Radar device

The radar device addresses target masking in enclosed environments by adjusting receive gain and transmission power to maintain sensitivity and prevent saturation, improving detection without increased power use.

FR3166708A1Pending Publication Date: 2026-03-27STMICROELECTRONICS INT NV
View PDF 4 Cites 0 Cited by

Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Radar devices in enclosed environments like vehicle passenger compartments face challenges in detecting targets masked by strong echoes due to limited dynamic range, leading to increased power consumption when enhancing sensitivity through component precision.

Method used

A radar device with a control circuit that adjusts receive gain based on time elapsed since transmission, controlling successive emissions with increasing power to keep echo amplitudes below saturation and maintain sensitivity.

Benefits of technology

Enhances detection sensitivity without increasing power consumption by dynamically adjusting receive gain to handle varying echo amplitudes, preventing target masking and component saturation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

Radar device This description relates to a device comprising at least: - a transmit-receive circuit (102) configured to transmit radar waves (120) and receive radar echoes (1006, 1008, 1010) following the transmission of radar waves (120);- a control circuit (108) configured to control successive transmissions of radar waves (120) with increasing transmission powers by the transmit-receive circuit (102), and to adapt, after each reception of radar echoes (1006, 1008, 1010) following each successive transmission of radar waves (120) by the transmit-receive circuit (102), a value of the receive gain of the transmit-receive circuit (102) as a function of a time elapsed since said transmission such that a maximum amplitude of a response (124) of the radar echoes (1006, 1008, 1010) received from the transmit-receive circuit (102) is less than a saturation value in the receive of the transmit-receive circuit. Figure for the abbreviation: Fig. 2;
Need to check novelty before this filing date? Find Prior Art

Description

Title of the invention: Radar device technical field

[0001] The present description relates generally to the field of radar devices. Previous technique

[0002] In the automotive field, it is becoming increasingly common to equip each vehicle with a device for detecting the presence of a child in the passenger compartment of the vehicle.

[0003] Such a device can use radar waves, for example of the IR-UWB type (in English, "intense pulsed-Radio Ultra-Wideband"). The use of IR-UWB radar waves allows for precise telemetry capabilities based on measuring the arrival time of radar echoes and their evolution over time.

[0004] The use of a radar device in an enclosed environment, such as the passenger compartment of a vehicle, generates a significant number of radar echoes, with different levels of power, or amplitude, which depend in particular on the distances between the radar device and the obstacles against which the radar waves are reflected, as well as the materials and shapes of these obstacles.

[0005] The transmission power and receive gain of the radar device can be adapted according to the distance between the device and the detected target. However, in the case of use in an enclosed environment, it is possible that the target may not be detected if, for example, it is masked (i.e., the limited dynamic range of the receiver does not allow it to cover too large a spread of amplitude between strong and weak echoes) by a large obstacle generating strong radar echoes.

[0006] To solve this problem, it is possible to improve the sensitivity, or detection accuracy, of the radar device by increasing the precision of certain components of the radar device, such as the number of bits of the radar device's analog-to-digital converters. However, this solution results in an increase in the radar device's power consumption. Summary of the invention

[0007] There is a need to propose a radar device that does not present at least some of the disadvantages of known solutions.

[0008] One embodiment overcomes all or part of the drawbacks of known radar devices and proposes a device comprising at least:

[0009] - a transmit-receive circuit configured to emit radar waves and to receive radar echoes following the emission of radar waves;

[0010] - a control circuit configured to control successive emissions radar waves with increasing transmission powers by the transmit-receive circuit, and to adapt, after each reception of radar echoes following each successive transmission of radar waves by the transmit-receive circuit, a value of the receive gain of the transmit-receive circuit as a function of a time elapsed since said transmission such that a maximum amplitude of a response of the radar echoes received from the transmit-receive circuit is less than a saturation value in the receive of the transmit-receive circuit.

[0011] According to a particular embodiment, the control circuit is configured to adapt the receive gain value of the transmit-receive circuit such that the power peak amplitudes present in the response of radar echoes following a last of the successive radar wave emissions are greater than a receive sensitivity of the transmit-receive circuit and less than the receive saturation value of the transmit-receive circuit.

