The disclosure relates to the field of display technology, and more particularly to a driving method of a display panel and a display apparatus.
An exemplary liquid crystal display technology uses a 6-bit driver IC to realize an 8-bit picture quality resolution rendering, and further uses a FRC (Frame Rate Control) technology to divide two adjacent grayscales into more than two grayscales and display a target display grayscale by multiple frames distributed in quantity, so as to achieve the showing of equivalent brightness perceived by human eyes based on persistence of vision.
However, when displaying a 125th-level luminance signal and a 57th-level luminance signal, because the 6-bit driver IC only can realize 8-bit resolution displays of the 124th-level luminance signal as well as the 128th-level luminance signal and 8-bit resolution displays of the 56th-level luminance signal as well as the 60th-level luminance signal, and therefore it needs multiple frames to distribute for display. If average brightnesses based on the distribution are different, equivalent brightnesses perceived by human eyes would have bright and dark changes, the naked eyes will feel the noticeable flicker phenomenon of unequal brightness, and it will result in poor display quality for display panels.
Therefore, there is a need of providing a driving method of a display panel and a display apparatus, so as to address the problem of poor display quality of display panels.
In an aspect, a driving method of a display panel includes:
dividing pixels into a plurality of pixel groups, wherein each of the pixel groups includes a first pixel unit and a second pixel unit adjacent to each other, each of the first and second pixel units includes a first sub-pixel, a second sub-pixel and a third sub-pixels sequentially arranged in an order;
displaying each picture by using sequential multiple frames of images and dividing the multiple frames of images into two groups as a first frame unit and a second frame unit with equal numbers of frames of images;
obtaining a first voltage signal and a second voltage signal of each of the pixel groups in each of the multiple frames of images; wherein in the first frame unit, the first voltage signal drives the first sub-pixel and the third sub-pixel of the first pixel unit and the second sub-pixel of the second pixel unit, and the second voltage signal drives the second sub-pixel of the first pixel unit and the first sub-pixel and the third sub-pixel of the second pixel unit; wherein in the second frame unit, the first voltage signal drives the second sub-pixel of the first pixel unit and the first sub-pixel and the third sub-pixel of the second pixel unit, and the second voltage signal drives the first sub-pixel and the third sub-pixel of the first pixel unit and the second sub-pixel of the second pixel unit; and wherein and the first voltage signal is not equal to the second voltage signal; and
adjusting the first voltage signal and the second voltage signal to make average signals of all the first voltage signals of the multiple frames of images respectively be the same, average signals of all the second voltage signals of the multiple frames of images respectively be the same, average signals of the first voltage signals in the multiple frames of images of different ones of the pixel groups respectively be the same, and average signals of the second voltage signals in the multiple frames of images of different ones of the pixel groups respectively be the same.
In an embodiment, the first pixel unit and the second pixel unit in a same row are adjacently disposed.
In an embodiment, in the same row, in the same row, for adjacent two of the pixel groups, the first pixel unit of one pixel group is disposed adjacent to the second pixel unit of the other one pixel group.
In an embodiment, the first pixel unit and the second pixel unit in a same column are adjacently disposed.
In an embodiment, in the same column, for adjacent two of the pixel groups, the first pixel unit of one pixel group is disposed adjacent to the second pixel unit of the other one pixel group.
In an embodiment, the multiple frames of images are eight frames of images.
In an embodiment, the eight frames of images sequentially are a first frame of image, a second frame of image, a third frame of image, a fourth frame of image, a fifth frame of image, a sixth frame of image, a seventh frame of image and an eighth frame of image.
In an embodiment, the first voltage signal is higher than the second voltage signal.
In an embodiment, each the pixel unit includes three color sub-pixels.
In an embodiment, the three color sub-pixels respectively are a red sub-pixel, a green sub-pixel and a blue sub-pixel.
In an embodiment, the first sub-pixel, the second sub-pixel and the third sub-pixel respectively are a red sub-pixel, a green sub-pixel and a blue sub-pixel.
In an embodiment, driving voltage polarities for adjacent sub-pixels are opposite to each other.
In an embodiment, the first voltage signal and the second voltage signal respectively are corresponding to different signal values.
In an embodiment, the signal values corresponding to the first voltage signal are 124 and 128, and the signal values corresponding to the second voltage signal are 56 and 60.
