured to: and correcting the default value of the starting temperature according to the running value of the starting temperature.
Optionally, the correction unit 10 is configured to: modifying the start-up temperature default value to a start-up temperature operational value of the first air conditioning unit.
In some embodiments, the correction unit 10 is configured to: when the triggering condition of the scene template is a humidity condition, correcting a starting humidity default value in the humidity condition according to the operating parameters of other air conditioning equipment; the control unit 20 is configured to: and controlling the target air conditioning equipment to operate according to the corrected starting humidity default value.
Optionally, the correction unit 10 is configured to: and correcting the default value of the starting humidity according to the operating value of the starting humidity.
Optionally, the correction unit 10 is configured to: and modifying the starting humidity default value into a starting humidity operation value of the first air conditioning equipment.
In some embodiments, the correction unit 10 is configured to: when the trigger condition of the scene template is a particulate matter concentration condition, correcting a starting particulate matter concentration default value in the particulate matter concentration condition according to the operating parameters of other air conditioning equipment; the control unit 20 is configured to: and controlling the target air conditioning equipment to operate according to the corrected default value of the concentration of the starting particulate matters.
Optionally, the correction unit 10 is configured to: and correcting the default value of the concentration of the starting particulate matter according to the running value of the concentration of the starting particulate matter.
Optionally, the correction unit 10 is configured to: modifying the start-up particulate matter concentration default value to a start-up particulate matter concentration operational value of the first air conditioning plant.
In some embodiments, the correction unit 10 is configured to: when the control instruction of the scene template is a temperature adjusting instruction, correcting a target temperature default value in the temperature adjusting instruction according to the operating parameters of other air conditioning equipment; the control unit 20 is configured to: and controlling the target air conditioning equipment to operate according to the corrected target temperature default value.
Optionally, the correction unit 10 is configured to: and correcting the target temperature default value according to the target temperature operation value.
Optionally, the correction unit 10 is configured to: and modifying the target temperature default value into a target temperature operation value with the highest occurrence frequency.
In some embodiments, the correction unit 10 is configured to: when the control instruction of the scene template is a humidity adjusting instruction, correcting a target humidity default value in the humidity adjusting instruction according to the operating parameters of other air conditioning equipment; the control unit 20 is configured to: and controlling the target air conditioning equipment to operate according to the corrected target humidity default value.
Optionally, the correction unit 10 is configured to: and correcting the target humidity default value according to the target humidity operation value.
Optionally, the correction unit 10 is configured to: and modifying the target humidity default value into a target humidity operation value with the highest occurrence frequency.
In some embodiments, the correction unit 10 is configured to: when the control instruction of the scene template is a fresh air adjusting instruction, correcting a target ventilation time default value in the fresh air adjusting instruction according to the operating parameters of other air adjusting equipment; the control unit 20 is configured to: and controlling the target air conditioning equipment to operate according to the corrected target ventilation time default value.
Optionally, the correction unit 10 is configured to: and correcting the default value of the target ventilation time according to the target ventilation time operation value.
Optionally, the correction unit 10 is configured to: and modifying the default value of the target ventilation time into a target ventilation time operation value with the highest occurrence frequency.
The embodiment of the disclosure provides an air conditioning device, which comprises the control device of the air conditioning device.
Embodiments of the present disclosure provide a computer-readable storage medium storing computer-executable instructions configured to perform the control method of the air conditioning apparatus described above.
The disclosed embodiments provide a computer program product comprising a computer program stored on a computer-readable storage medium, the computer program comprising program instructions that, when executed by a computer, cause the computer to perform the above-described control method of an air conditioning apparatus.
The computer-readable storage medium described above may be a transitory computer-readable storage medium or a non-transitory computer-readable storage medium.
An embodiment of the present disclosure provides an electronic device, a structure of which is shown in fig. 6, the electronic device including:
at least one processor (processor)60, one processor 60 being exemplified in fig. 6; and a memory (memory)61, and may further include a Communication Interface (Communication Interface)62 and a bus 63. The processor 60, the communication interface 62 and the memory 61 may communicate with each other through a bus 63. Communication interface 62 may be used for information transfer. The processor 60 may call logic instructions in the memory 61 to execute the control method of the air conditioning device of the above-described embodiment.
Furthermore, the logic instructions in the memory 61 may be implemented in the form of software functional units and stored in a computer readable storage medium when sold or used as a stand-alone product.