[0012] According to a particular embodiment, the control circuit is configured to adapt the receive gain value of the transmit-receive circuit by lowering said value for at least a time interval during which at least one power peak is present in the response of the radar echoes.

[0013] According to a particular embodiment, the control circuit is configured to adapt the value of the receive gain of the transmit-receive circuit by setting start and end times of said at least one time interval and durations during which the receive gain changes value during said at least one time interval.

[0014] According to a particular embodiment, the control circuit is configured to control the transmit-receive circuit such that the number of successive radar wave emissions is a function of a predetermined impulse response length and intrinsic characteristics of the transmit-receive circuit, and / or to control the successive radar wave emissions by increasing, at each of said emissions, the transmission power by several dB, i.e. by at least 2 dB, until reaching a maximum transmission power of the transmit-receive circuit.

[0015] According to a particular embodiment, the control circuit is configured to set a transmit power of at least a first power amplifier of the transmit-receive circuit and / or to control low-noise switches activating or deactivating components providing receive gain of the transmit-receive circuit and / or to set a receive power of at least a second power amplifier of the transmit-receive circuit.

[0016] According to a particular embodiment, the transmit-receive circuit is configured to transmit radar waves and receive UWB type radar echoes.

[0017] According to a particular embodiment, the control circuit comprises at least one processing unit configured to analyze the received radar echoes and determine the value of the receive gain of the transmit-receive circuit as a function of the time elapsed since the emission of the radar waves, and at least one real-time control unit comprising at least one input coupled to at least one output of the processing unit and configured to deliver as output control parameters of components of the transmit-receive circuit enabling the value of the receive gain to be applied by the transmit-receive circuit to be obtained as a function of the time elapsed since the emission of the radar waves.

[0018] According to a particular embodiment, the real-time control unit of the control circuit comprises at least one finite state machine.

[0019] A vehicle is also proposed comprising at least one device as previously described and configured to emit radar waves into a passenger compartment of the vehicle.

[0020] According to a particular embodiment, the device is configured to detect the presence of at least one child in the passenger compartment of the vehicle.

[0021] A radar detection method is also proposed, comprising at least:

[0022] - emission of radar waves by an emission - reception circuit;

[0023] - reception, by the transmission-reception circuit, of radar echoes resulting from the emission of radar waves;

[0024] - adaptation of a gain value in the receiver of the transmission circuit - reception in function of a time elapsed since the emission of radar waves such that a maximum amplitude of a response of radar echoes received from the transmit-receive circuit is less than a saturation value in receive of the transmit-receive circuit;

[0025] and in which the transmission, reception and adaptation steps are repeated by increasing, at each implementation of these steps, the transmission power of the radar waves of the transmission-reception circuit.

[0026] According to a particular embodiment, the value of the receive gain of the transmit-receive circuit is adapted such that the amplitudes of power peaks present in the response of radar echoes following a last of the implemented radar wave emissions are less than the saturation value in receive and greater than a detection threshold in receive of the transmit-receive circuit.

[0027] According to a particular embodiment, the receive gain value of the transmit-receive circuit is adjusted by lowering said value for at least a time interval during which at least one power peak is present in the response of the radar echoes.

[0028] According to a particular embodiment, the value of the receive gain of the transmit-receive circuit is adapted by setting start and end times of said at least one time interval and durations during which the receive gain changes value during said at least one time interval. Brief description of the drawings

[0029] These features and advantages, as well as others, will be described in detail in the following description of particular embodiments, given by way of non-limiting example, in relation to the accompanying figures, among which:

[0030] - Fig. 1 schematically represents an example of a radar device according to a particular embodiment;

[0031] - Figure 2 schematically represents an example of a vehicle in which the A radar device is used;

[0032] - [Fig. 3] shows examples of signals from the radar device according to a mode of a specific project. Description of the implementation methods

[0033] The same elements have been designated by the same reference numerals in the different figures. In particular, the structural and / or functional elements common to the different embodiments may have the same reference numerals and may have identical structural, dimensional and material properties.

