IP Library Granted Patent US 12,520,161
Granted Patent B2
US 12,520,161 · App. 18/108,236 · Granted Jan 6, 2026

Power-based channel assignments for overlapping access points

Inventors: Vishal Satyendra Desai (San Jose, CA); Peiman Amini (Fremont, CA); Ardalan Alizadeh (Milpitas, CA)
Assignee: Cisco Technology, Inc.
H04W16/02H04W52/38
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Quick Facts
Patent No.
US 12,520,161
App. No.
18/108,236
Filed
Feb 10, 2023
Granted
Jan 6, 2026
Kind
B2
Art Unit
2473
USPC
370/328
Abstract

According to one or more embodiments of the disclosure, an example process herein may comprise: detecting overlapping coverage among a set of access points; identifying a permissible set of channels for each access point of the set of access points based at least in part on power characteristics associated with each access point of the set of access points; determining a level of modal commonality with neighboring access points for each access point of the set of access points; and assigning a channel to each access point of the set of access points based on the permissible set of channels and the level of modal commonality with neighboring access points for that access point.

Claims (44)

1 . A method comprising:

detecting, by a device, overlapping coverage among a set of access points comprising indoor Wi-Fi access points and outdoor Wi-Fi access points;

identifying, by the device, a permissible set of channels for each access point of the set of access points based at least in part on power characteristics associated with each access point of the set of access points;

determining, by the device, a level of modal commonality with neighboring access points for each access point of the set of access points, wherein the level of modal commonality is determined based on heterogeneity and/or homogeneity between power modes by which candidate access points a operating and power modes which late radio frequency (RF) neighbor access points are operating; and

assigning, by the device, a channel to each access point of the set of access points based on the permissible set of channels and the level of modal commonality with neighboring access points for that access point.

2 . The method as in claim 1 , wherein detecting the overlapping coverage among the set of access points further comprises detecting a set of collocated access points reporting each other as radio frequency (RF) neighbors.

3 . The method as in claim 1 , further comprising:

determining a power characteristic associated with a particular access point of the set of access points by an inspection of data indicative of capabilities of the particular access point in a beacon sent by the particular access point.

4 . The method as in claim 1 , wherein detecting the overlapping coverage among the set of access points further comprises determining a spatial distribution of access points capable of operation in various power modes.

5 . The method as in claim 4 , wherein a level of modal commonality with neighboring access points for a particular access point of the set of access points is determined from the spatial distribution of access points capable of operation in various power modes.

6 . The method as in claim 1 , further comprising:

determining a power mode to be used by multi-power mode capable access points of the set of access points based on radio frequency (RF) density and bandwidth demands associated with the multi-power mode capable access points.

7 . The method as in claim 1 , wherein identifying the permissible set of channels for each access point of the set of access points further comprises:

filtering available channels based on an indication of allowed channels provided by a frequency coordination system.

8 . The method as in claim 1 , further comprising:

determining a power mode to be used by multi-power mode capable access points of the set of access points based on at least one of a power budget or a power spectral density assigned to the multi-power mode capable access points by a frequency coordination system.

9 . The method as in claim 1 , wherein the power characteristics associated with each access point of the set of access points include characteristics indicative of an ability to operate in one or more of a standard power (SP) mode and a low power indoor (LPI) mode.

10 . The method as in claim 1 , further comprising:

prioritizing assignment of a channel to an access point of the set of access points with a heterogenous level of modal commonality with neighboring access points over assignment of the channel to an access point of the set of access points with a uniform level of modal commonality with neighboring access points.

11 . An apparatus, comprising:

one or more network interfaces;

a processor coupled to the one or more network interfaces and configured to execute one or more processes; and

a memory configured to store a process that is executable by the processor, the process when executed configured to:

detect overlapping coverage among a set of access points comprising indoor Wi-Fi access points and outdoor Wi-Fi access points;

identify a permissible set of channels for each access point of the set of access points based at least in part on power characteristics associated with each access point of the set of access points;

determine a level of modal commonality with neighboring access points for each access point of the set of access points, wherein the level of modal commonality is determined based on heterogeneity and/or homogeneity between power modes by which candidate access points are operating and power modes by which immediate radio frequency (RF) neighbor access points are operating; and

assign a channel to each access point of the set of access points based on the permissible set of channels and the level of modal commonality with neighboring access points for that access point.

12 . The apparatus as in claim 11 , wherein detecting the overlapping coverage among the set of access points further comprises detecting a set of collocated access points reporting each other as radio frequency (RF) neighbors.

13 . The apparatus as in claim 11 , wherein the process when executed is further configured to:

determine a power characteristic associated with a particular access point of the set of access points by an inspection of data indicative of capabilities of the particular access point in a beacon sent by the particular access point.

14 . The apparatus as in claim 11 , wherein detecting the overlapping coverage among the set of access points further comprises determining a spatial distribution of access points capable of operation in various power modes.

15 . The apparatus as in claim 14 , wherein a level of modal commonality with neighboring access points for a particular access point of the set of access points is determined from the spatial distribution of access points capable of operation in various power modes relative to the particular access point of the set of access points.

16 . The apparatus as in claim 11 , wherein the process when executed is further configured to:

determine a power mode to be used by multi-power mode capable access points of the set of access points based on radio frequency (RF) density and bandwidth demands associated with the multi-power mode capable access points.

17 . The apparatus as in claim 11 , wherein identifying the permissible set of channels for each access point of the set of access points further comprises:

filtering available channels based on an indication of allowed channels provided by a frequency coordination system.

18 . The apparatus as in claim 11 , wherein the process when executed is further configured to:

determine a power mode to be used by multi-power mode capable access points of the set of access points based on at least one of a power budget or a power spectral density assigned to the multi-power mode capable access points by a frequency coordination system.

19 . The apparatus as in claim 11 , wherein the power characteristics associated with each access point of the set of access points include characteristics indicative of an ability to operate in one or more of a standard power (SP) mode and a low power indoor (LPI) mode.

20 . A tangible, non-transitory, computer-readable medium storing program instructions that cause a device to execute a process comprising:

detecting overlapping coverage among a set of access points comprising indoor Wi-Fi access points and outdoor Wi-Fi access points;

identifying a permissible set of channels for each access point of the set of access points based at least in part on power characteristics associated with each access point of the set of access points;

determining a level of modal commonality with neighboring access points for each access point of the set of access points, wherein the level of modal commonality is determined based on heterogeneity and/or homogeneity between power modes by which candidate ac ss points are operating and power modes by which immediate radio frequency (RF) neighbor access points are operating; and

assigning a channel to each access point of the set of access points based on the permissible set of channels and the level of modal commonality with neighboring access points for that access point.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 10, 2023
From: DESAI, VISHAL SATYENDRA; AMINI, PEIMAN; ALIZADEH, ARDALAN
To: CISCO TECHNOLOGY, INC.
Reel/Frame 062657/0795 →
Continuity (1)
Related Publication 20240276229A1 · Aug 15, 2024
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