Suteng Innovation Technology (RoboSense) Patente
🇨🇳 China
Chinesisches Technologieunternehmen (Markenname RoboSense), das Lidar-Sensoren und dazugehörige Wahrnehmungssoftware für autonomes Fahren, Robotik und intelligente Fahrzeuge entwickelt.
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Patente durchsuchen
131 gesamt| Patent | |||
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15.07.2026
Emissionsmodul und Lidar
EP4776024
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
An emission module (1) includes a carrier board (11) and a light-emitting module (12) having a first subgroup (12A) and a second subgroup (12B). The first subgroup comprises at least two first emission units (121), at least one first drive unit (122), and at least one first energy storage unit (123). The first drive unit drives the at least two first emission units to emit laser light using energy stored in the first energy storage unit. The second subgroup comprises at least two second emission units (124), at least one second drive unit (125), and at least one second energy storage unit (126). The second drive unit drives the at least two second emission units to emit laser light using energy stored in the second energy storage unit. The first emission units and the second emission units are arranged in a staggered manner along a second direction. A single drive unit concurrently drives multiple emission units, compressing the light-emitting module's volume. |
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08.07.2026
Lidar und Autonome Antriebsvorrichtung
EP4772904
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
A LiDAR and an autonomous driving device are provided. The LiDAR includes a transceiver module and a rotating mirror. The transceiver module includes a transmitting unit, a receiving unit, a first housing, a second housing, and a plane mirror. The first housing includes a receiving cylinder and a transmitting cylinder. The second housing includes a first sub-housing and a second sub-housing. The transmitting cylinder and the first sub-housing form a transmitting channel, and the receiving cylinder and the second sub-housing form a receiving channel. The first sub-housing includes a first opening. The second sub-housing includes a second opening and a first boss. The plane mirror is fixed to the first opening, and the first boss extends from a first end of the second opening to a second end of the second opening. |
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01.07.2026
Distanz- und Reflektivitätsmessverfahren, Vorrichtung, Speichermedium und Lidar
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Zusammenfassung
A distance and reflectivity measurement method, apparatus, storage medium, and lidar are disclosed. The lidar acquires an echo signal from light reflected by a target object. A distance threshold measures the echo signal to determine the target's distance relative to the lidar. A reflectivity threshold, higher than the distance threshold, measures the echo signal to determine the target's reflectivity. Using separate thresholds, with the reflectivity threshold being higher, provides high accuracy for distance measurement and high differentiation for reflectivity measurement, improving the overall accuracy of calculating both distance and reflectivity for the target object. |
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01.07.2026
Azimuthwinkelkalibrierverfahren für Lidar, Kalibriervorrichtung und Lidar
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Zusammenfassung
An azimuth angle calibration method for a LiDAR, an azimuth angle calibration apparatus, and a LiDAR are disclosed. The method includes acquiring calibration point cloud data comprising at least one frame of point cloud data from the LiDAR. A measured azimuth angle is determined based on the calibration point cloud data, where the measured azimuth angle corresponds to a calibration zone. A compensation coefficient is calculated using the measured azimuth angle and a preset angle value. Angle compensation is then applied to azimuth angle information of detection point cloud data based on the compensation coefficient, wherein the detection point cloud data is generated during LiDAR operation. This method improves control accuracy in LiDAR scanning processes by compensating for directional angle errors. |
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01.07.2026
Abstandsmessverfahren, Datenverarbeitungsmodul und Elektronische Vorrichtung
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Zusammenfassung
A distance measurement method, applied to a data processing module coupled to a receiving module, includes: determining a plurality of received data based on an echo signal received by the receiving module, wherein the echo signal is reflected by a target object after a transmitting module emits a laser pulse toward the target object, and the received data are derived from an electrical signal output by the receiving module in response to the echo signal; organizing the received data into N data groups, each group comprising at least one received data, with at least two groups sharing partially identical received data, where N is an integer greater than or equal to 2; and computing a distance measurement result for each data group based on its respective received data. This method enhances distance measurement capability without requiring changes to radar hardware configuration. |
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27.05.2026
Photoelektrische Umwandlungsvorrichtung, Empfangssensor und Lidar
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Zusammenfassung
A photoelectric conversion device, a fabrication method, and an image sensor are disclosed. The device includes a substrate with at least two avalanche diode units. Each unit has a device region surrounded by a back-side deep trench isolation structure. At least one front-side trench isolation structure is disposed between any two adjacent units. A doped region, formed by outward diffusion from the front-side trench isolation structure, has a gradually decreasing doping concentration gradient. At least a portion of the doped region extends beyond the back-side deep trench isolation structure to form a dark current suppression region within each adjacent avalanche diode unit. This configuration reduces the dark count rate (DCR) of the device, thereby enhancing its electrical performance and reliability. |
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29.04.2026
Verfahren und Vorrichtung zur Erkennung eines Anormalen Sichtfeldes, Speichermedium und Mems-Lidar
EP4733809
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