In an embodiment, the sub-pixels driven by the first voltage signal and the second voltage signal have different signal values.
In an embodiment, the first voltage signal and the second voltage signal alternately drive each sub-pixel.
In another aspect, a display apparatus includes:
a display panel, wherein the display panel is divided into a plurality of pixel groups, each of the pixel groups includes a first pixel unit and a second pixel unit adjacent to each other, and each of the first and second pixel units includes a first sub-pixel, a second sub-pixel and a third sub-pixel sequentially arranged in an order; and
a driving module, configured to make each picture be displayed by using sequential multiple frames of images and divide the multiple frames of images into two groups respectively as a first frame unit and a second frame unit with equal numbers of frames of images, and further configured to obtain a first voltage signal and a second voltage signal of each of the pixel groups in each of the multiple frames of images and adjust the first voltage signal and the second voltage signal to make average signals of all the first voltage signals of the multiple frames of images respectively be the same, average signals of all the second voltage signals of the multiple frames of images respectively be the same, average signals of the first voltage signals in the multiple frames of images of different pixel groups respectively be the same, and average signals of the second voltage signals in the multiple frames of images of different pixel groups respectively be the same; wherein in the first frame unit, the first voltage signal is configured to drive the first sub-pixel and the third sub-pixel of the first pixel unit and the second sub-pixel of the second pixel unit, and the second voltage signal is configured to drive the second sub-pixel of the first pixel unit and the first sub-pixel and the third sub-pixel of the second pixel unit; wherein in the second frame unit, the first voltage signal is configured to drive the second sub-pixel of the first pixel unit and the first sub-pixel and the third sub-pixel of the second pixel unit, and the second voltage signal is configured to drive the first sub-pixel and the third sub-pixel of the first pixel unit and the second sub-pixel of the second pixel unit; and wherein the first voltage signal is not equal to the second voltage signal.
In an embodiment, in the display panel, for adjacent two pixel groups, the first pixel unit of one pixel group is disposed adjacent to the second pixel unit of the other one pixel group.
In an embodiment, the adjacent two pixel groups are two pixel groups adjacent to each other in a row direction or in a column direction.
In still another aspect, a driving method of a display panel includes:
dividing pixels into a plurality of pixel groups, wherein each of the pixel groups includes a first pixel unit and a second pixel unit adjacent to each other, each the pixel unit includes a first sub-pixel, a second sub-pixel and a third sub-pixels sequentially arranged in an order;
displaying each picture by using sequential eight frames of images and dividing the eight frames of images into two groups respectively as a first frame unit and a second frame unit with equal numbers of frames of images;
obtaining a first voltage signal and a second voltage signal of each of the pixel groups in each of the multiple frames of images; wherein in the first frame unit, the first voltage signal drives the first sub-pixel and the third sub-pixel of the first pixel unit and the second sub-pixel of the second pixel unit, and the second voltage signal drives the second sub-pixel of the first pixel unit and the first sub-pixel and the third sub-pixel of the second pixel unit; wherein in the second frame unit, the first voltage signal drives the second sub-pixel of the first pixel unit and the first sub-pixel and the third sub-pixel of the second pixel unit, and the second voltage signal drives the first sub-pixel and the third sub-pixel of the first pixel unit and the second sub-pixel of the second pixel unit; and wherein and the first voltage signal is higher than the second voltage signal; and
adjusting the first voltage signal and the second voltage signal to make average signals of all the first voltage signals of the eight frames of images respectively be the same, average signals of all the second voltage signals of the eight frames of images respectively be the same, average signals of the first voltage signals in the eight frames of images of different ones of the pixel groups respectively be the same, and average signals of the second voltage signals in the eight frames of images of different ones of the pixel groups respectively be the same.
The above driving method of a display panel and display apparatus use a high and low voltages pixel driving manner of multi-frame period, make the same sub-pixel in the same pixel unit be driven by high and low voltages in the multi-frame period so as to improve the color shift problem in timings for the sub-pixels in the same pixel unit, and make the average signals of all high voltage signals of the respective frames of images be the same, the average signals of all the low voltage signals of the respective frames of images be the same, the average signals of the high voltage signals in the multiple frames of images for different pixel groups respectively be the same and the average signals of low voltage signals in the multiple frames of images for different pixel groups respectively be the same, so as to solve the problem of low frequency brightness flicker. Therefore, the above driving method not only improves the color shift problem in timings for the sub-pixels in the same pixel unit but also solves the problem of low frequency brightness flicker, and thus the display quality of the display panel is improved consequently.
