WO2004036789A1 - Wireless local area network repeater with automatic gain control for extending network coverage - Google Patents

Wireless local area network repeater with automatic gain control for extending network coverage Download PDF

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Publication number
WO2004036789A1
WO2004036789A1 PCT/US2003/029130 US0329130W WO2004036789A1 WO 2004036789 A1 WO2004036789 A1 WO 2004036789A1 US 0329130 W US0329130 W US 0329130W WO 2004036789 A1 WO2004036789 A1 WO 2004036789A1
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WO
WIPO (PCT)
Prior art keywords
frequency
signal
repeater
gain
translating repeater
Prior art date
Application number
PCT/US2003/029130
Other languages
French (fr)
Inventor
Kenneth M. Gainey
James A. Proctor, Jr.
Original Assignee
Widefi, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Widefi, Inc. filed Critical Widefi, Inc.
Priority to BR0315372-0A priority Critical patent/BR0315372A/en
Priority to US10/531,078 priority patent/US8060009B2/en
Priority to CA002502876A priority patent/CA2502876A1/en
Priority to JP2004544751A priority patent/JP4541891B2/en
Priority to EP03759271A priority patent/EP1604468B1/en
Priority to MXPA05003929A priority patent/MXPA05003929A/en
Priority to DE60322440T priority patent/DE60322440D1/en
Priority to AU2003275001A priority patent/AU2003275001A1/en
Publication of WO2004036789A1 publication Critical patent/WO2004036789A1/en
Priority to US11/340,860 priority patent/US8078100B2/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • H04W88/04Terminal devices adapted for relaying to or from another terminal or user
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/14Relay systems
    • H04B7/15Active relay systems
    • H04B7/155Ground-based stations
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/14Relay systems
    • H04B7/15Active relay systems
    • H04B7/155Ground-based stations
    • H04B7/15528Control of operation parameters of a relay station to exploit the physical medium
    • H04B7/15542Selecting at relay station its transmit and receive resources
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/24Radio transmission systems, i.e. using radiation field for communication between two or more posts
    • H04B7/26Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile
    • H04B7/2603Arrangements for wireless physical layer control
    • H04B7/2606Arrangements for base station coverage control, e.g. by using relays in tunnels
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/02Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
    • H04W84/10Small scale networks; Flat hierarchical networks
    • H04W84/12WLAN [Wireless Local Area Networks]

