NFC device detection

By detecting and responding to NFC bursts with timely radio frequency pulses, NFC devices in low-power mode improve detection range and adherence to NFC standards, facilitating short-range communication.

FR3167014A1Pending Publication Date: 2026-04-03STMICROELECTRONICS INT NV
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

NFC devices in low-power mode struggle to detect other devices within short range while adhering to NFC Forum standards, particularly when the detection range is less than 10 cm.

Method used

A device in card mode detects a first burst of near-field communication, measures the duration and period of pulses, and emits a radio frequency pulse of equal or less than the detected burst duration within 10 µs, triggering the external device to exit low-power mode.

Benefits of technology

Enhances detection range and compliance with NFC standards by allowing devices in low-power mode to communicate effectively with short-range NFC devices.

✦ Generated by Eureka AI based on patent content.

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Abstract

NFC Device Detection This description relates to a method comprising: - the detection, by a card-mode device (102), of a first burst of near-field communication emitted by an external device (104), the first burst comprising a first pulse of duration Tw; and - the emission, by the card-mode device in response to the external device following the detection of the first pulse of the first burst, of a radio frequency pulse of duration less than or equal to Tw, within a time interval less than or equal to 10 from a leading edge of the first pulse. Figure for the abstract: Fig. 1
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Description

Title of the invention: NFC device detection technical field

[0001] This description relates generally to electronic devices incorporating a near-field communication (NFC) circuit and methods for detecting near-field communication. Prior art

[0002] Electromagnetic transponder communication systems are becoming increasingly common, particularly since the development of near-field communication technologies. These systems typically exploit a radio-frequency electromagnetic field generated by an NFC device (terminal or reader) to detect and then communicate with another NFC device (card) located within range.

[0003] Most of the time, NFC devices are battery-powered. Periods of use of their functions and circuits are therefore generally interspersed with periods of standby. Standby periods, in particular, help to reduce the energy consumption of NFC devices. An NFC device is then "waked up" when it detects an electronic tag or other device within range. There is a need for a method of "waking up" a reader device using a card device. Summary of the invention

[0004] One embodiment provides a method comprising: - the detection, by a device in card mode, of a first burst of near-field communication emitted by an external device, the first burst comprising a first pulse of duration Tw M15; and - the emission, by the device in card mode in response to the external device following the detection of the first pulse of the first burst, of a radio frequency pulse of a duration less than or equal to the duration Tw in a time span less than or equal to 10 F5, from a leading edge of the first pulse.

[0005] According to one embodiment, the above process further comprises, before the detection of the first burst: - the detection, by the device in map mode, of a second burst of near-field communication emitted by the external device, the second burst including a first pulse; - the measurement, by the device in map mode, of the duration of the first pulse of the second burst; - the determination, by the device in map mode, of whether the measured duration belongs to a first reference interval; and - if the measured duration belongs to the first reference interval, the measurement, by the device in map mode, of the period separating the first pulses of the second and first bursts.

[0006] According to one embodiment, the above process further comprises: - the determination, by the device in map mode, of whether the measured period belongs to a second reference interval; and - if the measured period belongs to the second reference interval, the emission, by the device in map mode, of the radio frequency signal.

[0007] According to one embodiment, the second interval is the interval [100; 400] ms and the first interval is the interval [40; 60]

[0008] According to one embodiment, a rear edge of the radio frequency pulse is anterior to a rear edge of the first pulse, or posterior to the rear edge of the first pulse by less than 5

[0009] According to one embodiment, the external device is in a low power mode and in which the emission of the radio frequency signal by the device in card mode causes the external device to exit the low power mode.

[0010] According to one embodiment, the external device is a device emitting only in reader mode.

[0011] According to one embodiment, the external device has a near-field communication emission range of less than or equal to 10 cm.

[0012] According to one embodiment, the radio frequency signal emitted by the device in card mode in response to the first salvo is a signal having a frequency of 13.56 MHz.

[0013] According to one embodiment, the external device is an electronic lock.

