Waveform shaping to prevent overshoot and undershoot

The transmitter's waveform shaping stage addresses overshoot and undershoot in RFID systems by dynamically selecting waveforms with varying energy content, ensuring stable and compliant signal transmission.

JP7751471B2Active Publication Date: 2025-10-08RENESAS DESIGN AUSTRIA GMBH
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Patent Information

Application Number
JP2021198977
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-10
Filing Date
2021-12-08
Publication Date
2025-10-08
Estimated Expiration
2041-12-08

AI Technical Summary

Technical Problem

Existing RFID communication systems face issues with overshoot, undershoot, and ringing in amplitude-modulated data signals due to obstructions, leading to non-compliance with standards and potential communication breakdowns.

Method used

A transmitter with a shaping stage that dynamically selects waveforms with varying energy content to avoid these distortions by replacing sine waves with sawtooth, triangular, or square waves during critical edges of the RF field envelope.

Benefits of technology

Ensures compliance with communication standards, maintains a wide communication range, and stabilizes signal transmission by reducing or eliminating overshoot, undershoot, and ringing effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a transmitter that has reduced complexity in communication with a receiver, a wide communication range, and good stability.SOLUTION: A transmitter (1; 21) is for wirelessly transmitting an amplitude-modulated data signal (2) in an RF field (3) to a receiver (4) of an RFID communication system (5; 22). The transmitter (1; 21) includes: a wave generator (6) for generating a carrier signal (7) having a specific frequency and waveform; a modulation stage (15) for modulating the carrier signal (7) with a data signal to be transmitted; and an antenna (11) connected to the modulation stage (15) or the wave generator (6) via an amplifier (9) and a matching circuit (10) in order to wirelessly transmit the amplitude-modulated data signal (2) in the RF field (3). The transmitter (1; 21) further includes a shaping stage (16) connected to the wave generator (6) for selecting the waveform of the carrier signal (7) directly or indirectly depending on the data signal.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a transmitter for wirelessly transmitting an amplitude modulated data signal in an RF field to a receiver in an RFID communication system, the transmitter comprising: a wave generator for generating a carrier signal having a particular frequency and waveform; a modulation stage for modulating a carrier signal with respect to the data signal to be transmitted; an antenna connected to a modulation stage or wave generator via an amplifier and matching circuit for wirelessly transmitting an amplitude modulated data signal in an RF field; Equipped with. [Background technology]

[0002] Known radio frequency identification communication systems use integrated circuits, such as the ST25R3916, in RFID readers or transmitters to communicate with active or passive transponders. In a typical application, the passive transponder or tag stores the product identification of the product to which it is attached, and a reader is used to retrieve this product information. The reader is powered and generates a magnetic RF field that is radiated by its antenna. When the reader and tag are in close proximity to each other, the reader-generated RF field is induced into the tag's antenna and used to power the passive tag. The tag also has a transceiver for receiving signals from the reader and transmitting responses back to the reader.

[0003] There are standards, such as ISO / IEC 18000-3 or ISO / IEC 14.443 Type A and B or ISO 15.693 or ECMA-340 13.56 MHz Near Field Communication (NFC) or in-house standards such as FeliCa from the NFC Forum or Sony Corporation, that define the protocols and types of modulation used to transmit information between tags and readers. Some or all of these standards define the use of amplitude modulation to transmit an amplitude modulated data signal carrying digital data in an RF field wirelessly to the tag. For example, ISO 14.443 Type A further defines the use of modified Miller coding to encode the data signal into a coded data signal for transmission.

