This application claims priority to Chinese Application No. 201811155371.1, entitled “OPTICAL COMMUNICATION EMITTER AND RECEIVER, EMITTING METHOD AND RECEIVING METHOD” and filed on Sep. 30, 2018, which is incorporated herein by reference in its entirety.
The present disclosure relates to the field of optical communication technologies, and in particular, to an optical communication emitter, an emitting method, an optical communication transceiver system, and a key for an optical communication smart door lock.
Currently, wireless communication technologies, such as WiFi (Wireless Fidelity), Bluetooth, are already very common in people's daily life. However, further development of wireless communication technologies is restricted due to limited wireless spectrum resources. Optical communication has advantages of a wider transmission frequency bandwidth, a larger communication capacity and a longer transmission distance, and thus becomes an important part of the new generation of trusted network structures.
A first aspect of the present disclosure provides an optical communication emitter, including:
at least one light emitting unit, each light emitting unit comprising at least two light sources, each of the at least two light sources emitting light of a different color,
wherein a unit optical communication time is divided into a number of time slots, which number corresponds to the number of the light sources included in each light emitting unit, each time slot corresponds to the light sources that emit light of the same color, the light sources corresponding to different time slots are different, and each of the light sources can only emit light in the corresponding time slot.
Alternatively, the optical communication emitter is configured to adjust a brightness of light emitted by at least one of the at least two light sources in each of the at least one light emitting unit, and the brightness adjustment is invisible to naked eye(s).
Alternatively, the optical communication emitter further includes:
a clock controller configured to control the light sources to emit light in the corresponding time slots.
Alternatively, the light source is any of an Organic Light-Emitting Diode (OLED), a micro-LED or an LED.
Alternatively, the optical communication emitter further comprises a voltage controller configured to adjust a voltage applied to the at least one of the at least two light sources, so as to adjust a brightness of the light emitted by the at least one of the at least two light sources.
Alternatively, the at least one light emitting unit includes a plurality of light emitting units arranged in an array.
Alternatively, each of the plurality of time slots has the same or a different duration.
A second aspect of the present disclosure provides an emitting method of an optical communication emitter, the optical communication emitter including: at least one light emitting unit, each light emitting unit comprising at least two light sources, each of the at least two light sources emitting light of a different color, the emitting method including:
dividing a unit optical communication time into a number of time slots, which number corresponds to the number of the light sources included in each light emitting unit, each time slot corresponding to the light sources that emit light of the same color, and the light sources corresponding to different time slots being different; and
controlling each of the light sources to emit light in the corresponding time slot.
Alternatively, the emitting method further includes:
adjust a brightness of light emitted by at least one of the at least two light sources in each of the at least one light emitting unit, wherein the brightness adjustment is invisible to naked eye(s).
A third aspect of the present disclosure provides an optical communication transceiving system, including an optical communication emitter and an optical communication receiver. The optical communication emitter includes at least one light emitting unit, each light emitting unit including at least two light sources, each of the at least two light sources emitting light of a different color, wherein a unit optical communication time is divided into a number of time slots, which number corresponds to the number of the light sources included in each light emitting unit, each time slot corresponds to the light sources that emit light of the same color, the light sources corresponding to different time slots are different, and each of the light sources can only emit light in the corresponding time slot. The optical communication receiver includes at least one light receiving unit, wherein each light receiving unit comprises at least two optical filters and photodetectors, wherein the at least two optical filters are used for filtering out light of different colors emitted by the at least two light sources respectively, and the photodetector detects light emitted by a corresponding light source, which is filtered out by the corresponding optical filter, and outputs a first electrical signal.
A fourth aspect of the present disclosure provides a key for an optical communication smart door lock, wherein the key comprises the optical communication emitter according to the first aspect.
Particular embodiments of the present disclosure will be further described in detail below with reference to the accompanying drawings.
In order to explain the present disclosure more clearly, the present disclosure will be further described in conjunction with the preferred embodiments and the accompanying drawings. Similar components in the drawings are denoted by the same reference numerals. It should be understood by those skilled in the art that the following detailed description are illustrative and not for the purpose of limiting, and should not limit the scope of the present disclosure.
As shown in
In a specific example, the optical communication emitter 10 includes a plurality of light emitting units 2 arranged in an array. As shown in
In a specific application, the optical communication emitter 10 further includes a clock controller 40 for controlling the light sources to emit light in corresponding time slots. The clock controller 40 divides the unit optical communication time into a number of time slots according to the number of the light sources, and each of the light sources can only emit light in the corresponding time slot. The durations of the plurality of time slots may be set to be the same or may be set to be different, which may designed by those skilled in the art according to actual requirements. In this embodiment, such three light sources as the red light source, the green light source, and the blue light source may be taken as an example, and the unit display time is evenly divided into three time slots, wherein the first time slot corresponds to the red light source, the second time slot corresponds to the green light source, and the third time slot corresponds to the blue light source. The optical communication emitter 10 controls the three light sources in chronological order, and only one light source emits a light signal in the corresponding time slot. In a case of using optical communication, the switching frequency of the light sources is generally set to be 60 Hz to 120 Hz, which is much higher than the recognition ability of the human eye(s) to the light. The light emitted by the optical communication emitter during the unit optical communication time is superimposed, and presents a composite light with a mixed color effect.
