The present disclosure pertains to the field of display technology, and more particularly to an impedance difference compensation circuit, a display panel and a mobile terminal.
In a display driving circuit of the traditional technology, for each path of image signals, the lengths of transmission paths between signal transmission paths and display wirings are different, equivalent parameters between the signal transmission paths and the corresponding display wirings are different, and a phenomenon that image signals received by different display wirings in the display panel are inconsistent occurs; at this time, the display panel may display uneven images; as a consequence, difference exists in equivalent parameters in the signal transmission paths in the prior art, so that the definition of the image in the display panel may be reduced and user experience is poor.
An object of the present disclosure is to provide an impedance difference compensation circuit, a display panel and a mobile terminal, which includes but is not limited to solve a technical problem that transmission efficiency and transmission time of various signals are inconsistent for the reason that equivalent parameters of various signal transmission paths in the display panel driving circuit are different.
In order to solve the technical problem described above, the technical solution to be adopted by the embodiments of the present disclosure is as follows:
an impedance difference compensation circuit, which is applied in a display panel driving circuit, the display panel driving circuit includes:
a drive integrated circuit, including multiple signal transmission channels respectively configured to access drive signals and being arranged at intervals;
a first signal processing circuit electrically connected with the multiple signal transmission channels respectively and configured to respectively transmit the multiple drive signals;
a second signal processing circuit electrically connected with the first signal processing circuit and configured to perform integrated conversion on the multiple drive signals; and
a signal transmission circuit electrically connected with the second signal processing circuit, wherein the signal transmission circuit comprises multiple display wirings which are configured to output the drive signals and are arranged in array, and wherein the signal transmission channels are arranged corresponding to the display wirings respectively;
where the impedance difference compensation circuit includes a resistance device, the resistance device is connected in series or in parallel to an input of the first signal processing circuit and is arranged to enable equivalent resistances between the multiple signal transmission channels and the multiple display wirings be identical; and
where the resistance device comprises at least one resistor.
Another object of the present disclosure is to provide a display panel, including:
a drive integrated circuit which includes multiple signal transmission channels respectively configured to access drive signals and being arranged at intervals;
a first signal processing circuit electrically connected with the multiple signal transmission channels respectively and configured to transmit the multiple drive signals respectively;
a second signal processing circuit electrically connected with the first signal processing circuit and configured to perform integrated conversion on the multiple drive signals; and
a signal transmission circuit electrically connected with the second signal processing circuit, wherein the signal transmission circuit comprises multiple display wirings which are configured to output the drive signals and are arranged in array, wherein the multiple signal transmission channels are arranged corresponding to the multiple display wirings respectively;
a video display circuit electrically connected with the signal transmission circuit and configured to perform video display according to the multiple drive signals; and
a resistance device connected in series or in parallel with an input of the first signal processing circuit and configured to enable equivalent resistances between the multiple signal transmission channels and the multiple display wirings be identical; wherein the resistance device comprises at least one resistor.
Another object of the present disclosure is to provide a mobile terminal, including:
a signal collector configured to generate multiple drive signals according to image information; and
a display panel collected with the signal collector and configured to perform video display according to the multiple drive signals;
where the display panel comprises:
a drive integrated circuit, including multiple signal transmission channels respectively configured to receive drive signals and being arranged at intervals;
a first signal processing circuit electrically connected with the multiple signal transmission channels respectively and configured to transmit the multiple drive signals respectively;
a second signal processing circuit electrically connected with the first signal processing circuit and configured to perform integrated conversion on the multiple drive signals; and
a signal transmission circuit electrically connected with the second signal processing circuit, wherein the signal transmission circuit comprises multiple display wirings which are configured to output the drive signals and are arranged in array, wherein the multiple signal transmission channels are arranged corresponding to the multiple display wirings respectively;
a video display circuit electrically connected with the signal transmission circuit and configured to perform video display according to the multiple drive signals; and
a resistance device connected in series or in parallel with an input of the first signal processing circuit and configured to enable equivalent resistances between the multiple signal transmission channels and the multiple display wirings be identical; wherein the resistance device comprises at least one resistor.
