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    • 4. 发明授权
    • Method and system for down-converting an electromagnetic signal
    • 降低电磁信号转换的方法和系统
    • US09246737B2
    • 2016-01-26
    • US14639366
    • 2015-03-05
    • PARKERVISION, INC.
    • David F. SorrellsMichael J. BultmanRobert W. CookRichard C. LookeCharley D. MosesGregory S. RawlinsMichael W. Rawlins
    • H04L27/38H03C1/62H03D7/00H04B1/00H04B1/28H04B7/12H04L27/00H04L27/12H04L27/14H04L27/148H04L27/156H03D7/14H04B1/16H04L25/08H04L27/06
    • H04L27/3881H03C1/62H03D7/00H03D7/1441H03D7/1475H04B1/0025H04B1/16H04B1/28H04B7/12H04L25/08H04L27/00H04L27/06H04L27/12H04L27/14H04L27/148H04L27/156H04L27/2672
    • Methods, systems, and apparatus for down converting a modulated carrier signal to a demodulated baseband signal are described herein. A first switch is controlled with a first control signal which comprises a first sampling aperture with a specified frequency, wherein the first switch is on during the first sampling aperture and wherein the first switch is off outside the first sampling aperture. A second switch is controlled with a second control signal which comprises a second sampling aperture with a specified frequency, wherein the second switch is on during the second sampling aperture and wherein the second switch is off outside the second sampling aperture. The first and second control signals each control a charging and discharging cycle of a respective energy storage element so that for each switch a portion of energy is transferred to the respective energy storage element when the respective switch is on during the charging cycle, and a portion of previously transferred energy is discharged during the discharging cycle for each respective switch when the switch is off. A down-converted in-phase baseband signal portion is derived from energy accumulated at said first energy storage element during both the charging and the discharging cycles for the first energy storage element and a down-converted inverted in-phase baseband signal portion is derived from energy accumulated at said second energy storage element during both the charging and the discharging cycles for the second energy storage element, and the two portions are combined with a first differential amplifier circuit to form a down-converted differential in-phase baseband signal.
    • 这里描述了用于将调制载波信号下变频到解调的基带信号的方法,系统和装置。 第一开关由第一控制信号控制,第一控制信号包括具有指定频率的第一采样孔,其中第一开关在第一采样孔期间接通,并且其中第一开关在第一采样孔外部关闭。 用第二控制信号控制第二开关,第二控制信号包括具有指定频率的第二采样孔,其中第二开关在第二采样孔期间接通,并且其中第二开关在第二采样孔外部断开。 第一和第二控制信号各自控制各自能量存储元件的充电和放电循环,使得对于每个开关,当相应的开关在充电循环期间接通时,一部分能量被传递到相应的能量存储元件,并且一部分 当开关断开时,对于各个开关,在放电周期期间,先前传输的能量被放电。 在第一能量存储元件的充电和放电周期期间,从在第一能量存储元件处累积的能量导出下变频的同相基带信号部分,并且从下转换的反相同步基带信号部分 在第二能量存储元件的充电和放电循环期间,在所述第二能量存储元件处累积的能量,并且两个部分与第一差分放大器电路组合以形成下变频的差分同相基带信号。
    • 6. 发明授权
    • Wireless transmission system, and method for determining default gain of wireless transmission system
    • 无线传输系统以及无线传输系统默认增益的确定方法
    • US09215014B2
    • 2015-12-15
    • US14253854
    • 2014-04-15
    • Realtek Semiconductor Corp.
    • Yuan-Shuo ChangChien-Yu Chen
    • H03C1/62H04B17/00H04B17/13H04B17/14H04B17/19
    • H04B17/13H04B17/14H04B17/19
    • A method for determining a default gain of a wireless transmission system is provided. The wireless transmission system includes a signal transmission path and a signal feedback path coupled to the signal transmission path. The signal transmission path includes a power amplification circuit and a gain stage having a plurality of transmission gains. The method includes the following step: setting a gain of the gain stage as a specific transmission gain of the transmission gains; transmitting a plurality of test signals through the signal transmission path in sequence to generate a plurality of amplified test signals, wherein at least a portion of powers of the test signals correspond to the transmission gains, respectively; receiving the amplified test signals through the signal feedback path in sequence, and accordingly obtaining corresponding signal gains; and determining a default gain of the gain stage according to the signal gains.
    • 提供了一种用于确定无线传输系统的默认增益的方法。 无线传输系统包括耦合到信号传输路径的信号传输路径和信号反馈路径。 信号传输路径包括功率放大电路和具有多个传输增益的增益级。 该方法包括以下步骤:将增益级的增益设置为传输增益的特定传输增益; 通过信号传输路径依次发送多个测试信号以产生多个放大的测试信号,其中测试信号的功率的至少一部分分别对应于传输增益; 通过信号反馈路径顺序接收放大的测试信号,从而获得对应的信号增益; 以及根据所述信号增益来确定所述增益级的默认增益。
    • 8. 发明授权
    • Built in self test and method for RF transceiver systems
    • 内置射频收发系统的自检和方法
    • US09136899B2
    • 2015-09-15
    • US13908203
    • 2013-06-03
    • Texas Instruments Incorporated
    • Sudipto Chakraborty
    • H03C1/62H04B17/00H04B1/40H04W52/02
    • H04B1/40H04W52/02H04W52/0261Y02D70/00Y02D70/144Y02D70/40
    • Integrated circuit transceiver circuitry (2) includes a first resonant circuit (3A) coupled to a narrowband interface (6,7A,7B,21) between a first amplifier (3,20) and an interfacing circuit (4,8,9,44), including a programmable first reactive element (C) and a second reactive element (L). Amplitude sensing circuitry (42) senses a maximum amplitude of an in-phase signal (I) or a quadrature-phase signal (Q). An on-chip first tone generation circuit (38,38A,38B,38C) generates tones for injection into the in-phase signal and the quadrature-phase signal and operates in response to frequency scanning circuitry (30) and the amplitude sensing circuitry to adjust the first reactive element (C) to calibrate the first resonant circuit to a desired resonant frequency by selectively coupling reactive sub-elements (1,2,4,8 . . . ×Cv) into the first reactive element (C).
    • 集成电路收发器电路(2)包括耦合到第一放大器(3,20)和接口电路(4,8,9,44)之间的窄带接口(6,7A,7B,21)的第一谐振电路(3A) ),包括可编程的第一电抗元件(C)和第二电抗元件(L)。 幅度感测电路(42)感测同相信号(I)或正交相位信号(Q)的最大振幅。 片上第一音调产生电路(38,38A,38B,38C)产生用于注入到同相信号和正交相位信号中的音调,并响应于频率扫描电路(30)和振幅检测电路 通过选择性地将反应子元件(1,2,4,8 ...×Cv)耦合到第一反应元件(C)中,来调节第一电抗元件(C)以将第一谐振电路校准到期望的谐振频率。