[0004] NFC communication systems have increasingly been used in diverse applications. Many of these systems have adverse conditions, such as nearby PCB boards, metal cases, and the like, which can adversely affect the modulation shape of an amplitude-modulated data signal within the RF field. Figures 1 through 3 show examples of such adverse effects. Figure 1A shows an example of an amplitude-modulated data signal on the Tx pin of a state-of-the-art transmitter, where the Tx pin is connected to an antenna via an amplifier and matching circuit to generate the RF field. Figure 1B shows the RF field near the transmitter antenna. The rising edge of the RF field envelope exhibits an overshoot of the maximum amplitude of the carrier signal, which can lead to non-compliance with standards or even a breakdown in communication between the transmitter and receiver. Figure 2A shows another example of a 10% ASK amplitude-modulated data signal on the Tx pin of a state-of-the-art transmitter, leading to an undershoot at the end of the falling edge of the RF field envelope and an overshoot at the end of the rising edge of the RF field envelope. Figure 3A shows another example of a 100% amplitude modulated data signal on the Tx pin of a state-of-the-art transmitter, leading to an effect called "ringing" at the end of the rising edge of the RF field envelope. Another such adverse effect is called "humping," which occurs when the RF field envelope's falling edge decreases or the rising edge begins non-monotonically. This effect is described, for example, in paragraph 5.7.2.2 of the NFC Forum's "Analog Technical Specification," version 2.1.

[0005] To solve these problems, the transmitter equipped with the ST25R3916 integrated circuit dynamically changes the transmitter voltage of the carrier signal between different levels. To avoid overshoot, the transmitter voltage is dynamically changed during the modulation edge, during the time frame of the rising edge of the RF field envelope. This solution has the disadvantage that different supply voltages must be present within the integrated circuit and switching between these voltages must be performed. This requires several power supplies. Otherwise, the regulator would need to change its output voltage very quickly.

[0006] Another known solution to address this problem of overshoot in the RF field implemented by a separate transmitter is to dynamically adapt the antenna characteristics by detuning the antenna through changing the Q-factor in conjunction with changing a controllable resistor. This solution, described in U.S. Pat. No. 9,654,181, has the drawback that detuning the antenna changes the antenna characteristics and thus the behavior of the complete antenna system. This can result in reduced communication range and the risk of communication being lost between the transmitter and the tag before relevant information can be exchanged. As a result, any adaptive control must be applied very carefully to avoid adverse effects. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] U.S. Patent No. 9,654,181 [Non-patent literature]

[0008] [Non-Patent Document 1] NFC Forum Version 2.1, document "Analog Technical Specification", paragraph 5.7.2.2. Summary of the Invention [Problem to be solved by the invention]

[0009] It is an object of the present invention to provide a transmitter with reduced complexity of communication with a receiver, a wide communication range and good stability. [Means for solving the problem]

[0010] This object is achieved by a transmitter further comprising a shaping stage connected to the wave generator for selecting the waveform of the carrier signal directly or indirectly in dependence on the data signal.

[0011] The shaping stage is configured to receive the data signal or encoded data signal at the same time as the modulation stage, and thus knows when the rising or falling edge of the amplitude-modulated data signal occurs. Based on this knowledge, the shaping stage dynamically selects a different waveform for the carrier signal generated by the wave generator with a higher or lower energy content for a limited period of time to avoid overshoot or undershoot, which could otherwise be caused by obstructions in the RF field. The energy content of a wave is related to the area contained within or beneath the wave. For example, if the typical waveform of the carrier signal generated by the wave generator is a sine wave and overshoot at the end of the rising edge in the RF field envelope needs to be avoided, the shaping stage switches one or more waves of the wave generator from a sine wave to a sawtooth or triangular wave. Since the energy content of a sawtooth or triangular wave with the same frequency and amplitude as a sine wave is lower than that of a sine wave, this one or more waves with a lower energy content at the appropriate time will help reduce or avoid overshoot of the RF field envelope.

