IP Library Granted Patent US 12,658,983
Granted Patent B2
US 12,658,983 · App. 18/452,398 · Granted Jun 16, 2026

Aperture magnification using reflective components for spatially multiplexed line of sight communications

Inventors: Ahmed Bedewy (Hillsborough, NJ); Juergen Cezanne (Ocean Township, NJ); Meilong Jiang (Westfield, NJ); Ashwin Sampath (Skillman, NJ); Junyi Li (Fairless Hills, PA); Ozge Koymen (Princeton, NJ); Danlu Zhang (San Diego, CA); Yavuz Yapici (Florham Park, NJ)
Assignee: QUALCOMM Incorporated
H04B7/04013H04B7/0615
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Quick Facts
Patent No.
US 12,658,983
App. No.
18/452,398
Granted
Jun 16, 2026
Kind
B2
Abstract

Methods, systems, and devices for wireless communications are described. The described techniques may enable transmitting and receiving devices to increase an effective aperture size of transmitting and receiving antenna arrays, which may increase an achievable rank of spatially multiplexed communications. For example, one or both of the transmitting device and the receiving device may use a reflective component to reflect signals transmitted between the devices, which may allow for larger effective aperture sizes without increasing a physical distance between antenna elements. In some examples, the reflective component may be a static concave mirror associated with a predetermined weight vector and focal point. In some examples, the concave mirror may be a reflective intelligent surface (RIS) of reflective elements with reflective properties which may be dynamically adjusted to various weight vectors. An orientation of the RIS may be adjusted to steer a beam in various directions in space.

Claims (58)

1 . A first wireless device, comprising:

one or more memories storing processor-executable code; and

one or more processors coupled with the one or more memories and individually or collectively operable to execute the code to cause the first wireless device to:

perform an adjustment procedure associated with a reflective component of the first wireless device based at least in part on a target rank for spatially multiplexed communications between the first wireless device and a second wireless device, wherein the adjustment procedure adjusts an effective aperture size of a first set of antenna elements of the first wireless device; and

perform the spatially multiplexed communications with the second wireless device using the reflective component based at least in part on the adjustment procedure and in accordance with the target rank, wherein the target rank of the spatially multiplexed communications is greater than a rank of spatially multiplexed communications that is achievable without reflection via the reflective component.

2 . The first wireless device of claim 1 , wherein the reflective component is a reflective intelligent surface (RIS), and, to perform the adjustment procedure, the one or more processors are individually or collectively operable to execute the code to cause the first wireless device to:

adjust a reflective property of reflective elements of the RIS based at least in part on the target rank of the spatially multiplexed communications, wherein performing the spatially multiplexed communications is based at least in part on adjusting the reflective property.

3 . The first wireless device of claim 2 , wherein the RIS is associated with a plurality of weight vectors, and, to adjust the reflective property of the reflective elements, the one or more processors are individually or collectively operable to execute the code to cause the first wireless device to:

adjust a weight vector of the RIS to be a first weight vector of the plurality of weight vectors to cause the RIS to act as a concave mirror, wherein a focal point of the concave mirror is based at least in part on the first weight vector of the plurality of weight vectors.

4 . The first wireless device of claim 2 , wherein, to adjust the reflective property of the reflective elements of the RIS, the one or more processors are individually or collectively operable to execute the code to cause the first wireless device to:

adjust the reflective property of the reflective elements of the RIS to increase one or more first effective distances between antenna elements of the first set of antenna elements of the first wireless device or one or more second effective distances between antenna elements of a second set of antenna elements of the second wireless device based at least in part on a focal point of the RIS, wherein the one or more first effective distances and the one or more second effective distances are based at least in part on the target rank of the spatially multiplexed communications.

5 . The first wireless device of claim 1 , wherein, to perform the adjustment procedure, the one or more processors are individually or collectively operable to execute the code to cause the first wireless device to:

adjust an orientation of the reflective component based at least in part on a first position of the first set of antenna elements of the first wireless device and a second position of a second set of antenna elements of the second wireless device, wherein performing the spatially multiplexed communications is based at least in part on adjusting the orientation.

6 . The first wireless device of claim 1 , wherein the rank of spatially multiplexed communications that is achievable without reflection via the reflective component is based at least in part on one or more first distances between antenna elements of the first set of antenna elements of the first wireless device, one or more second distances between antenna elements of a second set of antenna elements of the second wireless device, and a third distance between the first set of antenna elements and the second set of antenna elements.

7 . The first wireless device of claim 1 , wherein a focal point of the reflective component is based at least in part on the target rank of the spatially multiplexed communications.

