Patents by Inventor Tianjia Sun
Tianjia Sun has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Publication number: 20240101087Abstract: In one embodiment, a system determines a signal fault at a communication bus of an autonomous driving vehicle (ADV). In response to determining the signal fault, the system sends a brake pre-charge command to a brake system of the ADV to pre-charge a brake of the ADV. The system determines a preset tolerance time to validate the signal fault. In response to a time elapse of the preset tolerance time, the system validates the signal fault at the communication bus or determine a signal fault at another communication bus. In response to validating the signal fault at the communication bus or determining the signal fault at the another communication bus, the system sends a brake command to the brake system of the ADV to engage brakes for the ADV.Type: ApplicationFiled: September 23, 2022Publication date: March 28, 2024Inventors: BAOPING YUAN, TIANJIA SUN, YAOMING SHEN
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Publication number: 20240101079Abstract: In one embodiment, a system determines activation parameters for an autonomous driving vehicle (ADV), where the activation parameters include historical usages of a primary brake system or a secondary brake system. In response to determining that a brake is to be applied, the system determines whether to activate a primary or a secondary brake system based on the activation parameters. The system sends an activation flag to activate the primary or the secondary brake system based on the determining whether to activate the primary or the secondary brake system. The system sends a brake command to the primary and the secondary brake system to activate either the primary or the secondary brake system according to the activation flag.Type: ApplicationFiled: September 23, 2022Publication date: March 28, 2024Inventors: BAOPING YUAN, TIANJIA SUN, YAOMING SHEN
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Publication number: 20240101081Abstract: In one embodiment, a system determines selection parameters to apply an adaptive braking scheme for an autonomous driving vehicle (ADV). The system determines a brake mode based on the selection parameters using a driving scenario mapping table. In response to determining that a brake is to be applied, the system applies a brake for the ADV according to the brake mode. The brake can be applied in three stages, where the three stages include a brake pre-charge stage, an increasing rate of deceleration stage, and a constant rate of deceleration stage for the adaptive braking scheme.Type: ApplicationFiled: September 23, 2022Publication date: March 28, 2024Inventors: BAOPING YUAN, TIANJIA SUN, YAOMING SHEN
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Patent number: 11940559Abstract: In one embodiment, a light detection and range (LIDAR) device includes an array of light transmitting and receiving (TX/RX) units arranged to sense a physical range associated with a target. Each of the light TX/RX units includes a mounting board having a light pass-through opening and a light emitter mounted adjacent to the light pass-through opening. The light emitter is configured to emit a light beam towards the target according to a transmitting path. The LIDAR device further includes a light detector positioned behind the mounting board to receive at least a portion of the light beam reflected from the target through the light pass-through opening according to a light receiving path. The light transmitting path and the light receiving path are substantially in parallel and close to each other.Type: GrantFiled: December 11, 2018Date of Patent: March 26, 2024Assignee: BAIDU USA LLCInventors: Tianjia Sun, Yaoming Shen, Xiangfei Zhou, Yang Han
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Publication number: 20240034288Abstract: In an embodiment, an autonomous driving system (ADS) determines that a corresponding autonomous driving vehicle (ADV) has stopped on a gradient. The ADS determines a first brake hold pressure based on a first gradient value of the ADV measured at a first point in time. The ADS then applies the first brake hold pressure to a brake system in the ADV. Then, the ADS determines a second brake hold pressure based on a second gradient value of the ADV measured at a second point in time. The ADS then applies the second brake hold pressure to the brake system accordingly.Type: ApplicationFiled: July 26, 2022Publication date: February 1, 2024Inventors: Baoping YUAN, Tianjia SUN, Yaoming SHEN, Shu JIANG
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Publication number: 20230399029Abstract: In an embodiment, a brake control system determines a brake pedal travel value and a brake actuation position based on a brake pedal travel sensor and a motor actuation sensor of an autonomous driving vehicle (ADV). The brake control system determines a first threshold value based on the brake actuation position. The brake control system determines a deviation of the observed brake pedal travel value from the brake actuation position or the raw brake pedal sensor value are above the first threshold value and detects an intention of an operator to apply a brake control in response to determining that the deviation is above the first threshold value. This way, brake intervention can be detected prior to steady state and detection of an operator intervention is robust and reliable.Type: ApplicationFiled: June 30, 2022Publication date: December 14, 2023Inventors: BAOPING YUAN, TIANJIA SUN, YAOMING SHEN