[0012] These and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter, and those skilled in the art will understand that various embodiments may be combined. [Brief explanation of the drawings]

[0013] [Figure 1A] FIG. 1 shows an example of a 100% amplitude modulated data signal on the Tx pin of a state-of-the-art transmitter, where the Tx pin is connected to an antenna via an amplifier and matching circuit to generate an RF field. [Figure 1B] 1B shows the RF field near the antenna of the transmitter of the amplitude-modulated data signal of FIG. 1A with an overshoot of the rising edge of the envelope of the RF field. [Figure 2A] FIG. 10 shows another example of a 10% ASK amplitude modulated data signal on the Tx pin of a state-of-the-art transmitter, where the Tx pin is connected to an antenna through a matching circuit to generate an RF field. [Figure 2B] 2B shows the RF field near the antenna of the transmitter of the amplitude-modulated data signal of FIG. 2A, with undershoot on the falling edge and overshoot on the rising edge of the envelope of the RF field. [Figure 3A] FIG. 10 shows a further example of a 100% amplitude modulated data signal on the Tx pin of a state-of-the-art transmitter, where the Tx pin is connected to an antenna via a matching circuit to generate an RF field. [Figure 3B] 3B shows the RF field near the antenna of the transmitter of the amplitude-modulated data signal of FIG. 3A, with an overshoot on the rising edge and an effect called "ringing" at the end of the rising edge of the envelope of the RF field. [Figure 4] 1 shows a first embodiment of a transmitter for transmitting an amplitude modulated data signal according to the invention; [Figure 5]5A is a diagram showing a 10% ASK amplitude modulated data signal on the Tx pin of the transmitter shown in FIG. 4 with one square wave inserted to avoid undershoot in the envelope of the RF field, and FIG. 5B is a diagram showing a 10% ASK amplitude modulated data signal on the Tx pin of the transmitter shown in FIG. 4 with one sawtooth wave inserted to avoid overshoot in the envelope of the RF field. [Figure 6A] FIG. 5 shows a 100% amplitude modulated data signal on the Tx pin of the transmitter shown in FIG. 4 with two triangle waves inserted to avoid overshoot. [Figure 6B] FIG. 1 illustrates overshoot in the envelope of an RF field. [Figure 7] FIG. 2 shows a second embodiment of a transmitter for transmitting an amplitude modulated data signal according to the invention; DETAILED DESCRIPTION OF THE INVENTION

[0014] FIG. 4 illustrates a transmitter 1 for wirelessly transmitting an amplitude-modulated data signal 2 in an RF field 3 to a receiver 4 of an RFID communication system 5 according to a first embodiment of the present invention. The transmitter 1 includes a wave generator 6 for generating a carrier signal 7 having a specific frequency and waveform. The RFID communication system 5 complies with NFC standard ISO 18.092, which defines a resonant frequency of the carrier signal 7 at 13.56 MHz with a sinusoidal waveform. The RFID communication system 5 further complies with ISO / IEC 14.443 Types A and B, ISO 15.693, or ECMA-340 13.56 MHz. The wave generator 6 is implemented within an integrated circuit 8 of the transmitter 1 and provides the amplitude-modulated data signal 2 via an amplifier 9 at a Tx pin Tx of the integrated circuit 8. A matching circuit 10 is connected to the Tx pin Tx and matches the impedance to an antenna 11. The matching circuit 10 and antenna 11 are arranged to resonate and transmit an amplified amplitude modulated data signal 2 to a nearby receiver 4, which can be realized as a passive or active tag or any other active device such as a mobile phone.

[0015] Data stage 12 of integrated circuit 8 stores the digital data to be transmitted to receiver 4. As defined in the NFC standard, modified Miller coding must be processed to encode data signal 14 of the digital data in encoder stage 13, which provides encoded data signal 14 to modulation stage 15. Modulation stage 15 is constructed to take the amplitude of carrier signal 7 generated by wave generator 6 to achieve 10% amplitude shift keying ASK modulation of encoded data signal 14 to provide amplitude modulated data signal 2 at Tx pin Tx of integrated circuit 8. In alternative embodiments of the present invention, 50% or 100% ASK modulation, or any other modulation or coding known to those skilled in the art, may be used.