In order to facilitate the understandings of the disclosure, the disclosure will be described below more fully with reference to accompanying drawings. Preferred embodiments of the disclosure are given in the accompanying drawings. However, the disclosure may be embodied in many different forms and is not limited to the embodiments described herein. Rather, the purposes of providing these embodiments are to make the understanding of the described content of the disclosure be more thorough and comprehensive.
Unless otherwise defined, all technical and scientific terms used herein have same meanings as commonly understood by one skilled in the art to which the disclosure pertains. The terms used herein in the specification of the disclosure are merely for the purpose of describing specific embodiments and are not intended to be limiting of the disclosure. The term “and/or” as used herein includes any and all combinations of one or more of the associated listed items.
Step S100: dividing pixels into multiple pixel groups, each pixel group including a first pixel unit and a second pixel unit adjacent to each other, and each pixel unit including a first sub-pixel, a second sub-pixel and a third sub-pixel sequentially arranged in an order.
In particular, each pixel unit includes three color sub-pixels respectively being a red sub-pixel, a green sub-pixel and a blue sub-pixel, and driving voltage polarities for adjacent sub-pixels are opposite to each other.
Step S200: displaying each picture by using sequential multiple frames of images and dividing the multiple frames of images into two groups respectively as a first frame unit and a second frame unit with equal numbers of frames of images.
In particular, the multiple frames of images are eight frames of images sequentially being a first frame of image, a second frame of image, a third frame of image, a fourth frame of image, a fifth frame of image, a sixth frame of image, a seventh frame of image and an eighth frame of image.
Moreover, the first frame unit and the second frame unit each include four frames of images. The four frames of images in the first frame unit are adjacent to the four frames of images in the second frame unit; or, the four frames of images in the first frame unit and the four frames of images in the second frame unit are arbitrarily arranged in timing sequence. That is, display orders of the eight frames of images are arbitrary.
Step S300: obtaining a first voltage signal and a second voltage signal of each pixel group in each frame of image. In particular, in the first frame unit, the first voltage signal is configured (i.e., structured and arranged) to drive the first sub-pixel and the third sub-pixel of the first pixel unit as well as the second sub-pixel of the second pixel unit, and the second voltage signal is configured to drive the second sub-pixel of the first pixel unit as well as the first sub-pixel and the third sub-pixel of the second pixel unit. In the second frame unit, the first voltage signal is configured to drive the second sub-pixel of the first pixel unit as well as the first sub-pixel and the third sub-pixel of the second pixel unit, the second voltage signal is configured to drive the first sub-pixel and the third sub-pixel of the first pixel unit as well as the second sub-pixel of the second pixel unit. The first voltage signal is not equal to the second voltage signal.
In a concrete embodiment, the first sub-pixel is a red sub-pixel (R), the second sub-pixel is a green sub-pixel (G), and the third sub-pixel is a blue sub-pixel (B). Moreover, the first sub-pixel, the second sub-pixel and the third sub-pixel are sequentially arranged in an order. It should be understood, if the red sub-pixel (R), the green sub-pixel (G) and the blue sub-pixel (B) of a same pixel unit have the first voltage signal (high voltage signal) in the first frame unit (may be any four frames of images in the first through eighth frames of images), corresponding sub-pixels have the second voltage signal (low voltage signal) in the second frame unit (i.e., remaining four frames of images except for the four frames of images in the first frame unit); if a driving signal in the first frame unit for the red sub-pixel (R), the green sub-pixel (G) and the blue sub-pixel (B) of a same pixel unit is the second voltage signal (low voltage signal), the driving signal in the second frame unit the first voltage signal (high voltage signal); that is, the same sub-pixel is alternately driven by high and low voltage signals respectively in the first frame unit and the second frame unit.
In a concrete embodiment, the first voltage signal is higher than the second voltage signal, that is, the first voltage signal is a high voltage signal and the second voltage signal is a low voltage signal.
Moreover, the first voltage signal and the second voltage signal are respectively corresponding to different signal values. For example, the signal values corresponding to the first voltage signal are 124 and 128, and the signal values corresponding to the second voltage signal are 56 and 60. Therefore, the sub-pixels driven by the first voltage signal and the second voltage signal may have different signal values correspondingly.
