Pseudo random sequences in array lidar systems
US-2016327646-A1 · Nov 10, 2016 · US
US2024183982A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2024183982-A1 |
| Application number | US-202418441022-A |
| Country | US |
| Kind code | A1 |
| Filing date | Feb 14, 2024 |
| Priority date | Aug 26, 2021 |
| Publication date | Jun 6, 2024 |
| Grant date | — |
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A sensing device includes a light source that emits light with modulated frequencies; an interference optical system that separates the light emitted from the light source into reference light and output light and generates interference light between reflected light and the reference light, the reflected light being generated by the output light being reflected at a reflecting point of a physical object; a photodetector that receives the interference light and outputs a detection signal according to intensity of the interference light; and a processing circuit that processes the detection signal. The processing circuit selects a specific data format from a plurality of data formats that can be generated by the processing circuit based on the detection signal, and outputs output data including measurement data having the selected specific data format.
Opening claim text (preview).
What is claimed is: 1 . A sensing device comprising: a light source that emits light with modulated frequencies; an interference optical system that separates the light emitted from the light source into reference light and output light and generates interference light between reflected light and the reference light, the reflected light being generated by the output light being reflected at a reflecting point of a physical object; a photodetector that receives the interference light and outputs a detection signal according to intensity of the interference light; and a processing circuit that processes the detection signal, wherein the processing circuit selects a specific data format from a plurality of data formats, the processing circuit being capable of generating the data formats based on the detection signal, and outputs output data including measurement data having the specific data format that is selected. 2 . The sensing device according to claim 1 , wherein the plurality of data formats have data formats for which processing stages of the detection signal are mutually different. 3 . The sensing device according to claim 1 , wherein the processing circuit generates positional information of the reflecting point based on the detection signal and generates the measurement data including the positional information. 4 . The sensing device according to claim 1 , wherein the processing circuit generates velocity information of the reflecting point based on the detection signal and generates the measurement data including the velocity information. 5 . The sensing device according to claim 4 , wherein the velocity information is information indicating a relative velocity vector of the reflecting point with respect to the sensing device or a component of the relative velocity vector in a direction along a straight line connecting the sensing device and the reflecting point. 6 . The sensing device according to claim 1 , wherein the processing circuit generates spectrum information of the interference light based on the detection signal and generates the measurement data including the spectrum information. 7 . The sensing device according to claim 6 , wherein the spectrum information includes information on a power spectrum of the detection signal or a peak frequency of the power spectrum. 8 . The sensing device according to claim 1 , wherein the processing circuit generates waveform data of the interference light based on the detection signal and generates the measurement data including the waveform data. 9 . The sensing device according to claim 1 , wherein the processing circuit: generates positional information and velocity information of the reflecting point based on the detection signal; generates information indicating a degree of danger of the physical object based on the velocity information; and generates the measurement data including the positional information and the information indicating the degree of danger. 10 . The sensing device according to claim 1 , wherein the processing circuit: generates positional information and velocity information of each of a plurality of reflecting points irradiated with the output light; divides the plurality of reflecting points to one or more clusters based on the positional information and determines one velocity vector for each cluster based on the velocity information of three or more reflecting points included in each cluster; and generates the measurement data including information indicating the velocity vector of each cluster. 11 . The sensing device according to claim 1 , wherein the processing circuit includes identification information indicating the specific data format in the output data and outputs the output data. 12 . The sensing device according to claim 1 , wherein the processing circuit selects the specific data format from the plurality of data formats according to a request signal inputted from another device. 13 . The sensing device according to claim 1 further comprising a communication circuit that transmits the output data to another device. 14 . A method comprising: obtaining output data including measurement data, from one or more sensing devices including a light source that emits frequency-modulated light; an interference optical system that separates the light emitted from the light source into reference light and output light and generates interference light between reflected light and the reference light, the reflected light being generated by the output light being reflected at a reflecting point of a physical object; a photodetector that receives the interference light and outputs a detection signal according to intensity of the interference light; and a processing circuit that generates the measurement data based on the detection signal; discriminating a data format of the measurement data; and generating positional information of the physical object by applying arithmetic processing according to the data format that is discriminated to the measurement data. 15 . The method according to claim 14 further comprising transmitting a request signal specifying the data format of the measurement data to the one or more sensing devices. 16 . The method according to claim 15 , wherein the one or more sensing devices are mounted on a mobile object, and the request signal is transmitted to the one or more sensing devices when abnormality is detected in the mobile object itself or in an environment in which the mobile object runs. 17 . The method according to claim 14 , wherein the output data includes identification information indicating the data format of the measurement data, and the discrimination of the data format is performed based on the identification information. 18 . The method according to claim 14 further comprising outputting a signal for controlling operations of a mobile object based on the positional information of the physical object. 19 . The method according to claim 14 comprising: generating parameters for calibrating the sensing device based on the measurement data; and transmitting the parameters to the sensing device. 20 . A processing device comprising: a processor; and a memory storing a computer program that is executed by the processor, wherein the processor performs: obtaining output data including measurement data, from one or more sensing devices including a light source that emits frequency-modulated light; an interference optical system that separates the light emitted from the light source into reference light and output light and generates interference light between reflected light and the reference light, the reflected light being generated by the output light being reflected at a reflecting point of a physical object; a photodetector that receives the interference light and outputs a detection signal according to intensity of the interference light; and a processing circuit that generates the measurement data based on the detection signal; discriminating a data format of the measurement data; and generating positional information of the physical object by applying arithmetic processing according to the data format that is discriminated to the measurement data.
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