IP Library Granted Patent US 12,543,255
Granted Patent B2
US 12,543,255 · App. 18/524,512 · Granted Feb 3, 2026

Lighting control system with light show overrides

Inventors: Horace C. Ho (Austin, TX); Julianne M. Trenary (Austin, TX); Matthew R. Blakeley (Allentown, PA)
Assignee: Lutron Technology Company LLC
H05B47/16
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Quick Facts
Patent No.
US 12,543,255
App. No.
18/524,512
Granted
Feb 3, 2026
Kind
B2
Abstract

Systems and methods are disclosed for a load control system which produces a show by adjusting one or more parameter values, such as color temperature, intensity, spectrum, volume, load state, and position of a window covering, as a function of a show time equal to a current time of day. The load control system is responsive to receiving commands to adjust the show time with respect to the current time of day. The load control system is configured to respond to the received commands by initiating a temporary system override in which the one or more parameter values may rewind or forward in time according to the defined show. The temporary override may exit and the defined show may resume at the current time of day after a predetermined amount of time has passed, at a reset time, or in response to a command.

Claims (81)

1 . A system controller, comprising:

electric load controller control circuitry communicatively couplable to a plurality of electric load devices, the electric load controller control circuitry to:

adjust one or more operational parameters of each of the plurality of electric load devices according to a defined natural show and based on a current time of day;

receive an input representative of a temporal offset from the current time of day in the defined natural show;

determine an end condition associated with the received temporal offset;

determine a shifted time of day in the defined natural show by adjusting the current time of day by the received temporal offset;

determine the one or more operational parameters for each of the plurality of electric load devices at the shifted time of day in the defined natural show;

adjust the one or more operational parameters for each of the electric load devices based on the shifted time of day in the defined natural show;

assess whether the end condition has been fulfilled; and

responsive to the assessment that the end condition has been fulfilled:

determine the one or more operational parameters for each of the plurality of electric load devices at the current time of day; and

revert the one or more operational parameters for each of the electric load devices to the defined natural show at the current time of day.

2 . The system controller of claim 1 wherein to receive the input representative of the temporal offset from the current time of day in the defined natural show, the electric load controller control circuitry to further:

receive an input representative of one of:

a fast forward offset to a future time of day in the defined natural show; or

a rewind offset to a prior time of day in the defined natural show.

3 . The system controller of claim 1 wherein to determine the end condition associated with the received temporal offset, the electric load controller control circuitry to further:

receive an input that associates a duration of the temporal offset with the end condition.

4 . The system controller of claim 1 wherein to determine the end condition associated with the received temporal offset, the electric load controller control circuitry to further:

receive an input that associates a current time of day with the end condition.

5 . A method of controlling a plurality of electrical loads, comprising:

adjusting, by electric load controller control circuitry, one or more operational parameters of each of a plurality of electric load devices according to a defined natural show and based on a current time of day;

receiving, by the electric load controller control circuitry, an input representative of a temporal offset from the current time of day in the defined natural show;

determining, by the electric load controller control circuitry, an end condition associated with the received temporal offset;

determining, by the electric load controller control circuitry, a shifted time of day in the defined natural show by adjusting the current time of day by the received temporal offset;

determining, by the electric load controller control circuitry, the one or more operational parameters for each of the plurality of electric load devices at the shifted time of day in the defined natural show;

adjusting, by the electric load controller control circuitry, the one or more operational parameters for each of the electric load devices based on the shifted time of day in the defined natural show;

assessing, by the electric load controller control circuitry, whether the end condition has been fulfilled; and

responsive to the assessment by the electric load controller control circuitry that the end condition has been fulfilled:

determining, by the electric load controller control circuitry, the one or more operational parameters for each of the plurality of electric load devices at the current time of day; and

reverting, by the electric load controller control circuitry, the one or more operational parameters for each of the electric load devices to the defined natural show at the current time of day.

6 . The method of claim 5 wherein receiving the input representative of the temporal offset from the current time of day in the defined natural show, further comprises:

receiving, by the electric load controller control circuitry, an input representative of one of:

a fast forward offset to a future time of day in the defined natural show; or

a rewind offset to a prior time of day in the defined natural show.

7 . The method of claim 5 wherein determining the end condition associated with the received temporal offset, further comprises:

receiving, by the electric load controller control circuitry, an input that associates a duration of the temporal offset with the end condition.

