System and method of reducing speckle for an illuminator
US-2018131160-A1 · May 10, 2018 · US
US11506963B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11506963-B2 |
| Application number | US-201916420997-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 23, 2019 |
| Priority date | May 30, 2018 |
| Publication date | Nov 22, 2022 |
| Grant date | Nov 22, 2022 |
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The present disclosure provides a mobile terminal and a system for controlling a laser projector. The system includes a first drive circuit, a second drive circuit, a watchdog timer, a microprocessor, and an application processor. The first drive circuit is configured to output an electrical signal to the laser projector. The second drive circuit is configured to supply power to the first drive circuit. The microprocessor is configured to send a first predetermined signal to the watchdog timer. The application processor is configured to send a second predetermined signal to the watchdog timer. The watchdog timer is configured to power off the second drive circuit, in response to that the watchdog timer does not read the first predetermined signal or the second predetermined signal.
Opening claim text (preview).
What is claimed is: 1. A system for controlling a laser projector, comprising: a first drive circuit, coupled to the laser projector and configured to output an electrical signal to drive the laser projector to project laser light; a second drive circuit, coupled to the first drive circuit and configured to supply power to the first drive circuit; a watchdog timer, coupled to the second drive circuit; a microprocessor, coupled to the watchdog timer and configured to send a first predetermined signal to the watchdog timer; an application processor, coupled to the watchdog timer and configured to send a second predetermined signal to the watchdog timer; and a control circuit, coupled to the first drive circuit and the laser projector, and comprising a resistance element, a detecting element and a switching element; wherein the watchdog timer is configured to power off the second drive circuit to power off the first drive circuit and the laser projector, in response to that the watchdog timer does not read the first predetermined signal or the second predetermined signal; wherein the detecting element is configured to perform one of the following: detect a current flowing through the resistance element, and the switching element is configured to switch off to power off the laser projector in response to that the current is greater than a preset current; and detect a voltage across the resistance element, and the switching element is configured to switch off to power off the laser projector in response to that the voltage is greater than a preset voltage value. 2. The system of claim 1 , wherein the microprocessor is configured to send the first predetermined signal to the watchdog timer periodically at a first period; and wherein the watchdog timer is configured to power off the second drive circuit to power off the first drive circuit and the laser projector, in response to that the watchdog timer does not receive the first predetermined signal within the first period. 3. The system of claim 2 , wherein, the watchdog timer is configured to send a reset signal for restarting the microprocessor to the microprocessor, in response to that the watchdog timer does not receive the first predetermined signal within the first period. 4. The system of claim 2 , wherein, the application processor is coupled to a control interface of the microprocessor, the control interface comprises an interface for restarting the microprocessor, and the watchdog timer is configured to send a reset signal for restarting the microprocessor to the application processor, in response to that the watchdog timer does not receive the first predetermined signal within the first period, and the application processor is configured to restart the microprocessor through the control interface of the microprocessor. 5. The system of claim 1 , wherein the application processor is configured to send the second predetermined signal to the watchdog timer periodically at a second period; and wherein the watchdog timer is configured to power off the second drive circuit to power off the first drive circuit and the laser projector, in response to that the watchdog timer does not receive the second predetermined signal within the second period. 6. The system of claim 5 , wherein, the watchdog timer is configured to send a reset signal for restarting the application processor, in response to that the watchdog timer does not receive the second predetermined signal within the second period. 7. The system of claim 1 , wherein the first drive circuit is configured to send a timeout signal to the microprocessor in response to that a duration of outputting the electrical signal is greater than or equal to a predetermined threshold; and wherein the microprocessor is configured to stop sending the first predetermined signal to the watchdog timer upon receiving the timeout signal. 8. The system of claim 1 , wherein the first drive circuit is configured to send a timeout signal to the application processor in response to that a duration of outputting the electrical signal is greater than or equal to a predetermined threshold; and wherein the application processor is configured to stop sending the second predetermined signal to the watchdog timer upon receiving the timeout signal. 9. The system of claim 1 , wherein, the first drive circuit is configured to stop outputting the electrical signal in response to that a duration of outputting the electrical signal is greater than or equal to a predetermined threshold. 10. A mobile terminal, comprising: a laser projector; and a system for controlling the laser projector, comprising: a first drive circuit, coupled to the laser projector and configured to output an electrical signal to drive the laser projector to project laser light; a second drive circuit, coupled to the first drive circuit and configured to supply power to the first drive circuit; a watchdog timer, coupled to the second drive circuit; a microprocessor, coupled to the watchdog timer and configured to send a first predetermined signal to the watchdog timer; an application processor, coupled to the watchdog timer and configured to send a second predetermined signal to the watchdog timer; and a control circuit, coupled to the first drive circuit and the laser projector, and comprising a resistance element, a detecting element and a switching element; wherein the watchdog timer is configured to power off the second drive circuit to power off the first drive circuit and the laser projector, in response to that the watchdog timer does not read the first predetermined signal or the second predetermined signal; wherein the detecting element is configured to perform one of the following: detect a current flowing through the resistance element, and the switching element is configured to switch off to power off the laser projector in response to that the current is greater than a preset current; and detect a voltage across the resistance element, and the switching element is configured to switch off to power off the laser projector in response to that the voltage is greater than a preset voltage value. 11. The mobile terminal of claim 10 , wherein the microprocessor is configured to send the first predetermined signal to the watchdog timer periodically at a first period; and wherein the watchdog timer is configured to power off the second drive circuit to power off the first drive circuit and the laser projector, in response to that the watchdog timer does not receive the first predetermined signal within the first period. 12. The mobile terminal of claim 11 , wherein the watchdog timer is configured to send a reset signal for restarting the microprocessor to the microprocessor, in response to that the watchdog timer does not receive the first predetermined signal within the first period. 13. The mobile terminal of claim 11 , wherein the application processor is coupled to a control interface of the microprocessor, the control interface comprises an interface for restarting the microprocessor, and the watchdog timer is configured to send a reset signal for restarting the microprocessor to the application processor, in response to that the watchdog timer does not receive the first predetermined signal within the first period, and the application processor is configured to restart the microprocessor through the control interface of the microprocessor. 14. The mobile terminal of claim 10 , wherein the application processor is configured to send the second predetermined signal to the watchdog timer periodically at a second period; and wherein the watchdog timer is config
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