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Patent number: 11768273Abstract: In one embodiment, a LIDAR device of an autonomous driving vehicle (ADV) includes an array of light emitters to emit a number of light beams to sense a physical range associated with a target. The LIDAR device further includes a slope mirror having a slope surface and a flat surface supported by a rotatable platform. The rotatable platform is configured to rotate with respect to a vertical axis perpendicular to the flat surface. The light emitters are configured to project the light beams onto the slope surface of the slope mirror, which are deflected towards the target. The slope mirror rotates along with the rotatable platform while the array of light emitters remains steady. The LIDAR device further includes one or more light detectors to receive at least a portion of the light beams reflected from the target.Type: GrantFiled: November 27, 2018Date of Patent: September 26, 2023Assignee: BAIDU USA LLCInventors: Tianjia Sun, Yaoming Shen, Xiangfei Zhou, Yang Han
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Publication number: 20230078889Abstract: The present disclosure generally relates to engaging in cross device interactions. The method includes at a first device with a first display, while a second device having a second display is placed over a first region of the first display, detecting, via input devices of the first device, a first input. In response to detecting the first input and in accordance with a determination that the first input occurred while focus was directed to the second device, the method includes causing a response to the first input to be displayed on the second display. In response to detecting the first input and in accordance with a determination that the first input occurred while focus was directed to the first device, the method includes displaying, on the first display, a response to the first input without causing a response to the first input to be displayed on the second display.Type: ApplicationFiled: August 22, 2022Publication date: March 16, 2023Inventors: Tianjia SUN, Chang ZHANG, Paul X. WANG, Aaron WANG
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Publication number: 20230029049Abstract: A system may include electronic devices that communicate wirelessly. When positioned so that a pair of devices overlap or are adjacent to one another, the devices may operate in a linked mode. During linked operations, devices may communicate wirelessly while input gathering and content displaying operations are shared among the devices. One or both of a pair of devices may have sensors. A capacitive sensor or other sensor may be used to measure the relative position between two devices when the two devices overlap each other. Content displaying operations and other linked mode operations may be performed based on the measured relative position between the two devices and other information.Type: ApplicationFiled: October 3, 2022Publication date: January 26, 2023Inventors: Paul X. Wang, Tianjia Sun, Chang Zhang, Dominic P. McCarthy, Eric Shyr, John B. Morrell, John P. Ternus
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Publication number: 20230004231Abstract: A system may include one or more finger-mounted devices such as finger devices with U-shaped housings configured to be mounted on a user's fingers while gathering sensor input and supplying haptic output. The sensors may include strain gauge circuitry mounted on elongated arms of the housing. When the arms move due to finger forces, the strain gauge circuitry can measure the arm movement. The sensors may also include ultrasonic sensors. An ultrasonic sensor may have an ultrasonic signal emitter and a corresponding ultrasonic signal detector configured to detect the ultrasonic signals after passing through a user's finger. A two-dimensional ultrasonic sensor may capture ultrasonic images of a user's finger pad. Ultrasonic proximity sensors may be used to measure distances between finger devices and external surfaces. Optical sensors and other sensors may also be used in the finger devices.Type: ApplicationFiled: September 1, 2022Publication date: January 5, 2023Inventors: Paul X. Wang, Alex J. Lehmann, Tianjia Sun, Yoonhoo Jo, Hongcheng Sun
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Patent number: 11462194Abstract: A system may include electronic devices that communicate wirelessly. When positioned so that a pair of devices overlap or are adjacent to one another, the devices may operate in a linked mode. During linked operations, devices may communicate wirelessly while input gathering and content displaying operations are shared among the devices. One or both of a pair of devices may have sensors. A capacitive sensor or other sensor may be used to measure the relative position between two devices when the two devices overlap each other. Content displaying operations and other linked mode operations may be performed based on the measured relative position between the two devices and other information.Type: GrantFiled: July 30, 2018Date of Patent: October 4, 2022Assignee: Apple Inc.Inventors: Paul X. Wang, Tianjia Sun, Chang Zhang, Dominic P. McCarthy, Eric Shyr, John B. Morrell, John P. Ternus