[0016] Transmitter 1 further comprises a shaping stage 16 connected to wave generator 6 for selecting the waveform of carrier signal 7, directly or indirectly depending on the data signal. In this embodiment of the invention, the waveform is selected indirectly from the data signal when an encoded data signal is used. To achieve this, shaping stage 16 is connected to encoder stage 13 and receives encoded data signal 14 at the same time it is provided to modulation stage 15. Thus, shaping stage 16 has knowledge of when a rising or falling edge of amplitude-modulated data signal 2 occurs. FIG. 5A shows amplitude-modulated data signal 2 at Tx pin Tx, where time instance t1 includes a falling edge. FIG. 5B shows the RF field generated by antenna 11. This RF field at time instance t2 will include an undershoot if a transmitter known in the art, as shown in FIG. 2B, is used. To avoid this undershoot, shaping stage 16 is configured to select a different waveform in a second time window after time instance t1 and immediately before time instance t2 to provide more energy to RF field 3. Such alternative waveforms selected by shaping stage 16 are stored in shape configuration stage 17, which stores waveforms with higher and lower energy content than sinusoidal waveforms. A square waveform contains more energy in a signal than a sinusoidal waveform, and shaping stage 16 selects the square waveform to replace the single sine wave of carrier signal 7 with a single square wave to avoid undershoot in envelope 18 of amplitude modulated data signal 3, as shown in Figure 5B.

[0017] FIG. 5A further shows that amplitude-modulated data signal 2 at Tx pin Tx at time instance t3 includes a rising edge. FIG. 5B shows that the RF field at time instance t4, as shown in FIG. 2B, includes almost no overshoot, which would be much higher if a state-of-the-art transmitter were used. To reduce or even avoid this overshoot, shaping stage 16 is configured to select a different waveform in a first time window after time instance t3 and immediately before time instance t4 to provide less energy to RF field 3. Such a different waveform selected by shaping stage 16, having less energy, may be a sawtooth or a triangular waveform, to name just two possible waveforms, and these waveforms are stored as configuration data in shape configuration stage 17. In this embodiment, a sawtooth waveform, having less energy in its signal than a sinusoidal waveform, is selected by shaping stage 16, which replaces the single sine wave of carrier signal 7 with a single sawtooth wave to reduce the overshoot in envelope 18 of amplitude-modulated data signal 3, as shown in FIG. 5B. If the two sine waves are replaced by two sawtooth waves, the slight overshoot shown in Figure 5B can be completely avoided.

[0018] Similar to the overshoot or undershoot in RF field 3, the so-called "hump" can be reduced or completely avoided when the falling edge decreases or the rising or falling edge of the envelope of RF field 3 is not monotonic. By replacing half, full, or several waves of the sine wave of carrier signal 7 with half, full, or several waves of a signal with higher or lower energy content at the appropriate time, distortions of RF field 3, such as the "hump" or "ringing" shown in FIG. 3B, can be reduced or completely avoided. This has the advantage that even if metal or other objects are nearby and disrupt RF field 3, the amplitude-modulated data signal received by the antenna of receiver 4 will fully comply with the standard and can be decoded without error.

[0019] A wave generator 6 capable of generating sinusoidal waveforms one by one is known from the same applicant's European Patent Application No. 3182585. This prior art document discloses a digital power amplifier that generates a sine wave by adding small increments of M digital waveform shaping bits to the output current to generate a sine wave. As an improvement of this teaching, a whole range of other waveforms can also be generated; those skilled in the art will understand how to add increments of M digital waveform shaping bits to generate a triangular waveform instead of a sinusoidal waveform. The same applies to other waveforms, such as sawtooth or rectangular waveforms. Therefore, the present invention further features the inventive use of a digital power amplifier known from the above-mentioned prior art. This inventive use of a digital power amplifier is realized by storing M digital waveform shaping bits for different waveforms with higher or lower energy content in the signal wave in the shaping stage 17, and the selected M digital waveform shaping bits are used to steer the wave generator 6 by the shaping stage 16. The shape configuration stage 17 stores these M digital waveform shaping bits for different waveforms in association with or in combination with a particular waveform of the data signal or encoded data signal.