The impedance difference compensation circuit provided by the embodiments of the present disclosure compensates the impedance difference in each of the signal transmission paths through the resistance device to enable equivalent resistances in each of the signal transmission paths to be identical, all display wirings may receive the multiple drive signals which are completely consistent, the display panel displays uniform images according to these multiple drive signals which are completely consistent; in the present disclosure, the specific circuit structures of the various circuit modules in the display panel driving circuit need not to be changed, the equivalent resistances in each of the signal transmission paths may be kept consistent through the resistance device, and a problem that there is difference in the equivalent resistances of the signals transmission paths in the display panel driving circuit in the exemplified technology is solved.
In order to explain the embodiments of the present disclosure more clearly, a brief introduction regarding the accompanying drawings that need to be used for describing the embodiments or the prior art is given below; it is obvious that the accompanying drawings described as follows are only some embodiments of the present disclosure; for the person of ordinary skill in the art, other drawings may also be obtained according to the current drawings on the premise of paying no creative labor.
In order to make the purpose, the technical solution and the advantages of the present disclosure be clearer and more understandable, the present disclosure will be further described in detail below with reference to accompanying figures and embodiments. It should be understood that the specific embodiments described herein are merely intended to illustrate but not to limit the present disclosure.
It should be noted that, when one component is described to be “fixed to” or “arranged on” another component, this component may be directly or indirectly arranged on another component. When one component is described to be “connected with” another component, it may be directly or indirectly connected to the other component. Orientation or position relationships indicated by terms including “upper”, “lower”, “left” and “right” are based on the orientation or position relationships shown in the accompanying figures and is only used for the convenience of description, instead of indicating or implying that the indicated device or element must have a specific orientation and is constructed and operated in a particular orientation, and thus should not be interpreted as limitation to the present disclosure. For the person of ordinary skill in the art, the specific meanings of the aforesaid terms may be interpreted according to specific conditions. Terms of “the first” and “the second” are only for the purpose of describing conveniently and should not be interpreted as indicating or implying relative importance or impliedly indicating the number of indicated technical features. “Multiple/a plurality of” means two or more unless there is an additional explicit and specific limitation.
It should be noted that, according to transmission principle and characteristic of image data in a display panel, when a display panel driving circuit is connected with multiple drive signals, where the drive signals include a large amount of image data, the drive signals are transmitted and converted through the display panel driving circuit, then, the display panel is driven to display high-definition images through the multiple drive signals so as to meet the viewing requirement of the user.
The first signal processing circuit 102 is electrically connected with each of the signal transmission channels, the drive integrated circuit 101 transmits multiple drive signals to the first signal processing circuit 102, the first signal processing circuit 102 has a signal transmission function and is configured to transmit the multiple drive signals respectively; the first signal processing circuit 102 has characteristics of low signal transmission error rate, high transmission rate and extremely high compatibility due to the fact that a signal transmission chip and a flexible substrate circuit are integrated on the first signal processing circuit 102; the first signal processing circuit 102 serves as a signal transmission link between different circuit modules, the first signal processing circuit 102 may keep the integrity of data in the signals completely; thus, multiple drive signals may be transmitted to the second signal processing circuit 103 through the first signal processing circuit 102, the drive signals may be transmitted in the display panel driving circuit rapidly and completely. The first signal processing circuit 102 in the embodiment of the present disclosure reduces errors of drive signals in the transmission process, enhances the compatibility of the display panel driving circuit, and saves a manufacturing cost of the display panel driving circuit.
The second signal processing circuit 103 is connected with the first signal processing circuit 102, the first signal processing circuit 102 transmits the multiple drive signals to the second signal processing circuit 103, the second signal processing circuit 103 performs integrated conversion on the multiple drive signals to enhance an image drive capacity of the drive signals, so that the display panel may be driven to display high-definition images having higher image quality through the multiple drive signals; where the second signal processing circuit 103 is a sector centralized processing circuit and has the function of implementing centralized conversion and processing of signals, so that an information interaction among signals of different paths may be realized, and a complexity degree of the circuit function achieved by multiple paths of signals is improved, so that the multiple drive signals as output by the second signal processing circuit 103 may drive the electronic circuit to achieve more complex operations; in the embodiment of the present disclosure, since the multiple drive signals as output by the first signal processing circuit 102 are independent from each other, each path of drive signal may achieve a specific function in the display panel, the multiple drive signals may be integrated and converted through the second signal processing circuit 103, such that the multiple drive signals may be matched with each other to achieve overall circuit function, the display panel displays a dynamic and clear image according to the multiple drive signals, which enables the display panel in the embodiment of the present disclosure to process and receive different types of image data, so that the user has better viewing experience, and an actual different viewing requirements of the user may be met through the images in the display panel.
