IP Library Granted Patent US 11,595,067
Granted Patent B2
US 11,595,067 · App. 17/475,915 · Granted Feb 28, 2023

Wireless transmitters having self-interference cancellation circuitry

Inventor: Yen-Ling Huang (San Jose, CA)
Assignee: Apple Inc.
H04B1/0475
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Quick Facts
Patent No.
US 11,595,067
App. No.
17/475,915
Granted
Feb 28, 2023
Kind
B2
Abstract

An electronic device may include wireless circuitry with a baseband processor, a digital transmitter, a digital-to-analog-converter (DAC), and an antenna. The baseband processor may produce baseband signals. The digital transmitter may generate self-interference-compensated signals based on the baseband signals. The DAC may generate radio-frequency signals for transmission by the antenna based on the self-interference-compensated signals and square-wave local oscillator waveforms. The digital transmitter may include a self-interference canceller that generates the self-interference-compensated signals. The self-interference-compensated signals may mitigate the creation of self-interferer repetition replicas that land on the carrier frequency of the radio-frequency signals. This may allow the radio-frequency signals to be free from error vector magnitude degradation and spectral regrowth that would otherwise be produced due to self-interference in the radio-frequency signals output by the DAC.

Claims (54)

1. A wireless transmitter comprising:

an input path configured to receive a signal of interest corresponding to a baseband signal;

self-interference term generators coupled to the input path in parallel and configured to generate self-interference terms based on the signal of interest;

an adder configured to generate a self-interference-compensated signal based at least in part on the self-interference terms;

a bypass path that couples the input path to the adder; and

delay circuitry disposed on the bypass path.

2. The wireless transmitter of claim 1 further comprising:

a digital-to-analog converter (DAC) having a signal input configured to receive the self-interference-compensated signal and configured to generate a radio-frequency signal based on the self-interference-compensated signal.

3. The wireless transmitter of claim 1 , wherein the self-interference term generators comprise:

a fundamental self-interference term image generator; and

a second order self-interference term generator.

4. The wireless transmitter of claim 3 , wherein the self-interference term generators further comprise:

a second order self-interference term image generator.

5. The wireless transmitter of claim 4 , wherein the self-interference term generators further comprise:

a third order self-interference term generator.

6. The wireless transmitter of claim 5 , wherein the self-interference term generators further comprise:

a third order self-interference term image generator.

7. A wireless transmitter comprising:

an input path configured to receive a signal of interest corresponding to a baseband signal;

self-interference term generators coupled to the input path in parallel and configured to generate self-interference terms based on the signal of interest;

an adder configured to generate a self-interference-compensated signal based at least in part on the self-interference terms; and

filters coupled in series with the self-interference term generators between the self-interference term generators and the adder.

8. The wireless transmitter of claim 7 , wherein the filters comprise finite impulse response (FIR) filters.

9. The wireless transmitter of claim 7 , wherein the filters are configured to generate filtered terms based on the self-interference terms, the wireless transmitter further comprising:

multipliers coupled in series with the filters between the filters and the adder, wherein the multipliers are configured to generate scaled terms by multiplying the filtered terms by one or more complex coefficient values.

10. The wireless transmitter of claim 9 , further comprising:

an additional adder coupled between the multipliers and the adder, wherein the additional adder is configured to generate a summed value by adding the scaled terms together.

11. A wireless transmitter comprising:

an input path configured to receive a signal of interest corresponding to a baseband signal;

self-interference term generators coupled to the input path in parallel and configured to generate self-interference terms based on the signal of interest;

an adder configured to generate a self-interference-compensated signal based at least in part on the self-interference terms;

a set of multipliers, wherein each multiplier in the set of multipliers is coupled in series between a respective one of the self-interference term generators and the adder.

12. A wireless transmitter comprising:

an input path configured to receive a baseband signal;

an output path configured to output a self-interference-compensated signal;

a first portion coupled to the input path and configured to operate at first sample rates;

a second portion coupled to the output path and configured to operate at second sample rates;

a sample rate converter coupled between the first and second portions; and

a self-interference canceller in the first portion of the wireless transmitter and configured to generate the self-interference-compensated signal based at least in part on the baseband signal.

13. The wireless transmitter of claim 12 , wherein the second sample rates are greater than the first sample rates.

14. The wireless transmitter of claim 13 , further comprising:

a digital-to-analog converter (DAC) coupled to the output path and being configured to generate a radio-frequency signal based on the self-interference-compensated signal.

15. The wireless transmitter of claim 12 , further comprising:

a digital-to-analog converter (DAC) coupled to the output path and being configured to generate a radio-frequency signal based on the self-interference-compensated signal.

16. A wireless transmitter comprising:

an input path configured to receive a baseband signal;

an output path configured to output a self-interference-compensated signal;

a first portion coupled to the input path and configured to operate at first sample rates;

a second portion coupled to the output path and configured to operate at second sample rates;

a sample rate converter coupled between the first and second portions; and

a self-interference canceller in the second portion of the wireless transmitter and configured to generate the self-interference-compensated signal based at least in part on the baseband signal.

17. The wireless transmitter of claim 16 , wherein the second sample rates are greater than the first sample rates.

18. The wireless transmitter of claim 17 , further comprising:

a digital-to-analog converter (DAC) coupled to the output path and being configured to generate a radio-frequency signal based on the self-interference-compensated signal.

Continuity (2)
Continuation 16994423 · Aug 14, 2020
Related Publication 20220052718A1 · Feb 17, 2022
Cited By (1)
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