[0034] For the sake of clarity, only the steps and elements necessary for understanding the described embodiments have been shown and are detailed. In particular, various elements (transmit-receive circuit, control circuit, processing unit, real-time control unit, etc.) of the radar device are not detailed. Furthermore, the radar device may include other components or circuits not described here, such as components and circuits used for processing emitted radar waves and received radar echoes, such as analog-to-digital converters used to convert radar echoes into digital signals. A person skilled in the art will be able to implement these elements in detail from the functional description given here.

[0035] Unless otherwise specified, when referring to two elements connected together, this means directly connected without intermediate elements other than conductors, and when referring to two elements connected (in English "coupled") together, this means that these two elements can be connected or linked through one or more other elements.

[0036] In the following description, when referring to absolute positional qualifiers, such as the terms "front", "back", "top", "bottom", "left", "right", etc., or relative positional qualifiers, such as the terms "above", "below", "superior", "inferior", etc., or to Orientation qualifiers, such as the terms "horizontal", "vertical", etc., refer, unless otherwise specified, to the orientation of the figures in a normal position of use.

[0037] Unless otherwise specified, the expressions "approximately", "roughly", and "in the order of" mean within 10%, preferably within 5%.

[0038] Fig. 1 schematically represents an example of a radar device 100 according to a particular embodiment.

[0039] The device 100 includes at least one transmit-receive circuit 102 configured to transmit radar waves and receive radar echoes following the transmission of these radar waves, i.e. corresponding firstly to the direct path between the transmitting antenna 104 and receiving antenna 106, then to the echoes of these radar waves after reflection of them, in particular on the target as well as on any obstacles present on the path of the radar waves.

[0040] In the example of [Fig. 1], the transmit-receive circuit 102 corresponds to a single circuit coupled to at least two antennas 104, 106, one used for transmitting radar waves and the other for receiving radar echoes. Alternatively, the device 100 may comprise a single antenna coupled to the transmit-receive circuit 102 and used both for transmitting radar waves and receiving radar echoes. According to another embodiment, the device 100 may comprise at least two antennas used for transmitting radar waves and / or at least two antennas used for receiving radar echoes, these different antennas being coupled to the transmit-receive circuit 102.

[0041] Furthermore, in the example described, the device comprises a single circuit 102 used for transmitting radar waves and receiving radar echoes. Alternatively, it is possible for the transmission of radar waves to be carried out by a transmitting circuit, and for the reception of radar echoes to be carried out by a receiving circuit separate from the transmitting circuit, these circuits together forming the transmit-receive circuit 102.

[0042] According to one embodiment, the transmit-receive circuit 102 can be configured to transmit radar waves and receive UWB (Ultra Wideband) radar echoes, and in particular IR-UWB type echoes. The radar waves, as well as the radar echoes, are in the form of pulses or sequences of pulse waves. Alternatively, the transmit-receive circuit 102 can be configured to transmit and receive radar waves of a type other than UWB.

[0043] The device 100 further comprises at least one control circuit 108 configured to control successive transmissions of radar waves with increasing transmission powers by the transmit-receive circuit 102, and to adapt, after each reception of radar echoes following each successive transmission of radar waves, a value of the receive gain of the transmit-receive circuit 102, depending on the time elapsed since said transmission, such that the maximum amplitude of a response of the radar echoes received from the transmit-receive circuit 102 is less than a saturation value in receive mode for the transmit-receive circuit 102. Saturation of an amplification circuit, in receive or transmit mode, occurs when the required output level exceeds the maximum level that the amplifier can provide. Since the output level is proportional to the product of the gain and the input level, saturation therefore occurs particularly if the input level is too high.

