IP Library Granted Patent US 11,916,304
Granted Patent B2
US 11,916,304 · App. 17/709,271 · Granted Feb 27, 2024

Correction of systematic error for electronically steered antennas using on-chip programming

Inventors: Lew Cohen (San Diego, CA); Jonathan Comeau (Billerica, MA); Vipul Jain (San Diego, CA)
Assignee: ANOKIWA VE, INC.
H01Q3/34H01Q3/2617H01Q3/38H01Q21/24H04B1/1607H04B1/18H04B7/0617
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Quick Facts
Patent No.
US 11,916,304
App. No.
17/709,271
Granted
Feb 27, 2024
Kind
B2
Abstract

A system and a method for performing correction of systematic error for electronically steered antennas using on-chip programming. A plurality of channels includes a first channel. Each channel is coupled to a respective antenna element and includes a trim control circuit and a phase control circuit. The first channel is coupled to a first respective antenna element. An array calibration memory stores a plurality of phase offsets including a first phase offset. Each phase offset includes an array level calibration phase offset corresponding to a respective channel. The first phase offset corresponds to the first channel. At least one of the trim control circuit and the phase control circuit of the first channel are configured to modify phase of a first signal provided to and/or received from the first respective antenna element. The phase of the first signal is modified based at least in part on the first phase offset.

Claims (29)

1. An apparatus comprising:

a plurality of channels including a first channel, each of the plurality of channels being coupled to a respective antenna element, each of the plurality of channels comprising a trim control circuit and a phase control circuit, the first channel being coupled to a first respective antenna element; and

an array calibration memory storing a plurality of phase offsets including a first phase offset, each of the plurality of phase offsets comprising an array level calibration phase offset corresponding to a respective channel of the plurality of channels, the first phase offset corresponding to the first channel of the plurality of channels, at least one of the trim control circuit of the first channel and the phase control circuit of the first channel being configured to modify a phase of a first signal provided to and/or received from the first respective antenna element, the phase of the first signal being modified based at least in part on the first phase offset.

2. The apparatus of claim 1 , wherein each of the plurality of channels further comprises a gain control circuit.

3. The apparatus of claim 1 , wherein the array calibration memory further stores a plurality of gain offsets including a first gain offset, each of the plurality of gain offsets comprising an array level calibration gain offset corresponding to a respective channel of the plurality of channels.

4. The apparatus of claim 3 , wherein the first gain offset corresponds to the first channel of the plurality of channels, wherein each of the plurality of channels further comprises a gain control circuit, the trim control circuit of the first channel, and/or the gain control circuit of the first channel being configured to modify a gain of the first signal provided to and/or received from the first respective antenna element, wherein the gain of the first signal is further modified based at least in part on the first gain offset.

5. The apparatus of claim 1 wherein the apparatus further comprises:

at least one processor; and

at least one memory including computer program code configured to, with the at least one processor, cause the apparatus to at least:

receive, from a calibration system, a plurality of array level calibration vectors, each of the plurality of array level calibration vectors comprising a phase offset and a gain offset corresponding to a respective channel of the plurality of channels; and

store, in the array calibration memory, the plurality of array level calibration vectors.

6. A method, comprising:

receiving, at a beam forming integrated circuit, a plurality of signals including a first signal, the beam forming integrated circuit comprising a plurality of channels including a first channel, each of the plurality of signals being received from and/or provided to a respective channel of the plurality of channels, each of the plurality of channels being coupled to a respective antenna element, the first channel being coupled to a first respective antenna element, the beam forming integrated circuit further comprising an array calibration memory, the array calibration memory comprising a plurality of phase offsets including a first phase offset, each of the plurality of phase offsets comprising an array level calibration phase offset corresponding to a respective channel of the plurality of channels, the first phase offset corresponding to the first channel of the plurality of channels; and

modifying, by the beam forming integrated circuit, a phase of the first signal based at least in part on the first phase offset stored in the array calibration memory.

7. The method of claim 6 , wherein the array calibration memory further stores a plurality of gain offsets including a first gain offset, each of the plurality of gain offsets comprising an array level calibration gain offset corresponding to a respective channel of the plurality of channels.

8. The method of claim 7 , wherein the first gain offset corresponds to the first channel of the plurality of channels, wherein the method further comprises:

modifying, by the beam forming integrated circuit, based at least in part on the first gain offset, a gain of the first signal provided to and/or received from the first respective antenna element.

9. The method of claim 6 , further comprising:

receiving, at the beam forming integrated circuit from a calibration system, a plurality of array level calibration vectors, each of the plurality of array level calibration vectors comprising a phase offset and a gain offset corresponding to a respective channel of the plurality of channels; and

storing, by the beam forming integrated circuit, in the array calibration memory, the plurality of array level calibration vectors.

10. A non-transitory computer readable medium including computer program code which, when executed by at least one processor, cause operations comprising:

receiving, at a beam forming integrated circuit, a plurality of signals including a first signal, the beam forming integrated circuit comprising a plurality of channels including a first channel, each of the plurality of signals being received from and/or provided to a respective channel of the plurality of channels, each of the plurality of channels being coupled to a respective antenna element, the first channel being coupled to a first respective antenna element, the beam forming integrated circuit further comprising an array calibration memory, the array calibration memory comprising a plurality of phase offsets including a first phase offset, each of the plurality of phase offsets comprising an array level calibration phase offset corresponding to a respective channel of the plurality of channels, the first phase offset corresponding to the first channel of the plurality of channels; and

modifying, by the beam forming integrated circuit, a phase of the first signal based at least in part on the first phase offset stored in the array calibration memory.

11. The non-transitory computer readable medium of claim 10 , wherein the array calibration memory further stores a plurality of gain offsets including a first gain offset, each of the plurality of gain offsets comprising an array level calibration gain offset corresponding to a respective channel of the plurality of channels.

12. The non-transitory computer readable medium of claim 11 , wherein the first gain offset corresponds to the first channel of the plurality of channels, wherein the operations further comprises:

modifying, by the beam forming integrated circuit, based at least in part on the first gain offset, a gain of the first signal provided to and/or received from the first respective antenna element.

13. The non-transitory computer readable medium of claim 10 , wherein the operations further comprise:

receiving, at the beam forming integrated circuit from a calibration system, a plurality of array level calibration vectors, each of the plurality of array level calibration vectors comprising a phase offset and a gain offset corresponding to a respective channel of the plurality of channels; and

storing, by the beam forming integrated circuit, in the array calibration memory, the plurality of array level calibration vectors.

Assignments (4)
MERGER Recorded Oct 20, 2025
From: ANOKIWAVE, INC.
To: QORVO TEXAS, LLC
Reel/Frame 072594/0923 →
RELEASE OF SECURITY INTEREST Recorded Feb 7, 2024
From: CITIZENS BANK, N.A.
To: ANOKIWAVE, INC.
Reel/Frame 066510/0312 →
SECURITY INTEREST Recorded Dec 8, 2022
From: ANOKIWAVE, INC.
To: CITIZENS BANK, N.A.
Reel/Frame 062113/0906 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 30, 2022
From: COHEN, LEW; COMEAU, JONATHAN; JAIN, VIPUL
To: ANOKIWAVE, INC.
Reel/Frame 059449/0868 →
Continuity (2)
Provisional Application 63170418 · Apr 2, 2021
Related Publication 20220320729A1 · Oct 6, 2022