8 . The method of claim 5 wherein determining the end condition associated with the received temporal offset, further comprises:

receiving, by the electric load controller control circuitry, an input that associates a current time of day with the end condition.

9 . A non-transitory, machine-readable, storage device that includes instructions that, when executed by electric load controller control circuitry, cause the electric load controller control circuitry to:

adjust one or more operational parameters of each of a plurality of electric load devices according to a defined natural show and based on a current time of day;

receive an input representative of a temporal offset from the current time of day in the defined natural show;

determine an end condition associated with the received temporal offset;

determine a shifted time of day in the defined natural show by adjusting the current time of day by the received temporal offset;

determine the one or more operational parameters for each of the plurality of electric load devices at the shifted time of day in the defined natural show;

adjust the one or more operational parameters for each of the electric load devices based on the shifted time of day in the defined natural show;

assess whether the end condition has been fulfilled; and

responsive to the assessment by the electric load controller control circuitry that the end condition has been fulfilled:

determine the one or more operational parameters for each of the plurality of electric load devices at the current time of day; and

revert the one or more operational parameters for each of the electric load devices to the defined natural show at the current time of day.

10 . The non-transitory, machine-readable, storage device of claim 9 wherein the instructions that cause the electric load controller control circuitry to receive the input representative of the temporal offset from the current time of day in the defined natural show, further cause the electric load controller control circuitry to:

receive an input representative of one of:

a fast forward offset to a future time of day in the defined natural show; or

a rewind offset to a prior time of day in the defined natural show.

11 . The non-transitory, machine-readable, storage device of claim 9 wherein the instructions that cause the electric load controller control circuitry to determine the end condition associated with the received temporal offset, further cause the electric load controller control circuitry to:

receive an input that associates a duration of the temporal offset with the end condition.

12 . The non-transitory, machine-readable, storage device of claim 9 wherein the instructions that cause the electric load controller control circuitry to determine the end condition associated with the received temporal offset, further cause the electric load controller control circuitry to:

receive an input that associates a current time of day with the end condition.

13 . An electric load control system, comprising:

one or more electric load devices;

controller circuitry communicatively coupled via one or more wireless networks to each of the one or more electric load devices, the controller circuitry to:

adjust, based on a current system time, one or more operational parameters of the one or more electric load devices according to a defined natural show;

receive an input that includes data representative of:

a temporal offset from the current system time in the defined natural show; and

a temporal offset end condition;

determine a shifted system time in the defined natural show by adjusting the current system time by the received temporal offset;

determine the one or more operational parameters for each of the one or more electric load devices in the defined natural show at the shifted system time;

adjust the one or more operational parameters for each of the one or more electric load devices in the defined natural show based on the shifted system time;

assess whether the temporal offset end condition has been fulfilled; and

responsive to the assessment that the temporal offset end condition has been fulfilled:

determine the one or more operational parameters for each of the one or more electric load devices at the then current system time; and

revert the one or more operational parameters for each of the one or more electric load devices to the defined natural show at the current system time.

14 . The electric load control system of claim 13 wherein to adjust, based on the current system time, the one or more operational parameters of the one or more electric load devices according to the defined natural show, the control circuitry to further:

adjust, based on the current system time, the one or more operational parameters of the one or more electric load devices according to the defined natural show;

wherein the current system time corresponds to the local time-of-day.

15 . The electric load control system of claim 13 wherein to receive an input that includes data representative of the temporal offset end condition, the control circuitry to further:

receive an input that includes data representative of a temporal offset end condition that includes a defined time interval to operate at the shifted system time.

16 . The electric load control system of claim 13 wherein to receive an input that includes data representative of the temporal offset end condition, the control circuitry to further:

receive an input that includes data representative of a temporal offset end condition that includes an occurrence of a defined event.

17 . The electric load control system of claim 13 wherein to receive an input that includes data representative of the temporal offset end condition, the control circuitry to further:

receive an input that includes data representative of a temporal offset end condition that includes a current system time to revert the defined natural show to the then current system time.

Continuity (3)
Continuation 17375682 · Jul 14, 2021
Provisional Application 63051492 · Jul 14, 2020
Related Publication 20250185144A1 · Jun 5, 2025
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