Coupling compensation module and light emitting diode driver thereof
11291095 · 2022-03-29
Assignee
Inventors
- Tso-Sheng Chan (Kaohsiung, TW)
- Jin-Yi Lin (Kaohsiung, TW)
- Chun-Fu Lin (Taoyuan, TW)
- Jhih-Siou Cheng (New Taipei, TW)
- Yu-Sheng Ma (Taichung, TW)
Cpc classification
G09G2320/0233
PHYSICS
G09G2320/0219
PHYSICS
G09G2330/028
PHYSICS
G09G2320/0223
PHYSICS
International classification
Abstract
A coupling compensation module is provided, for compensating a channel voltage of a channel outputted by a constant current circuit of a light emitting diode (LED) driver. The coupling compensation module includes a detecting circuit, for detecting a voltage variation of the channel voltage, to generate a detection result; and a compensation circuit, for compensating the voltage variation of the channel voltage according to the detection result.
Claims
1. A coupling compensation module, for compensating a channel voltage of a channel outputted by a constant current circuit of a light emitting diode (LED) driver, comprising: a detecting circuit, for detecting a voltage variation of the channel voltage, to generate a detection result, wherein the detecting circuit comprises: a first sample circuit, for sampling and holding the channel voltage when the channel is turned on, to generate a first sample voltage; a first comparator, for comparing the channel voltage with the first sample voltage, to generate a first comparison result indicating whether the channel voltage is less than the first sample voltage over a first threshold voltage difference; and a first inverter, for receiving the first comparison result to generate a first inverted signal as an undershoot detection of the detection result; and a compensation circuit, for compensating the voltage variation of the channel voltage according to the detection result.
2. The coupling compensation module of claim 1, wherein the compensation circuit raises or reduces the channel voltage when the detection result indicates that the channel voltage falls or rises.
3. The coupling compensation module of claim 1, wherein the compensation circuit comprises a first transistor, for raising the channel voltage when the undershoot detection indicates that the channel voltage is less than the first sample voltage over the first threshold voltage difference.
4. The coupling compensation module of claim 1, wherein the first sample circuit comprises: a second inverter, for receiving a decouple enable signal to generate a second inverted signal; a first OR gate, for receiving the second inverted signal and an overshoot detection, to generate a first operational result; a first switch, coupled between the channel and a positive input terminal of the first comparator, comprising a control terminal for receiving the first operational result; and a first capacitor, coupled between a ground and the positive input terminal of the first comparator, for providing the first sample voltage.
5. The coupling compensation module of claim 1, wherein the first comparator comprises a mismatched first input pair.
6. The coupling compensation module of claim 1, wherein the detecting circuit comprises: a second sample circuit, for sampling and holding the channel voltage when the channel is turned on, to generate a second sample voltage; and a second comparator, for comparing the channel voltage with the second sample voltage, to generate a second comparison result as an overshoot detection of the detection result indicating whether the channel voltage is greater than the second sample voltage over a second threshold voltage difference.
7. The coupling compensation module of claim 6, wherein the compensation circuit comprises a second transistor, for reducing the channel voltage when the overshoot detection indicates that the channel voltage is greater than the second sample voltage over the second threshold voltage difference.
8. The coupling compensation module of claim 6, wherein the second sample circuit comprises: a third inverter, for receiving a decouple enable signal to generate a third inverted signal; a fourth inverter, for receiving the undershoot detection to generate a fourth inverted signal; a second OR gate, for receiving the third inverted signal and the fourth inverted signal, to generate a second operational result; a second switch, coupled between the channel and a negative input terminal of the second comparator, comprising a control terminal for receiving the second operational result; and a second capacitor, coupled between a ground and the negative input terminal of the second comparator, for providing the second sample voltage.
9. The coupling compensation module of claim 6, wherein the second comparator comprises a mismatched second input pair.
10. The coupling compensation module of claim 1, wherein when the channel is turned on and another channel is about to be turned on or turned off, a decouple enable signal is triggered for a specific interval.
11. The coupling compensation module of claim 1, wherein the channel voltage is an anode voltage when the LED driver is implemented in a passive matrix common cathode driving structure, and the channel voltage is a cathode voltage when the LED driver is implemented in a passive matrix common anode driving structure.