Step S400: adjusting the first voltage signal and the second voltage signal, to make average signals of all the first voltage signals of the multiple frames of images respectively be the same, average signals of all the second voltage signals of the multiple frames of images respectively be the same, average signals of the first voltage signals in the multiple frames of images of different pixel groups respectively be the same, and average signals of the second voltage signals in the multiple frames of images of different pixel groups respectively be the same.
In the driving method of a display panel provided by the above embodiment, by using a high and low voltage pixel driving manner of multi-frame period, sub-pixels of the same pixel unit are driven by high and low voltages in the multi-frame period, an average signal of all the high voltage signals of each frame of image is the same as the average signal of all the high voltage signals of any one of the other frames of images, an average signal of all the low voltage signals of each frame of image is same as the average signal of all the low voltage signals of any one of the other frames of images, an average signal of the high voltage signals in the multiple frames of images of each of different pixel groups is the same as the average signal of the high voltage signals in the multiple frames of images of any one of the others of the different pixel groups, and an average signal of the low voltage signals in the multiple frames of images of each of different pixel groups is the same as the average signal of the low voltage signals in the multiple frames of images of any one of the others of the different pixel groups. As a result, the above driving method not only solves the problem of low frequency brightness flicker, but also improves the problem of color shift in timings for sub-pixels in the same pixel unit, and therefore the display quality of the display panel is increased.
In an exemplary embodiment, as shown in
Moreover, in the same row, for adjacent two pixel groups, the first pixel unit 210 in one pixel group 200 and the second pixel unit 120 in the other one pixel group 100 are disposed adjacent with each other.
It should be understood that, an arrangement manner of the first pixel unit 110 and the second pixel unit 120 in the pixel group 100 is not limited to the above embodiment, and may be another arrangement manner as shown in
Moreover, in the same column, as to adjacent two pixel groups, the first pixel unit 210′ of one pixel group 200′ and the second pixel unit 120′ of the other one pixel group 100′ are disposed adjacent to each other.
In the above embodiment, each pixel unit for example includes three color sub-pixels respectively being a red sub-pixel, a green sub-pixel and a blue sub-pixel, and driving voltage polarities for adjacent sub-pixels are opposite to each other.
A 6-bit driver IC being used for achieving an 8-bit resolution will be taken as an example to describe the driving method of a display panel provided by the above embodiment below.
Because the 6-bit driver IC can only display 64 levels of grayscales while the 8-bit display effect requires 256 levels of grayscales, and therefore a FRC (Frame Rate Control) technology may be used to make each picture be displayed by sequential multiple frames of images. Based on the visual inertia of the human eye, by suitably controlling a frame rate and grayscale signals of adjacent frames, a 6-bit panel may exhibit an 8-bit display effect.
For example, by controlling a frame rate and using eight frames as a period to display one picture, the 6-bit driver IC can achieve high voltage signals of 124 and 128 as well as low voltage signals of 56 and 60. In order to achieve a combination of a high voltage signal of 125 and a low voltage signal of 57, spatial and temporal distributions of the high voltage signals of 124 and 128 are required to achieve the high voltage signal of 125, spatial and temporal distributions of the low voltage signals of 56 and 60 are required to achieve the low voltage signal of 57.
The frame rate control is a method of realizing a target grayscale display by a color mixing manner based on the visual inertia of human eyes. The color mixing manners may be classified into spatial color mixing and temporal color mixing, and in order to achieve better display effect, both of the two color mixing manner usually are used simultaneously.
In an exemplary embodiment, as shown in
In a concrete embodiment, the multiple frames of images in the step S200 is eight frames of images.
In a concrete embodiment, as shown in
In a concrete embodiment, an implementation manner of the step S400 includes the following content. In particular, as seen from
In one aspect, in the first frame, an average signal of the first voltage signals for the sub-pixels A1, A4, A5 and A8 is:
Moreover, in each of the second frame, the third frame and the fourth frame, the average signal of the first voltage signals for the sub-pixels A1, A4, A5 and A8 also is 125; and each of the fifth frame, the sixth frame, the seventh frame and the eighth frame, the average signal of the first voltage signals for the sub-pixels A2, A3, A6 and A7 also is 125. That is, in the display of the eight frames of images, the average signals of all the first voltage signals of the respective frames of images are the same.
