IP Library Granted Patent US 9,654,924
Granted Patent B2
US 9,654,924 · App. 14/937,193 · Granted May 16, 2017

System and method for device-centric location detection and geofencing

Inventor: Charles Carter Jernigan (Santa Clara, CA)
Assignee: two forty four a.m. LLC
H04W4/021Y02B60/50
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Quick Facts
Patent No.
US 9,654,924
App. No.
14/937,193
Granted
May 16, 2017
Kind
B2
Abstract

A system and a plurality of methods for location detection are disclosed. In some cases, the user's present location is represented by a circle, having a center and a radius, where the radius is indicative of the accuracy of the present location. The desired destination location, or geofence, is also defined as a circle, having a center and a radius. The various methods disclosed are used to determine when a user has entered or exited the geofence. In some embodiments, these methods attempt to minimize power consumption or another parameter. In another embodiment, the methods attempt to achieve the highest degree of accuracy possible or required for the task.

Claims (22)

1. A method for determining when a user enters a predetermined region, where the user's present location is represented by a first circle having a first center and a first radius, where said first center represents a location indicated by a location sensor and said first radius is indicative of the accuracy of said location sensor and the predetermined region is represented by a second circle having a second center and a second radius, comprising:

determining, using said location sensor, when said user may have entered said predetermined region based on a distance from said first center to an edge of said predetermined region;

calculating, after said determining, a maximum allowable first radius, where the maximum allowable first radius defines the accuracy of the location sensor required to indicate that the user is within the predetermined region, wherein the maximum allowable first radius is determined based on the second radius and increases as the distance between the first center and the second center decreases; and

determining when said user is within the predetermined region when the first radius is less than the maximum allowable first radius,

wherein the maximum allowable first radius is defined to be equal to the second radius when the first center reaches the edge of the second circle and is defined to be equal to a predetermined scaling factor multiplied by the second radius when the first center matches the second center, wherein the predetermined scaling factor is greater than 1.

2. The method of claim 1 , wherein the maximum allowable first radius is linearly scaled as the first center moves toward the second center.

3. The method of claim 1 , further comprising determining the user has left the predetermined region when there is no overlap between the first circle and the second circle.

4. The method of claim 1 , further comprising determining when the user has left the predetermined region when a ratio of a portion of said first circle that overlaps said second circle divided by a portion of said first circle that does not overlap said second circle is less than a threshold, wherein the threshold is referred to as the exit ratio.

5. A method for determining when a user enters a predetermined region, where the user's present location is represented by a first circle having a first center and a first radius, where said first center represents a location indicated by a location sensor and said first radius is indicative of the accuracy of said location sensor and the predetermined region is represented by a second circle having a second center and a second radius, comprising:

determining, using said location sensor, when said user may have entered said predetermined region based on a distance from said first center to an edge of said predetermined region;

calculating, after said determining, a maximum allowable first radius, where the maximum allowable first radius defines the accuracy of the location sensor required to indicate that the user is within the predetermined region, wherein the maximum allowable first radius is determined based on the second radius and increases as the distance between the first center and the second center decreases; and

determining when said user is within the predetermined region when the first radius is less than the maximum allowable first radius,

wherein the maximum allowable first radius is defined to be equal to the second radius when the first center reaches the edge of the second circle and

wherein the maximum allowable first radius is linearly scaled as the first center moves toward the second center.

6. The method of claim 5 , further comprising determining the user has left the predetermined region when there is no overlap between the first circle and the second circle.

7. The method of claim 5 , further comprising determining when the user has left the predetermined region when a ratio of a portion of said first circle that overlaps said second circle divided by a portion of said first circle that does not overlap said second circle is less than a threshold, wherein the threshold is referred to as the exit ratio.

8. A method for determining when a user enters a predetermined region, where the user's present location is represented by a first circle having a first center and a first radius, where said first center represents a location indicated by a location sensor and said first radius is indicative of the accuracy of said location sensor and the predetermined region is represented by a second circle having a second center and a second radius, comprising:

determining, using said location sensor, when said user may have entered said predetermined region based on a distance from said first center to an edge of said predetermined region;

calculating, after said determining, a maximum allowable first radius, where the maximum allowable first radius defines the accuracy of the location sensor required to indicate that the user is within the predetermined region, wherein the maximum allowable first radius is determined based on the second radius and increases as the distance between the first center and the second center decreases;

determining when said user is within the predetermined region when the first radius is less than the maximum allowable first radius; and

determining when the user has left the predetermined region when a ratio of a portion of said first circle that overlaps said second circle divided by a portion of said first circle that does not overlap said second circle is less than a threshold, wherein the threshold is referred to as the exit ratio.

9. The method of claim 8 , wherein the maximum allowable first radius is defined to be equal to the second radius when the first center reaches the edge of the second circle.

Continuity (3)
Continuation 13834389 · Mar 15, 2013
Provisional Application 61670744 · Jul 12, 2012
Related Publication 20160066146A1 · Mar 3, 2016