It should be noted that, both the specific circuit structure of the first signal processing circuit 102 and the specific circuit structure of the second signal processing circuit 103 are the circuit structure in the exemplary technology; for example, the first signal processing signal 102 is a COF (Chip On Flex) circuit in the traditional display panel field; the first signal processing circuit 102 includes an electronic device such as a rectifier and a logic gate, conversion among signals of different amplitudes, and signal transmission control may be realized through the rectifier and the logic gate, so that when the first signal processing circuit 102 accesses different types of drive signals, the first signal processing circuit 102 may enable the drive signals to be mutually transmitted among different circuit modules through conversion and transmission functions of electronic components in the first signal processing circuit 102; for another example, the second signal processing circuit 103 is a fan-out circuit in the traditional display panel field, the second signal processing circuit 103 includes electronic devices including a plurality of MOS (Metal Oxide Semiconductor) tubes and a plurality of diodes, where the plurality of MOS tubes are distributed in an array on PCB (Printed Circuit Board), when the MOS tube array in the second signal processing circuit 103 accesses multiple drive signals, the plurality of MOS tubes and the plurality of diodes may perform an integrated processing on the multiple drive signals by controlling switch on or switch off of the MOS tube, such that the multiple drive signals as output by the second signal processing circuit 103 may be used as a whole function to drive the display panel to display clearer and more complex images.
The signal transmission circuit 104 is electrically connected with the second signal processing circuit 103, the second signal processing circuit 103 transmits the multiple drive signals to the signal transmission circuit 104, the multiple drive signals may be rapidly transmitted through the signal transmission circuit 104, so that the display panel may receive image data in real time; where the signal transmission circuit 104 includes: multiple display wirings in an arrangement of array, and the multiple display wirings are distributed at equal intervals in the signal transmission circuit 104, image data may be received uniformly by the display panel through the arrangement mode of the display wirings, so that pictures presented by the display panel are more stable and more coordinated; as a consequence, the drive signals may be output through the display wirings, then, image data are transmitted, and good viewing experience is brought to the user by the display panel; as shown in the signal transmission circuit 104 of
Where, in the embodiment of the present disclosure, the signal transmission channels are arranged corresponding to the display wirings respectively, so that when the signal transmission channel accesses the drive signal, a flow of a transmission path of each path of drive signal is: the signal transmission channel, the first signal processing circuit 102, the second signal processing circuit 103 and the display wiring, the display panel receives the drive signals through the display wirings, and the display panel may be driven to operate in a normal working state in real time through the drive signals, the display panel may display high-definition images in real time so as to meet people's viewing requirements; however, according to the module structure of the display panel driving circuit as shown in
As described above, since the relative positions between the signal transmission paths and the corresponding display wirings are different in the drive integrated circuit 101 and the signal transmission circuit 104, so that the equivalent resistances between the signal transmission channels and the corresponding display wirings in the signal transmission paths are different, the transmission time of the multiple drive signals in the signal transmission paths is different, the display panel may receive multiple drive signals that are inconsistent, so that there is a problem that images in the display panel are inconsistent and incongruous in the display panel, the real viewing experience of the user is greatly reduced; moreover, if the structure of the display panel driving circuit is more complex, when the number of paths of the drive signals transmitted by the display panel driving circuit increases, differences in the equivalent resistances in the signal transmission paths may be larger, and a problem that images displayed by the display panel are seriously asymmetrical may occur; therefore, the aforesaid display panel driving circuit may not be widely used in different types of display panels, and particularly in large-scale and wide-screen display panels, which results in a low practicability of the display panel driving circuit in the embodiment of the present disclosure.