[0044] Following the example of [Fig. 1], the control circuit 108 includes at least one processing unit 110, or processing circuit, configured to analyze the received radar echoes and determine the value of the receive gain of the transmit-receive circuit 102 to be applied as a function of the time elapsed since the transmission of the radar waves so that the maximum amplitude of the response of the radar echoes received by the transmit-receive circuit 102 remains below the receive saturation value of the transmit-receive circuit 102. This processing unit 110 may, for example, include a program analyzing the data provided by the transmit-receive circuit 102 concerning the received radar echoes and providing as output the values ​​of the receive gain intended to be applied by the transmit-receive circuit 102 as a function of time.

[0045] Furthermore, in this example, the control circuit 108 also includes a real-time control unit 112 comprising an input coupled to an output of the processing unit 110 and comprising an output coupled to the transmit-receive circuit 102. The real-time control unit 112 is configured here to receive as input the values ​​of the receive gain intended to be applied by the transmit-receive circuit 102 and to deliver as output control parameters of components of the transmit-receive circuit 102 enabling these receive gain values ​​to be applied by the transmit-receive circuit 102 to be obtained as a function of the time elapsed since the transmission of the radar waves.

[0046] Alternatively, the processing unit 110 and the real-time control unit 112 can be implemented as a single unit or a single circuit.

[0047] According to one embodiment, the real-time control unit 112 may include at least one finite state machine, or finite automaton, for example of the high-speed type (or "High-speed Finite State Machine" in English), allowing the values ​​of the control parameters of the components of the transmit-receive circuit 102 to be applied according to the desired receive gain values ​​to be determined.

[0048] The transmit-receive circuit 102 may include various components that can be controlled, or programmed, dynamically, for example in real time, by through which it is possible on the one hand to control in real time the transmission power of the radar waves by the circuit 102, and on the other hand to control in real time the gain in reception as a function of the time of the radar echoes by the circuit 102. Thus, for the control of the transmission power of the radar waves, the transmit-receive circuit 102 may in particular include at least one first power amplifier used for the transmission of the radar waves, and the real-time control unit 112 may deliver at the output control parameters regulating the power delivered by this first power amplifier, for example by activating or not its different power stages.For controlling the gain in receiving radar echoes, the transmit-receive circuit 102 may include low-noise switches and / or at least one second power amplifier used for receiving radar echoes, and the real-time control unit 112 may, at specific times during reception, output control parameters switching the switches used to activate or deactivate certain components or blocks providing gain in reception and / or regulating the power delivered by the second power amplifier.

[0049] Fig. 2 schematically represents the use of device 100 in a vehicle 1000. In this embodiment, device 100 is intended to emit radar waves in the passenger compartment of the vehicle in order to detect the presence of one or more people, in particular one or more children (a child designated by reference 1002 is represented on Fig. 2).

[0050] In [Fig. 2], the radar waves emitted by device 100 generate three types of radar echoes that are received by device 100. The first radar echoes, 1006, received very shortly after the emission of the radar waves by device 100 and of high power, correspond to the direct paths generated by device 100 itself. The second radar echoes, 1008, of high power, correspond to the echoes reflected by obstacles (for example, vehicle seats in the path of the radar waves). Finally, the third radar echoes, 1010, of lower power than the first and second radar echoes, 1006 and 1008, correspond to those reflected by the target intended to be detected. These different echoes form power peaks of varying amplitudes in the response of the radar echoes received by device 100.

[0051] In such a case, if the receive gain of the transmit-receive circuit 102 is left at a constant value during the reception of these different radar echoes, there is a risk that the third radar echoes 1010 will not be detected because they are masked by the first and second radar echoes 1006, 1008. Indeed, since the gain is adapted to strong echoes, the weak echoes are not amplified enough and fall below the sensitivity of the receiver adapted to strong echoes.

