IP Library › Granted Patent US 12,316,282
Granted Patent B2
US 12,316,282 · App. 17/638,498 · Granted May 27, 2025

Compensation circuit and chip, method, apparatus, storage medium, and electronic device

Inventors: Jijun Li (Shenzhen, CN); Jingjing Dong (Shenzhen, CN); Guoliang Zhao (Shenzhen, CN); Zhongyi Chen (Shenzhen, CN)
Assignee: SANECHIPS TECHNOLOGY CO., LTD.
H03F1/3205H03F1/301H03F3/45475H03F2201/3218
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,316,282
App. No.
17/638,498
Granted
May 27, 2025
Kind
B2
Abstract

A compensation circuit, chip, method and device, a storage medium, and an electronic device are disclosed. The compensation circuit may include an analog module ( 102 ) including an input node ( 1022 ) and an output node ( 1024 ), wherein the input node ( 1022 ) is configured to receive an input signal and the output node ( 1024 ) is configured to output an output signal; and a linearity compensation module ( 104 ) including a plurality of transconductance units ( 1042 ), where the plurality of transconductance units ( 1042 ) are configured to acquire a first configuration signal and configure a combination of the plurality of transconductance units ( 1042 ) based on the first configuration signal to provide a compensation signal to the output node ( 1024 ), and the first configuration signal is configured to indicate a signal at any position in the analog module ( 102 ).

Claims (47)

1. A compensation circuit, comprising:

an analog module comprising at least one input node and at least one output node, wherein each of the at least one input node is configured to receive a corresponding input signal and each of the at least one output node is configured to output a corresponding output signal; and

a linearity compensation module comprising a plurality of transconductance units, wherein the plurality of transconductance units are configured to acquire a first configuration signal and configure a combination of the plurality of transconductance units based on the first configuration signal to provide a compensation signal to the at least one output node to compensate for nonlinear components comprised in the at least one output signal, and said first configuration signal comprises any of the at least one input signal, the at least one output signal, or process signals located at any position between the at least one input node and the at least one output node in the analog module.

2. The circuit of claim 1 , wherein each of the transconductance units comprises a plurality of transconductance sub-units connected in parallel to each other; and

the plurality of transconductance units and the plurality of transconductance sub-units are configured to acquire the first configuration signal and configure a combination of the plurality of transconductance units and a combination of the plurality of transconductance sub-units in each transconductance unit based on the first configuration signal to provide the compensation signal to the output node.

3. The circuit of claim 2 , wherein each transconductance sub-unit comprises a transconductance transistor and a bias transistor, wherein a gate of the transconductance transistor is configured to acquire the first configuration signal, and a drain of the transconductance transistor is configured to provide a signal to a source of the bias transistor; a gate of the bias transistor is configured to acquire a bias signal, and a drain of the bias transistor is configured to provide the compensation signal; and

both the transconductance transistor and the bias transistor are PMOS transistors or NOMS transistors.

4. The circuit of claim 2 , wherein each transconductance sub-unit comprises an input terminal, an output terminal, and a current mirror disposed between the input terminal and the output terminal, the output terminal being configured to provide the compensation signal; and

the input terminal comprises the PMOS and NMOS transistors, wherein a source of the PMOS transistor and a source of the NMOS transistor are connected and configured to acquire the first configuration signal, a gate of the PMOS transistor is configured to acquire a first bias signal, a gate of the NMOS transistor is configured to acquire a second bias signal, and a drain of the PMOS transistor and a drain of the NMOS transistor are configured to provide a signal to the current mirror.

5. The circuit of claim 3 , wherein the plurality of transconductance sub-units in each transconductance unit are configured to adopt the PMOS transistors of different sizes; or, the plurality of transconductance sub-units in each transconductance unit are configured to adopt the NMOS transistors of different sizes.

6. The circuit of claim 4 , wherein the plurality of transconductance sub-units in each transconductance unit are configured to adopt the PMOS transistors of different sizes; or, the plurality of transconductance sub-units in each transconductance unit are configured to adopt the NMOS transistors of different sizes; or, the plurality of transconductance sub-units in each transconductance unit are configured to adopt the PMOS transistors of different sizes and NMOS transistors of different sizes.

7. The circuit of claim 1 , wherein the compensation circuit further comprises an operational transconductance amplifier (OTA) connected between the at least one input node and the at least one output node, and each of the at least one output node is configured to output the corresponding output signal based on the at least one input signal being processed by the OTA;

wherein the linearity compensation module configured to compensate for nonlinear components generated by the analog module; and

wherein the linearity compensation module is further configured to generate a compensation current by inputting the first configuration signal to a corresponding combination of transconductance units of the plurality of transconductance units and then summing the resulting currents, and to provide the compensation current to the at least one output node of the analog module to compensate for the nonlinear components comprised in the at least one output signal, wherein the corresponding combination of transconductance units represents the combination of transconductance units of the plurality of transconductance units that provides the optimal linearity compensation for the acquired first configuration signal.

