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    • 113. 发明申请
    • EMERGENCY ROUTING WITHIN A CONTROLLABLE TRANSIT SYSTEM
    • 在可控过境系统中的紧急路由
    • US20110264360A1
    • 2011-10-27
    • US12767869
    • 2010-04-27
    • Gregory J. BossChristopher J. DawsonRick A. Hamilton, IIBenjamin G. Morris
    • Gregory J. BossChristopher J. DawsonRick A. Hamilton, IIBenjamin G. Morris
    • G08G9/00G01C21/00
    • B61L27/00B61L27/04G01C21/3415G06Q50/26G06Q50/30G08G1/127G08G1/207G08G5/065
    • Embodiments of the present invention provide a solution for an orderly and well-considered evacuation of a Personal Rapid Transit (PRT) system in the event of declared emergency. It describes the mapping of evacuation points and subsequent routing of PRT vehicles according to both the nature/location of the emergency and outflow capacity at each evacuation point. A PRT is defined as an automatic method by which personal transport vehicles (a/k/a “pods”) can be used to efficiently and rapidly move people between various points within a closed area (for example, a city center). In an ideal world, these pods can be thought of as intelligent automated vehicles (similar to driverless taxis) that can adapt to changing demand to optimize the movement of people. For example, an emergency may be declared within a PRT system which does not cause widespread power loss, but which does require an orderly evacuation (e.g., smoke or flooding). In such events, PRT vehicles will be routed through the means described here to an evacuation point capable of handling such outflow in an orderly manner.
    • 本发明的实施例提供了一种解决方案,用于在宣布紧急情况下,有秩序地,仔细考虑撤离个人快速公交(PRT)系统。 它描述了撤离点的映射和随后的PRT车辆的路由,根据每个撤离点的紧急和流出能力的性质/位置。 PRT被定义为可以使用个人运输工具(a / k / a“pods”)以在封闭区域(例如,市中心)内的各个点之间有效地和快速地移动人的自动方法。 在理想的世界中,这些荚可以被认为是智能自动化车辆(类似于无人驾驶的出租车),可适应不断变化的需求,以优化人员的行动。 例如,紧急情况可以在PRT系统内宣布,不会导致广泛的功率损耗,但是需要有序撤离(例如,烟雾或淹水)。 在这种情况下,PRT车辆将通过这里描述的手段被路由到能够有秩序地处理这种流出的撤离点。
    • 117. 发明申请
    • DYNAMIC EDITING OF DATA REPRESENTATIONS USING CASCADING WEIGHTS
    • 使用CASCADE权重的数据表示动态编辑
    • US20110106865A1
    • 2011-05-05
    • US12612222
    • 2009-11-04
    • Gregory J. BossMichele P. BrignullRick A. Hamilton, IIJanna K. JacobsonAnne R. Sand
    • Gregory J. BossMichele P. BrignullRick A. Hamilton, IIJanna K. JacobsonAnne R. Sand
    • G06F7/00
    • G06F17/24G06F17/246G06F17/30595
    • A method and system for representing data includes providing a data representation according to defined variables and a functional relationship between the defined variables and receiving an assigned weight assigned to a defined variable. The method includes receiving a modification of a selected defined variable, and providing a further data representation according to a recalculation of an unselected defined variable, based upon the functional relationship, the assigned weight and the modified variable. Assigned weights and a plurality of modifications of the weighted variable are received. A further data representation is provided according to a further recalculation of the weighted variable based upon a weight selected from the assigned weights according to a previous modification of the weighted variable. The recalculating is performed according to a number of modifications performed since the previous modification of the weighted variable and according to a period of time since the previous modification of the weighted variable.
    • 用于表示数据的方法和系统包括根据定义的变量提供数据表示,并且提供定义的变量之间的功能关系并且接收分配给定义的变量的分配的权重。 所述方法包括接收所选择的定义变量的修改,并且基于所述功能关系,所分配的权重和所述修改的变量,根据未选择的定义变量的重新计算来提供另外的数据表示。 接收加权变量的分配权重和多个修改。 根据加权变量的先前修改,根据从分配的权重中选择的权重,进一步重新计算加权变量,提供另外的数据表示。 根据自加权变量的先前修改以及根据自加权变量的先前修改之后的时间段执行的多个修改来执行重新计算。
    • 118. 发明授权
    • Immersion detection
    • 浸入式检测
    • US07889087B2
    • 2011-02-15
    • US12245816
    • 2008-10-06
    • Gregory J. BossPeter G. FinnRick A. Hamilton, IIBrian M. O'ConnellJames W. SeamanKeith R. Walker
    • Gregory J. BossPeter G. FinnRick A. Hamilton, IIBrian M. O'ConnellJames W. SeamanKeith R. Walker
    • G08B21/00
    • G01F23/0007
    • A fluid detection system comprises a liquid sensor, an air pump and an atmospheric pressure sensor encased within an air and water permeable casing defining an enclosed air space. The pressure sensor acquires pressure samples within the casing, the air pump expelling additional gas into the casing. In response to determining a flood-status or a non-flood-status state of the fluid detection system and comparing the samples, a failure of the fluid detection system or an immersion of the fluid detection system in fluid is determined. In some embodiments, failure is determined if a second sample is greater than a first sample in a non-flooded state, and in others immersion is determined if a second sample is greater than a first sample value and the determined state is flooded. In some examples, gas is expelled across a liquid detection surface and a third sample value is acquired.
    • 流体检测系统包括液体传感器,空气泵和大气压力传感器,其被封装在限定封闭空气空间的空气和水可渗透外壳内。 压力传感器获取壳体内的压力样本,空气泵将额外的气体排出到壳体中。 响应于确定流体检测系统的洪水状态或非洪水状态状态并比较样本,确定流体检测系统的故障或流体检测系统浸没在流体中。 在一些实施例中,如果第二样本大于非淹没状态的第一样本,则确定故障,而在另一个实施例中,如果第二样本大于第一样本值并且确定的状态被淹没,则确定浸没。 在一些实例中,气体通过液体检测表面排出,获得第三样本值。