[0052] The control circuit 108 is designed to adapt the receive gain value of the transmit-receive circuit 102 according to the time elapsed since the transmission of the radar waves, such that a maximum amplitude of the response of the various received radar echoes remains below the saturation value of the transmit-receive circuit 102, while maintaining good receive sensitivity for weak radar echoes. In [Fig. 2], reference numeral 1012 designates an example of the receive gain applied by the transmit-receive circuit 102, and reference numeral 1014 designates a control signal applied by the control circuit 108 to the transmit-receive circuit 102 to obtain the desired receive gain.In this example, the receive gain is such that it goes, between times ti and t2, from a first value Gl, corresponding to a desired gain value when receiving the radar echoes returned by the target intended to be detected, to a value G2, lower than Gl and corresponding to a desired gain value when receiving the spurious radar echoes intended to be attenuated (radar echoes 1006, 1008 in this example), before the reception of the first radar echoes 1006 so that when receiving the first and second radar echoes 1006, 1008, between times t2 and t3, the receive gain is equal to G2. For example, to obtain the desired gain values ​​as a function of time, it is possible to set the times from which changes in the received gain value are made, the values ​​of the gain levels, the durations of the ramps formed by the transition from a first value to a second value of the received gain, etc.

[0053] In order to determine the gain values ​​to be applied in reception so that the device 100 can correctly detect the desired target, for example a child in the passenger compartment of a car, the control circuit 108 is configured to control successive emissions of radar waves with increasing emission powers by the transmit-receive circuit 102 and to adapt, after each reception of the radar echoes following each of the successive emissions of radar waves, the gain in reception of the transmit-receive circuit 102 as a function of a time elapsed since said emission such that a maximum amplitude of a response of the radar echoes received from the transmit-receive circuit 102 remains less than a saturation value in reception of the transmit-receive circuit 102.Furthermore, the first transmission power applied by the transmit-receive circuit 102 during a first transmission of radar waves can be such that no peak power of the received radar echoes reaches the saturation value in receive of circuit 102.

[0054] In a particular configuration, the control circuit 108 can be configured to adapt the receive gain value of the transmit-receive circuit 102 such that the amplitudes of power peaks present in the response of radar echoes following the last of the successive radar wave emissions are below the saturation level and above the detection threshold in order to adjust dynamically adjusts the receiver's sensitivity to the echo power of each time window. Furthermore, the control circuit 108 can be configured to adapt the receive gain value of the transmit-receive circuit 102 by lowering said value during one or more time intervals in which one or more power peaks are present in the response of the received radar echoes.

[0055] Fig. 3 schematically represents examples of signals from device 100 during the determination of the receive gain values ​​to be applied by circuit 102.

[0056] In step a), radar waves 120 are emitted by the transmit-receive circuit 102 with a first power PI. Reference numeral 122 designates the control signal applied by the control circuit 108 to the transmit-receive circuit 102 to obtain the desired receive gain. In this step a), this control signal is such that the gain is at a first value Gl, corresponding to the desired receive gain value when receiving the radar echoes intended to be reflected back by the target to be detected. Reference numeral 124 designates the response of the radar echoes received by the transmit-receive circuit 102, and reference numeral 126 designates a reference amplitude level used to parameterize the receive gain values ​​of the circuit 102.In the example shown, the first received radar echoes form an initial power peak whose amplitude exceeds the reference amplitude level 126, while the amplitudes of the power peaks of subsequent radar echoes are lower than this amplitude level 126. Reference 128 designates the control signal calculated by the control circuit 108, which will be applied to the transmit-receive circuit 102 upon the second transmission of radar waves. This control signal is such that the receive gain of the transmit-receive circuit 102 is reduced from the value Gl to a value G2 lower than Gl upon reception of the first radar echoes. Finally, reference 130 designates a detection threshold illustrating the sensitivity of the receiving chain used; that is, the energy value below which an echo cannot be detected.