In another aspect, in the first frame, an average signal of the second voltage signals for the sub-pixels A2, A3, A6 and A7 is:
Moreover, in each of the second frame, the third frame and the fourth frame, the average signal of the second voltage signals for the sub-pixels A2, A3, A6 and A7 also is 57; and each of the fifth frame, the sixth frame, the seventh frame and the eighth frame, the average signal of the second voltage signals for the sub-pixels A1, A4, A5 and A8 also is 57. That is, in the display of the eight frames of images, the average signals of all the second voltage signals of the respective frames of images are the same.
Therefore, in spatial aspect (i.e., in each frame), the average signal of the first voltage signals (high voltage signals) for all sub-pixels is 125, and the average signal of the second voltage signals (low voltage signals) for all sub-pixels is 57. In particular, as listed in the following table 1.
In addition, in one hand, as shown in
Likewise, the average signal of the first voltage signals for each of the sub-pixels A4, A5 and A8 also is 125 and thus is the same as the average signal of the first voltage signals for the sub-pixel A1.
Moreover, in the succeeding four frames, an average signal of the second voltage signals for each of the sub-pixels A1, A4, A5 and A8 is:
Therefore, in the display of eight frames of images, the average signal of voltages for each of the sub-pixels A1, A4, A5 and A8 is the average of 125 and 57.
In other hand, in the preceding four frames, an average signal of the second voltage signals for each of the sub-pixels A2, A3, A6 and A7 is that:
Likewise, in the succeeding four frames, the average signal of the first voltage signals for each of the sub-pixels A2, A3, A6 and A7 is:
Therefore, in the display of eight frames of images, the average signal of voltages for each of the sub-pixels A2, A3, A6 and A7 is the average of 125 and 57.
Sum up, in temporal aspect (i.e., in the eight frames), the displayed average signals for the respective sub-pixels (A1, A2, A3, A4, A5, A6, A7 and A8) all are the average of 125 and 57. In detail, as listed in the following table 2:
In addition, as shown in
Based on the description associated with
In the above embodiments, by adjusting distributions of high voltage signals and low voltage signals in spatial and temporal aspects, it can realize equivalent high voltage signals (average signals) in spatial and temporal being 125 and equivalent low voltage signals (average signals) in spatial and temporal being 57 for red sub-pixels (R), blue sub-pixels (B) and green sub-pixels (G) in the picture, and thus can ensure that the low frequency brightness flicker is not easily perceived.
It should be understood that, by adjusting distributions of first voltage signals and second voltage signals in spatial and temporal aspects, it also can achieve a picture display effect of high voltage signal being 126 and low voltage signal being 58, and a picture display effect of high voltage signal being 127 and low voltage signal being 59, please refer to
In addition, when the first voltage signal and the second voltage signal are kept unchanged in spatial and temporal (i.e., in each frame of image and in the multiple frames of images, the first voltage signal and the second voltage signal are kept unchanged), it can achieve display effects such as a combination of high voltage signal being 124 and low voltage signal being 56, or a combination of high voltage signal being 128 and low voltage signal being 60, please refer to
In addition, an embodiment of the disclosure provides a display apparatus. As shown in
a display panel 10, wherein the display panel is divided into multiple pixel groups 100, each pixel group 100 includes a first pixel unit 110 and a second pixel unit 120 adjacent to each other, and each pixel unit includes a first sub-pixel R, a second sub-pixel G and a third sub-pixel B arranged in sequence;
a driving module (also referred to as driving circuit) 20, configured to make each picture be displayed by sequential multiple frames of images and divide the multiple frames of images into two groups respectively as a first frame unit and a second frame unit with equal numbers of frames of images, and further configured to obtain a first voltage signal and a second voltage signal for each pixel group 100 in each frame of image and adjust the first voltage signal and the second voltage signal, to make average signals of all the first voltage signals for the multiple frames of images respectively be the same, average signals of all the second voltage signals for the multiple frames of images respectively be the same, average signals of the first voltage signals in the multiple frames of images for different pixel groups 100 respectively be the same, and average signals of the second voltage signals in the multiple frames of images for different pixel groups 100 respectively be the same. Wherein the first voltage signal drives the first sub-pixel R and the third sub-pixel B of the first pixel unit 110 as well as the second sub-pixel G of the second pixel unit 120, the second voltage signal drives the first sub-pixel R and the third sub-pixel B of the second pixel unit 120 as well as the second sub-pixel G of the first pixel unit 110, and the first voltage signal is not equal to the second voltage signal.