[0020] Figure 6A shows a 100% amplitude modulated data signal on Tx pin Tx of transmitter 1 shown in Figure 4 with two triangle waves 19 inserted to avoid overshoot in the RF field envelope 20 as shown in Figure 6B. In this example, not only has the waveform been changed from a sine wave to a triangle wave to reduce the energy of the carrier signal, but in addition the amplitude of the triangle wave has been reduced compared to the amplitude of the sine wave, further helping to reduce overshoot in the RF field envelope 20. In another embodiment, the amplitude of the sine wave may be increased in addition to changing to a waveform with more energy content to avoid undershoot.

[0021] 7 shows a transmitter 21 for wirelessly transmitting an amplitude-modulated data signal 2 in an RF field 3 to a receiver 4 of an RFID communication system 22 according to a second embodiment of the present invention. The difference between the transmitter 1 of the first embodiment and the transmitter 21 of the second embodiment is that the wave generator 6 provides a carrier signal 7 that always has the same amplitude, and the amplitude modulation of this carrier signal 7 with the encoded data signal 14 is processed in a modulation stage 15. With this slightly different arrangement, the same inventive advantages as with the transmitter 1 according to the first embodiment of the present invention can be achieved. Furthermore, in this second embodiment of the present invention, the amplifier 9 is not part of the integrated circuit 8, but is realized as an external amplifier 9 connected to the Tx pin Tx.

[0022] In a third embodiment of the invention, not shown, the data signal is not encoded and is therefore used directly to modulate the carrier signal, and the shaping stage therefore selects the waveform of the carrier signal directly in dependence on the data signal.

[0023] In a further embodiment of the present invention, the wave generator can generate a sawtooth or triangular waveform for the commonly used carrier signal. The shaping stage can use a sinusoidal waveform with a higher energy content in the second time frame to avoid undershoots in the envelope of the RF field. In another embodiment of the present invention, the wave generator can generate a square wave for the commonly used carrier signal and a sinusoidal, sawtooth, or triangular waveform with a lower energy content to avoid overshoots in the envelope of the RF field. Those skilled in the art can provide a wide variety of waveforms to choose from, depending on which type of waveform is used as the commonly used waveform for the carrier signal.

[0024] In further embodiments of the present invention, a higher energy content of the carrier signal may be selected for one or several waves in the occurrence of a rising edge of a data signal or coded data signal in order to shorten the duration of a rising edge in the envelope of the RF field. This may cause overshoot, which is not relevant in some embodiments, but shortening the duration of the rising edge may be useful, for example, to increase the bit rate or to facilitate bit detection in a receiver. Similarly, a lower energy content of the carrier signal may be selected for one or several waves in the occurrence of a falling edge of a data signal or coded data signal in order to shorten the duration of a falling edge in the envelope of the RF field. This may cause undershoot, which is not relevant in some embodiments, but shortening the duration of the falling edge may be useful, for example, to increase the bit rate or to facilitate bit detection in a receiver.

Claims

1. A transmitter (1; 21) for wirelessly transmitting an amplitude modulated data signal (2) in an RF field (3) to a receiver (4) of an RFID communication system (5; 22), comprising: a wave generator (6) for generating a carrier signal (7) having a specific frequency and waveform; a modulation stage (15) for amplitude modulating said carrier signal (7) with respect to the data signal to be transmitted; an antenna (11) connected to the modulation stage (15) via an amplifier (9) and a matching circuit (10) for wirelessly transmitting the amplitude modulated data signal (2) in the RF field (3); the transmitter (1; 21) further comprises a shaping stage (16) connected to the wave generator (6) and adapted to select the waveform of the carrier signal (7) in response to the data signal directly or indirectly; 1. The transmitter (1; 21), characterized in that the shaping stage (16) is constructed to select, in a first time window (t3 > t4) after the rising edge of the data signal or coded data signal (14) during a rising edge of the envelope of the RF field (3), a waveform of the carrier signal (7) having the same frequency but a lower energy content as outside this first time window (t3 > t4).

