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    • 2. 发明授权
    • Trilateration processing
    • 三边加工
    • US09119040B2
    • 2015-08-25
    • US13997914
    • 2012-07-09
    • Justin LipmanRobert A. ColbySigal Louchheim
    • Justin LipmanRobert A. ColbySigal Louchheim
    • H04W4/04G01S5/14G01S5/02
    • H04W4/04G01S5/021G01S5/0242G01S5/0268G01S5/14
    • Embodiments of the invention address how trilateration processes are affected by physical placement and sub-optimal selection of peer devices (PDs) used to obtain a location of a mobile computing device. Embodiments of the invention describe processes for selecting nearest PDs over further PDs, as received signal strength indicator (RSSI) measurements are more reliable—i.e., said “nearest PDs” provide more accurate distance measurements while improving the probability of finding more intersection points. Embodiments of the invention further describe selecting a physical spread of PDs to help increase the number of intersection points while helping distinction/resolution of the location of the mobile device in both the ‘x’ (longitude) and the ‘y’ (latitude) directions. Embodiments of the invention further enhance trilateration processes by utilizing dampening values for calculated location poll data.
    • 本发明的实施例解决了如何通过用于获得移动计算设备的位置的对等设备(PD)的物理放置和次优选择来影响三边测量过程。 本发明的实施例描述了在接收信号强度指示符(RSSI)测量更可靠的情况下选择最近的PDs的过程,即所述“最近的PD”提供更准确的距离测量,同时提高找到更多交点的可能性。 本发明的实施例还描述了选择PD的物理扩展以帮助增加交叉点数量,同时帮助在“x”(经度)和“y”(纬度)方向上区分/解析移动设备的位置 。 本发明的实施例通过利用计算出的位置轮询数据的衰减值来进一步增强三边测量过程。
    • 3. 发明申请
    • TRILATERATION PROCESSING
    • TRILATERATION加工
    • US20140334463A1
    • 2014-11-13
    • US13997914
    • 2012-07-09
    • Justin LipmanRobert A. ColbySigal Louchheim
    • Justin LipmanRobert A. ColbySigal Louchheim
    • H04W4/04
    • H04W4/04G01S5/021G01S5/0242G01S5/0268G01S5/14
    • Embodiments of the invention address how trilateration processes are affected by physical placement and sub-optimal selection of peer devices (PDs) used to obtain a location of a mobile computing device. Embodiments of the invention describe processes for selecting nearest PDs over further PDs, as received signal strength indicator (RSSI) measurements are more reliable—i.e., said “nearest PDs” provide more accurate distance measurements while improving the probability of finding more intersection points. Embodiments of the invention further describe selecting a physical spread of PDs to help increase the number of intersection points while helping distinction/resolution of the location of the mobile device in both the ‘x’ (longitude) and the ‘y’ (latitude) directions. Embodiments of the invention further enhance trilateration processes by utilizing dampening values for calculated location poll data.
    • 本发明的实施例解决了如何通过用于获得移动计算设备的位置的对等设备(PD)的物理放置和次优选择来影响三边测量过程。 本发明的实施例描述了在接收信号强度指示符(RSSI)测量更可靠的情况下选择最近的PDs的过程,即所述“最近的PD”提供更准确的距离测量,同时提高找到更多交点的可能性。 本发明的实施例还描述了选择PD的物理扩展以帮助增加交叉点数量,同时帮助在“x”(经度)和“y”(纬度)方向上区分/解析移动设备的位置 。 本发明的实施例通过利用计算出的位置轮询数据的衰减值来进一步增强三边测量过程。
    • 4. 发明申请
    • MECHANISM FOR FACILITATING DYNAMIC DETECTION AND COMMUNICATION OF GEO-LOCATIONS FOR DEVICES
    • 促进设备地理位置的动态检测和通信的机制
    • US20150072704A1
    • 2015-03-12
    • US14129958
    • 2013-09-11
    • Robert A. ColbyJaideep MosesMats AgerstamRoy RamonRaguraman Barathalwar
    • Robert A. ColbyJaideep MosesMats AgerstamRoy RamonRaguraman Barathalwar
    • H04W4/02
    • H04W4/023H04W4/38H04W4/80
    • A mechanism is described for facilitating detection and communication of geo-locations for devices according to one embodiment. A method of embodiments, as described herein, includes tracking, at a first smart device, one or more devices including a second smart device, and first and second smart devices including a computing device, and establishing a first connection with the second smart device, establishing further comprising exchanging first location data between the first smart device and the second smart device, establishing further including communicating a first current location associated with the first smart device to the second smart device. The method may further include identifying a second current location associated with the second smart device. The second current location may be initially recorded and iteratively rewritten at a first local memory of the first smart device.
    • 描述了根据一个实施例的用于促进设备的地理位置的检测和通信的机制。 如本文所述的实施例的方法包括在第一智能设备处跟踪包括第二智能设备的一个或多个设备以及包括计算设备的第一和第二智能设备以及建立与第二智能设备的第一连接, 建立进一步包括在第一智能设备和第二智能设备之间交换第一位置数据,建立进一步包括将与第一智能设备相关联的第一当前位置传送到第二智能设备。 该方法还可以包括识别与第二智能设备相关联的第二当前位置。 可以在第一智能设备的第一本地存储器处初始地记录和迭代地重写第二当前位置。