[0014] One embodiment provides a near-field communication device in card mode comprising: - a field detector configured to detect a first burst of near-field communication emitted by an external device, the first burst comprising a first pulse of duration Tw - an antenna configured to emit, in response to the external device following the detection of the first pulse of the first burst, a radio frequency pulse of a duration less than or equal to the duration Tw in a time span less than or equal to 10 1*$ from a leading edge of the first pulse.

[0015] According to one embodiment, the above device further comprises a counter configured to: - to measure the duration of the first pulse of a second burst of near-field communication emitted by the external device and detected by the field detector before the detection of the first burst; and - if the measured duration belongs to a first reference interval, measure the period separating the first pulses of the first and second bursts.

[0016] One embodiment provides a system comprising: - the device in map mode above; and - the external near field communication device configured to, when in a low power mode, emit the first near field communication burst.

[0017] According to one embodiment, the external device operates only in reader mode.

[0018] According to one embodiment, the external device is an electronic lock. Brief description of the drawings

[0019] 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:

[0020] Fig. 1 represents, in a very schematic and block-like manner, an example of a near field communication system;

[0021] [Fig.2] represents, schematically and in block form, an example of the realization of a near field communication circuit;

[0022] [Fig.3A] is a timing diagram illustrating an example of a method for detecting near-field communication by a device in standby reader mode;

[0023] [Fig.3B] is a chronogram illustrating in more detail the time of detection of near field communication in [Fig.3A];

[0024] Figure 4 illustrates a method of assisting the device in reader mode implemented by a device in card emulation mode, according to an embodiment of the present description; and

[0025] [Fig.5] is a flowchart illustrating steps of the assistance method implemented by the device in card emulation mode, according to an embodiment of the present description. Description of the implementation methods

[0026] 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.

[0027] For the sake of clarity, only the steps and elements useful for understanding the described embodiments have been shown and are detailed. In particular, the generation of radio frequency signals and their interpretation have not been detailed, the methods of the implementation and methods described are compatible with the usual techniques for generating and interpreting these signals.

[0028] 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 coupled together, this means that these two elements can be connected or linked through one or more other elements.

[0029] In the following description, when reference is made to absolute position qualifiers, such as the terms "front", "back", "top", "bottom", "left", "right", etc., or relative position qualifiers, such as the terms "above", "below", "superior", "inferior", etc., or to orientation qualifiers, such as the terms "horizontal", "vertical", etc., reference is made, unless otherwise specified, to the orientation of the figures.

[0030] Unless otherwise specified, the expressions "approximately", "roughly", and "on the order of" mean to within 10% or 10°, preferably to within 5% or 5°.

[0031] Fig. 1 represents, in a very schematic way and in block form, an example of a 100 near field communication system of the type to which, by way of example, the described embodiments and implementation methods apply.

[0032] The system 100 comprises a first electronic device 102 and a second electronic device 104. The electronic devices 102 and 104 each comprise, for example, one or more Near-Field Communication (NFC) circuits. By way of example, device 102 is configured to operate in card mode, corresponding to card emulation mode, while device 104 is configured to operate in reader mode.

[0033] By way of example, device 102 incorporates a near-field communication circuit 106 comprising at least one electronic element or circuit for generating and detecting a radio frequency signal using an antenna (not shown), for example, modulation or demodulation circuits. By way of example, device 104 incorporates a near-field communication circuit 108 comprising at least one electronic element or circuit for transmitting and detecting a radio frequency signal using an antenna (not shown), for example, modulation or demodulation circuits. During communication from device 102 to device 104, the radio frequency signal generated by device 102 is received by device 104 when the latter is within range. Device 102 emits an electromagnetic field (EMF) which is received by device 104 within range.A coupling then forms between two oscillating circuits, in this case that of the antenna of device 102 and that of the antenna of device 104. This coupling results in a variation of the . charge constituted by the circuits of device 102 on the oscillating circuit of generation of the EMF field of device 102.

[0034] In practice, to establish communication, a variation in phase or amplitude of the emitted field is detected by device 102, which then initiates an NFC communication protocol with device 104. When device 102 detects the presence of device 104 in its field, it initiates a communication establishment procedure implementing the emission of requests by device 102 and responses by device 104, for example, sequences of interrogations as defined in the technical specifications of the NFC Forum standard.