Aiming at the problem that there is difference in signal transmission of the display panel driving circuit in
In the impedance difference compensation circuit 20 as shown in
exemplarily, as shown in
Therefore, in the application framework shown in
As an optional implementation mode, as shown in
As an optional implementation mode,
As an optional implementation mode,
in aforesaid formula, R1 represents the resistance value of the first resistor R1, R2 represents the resistance value of the second resistor R2, R0 represents a preset equivalent parameter; it needs to be explained that, R0 is preset equivalent parameter, and the value of R0 is set according to the equivalent resistances between the first signal processing circuit 102 and the second signal processing circuit 102 in each of the signal transmission paths; for example, R0 is set to be 100 ohms; therefore, in the embodiment of the present disclosure, the resistance device 201 may enable the equivalent resistances between the multiple signal transmission channels and the corresponding display wirings to be kept the same according to the resistance value of the first resistor R1 and the second resistor R1 connected in parallel, the multiple drive signals have the same transmission speed and transmission time in the signal transmission process, the display wirings may receive the completely consistent drive signals, and the operation is simple and convenient.
As an optional implementation mode,
In aforesaid formula (2), R3 represents the resistance value of the third resistor R3, R4 represents the resistance value of the fourth resistor R4, R5 represents the resistance value of the fifth resistor R5, R0 represents the preset equivalent parameter; wherein the value of R0 is set according to the equivalent resistance between the first signal processing circuit 102 and the second signal processing circuit 103 in each signal transmission path, therefore, in this embodiment of the present disclosure, the resistance device 201 is configured to enable the equivalent resistance between each signal transmission channel and the corresponding display wiring to be identical according to a parallel resistance value of the third resistor R3, the fourth resistor R4 and the fifth resistor R5 connected in parallel, thereby implementing dynamically compensating impedance difference in each of the signal transmission paths to improve consistency of images in the display panel.
In combination with the specific circuit structure of the resistance device 201 shown in
It may be understood that, since
As an optional embodiment mode,
R
6
+R
7
=R
0 (3)
in aforesaid formula (3), R6 represents the resistance value of the sixth resistor R6, R7 represents the resistance value of the sixth resistor R7, R0 represents the preset equivalent parameter, where, R0 represents the preset equivalent parameter in each of the signal transmission paths; in this embodiment of the present disclosure, the resistance device 201 may adjust the equivalent resistance between each signal transmission channel and the corresponding display wiring by two resistors connected in parallel (including the sixth resistor R6 and the seventh resister R7), the circuit structure is simple and is prone to be implemented, such that each drive signal in the display panel driving circuit has the same transmission time and loss in the transmission process, the display panel may receive multiple drive signals which are completely consistent, so that the display panel may dynamically display completely consistent and coordinated images or videos.
As an optional implementation mode,
R
8
+R
9
+R
10
=R
0 (4)
In aforesaid formula (4), R8 represents the resistance value of the eighth resistor R8, R9 represents the resistance value of the ninth resistor R9, R10 represents the resistance value of the tenth resistor R10, R0 represents the preset equivalent parameter, where R0 is the equivalent parameter preset by the technical personnel; thus, the resistance device 201 in the embodiment of the present disclosure may enable the equivalent resistances in the multiple signal transmission paths of the display panel to be identical through three resistors connected in parallel (including the eighth resistor R8, the ninth resistor R9, the tenth resistor R10), each of the display wirings in the signal transmission circuit 104 may receive completely consistent drive signal, so that a problem of nonuniformity and incoordination of images due to impedance differences of the drive signals in the transmission process may be avoided, and the practicability of the display panel driving circuit is greatly improved.
It should be noted that, since the specific circuit structure of the resistance device 201 shown in
As an optional embodiment, in the aforesaid drive integrated circuit 101, the signal transmission channel includes a buffer; when the signal traditional channel is communicated with a drive signal, the drive signal may be stored temporarily through the buffer to avoid occurrence of loss of image data when the drive signals are transmitted in the signal transmission channel; due to the fact that, the display panel driving circuit needs to access large-capacity image data in real time through the signal transmission channels in the process of displaying images using the display panel, the drive signals may be cached and retained in real time through the buffer, and large amount of drive signals may be accessed rapidly through the signal transmission channels, the signal transmission capability of the display panel driving circuit in the embodiment of the present disclosure is improved, so that the display panel is enabled to dynamically display images or videos according to the drive signals to meet the actual requirements of the user.