The present application discloses an abnormal field of view recognition method and device, a storage medium and a MEMS LiDAR device, wherein the method comprises: respectively adjusting angles of a galvanometer with respect to an X axis and a Y axis when the MEMS LiDAR device is started, acquiring echo data from scanning a window at the adjusted angles of the galvanometer with respect to the X axis and the Y axis; acquiring, from the echo data, distances between the MEMS LiDAR device and respective ones of an upper edge, a lower edge, a left edge and a right edge of the window; and determining whether a field of view of the galvanometer is abnormal based on the acquired distances. According to the present application, abnormality of the field of view of the galvanometer can be detected when the MEMS LiDAR device is started, so that the security problem caused by the abnormal field of view of the galvanometer is avoided, and safety and reliability of the MEMS LiDAR device are improved. |
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01.04.2026
Einzelphotonen-Lawinendiode-Einheit und Elektronische Vorrichtung
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Zusammenfassung
The application relates to the field of semiconductors, and particularly relates to a single-photon avalanche diode unit (20) and an electronic equipment. The single-photon avalanche diode unit includes at least one main junction (210) and a barrier region (211), wherein: a size of the main junction is smaller than a preset size; a polarity of the barrier region is the same as that of a first well region (2101), and the first well region is a well region of the main junction away from an electrode (207) of the single-photon avalanche diode unit in a depth direction; the barrier region is in the same layer as the first well region in the depth direction and is arranged around the first well region; and the barrier region extends outward to a hole conducting region (203) of the single-photon avalanche diode unit, and a polarity of the hole conducting region is the same as that of the first well region. The technical scheme can achieve high PDE while ensuring low DCR, thereby improving detection performance of the single-photon avalanche diode unit. |
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11.03.2026
Verfahren und Vorrichtung zum Empfangen von Echosignalen, Endgerätevorrichtung und Speichermedium
EP4679133
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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11.02.2026
Kalibrierungsvorrichtung, Laserstrahlemissionsschaltung und Elektronische Vorrichtung
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Status
Angemeldet am 29.03.2023
Erteilt am 11.02.2026
Vertretung
Zusammenfassung
This application relates to a calibration apparatus, a laser beam emission circuit (410) and an electronic device (14). The calibration apparatus is applied to the laser beam emission circuit, where the laser beam emission circuit (410) includes N lasers, and the calibration apparatus includes: a detection module (430), to detect optical power of an i<sup>th</sup> laser; and a control module (420), to adjust an i<sup>th</sup> control signal based on a detection result of a detection device, so that i<sup>th</sup> optical power is equal to target optical power, where N≥i≥1, the i<sup>th</sup> control signal is used to control optical power of an i<sup>th</sup> laser during laser beam emission, and the i<sup>th</sup> optical power is optical power of the i<sup>th</sup> laser during laser beam emission, where the control module (420) further establishes a mapping relationship between the i<sup>th</sup> laser and the i<sup>th</sup> control signal when the i<sup>th</sup> optical power is equal to the target optical power. The main control unit (420) sends charging control signals in a one-to-one correspondence to energy storage-adjustable charging circuits by time, to ensure that luminous power of each laser in the two-dimensional laser array is equal to the target power. Alternatively, the main control unit (420) stores a pulse parameter configuration table, and the pulse parameter configuration table stores pulse widths for determining various charging control signals. Optical power uniformity of multiple lasers can be improved in this application. |
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11.02.2026
Lidar-Leistungsdetektionsverfahren, Zugehörige Vorrichtung und Computerspeichermedium
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Status
Angemeldet am 19.10.2022
Erteilt am 11.02.2026
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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04.02.2026
Laseremissionsmodul und Laserentfernungsmessvorrichtung
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Status
Angemeldet am 31.10.2023
Erteilt am 04.02.2026
Vertretung
Zusammenfassung
Embodiment of this application discloses a laser emission module and a laser ranging device. The laser emission module includes an emission substrate, a light emitting chip, at least one anode drive chip, and at least one cathode drive chip. The light emitting chip is assembled on a first surface of the emission substrate, internally integrated with a laser array, which includes m*n lasers. In the laser array, the anodes of the lasers located in the same row are electrically connected and lead out a common anode end, and the cathodes of the lasers located in the same column are electrically connected and lead out a common cathode end. The anode drive chip is assembled on the emission substrate, internally integrated with m anode drive circuits; the m anode drive circuits are respectively electrically connected with m common anode ends. The cathode drive chip is assembled on the emission substrate, internally integrated with n cathode drive circuits; the n cathode drive circuits are electrically connected with n common cathode ends respectively. Embodiment of this application can reduce the size of the laser emission module. |
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28.01.2026
Laserradar und Stauschutzverfahren dafür
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Status
Angemeldet am 08.05.2020
Erteilt am 28.01.2026
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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28.01.2026
Lidar und Anpassungsverfahren dafür
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Status
Angemeldet am 05.02.2020
Erteilt am 28.01.2026
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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14.01.2026
Lidar-Steuerungsverfahren, Endgerätevorrichtung und Computerlesbares Speichermedium
EP4647811
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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07.01.2026
Optomechanisches system