[0035] By way of example, device 102 is a device capable of operating in both card and reader modes, such as a mobile phone, a remote control, etc. Device 104, for example, is a device that cannot emulate a card. In one example, device 104 is an electronic lock, an access control device, etc. For example, device 104 is configured to unlock a door, such as a car door, a house door, or a locker door. By way of example, device 104 is integrated into a structure, such as a door handle, a padlock, etc., powered, for example, by a battery. By way of example, devices 102 and 104 form a contactless transaction system, such as a transit card validation system, a contactless payment system, etc.

[0036] Devices 102 and 104 are configured to switch to a low-power mode, or sleep mode, when not communicating in order to reduce energy consumption. This is particularly relevant for battery-powered NFC devices. In low-power mode, an NFC device configured as a reader performs a low-power card detection (LPCD) mode, also known as low-power tag detection (LPTD) mode, in which it performs loops to detect another device within its range in order to exit sleep mode for communication. An example of a low-power mode is described in patent application published under number US20230189149.As an example, devices 102 and 104 are mobile phones including NFC circuits configured to be switched to low power mode.

[0037] An example of low-power detection is described, for example, in US patent publication 2023 / 0223989. In this example, low-power detection is analogous to that performed when the device is not in low-power mode. However, in normal mode, the carrier emission (of the field) is continuous and periodically includes query frames, whereas in standby mode, the field is transmitted in periodic bursts without query frames to reduce power consumption. These bursts are significantly shorter in duration, for example by a factor of at least ten, preferably at least one hundred, than the duration of a map query in normal mode.

[0038] Fig. 2 represents schematically and in block form an example of the implementation of the near field communication circuit 106 of the device 102.

[0039] The near-field communication circuit 106 includes, for example, a computing unit 201 (CPU), for example, a state machine, a microcontroller, a microprocessor, a programmable logic device, etc. In this example, the circuit 106 further includes a field detector 203 (FIELD DET). The field detector 203 of the device 102 is, for example, configured to detect an electromagnetic field radiated by the device 104 when this device is located within range of the device 102. By way of example, the range of the electromagnetic field radiated by the device 104 is on the order of several centimeters, for example, less than or equal to 50 cm.

[0040] The near field communication circuit 106 further includes a counter 205 (TIMER) controlled by the computing entity 201.

[0041] The circuit 102 includes, for example, various other elements or circuits depending on the application, for example, a signal generator, analog-to-digital and / or digital-to-analog converters, modulation and / or demodulation circuits, an impedance matching circuit, a filtering circuit, etc. These elements and circuits are symbolized by a single functional block 207 (FCT). The near-field communication circuit 106 further includes, for example, one or more volatile storage areas, one or more non-volatile storage areas, one or more data, address, and control buses between the various internal elements of the circuit 106, as well as one or more input / output interfaces for communication with the outside of the circuit 106.

[0042] The device 102 includes a radio frequency transmitting and receiving antenna 209 (ANT) coupled to the circuit 106. The antenna 209 is, for example, configured to emit the electromagnetic field (EMF). According to one embodiment, the circuit 106 includes a fast response function enabling it to transmit a radio frequency signal rapidly, for example, between 2 and 10 microseconds inclusive, after detecting a leading edge of a radio frequency pulse from an external device, for example, the device 104. In one example, this function is implemented in hardware by a state machine. In another example, this function is implemented by the computing entity 201 under the execution of software instructions. In yet another example, this This functionality is integrated into the 203 field detector. For example, in low-power mode, the 203 field detector consumes between 0.1 pA and 15 pA inclusive, and its detection sensitivity is between 50 mVpp and 15 Vpp. In one example, the fast response functionality is implemented by detecting both the amplitude and frequency of the incident signal. The detection time is then on the order of hundreds of microseconds. In another example, only the amplitude of the incident signal is detected, and in this case, the detection time is on the order of a few microseconds, for example, between 2 and 10 ps.