The memory 61 is a computer-readable storage medium, and can be used for storing software programs, computer-executable programs, such as program instructions/modules corresponding to the methods in the embodiments of the present disclosure. The processor 60 executes functional applications and data processing, i.e., implements the control method of the air conditioning apparatus in the above-described method embodiments, by executing software programs, instructions, and modules stored in the memory 61.
The memory 61 may include a storage program area and a storage data area, wherein the storage program area may store an operating system, an application program required for at least one function; the storage data area may store data created according to the use of the terminal device, and the like. Further, the memory 61 may include a high-speed random access memory, and may also include a nonvolatile memory.
The technical solution of the embodiments of the present disclosure may be embodied in the form of a software product, where the computer software product is stored in a storage medium and includes one or more instructions to enable a computer device (which may be a personal computer, a server, or a network device) to execute all or part of the steps of the method of the embodiments of the present disclosure. And the aforementioned storage medium may be a non-transitory storage medium comprising: a U-disk, a removable hard disk, a Read-Only Memory (ROM), a Random Access Memory (RAM), a magnetic disk or an optical disk, and other various media capable of storing program codes, and may also be a transient storage medium.
The above description and drawings sufficiently illustrate embodiments of the disclosure to enable those skilled in the art to practice them. Other embodiments may incorporate structural, logical, electrical, process, and other changes. The examples merely typify possible variations. Individual components and functions are optional unless explicitly required, and the sequence of operations may vary. Portions and features of some embodiments may be included in or substituted for those of others. The scope of the disclosed embodiments includes the full ambit of the claims, as well as all available equivalents of the claims. As used in this application, although the terms "first," "second," etc. may be used in this application to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, a first element could be termed a second element, and, similarly, a second element could be termed a first element, unless the meaning of the description changes, so long as all occurrences of the "first element" are renamed consistently and all occurrences of the "second element" are renamed consistently. The first and second elements are both elements, but may not be the same element. Furthermore, the words used in the specification are words of description only and are not intended to limit the claims. As used in the description of the embodiments and the claims, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. Similarly, the term "and/or" as used in this application is meant to encompass any and all possible combinations of one or more of the associated listed. Furthermore, the terms "comprises" and/or "comprising," when used in this application, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. Without further limitation, an element defined by the phrase "comprising an … …" does not exclude the presence of other like elements in a process, method or apparatus that comprises the element. In this document, each embodiment may be described with emphasis on differences from other embodiments, and the same and similar parts between the respective embodiments may be referred to each other. For methods, products, etc. of the embodiment disclosures, reference may be made to the description of the method section for relevance if it corresponds to the method section of the embodiment disclosure.
In the embodiments disclosed herein, the disclosed methods, products (including but not limited to devices, apparatuses, etc.) may be implemented in other ways. For example, the above-described apparatus embodiments are merely illustrative, and for example, the division of the units may be merely a logical division, and in actual implementation, there may be another division, for example, multiple units or components may be combined or integrated into another system, or some features may be omitted, or not executed. In addition, the shown or discussed mutual coupling or direct coupling or communication connection may be an indirect coupling or communication connection through some interfaces, devices or units, and may be in an electrical, mechanical or other form. The units described as separate parts may or may not be physically separate, and parts displayed as units may or may not be physical units, may be located in one place, or may be distributed on a plurality of network units. Some or all of the units can be selected according to actual needs to implement the present embodiment. In addition, functional units in the embodiments of the present disclosure may be integrated into one processing unit, or each unit may exist alone physically, or two or more units are integrated into one unit.
The flowchart and block diagrams in the figures illustrate the architecture, functionality, and operation of possible implementations of systems, methods and computer program products according to embodiments of the present disclosure. In this regard, each block in the flowchart or block diagrams may represent a module, segment, or portion of code, which comprises one or more executable instructions for implementing the specified logical function(s). In some alternative implementations, the functions noted in the block may occur out of the order noted in the figures. For example, two blocks shown in succession may, in fact, be executed substantially concurrently, or the blocks may sometimes be executed in the reverse order, depending upon the functionality involved. In the description corresponding to the flowcharts and block diagrams in the figures, operations or steps corresponding to different blocks may also occur in different orders than disclosed in the description, and sometimes there is no specific order between the different operations or steps. For example, two sequential operations or steps may in fact be executed substantially concurrently, or they may sometimes be executed in the reverse order, depending upon the functionality involved. Each block of the block diagrams and/or flowchart illustrations, and combinations of blocks in the block diagrams and/or flowchart illustrations, can be implemented by special purpose hardware-based systems that perform the specified functions or acts, or combinations of special purpose hardware and computer instructions.