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Patent number: 11422765Abstract: The present disclosure generally relates to engaging in cross device interactions. The method includes at a first device with a first display, while a second device having a second display is placed over a first region of the first display, detecting, via input devices of the first device, a first input. In response to detecting the first input and in accordance with a determination that the first input occurred while focus was directed to the second device, the method includes causing a response to the first input to be displayed on the second display. In response to detecting the first input and in accordance with a determination that the first input occurred while focus was directed to the first device, the method includes displaying, on the first display, a response to the first input without causing a response to the first input to be displayed on the second display.Type: GrantFiled: July 9, 2019Date of Patent: August 23, 2022Assignee: Apple Inc.Inventors: Tianjia Sun, Chang Zhang, Paul X Wang, Aaron Wang
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Patent number: 11372090Abstract: In one embodiment, a LIDAR device of an autonomous driving vehicle (ADV) includes a light emitter to emit a light beam towards a target, wherein at least a portion of the light beam is reflected from the target. The LIDAR device further includes an optical sensing unit including a first photodetector and a second photodetector. The first photodetector is a different type of photodetector from the second photodetector, where the optical sensing unit is to receive the portion of the light beam reflected from the target. When the optical sensing unit receives the portion of the light beam, the first photodetector generates a first optical sensor output signal and the second photodetector generates a second optical sensor output signal. The LIDAR device further includes a first circuitry portion to generate an intensity signal indicative of an intensity of the received portion of the light beam responsive to the first optical sensor output signal.Type: GrantFiled: December 10, 2018Date of Patent: June 28, 2022Assignee: BAIDU USA LLCInventors: Tianjia Sun, Yaoming Shen, Xiangfei Zhou, Yang Han
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Patent number: 11360558Abstract: A system may include finger devices. A touch sensor may be mounted in a finger device housing to gather input from an external object as the object moves along an exterior surface of the housing. The touch sensor may include capacitive sensor electrodes. Sensors such as force sensors, ultrasonic sensors, inertial measurement units, optical sensors, and other components may be used in gathering finger input from a user. Finger input from a user may be used to manipulate virtual objects in a mixed reality or virtual reality environment while a haptic output device in a finger device provides associated haptic output. A user may interact with real-world objects while computer-generated content is overlaid over some or all of the objects. Object rotations and other movements may be converted into input for a mixed reality or virtual reality system using force measurements or other sensors measurements made with the finger devices.Type: GrantFiled: April 26, 2019Date of Patent: June 14, 2022Assignee: Apple Inc.Inventors: Paul X. Wang, Nicolai Georg, Benjamin R. Blachnitzky, Alhad A. Palkar, Minhazul Islam, Alex J. Lehmann, Madeleine S. Cordier, Joon-Sup Han, Hongcheng Sun, Sang E. Lee, Kevin Z. Lo, Lilli Ing-Marie Jonsson, Luis Deliz Centeno, Yuhao Pan, Stephen E. Dey, Paul N. DuMontelle, Jonathan C. Atler, Tianjia Sun, Jian Li, Chang Zhang
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Patent number: 10928488Abstract: In one embodiment, a LIDAR device of an autonomous driving vehicle (ADV) includes an array of light emitters to emit a number of light beams to sense a physical range associated with a target. The LIDAR device further includes a prism-shaped mirror assembly having a plurality of joining faces acting as reflective surfaces and a bottom base face. The rotatable platform is configured to rotate with respect to a vertical axis perpendicular to the bottom base face. The light emitters are configured to project the light beams onto the reflective surfaces of the mirror assembly, which are deflected towards the target. The mirror assembly rotates along with the rotatable platform while the array of light emitters remains steady. The LIDAR device further includes one or more light detectors to receive at least a portion of the light beams reflected from the target.Type: GrantFiled: December 13, 2018Date of Patent: February 23, 2021Assignee: BAIDU USA LLCInventors: Tianjia Sun, Yaoming Shen, Xiangfei Zhou, Yang Han
