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    • 1. 发明授权
    • Aviation cellular communications system and method
    • 航空蜂窝通信系统及方法
    • US08428580B1
    • 2013-04-23
    • US12827632
    • 2010-06-30
    • James P. MitchellScott J. Zogg
    • James P. MitchellScott J. Zogg
    • H04B7/185H04B7/14H04B1/16H04B7/00H04W4/00
    • H04W4/02H04B7/18506H04W4/022H04W52/283
    • Disclosed are a system and method for controlling transmit power of a mobile node in air-to-ground communications to a fixed node. Power is controlled by taking into consideration the position of the mobile node, the ground position of a plurality of fixed nodes, and the RF pattern of an antenna. Preferably, a power level is selected that will excite the fewest number of the plurality of fixed nodes while still maintaining a stable connection with at least one of the fixed nodes. The system may also utilize a repeater to receive communication signals from one or more mobile phones. This repeater then pre-amplifies the signal with a gain control signal received from one of the plurality of fixed nodes. The repeater would then pass the pre-amplified signal to the power amplifier for further amplification as controlled by the power controller.
    • 公开了一种用于控制空对地通信中的移动节点到固定节点的发射功率的系统和方法。 通过考虑移动节点的位置,多个固定节点的接地位置和天线的RF模式来控制功率。 优选地,选择将激励多个固定节点中最少数量的功率电平,同时仍然保持与至少一个固定节点的稳定连接。 系统还可以利用中继器从一个或多个移动电话接收通信信号。 然后,该中继器用从多个固定节点中的一个接收的增益控制信号对信号进行预放大。 然后,中继器将预放大的信号传递到功率放大器,用于由功率控制器控制的进一步放大。
    • 3. 发明授权
    • Architecture for receiving data from a multiplicity of frequency hopping emitters
    • 用于从多个跳频发射器接收数据的结构
    • US08345726B1
    • 2013-01-01
    • US10616004
    • 2003-07-09
    • Richard S. HaendelScott J. Zogg
    • Richard S. HaendelScott J. Zogg
    • H04B1/00
    • H04B1/713H04B2001/71563
    • A method of receiving a plurality of simultaneously transmitted data streams is disclosed. Each data stream is divided into portions and transmitted at predetermined frequencies and times according to a frequency-hopping pattern. The portions are received using a plurality of receivers. Each receiver is configured to receive portions transmitted on one of the predetermined frequencies. The received portions are temporarily stored in a memory such that the received portions are stored as a function of receiver and time. The stored portions are compared to the frequency-hopping pattern. It is determined if any combination of the stored portions corresponds to the predetermined frequencies and times of the frequency-hopping pattern.
    • 公开了一种接收多个同时发送的数据流的方法。 每个数据流被分成多个部分,并根据跳频图案以预定的频率和时间发送。 使用多个接收器接收部分。 每个接收机被配置为接收在预定频率之一上发送的部分。 接收到的部分被临时存储在存储器中,使得接收的部分作为接收器和时间的函数被存储。 将存储的部分与跳频图案进行比较。 确定存储部分的任何组合是否对应于跳频图案的预定频率和时间。
    • 4. 发明授权
    • Enabling digital beamforming techniques for RF systems having short repetitive synchronization sequences
    • US07609206B1
    • 2009-10-27
    • US12012433
    • 2008-02-01
    • Dana J. JensenScott J. Zogg
    • Dana J. JensenScott J. Zogg
    • H01Q3/00
    • H01Q3/26
    • A system and method of enabling digital beamforming (DBF) for use with RF receiver systems with a multi-element array antenna having short repetitive synchronizaton sequences in a noise and/or jamming environment. The method includes the following steps: a) receiving repetitive synchronization RF signals utilizing a multi-element array antenna, each of the repetitive synchronization RF signals includes an ideal known synchronization sequence, the ideal known synchronization sequence is denoted as yd and a length of the ideal known synchronization sequence is denoted as Nd; b) calculating a sequence of magnitudes and phases for each element of the multi-element array antenna corresponding to each of the ideal known synchronization sequences in the received synchronization RF signals, the sequence of the magnitudes and the phases comprises an array of N elements and is denoted as x, wherein the phases are also referred to as absolute phases; c) calculating a relative phase for each element in the sequence of the magnitudes and the absolute phases by referencing the absolute phases of all elements in the array x of N elements to a phase of a single element in the array x of N elements; d) converting the array x of N elements with the magnitudes and the absolute phases into an array of N elements with the magnitudes and the relative phases by replacing each of the absolute phases in the array x of N elements with the calculated relative phase for each element, the array of N elements with the magnitudes and the relative phases is denoted as xr; e) calculating a relative cross correlation vector for each element of the multi-element array antenna utilizing xr and yd, the relative cross correlation vector is denoted as rxd, where rxd=E{xryd*} and * is a complex conjugate; and, f) generating a relative cross correlation vector estimate by filtering rxd, for use with DBF techniques.