As an optional embodiment, the number of the signal transmission channels is equal to the number of the display wirings in the drive integrated circuit 101 and the signal transmission circuit 104; for example, the drive integrated circuit 101 includes eight signal transmission channels, the signal transmission circuit 104 also includes eight display wirings; in combination with what described above, since the signal transmission channels are corresponding one-to-one to the display wirings respectively, then, in the embodiment of the present disclosure, a transmission path of each path of drive signal includes a signal transmission channel and a display wiring, there are no redundant signal transmission channels or redundant display wirings in the display panel driving circuit, and a problem of mismatching of signal transmission in the drive integrated circuit 101 and the signal transmission circuit 104 is avoided, the signal transmission efficiency of the display panel driving circuit in the embodiment of the present disclosure is greatly improved, and a problem of a waste of electronic components in the display panel driving circuit is avoided.
As an optional embodiment, the resistance device 201 is arranged in the drive integrated circuit 101; or as an alternative, the resistance device 201 is arranged on a wiring between the drive integrated circuit 101 and the first signal processing circuit 102.
As an optional embodiment, where the resistance device 201 includes two resistors connected in parallel, and the two resistors connected in parallel are an eleventh resistor R11 and a twelfth resistor R12 respectively.
Where, a first end of the eleventh resistor R11 and a first end of the twelfth resistor R12 are in common connection with the signal transmission channel, a second end of the eleventh resistor R11 and a second end of the twelfth resistor R12 are in common connection with the first signal processing circuit 102, and a resistance value of the eleventh resistor R11 and a resistance value of the twelfth resistor R12 meet the following conditions:
In aforesaid formula (5), R11 represents the resistance value of the eleventh resistor R11, R12 represents the resistance value of the twelfth resistor R12, R0 represents the preset equivalent parameter.
As an optional implementation mode, the resistance device 201 includes three resistors connected in parallel, and the three resistors connected in parallel are a thirteenth resistor R13, a fourteenth resistor R14 and a fifteenth resistor R15 respectively, where a first end of the thirteenth resistor R13, a first end of the fourteenth resistor R14 and a first end of the fifteenth resistor R15 are in common connection with the signal transmission channel, a second end of the thirteenth resistor R13, a second end of the fourteenth resistor R14 and a second end of the fifteenth resistor R15 are in common connection with the first signal processing circuit 102, and a resistance value of the thirteenth resistor R13, a resistance value of the fourteenth resistor R14 and a resistance value of the fifteenth resistor R15 meet the following conditions:
In aforesaid formula (6), R13 represents the resistance value of the thirteenth resistor R13, R14 represents the resistance value of the fourteenth resistor R14, R15 represents the resistance value of the thirteenth resistor R15, R0 represents the preset equivalent parameter.
As an optional implementation mode, where the resistance device 201 includes two resistors connected in series, and the two resistors connected in series are a sixteenth resistor R16 and a seventeenth resistor R17 respectively.
Where a first end of the sixteenth resistor R16 is connected with a signal transmission channel, a second end of the sixteenth resistor R16 is connected with a first end of the seventeenth resistor R17, a second end of the seventeenth resistor R17 is connected with the first signal processing circuit 102, and a resistance value of the sixteenth resistor R16 and a resistance value of the seventeenth resistor R17 meet the following condition:
R
16
+R
17
=R
0 (7)
In aforesaid formula (7), R16 represents the resistance value of the sixteenth resistor R16, R17 represents the resistance value of the seventeenth resistor R17, R0 represents the preset equivalent parameter.
As an optional implementation mode, where the resistance device 201 includes three resistors connected in series, and the three resistors connected in series are an eighteenth resistor R18, a nineteenth resistor R19 and a twentieth resistor R20 respectively.
A first end of the eighteenth resistor R18 is connected with the signal transmission channel, a second end of the eighteenth resistor R18 is connected with a first end of the nineteenth resistor R19, a second end of the nineteenth resistor R19 is connected with a first end of the twentieth resistor R20, a second end of the twentieth resistor R20 is connected with the first signal processing circuit 102, and a resistance value of the eighteenth resistor R18, a resistance value of the nineteenth resistor R19 and a resistance value of the twentieth resistor R20 meet the following conditions:
R
18
+R
19
+R
20
=R
0 (8)
In aforesaid formula (8), R18 represents the resistance value of the eighteenth resistor R18, R19 represents the resistance value of the nineteenth resistor R19, R20 represents the resistance value of the twentieth resistor R20, R0 represents the preset equivalent parameter.
As an optional implementation mode, where the signal transmission channel includes:
a buffer configured to buffer the drive signals.