12. A light emitting diode (LED) driver, for driving an LED panel, comprising: a constant current circuit, for outputting a channel voltage of a channel; and a coupling compensation module, comprising: a detecting circuit, for detecting a voltage variation of the channel voltage, to generation a detection result, wherein the detecting circuit comprises: a first sample circuit, for sampling and holding the channel voltage when the channel is turned on, to generate a first sample voltage; a first comparator, for comparing the channel voltage with the first sample voltage, to generate a first comparison result indicating whether the channel voltage is less than the first sample voltage over a first threshold voltage difference; and a first inverter, for receiving the first comparison result to generate a first inverted signal as an undershoot detection of the detection result; and a compensation circuit, for compensating the voltage variation of the channel voltage according to the detection result.
13. The LED driver of claim 12, wherein the compensation circuit raises or reduces the channel voltage when the detection result indicates that the channel voltage falls or rises.
14. The LED driver of claim 12, wherein the compensation circuit comprises a first transistor, for raising the channel voltage when the undershoot detection indicates that the channel voltage is less than the first sample voltage over the first threshold voltage difference.
15. The LED driver of claim 12, wherein the first sample circuit comprises: a second inverter, for receiving a decouple enable signal to generate a second inverted signal; a first OR gate, for receiving the second inverted signal and an overshoot detection, to generate a first operational result; a first switch, coupled between the channel and a positive input terminal of the first comparator, comprising a control terminal for receiving the first operational result; and a first capacitor, coupled between a ground and the positive input terminal of the first comparator, for providing the first sample voltage.
16. The LED driver of claim 12, wherein the first comparator comprises a mismatched first input pair.
17. The LED driver of claim 12, wherein the detecting circuit comprises: a second sample circuit, for sampling and holding the channel voltage when the channel is turned on, to generate a second sample voltage; and a second comparator, for comparing the channel voltage with the second sample voltage, to generate a second comparison result as an overshoot detection of the detection result indicating whether the channel voltage is greater than the second sample voltage over a second threshold voltage difference.
18. The LED driver of claim 17, wherein the compensation circuit comprises a second transistor, for reducing the channel voltage when the overshoot detection indicates that the channel voltage is greater than the second sample voltage over the second threshold voltage difference.
19. The LED driver of claim 17, wherein the second sample circuit comprises: a third inverter, for receiving a decouple enable signal to generate a third inverted signal; a fourth inverter, for receiving the undershoot detection to generate a fourth inverted signal; a second OR gate, for receiving the third inverted signal and the fourth inverted signal, to generate a second operational result; a second switch, coupled between the channel and a negative input terminal of the second comparator, comprising a control terminal for receiving the second operational result; and a second capacitor, coupled between a ground and the negative input terminal of the second comparator, for providing the second sample voltage.
20. The LED driver of claim 17, wherein the second comparator comprises a mismatched second input pair.
21. The LED driver of claim 12, wherein when the channel is turned on and another channel is about to be turned on or turned off, a decouple enable signal is triggered for a specific interval.
22. The LED driver of claim 12, wherein the channel voltage is an anode voltage when the LED driver is implemented in a passive matrix common cathode driving structure, and the channel voltage is a cathode voltage when the LED driver is implemented in a passive matrix common anode driving structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(11) Please refer to
(12) In detail, when the channel CH is turned on, and another channel of the light emitting diode driver 60 is simultaneously switched from turned on to turned off or switched from turned off to turned on, the channel voltage Vch of the channel CH falls or rises due to capacitive coupling. Under such a situation, the detection result indicates that the channel voltage Vch falls or rises, and the compensation circuit 606 raises or reduces the channel voltage Vch. As a result, the present invention may compensate the voltage variation of the channel voltage Vch, and thus drive LED pixels of the LED panel to display desirable brightness.
(13) Specifically, in the constant current circuit 600, a constant current transistor MPS receives a fixed voltage at its gate to provide a constant channel current (i.e. a constant current source). A switch SW1 is coupled between a supply voltage and a gate of a pulse width modulation transistor MPWM, and is controlled by an inverted signal of a pulse width modulation signal SPWM, to control the gate of the pulse width modulation transistor MPWM to be at a high level (e.g. the supply voltage) or turned off when the pulse width modulation signal SPWM is at a low level. Another switch SW2 is coupled between an output terminal of an amplifier and the gate of the pulse width modulation transistor MPWM, and is controlled by the pulse width modulation signal SPWM, to form a negative feedback loop to lock a source voltage of the pulse width modulation transistor MPWM at a reference voltage VREF when the pulse width modulation signal PWM is at a high level, such that the pulse width modulation transistor MPWM is turned on to output the constant channel current to drive a corresponding LED and generate the channel voltage Vch (i.e. the conduction voltage of the LED).