[0043] Fig. 3A is a timing diagram illustrating an example of a detection method, by a device in reader mode and in standby, for example device 104, of a device in card emulation mode, for example device 102. Fig. 3B is a timing diagram illustrating in more detail the moment of detection.

[0044] When in standby mode, corresponding to a period 303 in [Fig. 3A], the device 104, which seeks to detect the presence of the device 102 within range, periodically emits a burst of field. Each burst of field comprises, for example, a pulse 301 corresponding to an unmodulated carrier. The period of the pulses 301, corresponding to the interval between two pulses 301, depends on the device, but is generally a few tens or hundreds of milliseconds. For example, the frequency of the pulses 301 in low-power mode is on the order of a few hertz, for example, on the order of 3 or 4 Hz.

[0045] The duration of a pulse 301 is, for example, on the order of tens or hundreds of microseconds, for example equal to between 20 and 100 ps inclusive, and for example between 40 and 60 ps inclusive, such that approximately 50 ps.

[0046] By way of example, device 104 exits low-power mode temporarily and periodically to emit the bursts 301. Generally, however, it is preferable to use a state machine for emitting bursts in low-power mode. This avoids waking up a microcontroller, for example the computing entity 201, of device 104 and thus allows it to remain in sleep mode.

[0047] If an amplitude and / or phase measurement performed by device 104 exceeds a detection threshold, device 104 exits low-power mode and initiates a detection phase 305, including, for example, the emission of pulses 307 with a period shorter than that of pulses 301, and serving to confirm field detection. Detection of device 102 is possible because its load effect on the antenna of device 104 impacts the amplitude and phase of the bursts 301. A near-field communication establishment procedure 309 is then performed, implementing request and response transmissions between devices 102 and 104, for example, interrogation sequences as defined in the technical specifications of the NFC Forum standard.

[0048] However, when the antenna coupled to the reading device 104 has a relatively short range, for example less than 10 cm, it is difficult for the device 104 to detect the device 102.

[0049] A low-power mode assistance method allows device 102 to extend the detection range of device 104. Device 102 is then configured to emit a radio frequency signal, for example at 13.56 MHz, while device 104 emits in low-power mode in order to modify the electrical characteristics of device 104, and thus facilitate the detection of the presence of device 102 by device 104. However, in order to comply with the NFC Forum standard, device 104 should cease emitting bursts in the presence of an external radio frequency signal.

[0050] Fig. 4 illustrates a method of assisting device 104 implemented by device 102, according to an embodiment of the present description.

[0051] In the illustrated example, the reader device 104 is in low power mode and emits detection bursts comprising pulses 301.

[0052] Two pulses 301 of two consecutive detection bursts are separated by a duration of Ts ms, where Ts is for example between 10 and 500 ms inclusive, and for example between 100 and 400 ms inclusive.

[0053] Each pulse 301 is emitted for a duration of Tw where Tw is, for example, between 20 and 100 F5 inclusive, and for example between 40 and 60 ps inclusive, such as about 50 ps.

[0054] Device 102 is, for example, configured to detect consecutive bursts. In particular, device 102 is configured to transmit a radio frequency signal, for example at 13.56 MHz, when it detects one or more bursts. In one embodiment, device 102 implements its fast response (EFD) functionality. For example, this functionality is activated when device 102 is also in low-power mode.

[0055] A graph 402 in Figure 4 is a zoom around a pulse 301 emitted by the device 102. By way of example, the device 102 is configured to, upon detection of a pulse 301, transmit in response the radio frequency signal 400 with a duration less than or equal to Tw ms. The signal 400 is a pulse emitted before the end of the pulse emitted by the device 104, and having a leading edge 404 within an interval equal to or less than 10 from the leading edge 406 of the detected pulse 301. By way of example, in response to the detection of the emission of the pulse 301, the pulse 400 is emitted between 2 and 10 from the leading edge 406 of the detected pulse 301.