8. The circuit of claim 1 , wherein, in response to the first configuration signal being the input signal, the plurality of transconductance units are configured to acquire the first configuration signal by the following method that each of the transconductance units acquires the input signal from one input node.

9. A compensation method for providing a compensation signal to an analog module comprising at least one input node and at least one output node, each of the at least one input node being configured to receive a corresponding input signal and each of the at least one output node being configured to output a corresponding output signal, comprising:

acquiring a first configuration signal, and configuring a combination of a plurality of transconductance units based on the first configuration signal to provide the compensation signal to the at least one output node to compensate for nonlinear components comprised in the at least one output signal, wherein said first configuration signal comprises any of the at least one input signal, the at least one output signal, or process signals located at any position between the at least one input node and the at least one output node in the analog module.

10. The method of claim 9 , wherein the compensation circuit further comprises an operational transconductance amplifier (OTA) connected between the at least one input node and the at least one output node, and each of the at least one output node is configured to output the corresponding output signal based on the at least one input signal being processed by the OTA;

wherein, configuring a combination of a plurality of transconductance units based on the first configuration signal to provide the compensation signal to the at least one output node to compensate for nonlinear components comprised in the at least one output signal, comprises:

configuring a linearity compensation module to generate a compensation current by inputting the first configuration signal to a corresponding combination of transconductance units of the plurality of transconductance units of the linearity compensation module and then summing the resulting currents, and to provide the compensation current to the at least one output node of the analog module to compensate for the nonlinear components comprised in the at least one output signal, wherein the corresponding combination of transconductance units represents the combination of transconductance units of the plurality of transconductance units that provides the optimal linearity compensation for the acquired first configuration signal.

11. A compensation circuit, comprising:

an analog module comprising at least one input node and at least one output node, wherein each of the at least one input node is configured to receive a corresponding input signal and each of the at least one output node is configured to output a corresponding output signal;

a detection module configured to detect operating information of the analog module and provide a second configuration signal based on the operating information; and

a linearity compensation module comprising a plurality of transconductance units, wherein the plurality of transconductance units are configured to acquire a first configuration signal and the second configuration signal, and configure a combination of the plurality of transconductance units based on at least one of the first configuration signal and second configuration signal to provide a compensation signal to the at least one output node to compensate for nonlinear components comprised in the at least one output signal, said first configuration signal comprises any of the at least one input signal, the at least one output signal, or process signals located at any position between the at least one input node and the at least one output node in the analog module.

12. The circuit of claim 11 , wherein the operating information comprises at least one of process information, voltage information, temperature information and frequency information; and the second configuration signal comprises at least one of a process configuration signal, a voltage configuration signal, a temperature configuration signal and a frequency configuration signal.

13. The circuit of claim 11 , wherein the linearity compensation module is configured to:

acquire a target configuration signal in an m th cycle and provide an m th compensation signal based on the target configuration signal, the target configuration signal comprising at least one of the first configuration signal and the second configuration signal, and m is a non-negative integer;

acquire the first configuration signal and the second configuration signal in an (m+1) th cycle, and provide an (m+1) th compensation signal based on the first configuration signal and the second configuration signal; and

provide the m th compensation signal to the output node in response to a difference in value between the (m+1) th compensation signal and the m th compensation signal being within a predetermined range.

14. The circuit of claim 13 , wherein the detection module is further configured to:

in response to detecting a change in the operating information of the analog module in an n th cycle, provide the second configuration signal again to the linearity compensation module based on the changed operating information, where n is a non-negative integer;

the linearity compensation module is further configured to:

acquire the first configuration signal and the second configuration signal in the n th cycle, and provide an n th compensation signal based on the first configuration signal and

the second configuration signal;

acquire the first configuration signal and the second configuration signal in an (n+1) th cycle, and provide an (n+1) th compensation signal based on the first configuration signal and the second configuration signal; and

provide the n th compensation signal to the output node in response to the difference in value between the (n+1) th compensation signal and the n th compensation signal being within a predetermined range.

15. The circuit of claim 11 , wherein the compensation circuit further comprises an operational transconductance amplifier (OTA) connected between the at least one input node and the at least one output node, and each of the at least one output node is configured to output the corresponding output signal based on the at least one input signal being processed by the OTA;

wherein the linearity compensation module configured to compensate for nonlinear components generated by the analog module; and

wherein the linearity compensation module is further configured to generate a compensation current by inputting the at least one of the first configuration signal and second configuration signal to a corresponding combination of transconductance units of the plurality of transconductance units and then summing the resulting currents, and to provide the compensation current to the at least one output node of the analog module to compensate for the nonlinear components comprised in the at least one output signal, wherein the corresponding combination of transconductance units represents the combination of transconductance units of the plurality of transconductance units that provides the optimal linearity compensation for the at least one of the first configuration signal and second configuration signal.

16. The circuit of claim 11 , wherein each of the transconductance units comprises a plurality of transconductance sub-units connected in parallel to each other; and

the plurality of transconductance units and the plurality of transconductance sub-units are configured to acquire the first configuration signal and the second configuration signal, and configure a combination of the plurality of transconductance units and a combination of the plurality of transconductance sub-units in each transconductance unit based on at least one of the first configuration signal and the second configuration signal to provide the compensation signal to the output node.