8 . The first wireless device of claim 1 , wherein, to perform the spatially multiplexed communications, the one or more processors are individually or collectively operable to execute the code to cause the first wireless device to:

perform the spatially multiplexed communications with the second wireless device in accordance with a second reflective component of the second wireless device.

9 . The first wireless device of claim 1 , wherein the first set of antenna elements of the first wireless device is a set of transmitting antenna elements and a second set of antenna elements of the second wireless device is a set of receiving antenna elements.

10 . The first wireless device of claim 1 , wherein the first set of antenna elements of the first wireless device is a set of receiving antenna elements and a second set of antenna elements of the second wireless device is a set of transmitting antenna elements.

11 . The first wireless device of claim 1 , wherein the reflective component is a concave mirror.

12 . A reflective intelligent surface (RIS), comprising:

one or more memories storing processor-executable code; and

one or more processors coupled with the one or more memories and individually or collectively operable to execute the code to cause the RIS to:

perform an adjustment procedure of the RIS based at least in part on a target rank for spatially multiplexed communications between a first wireless device and a second wireless device, wherein the adjustment procedure adjusts an effective aperture size of a first set of antenna elements of the RIS; and

reflect at least one signal between the first set of antenna elements of the first wireless device and a second set of antenna elements of the second wireless device, wherein spatially multiplexed communications associated with reflection of the at least one signal are in accordance with the target rank, and wherein the target rank of the spatially multiplexed communications is greater than a rank of spatially multiplexed communications that is achievable without reflection via the RIS.

13 . The RIS of claim 12 , wherein, to perform the adjustment procedure, the one or more processors are individually or collectively operable to execute the code to cause the RIS to:

adjust a reflective property of reflective elements of the RIS based at least in part on the target rank of the spatially multiplexed communications, wherein reflecting the at least one signal is based at least in part on adjusting the reflective property.

14 . The RIS of claim 13 , wherein the RIS is associated with a plurality of weight vectors, and, to adjust the reflective property of the reflective elements, the one or more processors are individually or collectively operable to execute the code to cause the RIS to:

adjust a weight vector of the RIS to be a first weight vector of the plurality of weight vectors to cause the RIS to act as a concave mirror, wherein a focal point of the concave mirror is based at least in part on the first weight vector of the plurality of weight vectors.

15 . The RIS of claim 13 , wherein, to adjust the reflective property of the reflective elements of the RIS, the one or more processors are individually or collectively operable to execute the code to cause the RIS to:

adjust the reflective property of the reflective elements of the RIS to increase one or more first effective distances between antenna elements of the first set of antenna elements of the first wireless device or one or more second effective distances between antenna elements of the second set of antenna elements of the second wireless device based at least in part on a focal point of the RIS, wherein the one or more first effective distances and the one or more second effective distances are based at least in part on the target rank of the spatially multiplexed communications.

16 . The RIS of claim 12 , wherein, to perform the adjustment procedure, the one or more processors are individually or collectively operable to execute the code to cause the RIS to:

adjust an orientation of the RIS based at least in part on a first position of the first set of antenna elements of the first wireless device and a second position of the second set of antenna elements of the second wireless device, wherein reflecting the at least one signal is based at least in part on adjusting the orientation.

17 . The RIS of claim 12 , wherein the rank of spatially multiplexed communications that is achievable without reflection via the RIS is based at least in part on one or more first distances between antenna elements of the first set of antenna elements of the first wireless device, one or more second distances between antenna elements of the second set of antenna elements of the second wireless device, and a third distance between the first set of antenna elements and the second set of antenna elements.

18 . The RIS of claim 12 , wherein a focal point of the RIS is based at least in part on the target rank of the spatially multiplexed communications.

19 . The RIS of claim 12 , wherein the RIS is a reflective component of the first wireless device.

20 . The RIS of claim 19 , wherein the first set of antenna elements of the first wireless device is a set of transmitting antenna elements and the second set of antenna elements of the second wireless device is a set of receiving antenna elements.

21 . The RIS of claim 19 , wherein the first set of antenna elements of the first wireless device is a set of receiving antenna elements and the second set of antenna elements of the second wireless device is a set of transmitting antenna elements.

22 . The RIS of claim 19 , wherein, to reflect the at least one signal, the one or more processors are individually or collectively operable to execute the code to cause the RIS to:

reflect the at least one signal based at least in part on a second reflective component of the second wireless device.

23 . A method for wireless communications by a first wireless device, comprising:

performing an adjustment procedure associated with a reflective component of the first wireless device based at least in part on a target rank for spatially multiplexed communications between the first wireless device and a second wireless device, wherein the adjustment procedure adjusts an effective aperture size of a first set of antenna elements of the first wireless device; and

performing the spatially multiplexed communications with the second wireless device using the reflective component based at least in part on the adjustment procedure and in accordance with the target rank, wherein the target rank of the spatially multiplexed communications is greater than a rank of spatially multiplexed communications that is achievable without reflection via the reflective component.