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Zusammenfassung
Zusammenfassung wird geladen … |
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31.12.2025
Radardatenverarbeitungsverfahren, Endgerätevorrichtung und Computerlesbares Speichermedium
EP4644949
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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31.12.2025
Entrauschungsverfahren für Lidar und Lidar
EP4671814
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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31.12.2025
Lidar-Chip und Lidar
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Zusammenfassung
Zusammenfassung wird geladen … |
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31.12.2025
Laserradar und Automatische Fahrausrüstung
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Status
Angemeldet am 23.08.2019
Erteilt am 31.12.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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03.12.2025
Empfangschip, Verfahren zur Ausgabe von Graustufendaten und Lidar-Vorrichtung
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Zusammenfassung
Zusammenfassung wird geladen … |
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03.12.2025
Radardatenverarbeitungsverfahren, Endgerätevorrichtung und Computerlesbares Speichermedium
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Status
Angemeldet am 21.10.2022
Erteilt am 03.12.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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19.11.2025
Lidar-Empfangsvorrichtung, Lidar-System und Laserentfernungsmessverfahren
EP4603875
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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12.11.2025
Lidar-Gerät mit Gleichmässiger Empfangsbeleuchtungsstärke und Verfahren zur Einstellung der Emissionsparameter Desselben
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Status
Angemeldet am 09.06.2023
Erteilt am 12.11.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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29.10.2025
Opto-Mechanisches Scanning-System mit Verbesserter Wärmeableitung
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Status
Angemeldet am 26.04.2023
Erteilt am 29.10.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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08.10.2025
Lidar und Bewegliche Vorrichtung
EP4628927
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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24.09.2025
Lidar-Steuerungsverfahren, Endgerätevorrichtung und Computerlesbares Speichermedium
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Status
Angemeldet am 28.12.2022
Erteilt am 24.09.2025
Vertretung
Zusammenfassung
The present application is applicable to the technical field of a lidar, and provides a lidar control method, a terminal apparatus, and a computer-readable storage medium. The lidar control method includes the following steps: acquiring first echo data; when an oversaturated region is determined according to the first echo data, controlling LIDAR to measure a scanning region according to a second preset scanning mode to obtain second echo data; performing data fusion based on the first echo data and the second echo data to obtain target data. The LIDAR is controlled to measure according to a first preset scanning mode and the second preset scanning mode, and then data fusion is performed based on the measured first echo data and second echo data, thereby effectively eliminating a problem of signal crosstalk caused by too high reflection energy of an object with high reflectivity, and effectively improving measurement accuracy. |
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27.08.2025
Integrierter Chip mit Störungsverminderter Wellenleiteranordnung und Lidar umfassend einen Solchen Chip
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Status
Angemeldet am 23.12.2022
Erteilt am 27.08.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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27.08.2025
Lidar-Vorrichtung
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Status
Angemeldet am 15.04.2020
Erteilt am 27.08.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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09.07.2025
Lidar-Empfangsvorrichtung, Lidar-System und Laserentfernungsmessverfahren
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Status
Angemeldet am 20.03.2020
Erteilt am 09.07.2025
Vertretung
Zusammenfassung
Zusammenfassung wird geladen … |
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11.06.2025
Einzelphotonen-Lawinendiodenanordnung, Empfangssensor und Lidar
EP4568453
Halbleiter & Elektrische Bauelemente
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Zusammenfassung
Zusammenfassung wird geladen … |
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21.05.2025
Steuersignalerzeugungsschaltung, Halbbrückentreiberschaltung und Lidar
EP4557615
Elektronik & Schaltungstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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23.04.2025
Lidar-Datenverarbeitungsgerät mit Tdc-Eingangsauswahlmodul und Lidar-System
EP4542253
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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26.02.2025
Parameterkonfigurationsverfahren, Vorrichtung und Computerlesbares Speichermedium
EP4513234
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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08.01.2025
Lidar-Steuerungsverfahren, Lidar-Steuerungsvorrichtung, Endgerätevorrichtung und Computerlesbares Speichermedium
EP4488713
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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16.10.2024
Lidar
EP4446774
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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18.09.2024
Lidar-Detektionsverfahren, Lidar und Computerlesbares Speichermedium
EP4431977
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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18.09.2024
Lidar, Autonomes Antriebssystem und Bewegliche Vorrichtung
EP4431976
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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31.07.2024
Laseremissionsschaltung und Lidar
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Zusammenfassung
Zusammenfassung wird geladen … |
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03.07.2024
Laserdetektor und Lidar
EP4394439
Mess-, Prüf- & Zeitmesstechnik
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Zusammenfassung
Zusammenfassung wird geladen … |
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Wer vertritt Suteng Innovation Technology (RoboSense)?
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