17. The circuit of claim 16 , wherein each transconductance sub-unit comprises a transconductance transistor and a bias transistor, wherein a gate of the transconductance transistor is configured to acquire at least one of the first configuration signal and the second configuration signal, and a drain of the transconductance transistor is configured to provide a signal to the source of the bias transistor; a gate of the bias transistor is configured to acquire a bias signal, and a drain of the bias transistor is configured to provide the compensation signal; and

both the transconductance transistor and the bias transistor are PMOS transistors or NOMS transistors.

18. The circuit of claim 16 , wherein each transconductance sub-unit comprises an input terminal, an output terminal, and a current mirror disposed between the input terminal and the output terminal, the output terminal being configured to provide the compensation signal; and

the input terminal comprises the PMOS and NMOS transistors, wherein a source of the PMOS transistor and a source of the NMOS transistor are connected and configured to acquire at least one of the first configuration signal and the second configuration signal; a gate of the PMOS transistor is configured to acquire a first bias signal, a gate of the NMOS transistor is configured to acquire a second bias signal, and a drain of the PMOS transistor and a drain of the NMOS transistor are configured to provide a signal to the current mirror.

19. The circuit of claim 17 , wherein the plurality of transconductance sub-units in each transconductance unit are configured to adopt PMOS transistors of different sizes; or, the plurality of transconductance sub-units in each transconductance unit are configured to adopt the NMOS transistors of different sizes.

20. The circuit of claim 18 , wherein the plurality of transconductance sub-units in each transconductance unit are configured to adopt the PMOS transistors of different sizes; or, the plurality of transconductance sub-units in each transconductance unit are configured to adopt the NMOS transistors of different sizes; or, the plurality of transconductance sub-units in each transconductance unit are configured to adopt the PMOS transistors of different sizes and the NMOS transistors of different sizes.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2022
From: ZTE CORPORATION
To: SANECHIPS TECHNOLOGY CO., LTD.
Reel/Frame 061789/0596 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2022
From: LI, JIJUN; DONG, JINGJING; ZHAO, GUOLIANG; CHEN, ZHONGYI
To: ZTE CORPORATION
Reel/Frame 059104/0629 →
Priority Claims (1)
CN 201910817751.5 · Aug 30, 2019 · national
Continuity (1)
Related Publication 20220393649A1 · Dec 8, 2022
References Cited (25)
US 6188281B1 · Smith et al. · 2001 [cited by applicant]
US 20030045264A1 · Jeong · 2003 [cited by examiner]
US 20070096813A1 · Nam et al. · 2007 [cited by applicant]
US 20170005622A1 · Fitzi · 2017 [cited by applicant]
CN 104348419A · 2015 [cited by applicant]
CN 105811889A · 2016 [cited by examiner]
CN 106411273A · 2017 [cited by applicant]
CN 107370461A · 2017 [cited by applicant]
JP H05136636A · 1993 [cited by applicant]
JP H08242130A · 1996 [cited by applicant]
JP H11103218A · 1999 [cited by applicant]
JP 2002526960A · 2002 [cited by applicant]
JP 2004274439A · 2004 [cited by applicant]
JP 2014179886A · 2014 [cited by applicant]
KR 20070047039A · 2007 [cited by applicant]
WO 2009016716A1 · 2009 [cited by applicant]
WO 2010119456A2 · 2010 [cited by applicant]
Japan Patent Office. Notice of Reasons for Refusal for JP Application No. 2021-565829 and English translation, mailed Jan. 24, 2023, pp. 1-18. [cited by applicant]
Japan Patent Office. Search Report for JP Application No. 2021-262829 and English translation, mailed Dec. 21, 2022, pp. 1-90. [cited by applicant]
International Searching Authority. International Search Report and Written Opinion for PCT Application No. PCT/CN2020/111361 and English translation, mailed Nov. 30, 2020, pp. 1-11. [cited by applicant]
European Patent Office. Extended European Search Report for EP Application No. 20858148.8, mailed Jun. 1, 2022, pp. 1-11. [cited by applicant]
Krishnapura, et al. “A High-IIP3 Third-Order Elliptic Filter With Current-Efficient Feedforward-Compensated Opamps,” IEEE Transactions on Circuits and Systems, vol. 58, No. 4, Apr. 2011, pp. 205-209. [cited by applicant]
European Patent Office. Communication pursuant to Article 94(3) for EP Application No. 20858148.8, mailed Jul. 25, 2024, pp. 1-9. [cited by applicant]
Thyagarajan, S.V., et al., “Low distortion active filters using the Gm-assisted OTA-RC technique,” Proceedings of the IEEE, Sep. 2010, pp. 162-165. [cited by applicant]
The State Intellectual Property Office of People's Republic of China. First Office Action and Search Report for CN Application No. 201910817751.5 and English translation, mailed Apr. 8, 2025, pp. 1-22. [cited by applicant]