[0057] In step b), the radar waves 120 are re-emitted by the transmit-receive circuit 102 with a second power P2 greater than the first power P1. In this step b), the control signal 122 applied by the control circuit 108 to the transmit-receive circuit 102 to obtain the desired receive gain values ​​corresponds to the control signal 128 previously calculated at the end of step a). Given the decrease in the receive gain value during the time it takes for the first radar echoes to be received, the first power peak generated by the reception of the first radar echoes is strongly attenuated and is such that its amplitude is lower than the reference amplitude level 126. Furthermore, given the increase in the transmit power of the radar waves 120 between steps a) and b), the amplitudes of the power peaks of the radar echoes The following (second and third in this example) echoes are greater than those obtained in step a). In particular, in the example described, the peak power amplitude of the third received radar echoes has become greater than the reference amplitude level 126. The control signal calculated by the control circuit 108, which will be applied to the transmit-receive circuit 102 at the third transmission of the radar waves, is therefore such that the receive gain of the transmit-receive circuit 102 is reduced during the reception of the first radar echoes and, to a lesser extent, also during the reception of the third radar echoes. Furthermore, the peak power amplitude of the second echoes, which was previously below the detection threshold 130, now exceeds this detection threshold value 130.

[0058] In step c), the radar waves 120 are re-emitted by the transmit-receive circuit 102 with a third power P3 greater than the second power P2. In this step c), the control signal 122 applied by the control circuit 108 to the transmit-receive circuit 102 to obtain the desired receive gain values ​​corresponds to the control signal 128 previously calculated in step b). Given the drops in the receive gain value during the durations in which the first and third radar echoes are received, and considering the increase in transmit power used, the various power peaks following the reception of the different radar echoes are found to be at substantially equal levels.

[0059] Thus, thanks to the adjustment of the receive gain values, the amplitudes of the various power peaks obtained in the response of the received radar echoes are substantially equal to each other, which allows for good sensitivity in detecting the target, as its associated power peak is not masked by other power peaks due to unwanted radar echoes. In particular, device 100 prevents the saturation of the other circuits and components of device 100, notably the analog-to-digital converters processing the received radar signals, and more specifically the amplification stages.

[0060] In the embodiment described above, a first sequence of radar waves with a power of PI is followed by a new sequence of radar waves with a power of P2, and so on. The number of waves emitted per sequence is determined primarily by the grain, or fineness, of processing required to receive the echoes over a given distance. The farther away the echoes to be received are, the greater the number of radar waves in the emitted sequence, as the energies of each wave are accumulated. In the described embodiment, three or four successive emissions, or iterations on the signal power, are implemented, but it is possible for a large number of radar echoes to be received for each sequence of emitted waves. Furthermore, considering the gain establishment time Due to the intrinsic characteristics of the 102 circuit, such as switching times, rise times, etc., it is possible that there may not be as many configurations as there are radar echoes. The number of configurations tested, that is, the number of successive radar wave emissions, can depend on the desired pulse response length and the minimum size of a desired configurable time window, which is related to the intrinsic characteristics of the 102 circuit, such as rise times, switching times, etc.

[0061] Furthermore, the control circuit 108 can control successive radar wave emissions by increasing the transmission power by several dB with each emission, for example, 3 dB, or between 2 and 10 dB, or between 2 and 5 dB, or between 2 and 3 dB. This value for increasing the transmission power can depend on the desired strategy and the intrinsic properties of the receiving chain used, such as the number of bits of an analog-to-digital converter in the receiving chain. Alternatively, other intervals for increasing the transmitted power are possible. For example, it is possible to reduce the receive gain during the radar echo reception periods in the same proportion as the transmit power is increased.

[0062] The last emission power used at the end of the successive radar wave emissions made by circuit 102 can correspond to the maximum emission power of circuit 102.

[0063] The radar device 100 performs successive transmissions of radar waves with an iterative increase in the transmission power used, starting with a low value to avoid saturation of the response of the received radar echoes. By increasing the transmission power, new radar echoes appear. The gain can then be adjusted, i.e., reduced, for echoes of excessive power received by the circuit 102 so that, at the last transmission of radar waves, for example, carried out with the maximum transmission power of the circuit 102, the applied gain values ​​prevent any saturation during the reception of the various radar echoes.

[0064] The receiving gain setting as described above can be implemented at each detection made by device 100, or only once at the initialization of device 100.