[0056] In the example in Figure 4, a rear edge 408 of pulse 400 is posterior to a rear edge 410 of pulse 301. However, the duration of pulse 400 is by This example was chosen to limit this overshoot to 5 F5 after the rear edge 410. In other examples, the rear edge 408 is prior to the rear edge 410. In particular, the pulsation 400 impacts the electrical amplitude and / or phase characteristics of the pulsation 301. The impact on the amplitude of the pulsation 301 is represented in Figure 4 by the symbol A.

[0057] The pulse 400 emitted by the device 102 allows the device 104 to exit the low power consumption mode in order to switch, for example, into a polling mode (POLLING).

[0058] Fig. 5 is an organizational chart illustrating steps of the method of assistance to device 104 implemented by device 102, according to an embodiment of the present description.

[0059] In a step 500 (START EFD), the device 102, for example in low power mode, activates the fast response functionality.

[0060] In a step 501 (Ist BURST?), following the activation of the fast response functionality, the device 102 is configured to detect, via the field detector 203, a first burst, and in particular a first pulse 301, emitted by an external reading device, such as for example the device 104 in low power mode.

[0061] When device 102 does not detect a burst (branch N at the output of block 501) the process continues in a new detection step 501.

[0062] When device 102 detects an external field (branch Y at the output of block 501), the process continues in step 502 (MEASURE BURST). Device 102 is then configured to measure the length of the pulse 301 emitted by device 104. As an example, the pulse duration is measured by counter 205.

[0063] When the pulse measurement is performed, the process continues in step 503 (Tw?) in which device 102 is configured to determine whether the measurement falls within a reference interval that includes the expected duration of pulse 301. For example, for a duration Tw of 50 M5, the reference interval is [40, 60] M5'. When the pulse duration measurement falls outside the reference interval (branch N at the output of block 503), the process resumes at step 501.

[0064] When the pulse duration measurement falls within the reference interval (branch Y at the output of block 503), the process continues in step 504 (TIMER). During step 504, device 102 is configured to trigger counter 205. For example, counter 205 is triggered immediately after the end of the pulse of the first burst.

[0065] By way of example, in step 505 (NEW BURST?), it is determined whether a new burst is detected by detector 203 before counter 205 reaches a threshold time interval T. For example, the duration T is greater than the expected period Ts between pulses 301, and is, for example, on the order of 500 ms. If, at the expiration of the threshold time interval, no further burst has been detected (branch N at the output of block 505), the process resumes in a new embodiment of step 502.

[0066] If a new burst is detected by the field detector 203 before the expiration of the threshold time interval (branch Y at the output of block 505), the process continues in step 506 (PERIOD?). During the execution of step 506, the time interval measured by the counter 205 between the two bursts, corresponding to the period of the field emitted by the device 104, is compared to a reference period interval including the period Ts. For example, for a period Ts of 50 ms, the reference period interval is within the range [100; 400] ms. If the measured period is outside the reference period interval, the process resumes in a new embodiment of step 502. If the measured period is within the reference period interval, the process continues in step 507 (ASSISTANCE).

[0067] During step 507, device 102 is configured to transmit a radio frequency signal rapidly, i.e., before the end of the second burst pulse. The transmission of this radio frequency signal is implemented, for example, via the fast response function. For example, the radio frequency signal transmitted by device 102 is emitted within a time interval less than or equal to 10 µs after the start of the new burst pulse transmission by the external device. For example, the radio frequency signal is emitted 5 M5 after the detection of the leading edge of the new burst pulse. The transmission duration of the radio frequency signal emitted by device 102 is, for example, less than or equal to the transmission duration Tw of the burst pulse emitted by device 104.

[0068] The radio frequency signal emitted in response by device 102 is, for example, a 13.56 MHz signal. As an example, the radio frequency signal emitted in response allows the electrical characteristics of the external device 104 to be modified. Following the completion of step 507, the process continues in a further embodiment of step 504 in which the counter 205 is activated.

[0069] By way of example, the method is active as soon as a card mode is activated in the device. For example, a card mode is activated when a card or a digital key is added to the device's wallet, or when the device user activates the device's near-field communication.

[0070] One advantage of the described embodiments is that they allow a device in card mode to be detected by an external device that can only transmit in reader mode.