2. A transmitter (1; 21) as described in claim 1, wherein the shaping stage (16) is configured to select a triangular or sawtooth waveform of the carrier signal (7) within the first time frame (t3 > t4) and to select a sinusoidal waveform outside the first time frame (t3 > t4).

3. A transmitter (1; 21) for wirelessly transmitting an amplitude modulated data signal (2) in an RF field (3) to a receiver (4) of an RFID communication system (5; 22), comprising: a wave generator (6) for generating a carrier signal (7) having a specific frequency and waveform; a modulation stage (15) for amplitude modulating said carrier signal (7) with respect to the data signal to be transmitted; an antenna (11) connected to the modulation stage (15) via an amplifier (9) and a matching circuit (10) for wirelessly transmitting the amplitude modulated data signal (2) in the RF field (3); the transmitter (1; 21) further comprises a shaping stage (16) connected to the wave generator (6) and adapted to select the waveform of the carrier signal (7) in response to the data signal directly or indirectly; The shaping stage (16) is configured to select, in a second time window (t1>t2) after the falling edge of the data signal or coded data signal (14) during the falling edge of the envelope of the RF field (3), a waveform of the carrier signal (7) that has the same frequency but a higher energy content as outside this second time window (t1>t2).

4. A transmitter (1; 21) as described in claim 3, wherein the shaping stage (16) is configured to select between a square waveform of the carrier signal (7) within the second time frame (t1 > t2) and a sinusoidal waveform outside the second time frame (t1 > t2).

5. 5. The transmitter (1; 21) according to any one of claims 1 to 4, further comprising an encoder stage (13) for encoding the data signal and providing the encoded data signal (14) to the modulation stage (15) for modulating the carrier signal (7) in a time frame before and / or after a rising edge and / or a falling edge of the encoded data signal (14) and for providing the encoded data signal (14) to the shaping stage (16) for shaping the waveform of the carrier signal (7).

6. 6. A transmitter (1; 21) according to any one of claims 1 to 5, wherein the shape configuration stage (17) stores configuration data with different waveforms of the carrier signal (7) for specific waveforms of the data signal and / or the encoded data signal (14).

7. 7. The transmitter (1; 21) according to any one of claims 1 to 6, wherein the wave generator (6) is configured to generate a carrier signal (7) having an NFC frequency of 13.56 MHz.

8. The modulation stage (15) or wave generator (6) further reducing the amplitude of the data signal or encoded data signal (14) within a first time period (t3>t4) to avoid overshoot within the first time period (t3>t4); 8. The transmitter (1; 21) according to any one of claims 1 to 7, further increasing the amplitude of the data signal or coded data signal (14) in a second time period (t1 > t2) to avoid undershoot in the second time period (t1 > t2).

9. 9. A method of using a transmitter (1; 21) according to any one of claims 1 to 8 for wirelessly transmitting an amplitude modulated data signal (2) in an RF field (3) to a receiver (4) of an RFID communication system (5; 22), said method comprising the steps of: processing an amplitude modulation of a carrier signal (7) having a specific frequency and waveform with a data signal or coded data signal (14) to be transmitted; and selecting, depending on the occurrence of a rising or falling edge of the data signal or encoded data signal (14), a different waveform having a higher or lower energy content of the carrier signal (7) for one or several waves.

10. a lower energy content of the carrier signal (7) for one or several waves at the occurrence of a rising edge of the data signal or coded data signal (14) is selected in order to reduce or avoid overshoot of the envelope of the RF field (3), or 10. The method of claim 9, wherein a higher energy content of the carrier signal (7) for one or several waves at the occurrence of a falling edge of the data signal or coded data signal (14) is selected to reduce or avoid undershoot of the envelope of the RF field (3).

Citation Information

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