[0065] The device 100 is configured to emit radar waves and to evaluate the level of radar echoes and provide feedback to the control circuit 108 to dynamically adapt the device's reception parameters to avoid strong radar echoes that could potentially mask weaker radar echoes that may correspond to those of the target to be detected. The device 100 can form a radar device with enhanced sensitivity and real-time adaptive control of the circuit transmit-receive circuit 102 detects high-power echoes and avoids them by precisely and in real time controlling the receive gain parameters of circuit 102. In the example described above, the transmit power, delays and receive gain are controlled, but other parameters can be considered.

[0066] The proposed device 100 makes it possible, compared to a conventional radar detection device, to improve detection sensitivity without generating an increase in electrical consumption.

[0067] The device 100 can be part of a microcontroller having a radar wave transmitter-receiver circuit, for example of the UWB type.

[0068] As an alternative to the example described above, the device 100 can be used for any radar application other than that of presence detection in a vehicle cabin, for example any UWB or non-UWB radar application, in the automotive field or not.

[0069] Many applications are likely to benefit from the advantages provided by the device 100, the device 100 being able to be integrated in various configurations.

[0070] By way of example, the device 100 can be integrated into a device intended for the automotive industry. The electrification of motor vehicles is causing a sharp increase in the number of electronic components present in vehicles. The device is, for example, intended to be incorporated into such vehicles. Furthermore, driver assistance and automated driving are leading to an increase in the number of electronic components in vehicles. The device includes, for example, elements for protecting the device against electrical hazards.

[0071] By way of example, the device 100 can be intended for industrial use. In particular, the device is used, for example, for the development of green energy or for the electrification of infrastructure, for example, for charging stations or for solar energy collection. The device can also be used in the field of the Internet of Things or in the field of smart homes. The device is, for example, intended to be implemented in electrical power supply circuits for equipment.

[0072] By way of example, the device 100 can be integrated into a device intended for use in personal electronics, for example, to increase the volume of information exchanged via radio frequency communication, in 5G communication systems, or more generally in any connected device. The device is, for example, a mobile phone, or smartphone, or is part of an Internet of Things network. The device is, for example, connected via 5G, WiFi, or broadband communication. The device includes, for example, interfaces to high speed, for example with advanced filtering and protection against electrostatic discharge.

[0073] By way of example, the device 100 can be integrated into communication equipment, or into computers and peripherals. The device is used, for example, in 5G infrastructures and dedicated data centers. The device can also be used in satellites, including, for example, integrated passive devices for radio frequency applications.

[0074] Various embodiments and variations have been described. A person skilled in the art will understand that certain features of these various embodiments and variations could be combined, and other variations will become apparent to a person skilled in the art.

[0075] Finally, the practical implementation of the embodiments and variants described is within the reach of a person skilled in the art, based on the functional indications given above.

Claims

Demands

1. Device (100) comprising at least: - a transmit-receive circuit (102) configured to transmit radar waves (120) and receive radar echoes (1006, 1008, 1010) following the transmission of radar waves (120); - a control circuit (108) configured to control successive emissions of radar waves (120) with increasing emission powers by the transmit-receive circuit (102), and to adapt, after each reception of radar echoes (1006, 1008, 1010) following each of the successive emissions of radar waves (120) by the transmit-receive circuit (102), a value of the receive gain of the transmit-receive circuit (102) as a function of a time elapsed since said emission such that a maximum amplitude of a response (124) of the radar echoes (1006, 1008, 1010) received from the transmit-receive circuit (102) is less than a saturation value in the receive of the transmit-receive circuit (102).

2. Device (100) according to claim 1, wherein the control circuit (108) is configured to adapt the receive gain value of the transmit-receive circuit (102) such that the power peak amplitudes present in the response (124) of the radar echoes (1006, 1008, 1010) following a last of the successive radar wave emissions (120) are greater than a receive sensitivity of the transmit-receive circuit (102) and less than the receive saturation value of the transmit-receive circuit (102).

3. Device (100) according to any one of the preceding claims, wherein the control circuit (108) is configured to adapt the receive gain value of the transmit-receive circuit (102) by lowering said value for at least a time interval during which at least one power peak is present in the response (124) of the radar echoes (1006, 1008, 1010).