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Publication number: 20200191921Abstract: In one embodiment, a LIDAR device of an autonomous driving vehicle (ADV) includes an array of light emitters to emit a number of light beams to sense a physical range associated with a target. The LIDAR device further includes a prism-shaped mirror assembly having a plurality of joining faces acting as reflective surfaces and a bottom base face. The rotatable platform is configured to rotate with respect to a vertical axis perpendicular to the bottom base face. The light emitters are configured to project the light beams onto the reflective surfaces of the mirror assembly, which are deflected towards the target. The mirror assembly rotates along with the rotatable platform while the array of light emitters remains steady. The LIDAR device further includes one or more light detectors to receive at least a portion of the light beams reflected from the target.Type: ApplicationFiled: December 13, 2018Publication date: June 18, 2020Inventors: TIANJIA SUN, YAOMING SHEN, XIANGFEI ZHOU, YANG HAN
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Publication number: 20200182982Abstract: In one embodiment, a LIDAR device of an autonomous driving vehicle (ADV) includes a light emitter to emit a light beam towards a target, wherein at least a portion of the light beam is reflected from the target. The LIDAR device further includes an optical sensing unit including a first photodetector and a second photodetector. The first photodetector is a different type of photodetector from the second photodetector, where the optical sensing unit is to receive the portion of the light beam reflected from the target. When the optical sensing unit receives the portion of the light beam, the first photodetector generates a first optical sensor output signal and the second photodetector generates a second optical sensor output signal. The LIDAR device further includes a first circuitry portion to generate an intensity signal indicative of an intensity of the received portion of the light beam responsive to the first optical sensor output signal.Type: ApplicationFiled: December 10, 2018Publication date: June 11, 2020Inventors: Tianjia Sun, Yaoming Shen, Xiangfei Zhou, Yang Han
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Publication number: 20200182972Abstract: In one embodiment, a light detection and range (LIDAR) device includes an array of light transmitting and receiving (TX/RX) units arranged to sense a physical range associated with a target. Each of the light TX/RX units includes a mounting board having a light pass-through opening and a light emitter mounted adjacent to the light pass-through opening. The light emitter is configured to emit a light beam towards the target according to a transmitting path. The LIDAR device further includes a light detector positioned behind the mounting board to receive at least a portion of the light beam reflected from the target through the light pass-through opening according to a light receiving path. The light transmitting path and the light receiving path are substantially in parallel and close to each other.Type: ApplicationFiled: December 11, 2018Publication date: June 11, 2020Inventors: Tianjia SUN, Yaoming SHEN, Xiangfei ZHOU, Yang HAN
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Publication number: 20200166615Abstract: In one embodiment, a LIDAR device of an autonomous driving vehicle (ADV) includes an array of light emitters to emit a number of light beams to sense a physical range associated with a target. The LIDAR device further includes a slope mirror having a slope surface and a flat surface supported by a rotatable platform. The rotatable platform is configured to rotate with respect to a vertical axis perpendicular to the flat surface. The light emitters are configured to project the light beams onto the slope surface of the slope mirror, which are deflected towards the target. The slope mirror rotates along with the rotatable platform while the array of light emitters remains steady. The LIDAR device further includes one or more light detectors to receive at least a portion of the light beams reflected from the target.Type: ApplicationFiled: November 27, 2018Publication date: May 28, 2020Inventors: TIANJIA SUN, YAOMING SHEN, XIANGFEI ZHOU, YANG HAN
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Publication number: 20200026352Abstract: A system may include finger devices. A touch sensor may be mounted in a finger device housing to gather input from an external object as the object moves along an exterior surface of the housing. The touch sensor may include capacitive sensor electrodes. Sensors such as force sensors, ultrasonic sensors, inertial measurement units, optical sensors, and other components may be used in gathering finger input from a user. Finger input from a user may be used to manipulate virtual objects in a mixed reality or virtual reality environment while a haptic output device in a finger device provides associated haptic output. A user may interact with real-world objects while computer-generated content is overlaid over some or all of the objects. Object rotations and other movements may be converted into input for a mixed reality or virtual reality system using force measurements or other sensors measurements made with the finger devices.Type: ApplicationFiled: April 26, 2019Publication date: January 23, 2020Inventors: Paul X. Wang, Nicolai Georg, Benjamin R. Blachnitzky, Alhad A. Palkar, Minhazul Islam, Alex J. Lehmann, Madeleine S. Cordier, Joon-Sup Han, Hongcheng Sun, Sang E. Lee, Kevin Z. Lo, Lilli Ing-Marie Jonsson, Luis Deliz Centeno, Yuhao Pan, Stephen E. Dey, Paul N. DuMontelle, Jonathan C. Atler, Tianjia Sun, Jian Li, Chang Zhang