As shown in
In order to further enhance transmission security of the visible light communication, in an embodiment, the optical communication emitter is configured to adjust a brightness of light emitted by at least one of at least two light sources in each light emitting unit. The brightness adjustment is invisible to the naked eye(s), so that the color of the light emitted by the optical communication emitter observed by the naked eye(s) does not change. Further, the light source can be controlled independently and can emitting light separately, and may be any of a Micro-Light-Emitting Diode (Micro-LED), an LED or an Organic Light-Emitting Diode (OLED). In one embodiment, the optical communication emitter further includes a voltage controller 50 for adjusting a voltage applied to the light source, so as to adjust the brightness of the light emitted by the light source.
As shown in
Corresponding to the optical communication emitter provided by the above embodiments, an embodiment of the present disclosure further provides an emitting method using the above optical communication emitter. Since the description of the emitting method provided by the embodiment of the present disclosure is corresponding to that of the optical communication emitter according to the foregoing several embodiments, the foregoing embodiments are also applicable to the emitting method provided in the present embodiment, which will not be described in detail herein.
As shown in
In a preferred embodiment, when each of the light sources is controlled to emit light in the corresponding time slot, the emitting method further includes: adjusting a brightness of light emitted by at least one of the at least two light sources in each of the at least one light emitting unit, wherein the brightness adjustment is invisible to the naked eye(s). Further, in order to simplify the transmission control process, the durations of the plurality of time slots may be set to be the same. That is, the clock controller of the optical communication emitter divides the unit optical communication time equally according to the number of the light sources, and the durations of the respective time slots are the same.
Corresponding to the above optical communication emitter, as shown in
In one embodiment, the optical communication emitter includes three, i.e., red, green and blue light sources, the light receiving unit of the optical communication receiver includes three, i.e., red, green and blue, optical filters and corresponding photodetectors. Thus, the photodetector corresponding to the red optical filter receives the red light that is filtered out by the red optical filter in the first time slot, the photodetector corresponding to the green optical filter receives the green light that is filtered out by the green optical filter in the second time slot, and the photodetector corresponding to the blue optical filter receives the green light that is filtered out by the blue optical filter in the third time slot. The light receiving unit receives light in the composite light that is emitted by each light source according to the receiving timing sequence corresponding to the emitting timing sequence of the light emitting unit.
In a preferred embodiment, as shown in
The receiving circuit of the optical communication receiver may, for example, include an amplifier, an equalizer and a decider for processing the light received by the photodetector.
Corresponding to the optical communication receiver provided by the above embodiments, an embodiment of the present disclosure further provides a receiving method using the above optical communication receiver. Since the description of the receiving method according to the embodiment of the present disclosure is corresponding to that of the optical communication receiver according to the foregoing several embodiments, the foregoing embodiments are also applicable to the receiving method provided in the present embodiment, which will not be described in detail herein.
As shown in
In a preferred embodiment, the receiving method further includes: processing a brightness of the light emitted by the light source, and outputting a second electrical signal.
As shown in
According to an embodiment of the present disclosure, the light emitted by the plurality of light sources of different colors is superimposed to form a composite light in the unit optical communication time, according to the timing sequence generated by the clock controller of the optical communication emitter. Thus, the data may be transmitted while being displayed, which may effectively improve the transmission efficiency of the optical communication.
Corresponding to the above optical communication emitter and optical communication receiver, the present disclosure also provides a key for an optical communication smart door lock. The key includes the above optical communication emitter, which is used with an optical communication smart door lock including the optical communication receiver as described above. For example, the key transmits an unlocking signal to the optical communication smart door lock according to a preset encrypted visible light, and the optical communication smart door lock receives and decrypts the unlocking signal, and compares it with preset data. If the data are matched, the door is unlocked; otherwise, the door is not unlocked.
Meanwhile, the optical communication emitter may also be used for data loading in a field sequential color display, which controls, within the unit display time, each light source to emit light in the corresponding time slot, so as to load the data while the data are being displayed.
It is apparent that the above-described embodiments of the present disclosure are merely illustrative of the present disclosure, but are not intended to limit the embodiments of the present disclosure. For those skilled in the art, different forms of variations or modifications may be made based on the above description, which cannot be listed exhaustively here. It is to be understood that various variations or modifications may be made without departing from the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
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201811155371.1 | Sep 2018 | CN | national |