4. Device (100) according to claim 3, wherein the control circuit (108) is configured to adapt the receive gain value of the transmit-receive circuit (102) by setting the start and end times of said circuit to at least one time interval and durations during which the gain in reception changes value during said at least one time interval.

5. Device (100) according to any one of the preceding claims, wherein the control circuit (108) is configured to control the transmit-receive circuit (102) such that the number of successive radar wave emissions (120) is a function of a predetermined impulse response length and intrinsic characteristics of the transmit-receive circuit (102), and / or to control the successive radar wave emissions (120) by increasing, at each of said emissions, the transmission power by at least 2 dB until a maximum transmission power of the transmit-receive circuit (102) is reached.

6. Device (100) according to any one of the preceding claims, wherein the control circuit (108) is configured to set a transmit power of at least a first power amplifier of the transmit-receive circuit (102) and / or to control low-noise switches activating or deactivating components providing receive gain of the transmit-receive circuit (102) and / or to set a receive power of at least a second power amplifier of the transmit-receive circuit (102).

7. Device (100) according to any one of the preceding claims, wherein the transmit-receive circuit (102) is configured to transmit radar waves (120) and receive UWB-type radar echoes (1006, 1008, 1010).

8. Device (100) according to any one of the preceding claims, wherein the control circuit (108) comprises at least one processing unit (110) configured to analyze the received radar echoes (1006, 1008, 1010) and determine the value of the receive gain of the transmit-receive circuit (102) as a function of the time elapsed since the transmission of the radar waves (120), and at least one real-time control unit (112) comprising at least one input coupled to at least one output of the processing unit (110) and configured to deliver as output control parameters of components of the transmit-receive circuit (102) enabling the value of the receive gain to be applied by the transmit-receive circuit (102) to be obtained as a function of the time elapsed since the transmission of the radar waves (120).

9. Device (100) according to claim 8, wherein the real-time control unit (112) of the control circuit (108) comprises at least one finite state machine.

10. Vehicle (1000) comprising at least one device (100) according to any one of the preceding claims and configured to emit radar waves (120) into a passenger compartment of the vehicle (1000).

11. Vehicle (1000) according to claim 10, wherein the device (100) is configured to detect the presence of at least one child in the passenger compartment of the vehicle (1000).

12. Radar detection method, comprising at least: - emission of radar waves (120) by a transmit-receive circuit (102); - reception, by the transmit-receive circuit (102), of radar echoes (1006, 1008, 1010) following the emission of radar waves (120); - adaptation of a value of a receive gain of the transmit-receive circuit (102) as a function of a time elapsed since the emission of the radar waves (120) such that a maximum amplitude of a response of the radar echoes (1006, 1008, 1010) received from the transmit-receive circuit (102) is less than a saturation value in the receive of the transmit-receive circuit (102); and in which the transmission, reception and adaptation steps are repeated by increasing, at each implementation of these steps, the transmission power of the radar waves (120) of the transmission-reception circuit (102).

13. A method according to claim 12, wherein the receive gain value of the transmit-receive circuit (102) is adapted such that the power peak amplitudes present in the response (124) of the radar echoes (1006, 1008, 1010) following a last of the implemented radar wave emissions (120) are less than the receive saturation value and greater than a receive detection threshold of the transmit-receive circuit (102).

14. A method according to any one of claims 12 or 13, wherein the receive gain value of the transmit-receive circuit (102) is adjusted by lowering said value for at least an interval of time during which at least one power peak is present in the response (124) of the radar echoes (1006, 1008, 1010).

15. A method according to claim 14, wherein the value of the receive gain of the transmit-receive circuit (102) is adapted by setting start and end times of said at least one time interval and durations during which the receive gain changes value during said at least one time interval.

Citation Information

Patent Citations

  • Two-state automatic gain control for communications and radar

    US20220057478A1

  • Radio frequency sensing using a single device based on concurrent transmit and receive

    US20220349980A1

  • MTI system and method

    US4058809A

  • Radar system with incremental automatic gain control

    US4680588A