(14) Besides, the detecting circuit 604 includes sample circuits 608, 610, comparators 612, 614 and an inverter INV1, and the compensation circuit 606 includes transistors MP, MN. In detail, the sample circuit 608 samples and holds the channel voltage Vch when the channel CH is turned on, to generate a sample voltage Vsu. The comparator 612 compares the channel voltage Vch with the sample voltage Vsu, to generate a first comparison result indicating whether the channel voltage Vch is less than the sample voltage Vsu over a first threshold voltage difference ΔVth. The inverter INV1 receives the first comparison result to generate a first inverted signal as an undershoot detection DU of the detection result. When the undershoot detection DU indicates that the channel voltage Vch is less than the sample voltage Vsu over the threshold voltage difference ΔVth, the transistor MP provides currents to the channel CH to raise the channel voltage Vch. As a result, the present invention raises the channel voltage Vch when the channel CH is turned on and the channel voltage Vch falls more than the threshold voltage difference ΔVth (which avoids mistaken operation when there is no coupling from other channels).
(15) On the other hand, the sample circuit 610 samples and holds the channel voltage Vch when the channel CH is turned on, to generate a sample voltage Vso. The comparator 612 compares the channel voltage Vch with the sample voltage Vso, to generate a second comparison result as an overshoot detection DO of the detection result indicating whether the channel voltage Vch is greater than the second sample voltage Vso over a second threshold voltage difference (e.g. the second threshold voltage difference is the same with the first threshold voltage difference ΔVth in this embodiment, but may be different from the first threshold voltage difference ΔVth in other embodiments). When the overshoot detection DO indicates that the channel voltage Vch is greater than the second sample voltage Vso over the threshold voltage difference ΔVth, the transistor MN drains currents from the channel CH to reduce the channel voltage Vch. As a result, the present invention reduces the channel voltage Vch when the channel CH is turned on and the channel voltage Vch raises more than the threshold voltage difference ΔVth.
(16) In detail, please refer to
(17) On the other hand, the sample circuit 610 includes inverters INV3, INV4, an OR gate OR2, a switch SW4 and a capacitor C2. The inverter INV3 receives the decouple enable signal DES to generate a third inverted signal. The inverter INV4 receives an undershoot detection DU to generate a fourth inverted signal. The OR gate OR2 receives the third inverted signal and the fourth inverted signal, to generate a second operational result. The switch SW4 is coupled between the channel CH and a negative input terminal of the comparator 614 and includes a control terminal for receiving the second operational result. The capacitor C2 is coupled between a ground and the negative input terminal of the comparator 614, and provides the sample voltage Vso.
(18) Besides, the comparator 614 or 612 may be implemented by the circuit shown in the dotted box, and include a mismatched input pair, wherein a channel width of a transistor of the positive input terminal is less than a channel width of a transistor of the negative input terminal (0.9× vs. 1×). Thus, the comparator 614 or 612 outputs a comparison result with a high voltage level when a voltage of the positive input terminal is greater than a voltage of the negative input terminal over the threshold voltage difference ΔVth. Moreover, the transistors MP, MN have adjustable driving capabilities, and provide appropriate driving capabilities for different LEDs with different characteristics.
(19) Under such a configuration, please refer to
(20) On the other hand, please refer to
(21) Please refer to
(22) Noticeably, the above embodiment compensates the voltage variation of each channel due to capacitive coupling, and thus drives LED pixels of the LED panel to display desirable brightness. Those skilled in the art may make modifications or alterations accordingly. For example, each channel of the LED display panel 30 shown in
(23) Moreover, in the above embodiment, the coupling compensation module 602 detects the voltage variation of the channel voltage Vch in the passive matrix common cathode driving structure, wherein the channel voltage Vch is an anode voltage of an anode of an LED. In other embodiments, the coupling compensation module 602 may also detect a voltage variation of a channel voltage in the passive matrix common anode driving structure as shown in
(24) To sum up, the present invention compensates the voltage variation of each channel due to capacitive coupling, and thus drives LED pixels of the LED panel to display desirable brightness.
(25) Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.