In an exemplary embodiment, in the above display panel 10, for adjacent two pixel groups, the first pixel unit of one pixel group and the second pixel unit of the other one pixel group are adjacently disposed.
In an embodiment, the adjacent two pixel groups are two pixel groups adjacent to each other in a row direction or in a column direction.
In an exemplary embodiment, as shown in
Step S100′: dividing pixels into multiple pixel groups, each pixel group including a first pixel unit and a second pixel unit adjacent to each other, and each pixel unit including a first sub-pixel, a second sub-pixel and a third sub-pixel sequentially arranged in an order.
Step S200′: displaying each picture by sequential eight frames of images and dividing the eight frames of images into two groups respectively as a first frame unit and a second frame unit with equal numbers of frames.
In particular, the first frame unit and the second frame unit each include four frames of images; the four frames of images in the first frame unit is adjacent to the four frames of images in the second frame unit, or the four frames of images in the first frame unit and the four frames of images in the second frame unit are arbitrarily arranged in timing sequence. That is, display orders of the eight frames of images are arbitrary.
Step S300′: obtaining a first voltage signal and a second voltage signal of each pixel group in each frame of image. In the first frame unit, the first voltage signal drives the first sub-pixel and the third sub-pixel of the first pixel unit as well as the second sub-pixel of the second pixel unit, the second voltage signal drives the second sub-pixel of the first pixel unit as well as the first sub-pixel and the third sub-pixel of the second pixel unit. In the second frame unit, the first voltage signal drives the second sub-pixel of the first pixel unit as well as the first sub-pixel and the third sub-pixel of the second pixel unit, the second voltage signal drives the first sub-pixel and the third sub-pixel of the first pixel unit as well as the second sub-pixel of the second pixel unit. The first voltage signal is higher than the second voltage signal.
Step S400′: adjusting the first voltage signal and the second voltage signal and thereby making average signals of all the first voltage signals of multiple frames of images respectively be the same, average signals of all the second voltage signals of multiple frames of images respectively be the same, average signals of the first voltage signals in the eight frames of images for different pixel groups respectively be the same, and average signals of the second voltage signals in the eight frames of images for different pixel groups respectively be the same.
In an embodiment, the first voltage signal is a higher voltage signal with respect to the second voltage signal, and correspondingly the second voltage signal is a low voltage signal. In addition, the first voltage signal and the second voltage signal respectively have different voltage signal values, and these voltage signal values represent luminance signals displayed by sub-pixels. The above embodiment adjusts luminance signals of the sub-pixels in each frame as well as eight-frame period, so that average luminance signals in each frame (in spatial) as well as eight-frame period (in temporal) of luminance signals of respective sub-pixels are correspondingly consistent.
The above display apparatus uses a high and low voltages pixel driving manner of multi-frame period, so that the average signals of all the high voltage signals of the respective frames of images are the same, the average signals of all the low voltage signals of the respective frames of images are the same, the average signals of the high voltage signals in the multiple frames of images for different pixel groups respectively are the same, and the average signals of the low voltage signals in the multiple frames of images for different pixel groups respectively are the same. Therefore, the driving method not only solve the problem of low frequency brightness flicker, but also improves the problem of color shift in timings of sub-pixels in the same pixel unit, and thus display quality of the display panel is improved consequently.
The technical features of the above mentioned embodiments can be combined arbitrarily, and for the sake of brevity, not all possible combinations of the technical features in the above embodiments are described, however, as long as there is no conflict in a combination of these technical features, it should be considered as the scope of the description.
The above mentioned embodiments merely present several embodiments of the disclosure, which are described in more specific and in detail, but should not be interpreted as limiting the scope of the disclosure. It should be noted that one skilled in the art may make various modifications and improvements without departing from the concept of the disclosure, all of which should be included in the protection scope of the disclosure. Therefore, the protection scope of the patent application shall be subjected to the appended claims.
Number | Date | Country | Kind |
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201710812894.8 | Sep 2017 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/100596 | 8/15/2018 | WO | 00 |