[0071] Another advantage of the described embodiments is that they allow a device in card mode to be detected by a reading device with a short range, for example less than ten centimeters.

[0072] Another advantage of the described embodiments is that they allow the implementation of assistance to a device in reader mode in low power consumption mode while respecting the NFC Forum standard.

[0073] 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.

[0074] Finally, the practical implementation of the described embodiments and variants is within the grasp of a person skilled in the art, based on the functional specifications given above. This is particularly true with regard to the hardware or software implementation of the fast response functionality. Furthermore, the described embodiments can be applied, for example, to cases where the two devices are mobile phones whose near-field communication circuits are configured to switch to low-power mode. Implementing the described embodiments then makes it possible to increase the detection distance between the two phones when they communicate with each other via NFC.

Claims

Demands

1. Method comprising: - the detection, by a device in card mode (102), of a first burst of near field communication emitted by an external device (104), the first burst comprising a first pulse (301) of a duration Tw Ps; cl - the emission, by the device in card mode in response to the external device following the detection of the first pulse of the first burst, of a radio frequency pulse (400) of a duration less than or equal to the duration Tw l15, in a time span less than or equal to 10 from a leading edge of the first pulse.

2. A method according to claim 1, further comprising, before the detection of the first burst: - the detection, by the device in card mode (102), of a second burst (301) of near-field communication emitted by the external device (104), the second burst comprising a first pulse (301); - the measurement, by the device in card mode, of the duration of the first pulse of the second burst; - the determination, by the device in card mode, of whether the measured duration belongs to a first reference interval; and - if the measured duration belongs to the first reference interval, the measurement, by the device in card mode, of the period (Ts) separating the first pulses of the second and first bursts.

3. A method according to claim 2, further comprising: - the determination, by the device in card mode (102), of whether the measured period belongs to a second reference interval; and - if the measured period belongs to the second reference interval, the emission, by the device in card mode, of the radio frequency signal (400).

4. Method according to claim 3, wherein the second interval is the interval [100; 400] ms and the first interval is the interval [40; 60] M®.

5. A method according to any one of claims 2 to 4, wherein a trailing edge (408) of the radio frequency pulse (400) precedes a trailing edge (410) of the first pulse, or posterior to the rear front (410) of the first pulse by less than 5

6. A method according to any one of claims 1 to 5, wherein the external device (104) is in a low power mode and wherein the emission of the radio frequency signal (400) by the device in card mode (102) causes the external device to exit the low power mode.

7. A method according to any one of claims 1 to 6, wherein the external device (104) is a device emitting only in reader mode.

8. A method according to any one of claims 1 to 7, wherein the external device (104) has a near-field communication emission range of less than or equal to 10 cm.

9. A method according to any one of claims 1 to 8, wherein the radio frequency signal (400) emitted by the device in card mode (102) in response to the first salvo is a signal having a frequency of 13.56 MHz.

10. A method according to any one of claims 1 to 9, wherein the external device (104) is an electronic lock.

11. Card-mode near field communication device (102) comprising: - a field detector (203) configured to detect a first near field communication burst emitted by an external device (104), the first burst comprising a first pulse (301) of a duration Tw^; - an antenna (209) configured to transmit, in response to the external device following the detection of the first pulse of the first burst, a radio frequency pulse (400) of a duration less than or equal to the duration Tw M5, in a time interval less than or equal to 10 from a leading edge of the first pulse.

12. A device according to claim 11, further comprising a counter (205) configured to: - measure the duration of a first pulse (301) of a second burst of near-field communication emitted by the external device (104) and detected by the field detector (203) before the detection of the first burst; and - if the measured duration belongs to a first reference interval, measure the period (Ts) separating the first pulses of the first and second bursts.

13. System (100) comprising: - the card mode device (102) according to claim 11 or 12; and - the external near field communication device (104) configured to, when in a low power mode, emit the first near field communication burst.

14. System according to claim 13, wherein the external device (104) operates only in reader mode.

15. System according to claim 14, wherein the external device (104) is an electronic lock.

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