24 . The method of claim 23 , wherein the reflective component is a reflective intelligent surface (RIS) and performing the adjustment procedure comprises:

adjusting a reflective property of reflective elements of the RIS based at least in part on the target rank of the spatially multiplexed communications, wherein performing the spatially multiplexed communications is based at least in part on adjusting the reflective property.

25 . The method of claim 24 , wherein the RIS is associated with a plurality of weight vectors, and adjusting the reflective property of the reflective elements comprises:

adjusting a weight vector of the RIS to be a first weight vector of the plurality of weight vectors to cause the RIS to act as a concave mirror, wherein a focal point of the concave mirror is based at least in part on the first weight vector of the plurality of weight vectors.

26 . The method of claim 24 , wherein adjusting the reflective property of the reflective elements of the RIS comprises:

adjusting the reflective property of the reflective elements of the RIS to increase one or more first effective distances between antenna elements of the first set of antenna elements of the first wireless device or one or more second effective distances between antenna elements of a second set of antenna elements of the second wireless device based at least in part on a focal point of the RIS, wherein the one or more first effective distances and the one or more second effective distances are based at least in part on the target rank of the spatially multiplexed communications.

27 . The method of claim 23 , wherein performing the adjustment procedure comprises:

adjusting an orientation of the reflective component based at least in part on a first position of the first set of antenna elements of the first wireless device and a second position of a second set of antenna elements of the second wireless device, wherein performing the spatially multiplexed communications is based at least in part on adjusting the orientation.

28 . A method for wireless communications at a reflective intelligent surface (RIS), comprising:

performing an adjustment procedure of the RIS based at least in part on a target rank for spatially multiplexed communications between a first wireless device and a second wireless device, wherein the adjustment procedure adjusts an effective aperture size of a first set of antenna elements of the RIS; and

reflecting at least one signal between the first set of antenna elements of the first wireless device and a second set of antenna elements of the second wireless device, wherein spatially multiplexed communications associated with reflection of the at least one signal are in accordance with the target rank, and wherein the target rank of the spatially multiplexed communications is greater than a rank of spatially multiplexed communications that is achievable without reflection via the RIS.

29 . The method of claim 28 , wherein performing the adjustment procedure comprises:

adjusting a reflective property of reflective elements of the RIS based at least in part on the target rank of the spatially multiplexed communications, wherein reflecting the at least one signal is based at least in part on adjusting the reflective property.

30 . The method of claim 29 , wherein the RIS is associated with a plurality of weight vectors, and adjusting the reflective property of the reflective elements comprises:

adjusting a weight vector of the RIS to be a first weight vector of the plurality of weight vectors to cause the RIS to act as a concave mirror, wherein a focal point of the concave mirror is based at least in part on the first weight vector of the plurality of weight vectors.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2023
From: BEDEWY, AHMED; CEZANNE, JUERGEN; JIANG, MEILONG; SAMPATH, ASHWIN; LI, JUNYI; KOYMEN, OZGE; ZHANG, DANLU; YAPICI, YAVUZ
To: QUALCOMM INCORPORATED
Reel/Frame 065265/0292 →
Continuity (1)
Related Publication 20250062793A1 · Feb 20, 2025
References Cited (11)
US 20140146916A1 · Shattil · 2014 [cited by examiner]
US 20170276546A1 · Sakai · 2017 [cited by examiner]
US 20180109002A1 · Foo · 2018 [cited by applicant]
US 20230063645A1 · Gurelli et al. · 2023 [cited by applicant]
US 20230327714A1 · Baligh · 2023 [cited by examiner]
US 20240413858A1 · Mcmenamy · 2024 [cited by examiner]
US 20250317164A1 · Ali · 2025 [cited by examiner]
WO WO2022213000A1 · 2022 [cited by applicant]
Chen W., et al., “Channel Customization for Joint Tx-RISs-Rx Design in Hybrid mmWave Systems”, Arxiv.Org, Cornell University Library, 201 Olin Library Cornell University Ithaca, NY 14853, May 3, 2023, XP091500805, DOI: … [cited by applicant]
International Search Report and Written Opinion—PCT/US2024/041749—ISA/EPO—Nov. 11, 2024 (2305167WO). [cited by applicant]
Meng S., et al., “Rank Optimization for MIMO Systems with RIS: Simulation and Measurement”, Arxiv.Org, Cornell University Library, 201 Olin Library Cornell University Ithaca, NY 14853, Jul. 25, 2023, XP091573301, p. 1-3… [cited by applicant]