As an optional implementation mode, the number of the signal transmission channels is equal to the number of the display wirings.
As an optional implementation mode, the multiple signal transmission channels are distributed at equal intervals in the drive integrated circuit 101, the multiple display wirings are distributed at equal intervals in the signal transmission circuit 104.
It should be noted that, since the display panel 50 in
In the embodiment of the present disclosure, since the resistance device 201 is arranged at an input of the first signal processing circuit 102, the equivalent resistances in each of the signal transmission paths may be adjusted through the resistance device 201, so that the equivalent resistances between the signal transmission channels and the display wirings are identical, each of the drive signals has the same transmission rate and the loss of power consumption during the transmission process. The video display circuit 501 receives multiple paths of consistent drive signals, so that the video display circuit 501 may be driven to display uniform and real images in real time through the drive signals, the user may enjoy real and high-definition images through the display panel 50, an effect of viewing experience of the user is greatly improved; therefore, in the embodiment of the present disclosure, the signal transmission paths of the drive signals may have the same equivalent parameters through the resistance device 201 merely, the internal circuit structure and the structure of wiring in the display panel 50 need not to be changed, the video display circuit 501 may receive the completely-consistent multiple drive signals in real time, the display panel 50 may display more real and congruous images or videos, and a problem that impedance difference exists in different signal transmission paths, such that the images displayed in the display panel are uneven, the quality of images or video in the display panel is poor, and the feeling of viewing experience of the user is reduced in the exemplified technology is effectively solved.
As an optional implementation mode, the display panel 50 is a TFT-LCD (Thin Film Transistor Liquid Crystal Display), a LCD (Liquid Crystal Display), an OLED (Organic Light Emitting Diode), or a QLED (Quantum Dot Light Emitting Diode), so that the various types of display panels may display clearer and more uniform images through the resistance device 201, the practicability of the display panel 50 is stronger, the display panel 50 may be applied in various industrial fields so as to meet an actual requirement of the user.
It should be noted that, the signal collector 601 is a signal acquisition circuit or a signal acquisition chip in the exemplary technology; where the model of the signal acquisition chip is ITUBT601656 or AD7656; the signal acquisition circuit includes electronic components such as an operational amplifier, a resistor, a capacitor and the like, the image information is accessed through a signal input of the signal acquisition circuit, electric energy conversion is achieved through electronic components such as the operational amplifier, the resistor and so on, so that the multiple drive signals may be output in real time through the signal output end of the signal acquisition circuit; in this way, the signal collector 601 in the embodiment of the present disclosure receives the image information in real time and completes signal conversion, the mobile terminal 60 may perform an information interaction operation with external equipment through the signal collector 601.
The display panel 50 is connected with the signal collector 601, the signal collector 601 transmits multiple drive signals to the display panel 50, the display panel 50 performs video display according to the multiple drive signals, the display panel 50 may transmit and decode multiple drive signals to obtain image data, so that the user may watch dynamic and clear images in real time in the display panel 50; where regarding the working principle of the display panel 50 and the internal structure of the display panel 50 in
In the modular structure of the mobile terminal 60 shown in
As an optional implementation mode, the mobile terminal 60 is a mobile phone or a tablet computer; thus, the display panel 50 is applied in the mobile phone or in the tablet computer, so that different actual requirements of the user are met, and use experience of the user is improved.
In conclusion, the impedance difference compensation circuit in the embodiments of the present disclosure may greatly improve the quality and the definition of images in the display panel, and bring a good and real viewing experience to the user, may be widely applied in various industrial fields, and has extremely high industrial application value.
The aforementioned embodiments are only optional embodiments of the present disclosure, and are not intended to limit the present disclosure. For the person of ordinary skill in the art, the present disclosure may have various modifications and changes. Any modification, equivalent replacement, improvement, and so on, which are made within the spirit and the principle of the present disclosure, should all be included in the protection scope of the claims of the present disclosure.
Number | Date | Country | Kind |
---|---|---|---|
201821576369.7 | Sep 2018 | CN | national |
This application is the PCT Application No. PCT/CN2018/1152224 for entry into US national phase, with an international filing date of Nov. 13, 2018 designating US, now pending, and claims priority to Chinese Patent Application No. 201821576369.7, filed on Sep. 21, 2018, the content of which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2018/115224 | 11/13/2018 | WO | 00 |