Definitions

  • the present invention relates generally to wireless local area networks (WLANs) and, articularly, the present invention relates to e tending the coverage area associated with a WLAN repeater using Automatic Gain Control (AGC).
  • WLANs wireless local area networks
  • AGC Automatic Gain Control
  • WLANs wireless local area networks
  • 802.11 as set forth in the 802.11 wireless standards
  • home RF home RF
  • Bluetooth Bluetooth
  • 802.11b protocol the standard wireless protocol with the most commercial success to date is the 802.11b protocol although next generation protocols, such as 802.1 lg, are also gaining popularity.
  • DCF distributed coordination function
  • Frequency division duplexing (FDD) operation simplifies repeater operation since conflicts associated with repeater operation, such as those arising in situations where the receiver and transmitter channels are on the same frequency for both the uplink and the downlink, are not present.
  • FDD Frequency division duplexing
  • TDD time division duplexing
  • Repeaters for these systems are more easily built, as the transmission and reception times are well known and are broadcast by a base station.
  • Receivers and transmitters for these systems may be isolated by any number of means including physical separation, antenna atterns, or polarization isolation. Even for these systems, the cost and complexity of a repeater may be greatly reduced by not offering the known timing information that is broadcast, thus allowing for economically feasible repeaters.
  • WLAN repeaters operating on the same frequencies have unique constraints due to the above spontaneous transmission capabilities and therefore require a unique solution. Since these repeaters use the same frequency for receive and transmit channels, some form of isolation must exist between the receive and transmit channels of the repeater. While some related systems such as, for example, CDMA systems used in wireless telephony, achieve chamiel isolation using sophisticated techniques such as directional antennas, physical separation of the receive and transmit antennas, or the like, such techniques are not practical for WLAN repeaters in many operating environments such as in the home where complicated hardware or lengthy cabling is not desirable or may be too costly.
  • the WLAN repeater described therein allows two WLAN units to communicate by translating packets associated with one device at a first frequency channel to a second frequency channel used by a second device.
  • the direction associated with the translation or conversion such as from the frequency associated with the first channel to the frequency associated with the second channel, or from the second channel to the first channel, depends upon a real time configuration of the repeater and the WLAN environment.
  • the WLAN repeater may be configured to monitor both channels for transmissions and, when a transmission is detected, translate the received signal at the first frequency to the other channel, where it is transmitted at the second frequency.
  • the present invention extends the coverage area in a wireless environment such as a WLAN environment, and, broadly speaking, in any time division duplex system including IEEE 802.16, IEEE 802.20 and TDS-CDMA, with a unique frequency detection and translation method.
  • An exemplary WLAN frequency translating repeater allows two WLAN nodes or units to communicate by translating packets from a first frequency channel used by one device to a second frequency channel used by a second device. The direction of the conversion from channel 1 to channel 2, verses from channel 2 to Channel 1, is dependent upon real time configuration.
  • the repeater may preferably monitor both channels for transmissions, and when a transmission on a channel is detected, the repeater is configured to translate the received signal to the other channel, where it is transmitted.
  • the signal received is detected on a first signal path and gain is applied on a second signal path.
  • the gain signal path preferably includes delay circuits to permit signal detection and gain setting to occur before the signal must be retransmitted.
  • the gain is set based upon the detected receive power level to achieve a target transmit power level that is constant independent of the receive power level.
  • the target power may be first determined or adjusted based upon criteria that includes one or more of the following: separation between receive and transmit frequencies, regulatory rule compliance, temperature, received power level, transmit power level and detected interference.
  • a microprocessor with software, including calibration tables, is appropriate for performing the calculation of an appropriate gain set point, which fixes the target output power.
  • the preferred approach solves both the isolation issue, allowing a small inexpensive unit, and it solves the spontaneous transmission problem as it monitors and responds in reaction to the transmissions, with a constant output power at the transmitter. This output power may be different depending on the configuration of the repeater as determined by the microprocessor.
  • FIG. 1 is a diagram illustrating a WLAN including an exemplary repeater having automatic gain control in accordance with various exemplary embodiments.
  • FIG. 2 is a schematic drawing illustrating an exemplary gain control interface unit of Figure 1.
  • a wide area connection 101 which could be, for example, an Ethernet connection, a Tl line, a wideband wireless connection or any other electrical connection providing a data communications path, may be connected to a wireless gateway, or access point (AP) 100.
  • the wireless gateway 100 sends RF signals, such as IEEE 802.11 packets or signals based upon Bluetooth, Hyperlan, or other wireless communication protocols, to client units 104, 105, which may be personal computers, personal digital assistants, or any other devices capable of communicating with other like devices through one of the above mentioned wireless protocols.
  • Respective propagation, or RF, paths to each of the client units 104, 105 are shown as 102, 103.
  • the signal carried over RF path 102 is of sufficient strength to maintain high-speed data packet communications between the client unit 104 and the wireless gateway 100
  • the signals carried over the RF path 103 and intended for the client unit 105 would be attenuated when passing through a structural barrier such as walls 1 06 or 107 to a point where few, if any, data packets are received in either direction if not for a wireless repeater 200, the structure and operation of which will now be described.
  • wireless repeater 200 receives packets transmitted on a first frequency channel 201 from the wireless gateway 100.
  • the wireless repeater 200 which may be housed in an enclosure typically having dimensions of, for example, 2.5"x3.5"x.5", and which preferably is capable of being plugged into a standard electrical outlet and operating on 110 V AC power, detects the presence of a packet on the first frequency channel 201, receives the packet and re-transmits the packet with more power on a second frequency channel 202.
  • the client unit 105 operates on the second frequency channel, even though the wireless gateway 100 operates on the first frequency channel.
  • the wireless repeater 200 To perform the return packet operation, the wireless repeater 200 detects the presence of a transmitted packet on the second frequency channel 202 from the client unit 105, receives the packet on the second frequency channel 202, and re-transmits the packet on the first frequency channel 201. The wireless gateway 100 then receives the packet on the first frequency channel 201. In this way, the wireless repeater 200 is capable of simultaneously receiving and transmitting signals as well as extending the coverage and performance of the wireless gateway 100 to the client unit 105.
  • exemplary wireless repeater 200 may be used to retransmit packets beyond a range limited by propagation path constraints through, for example, frequency translation. Packets transmitted on a first frequency channel 201 from AP 100 are received at repeater 200 and re-transmitted, preferably with a greater power level, on a second frequency channel 202. Client unit 105 preferably operates on second frequency channel 202 as if AP 100 were also operating on it, such as with no knowledge that AP 1 00 is really operating on first frequency channel 201 such that the frequency translation is transparent.
  • repeater unit 200 detects the presence of a transmitted return packet on second frequency channel 202 from client unit 1 05, and is preferably c onfigured to receive the packet on second frequency channel 202, and to retransmit the data packet to, for example AP 100, on first frequency channel 201.
  • Wireless repeater 200 is preferably capable of receiving two different frequencies simultaneously, such as first frequency channel 201 and second frequency channel 202 determining which channel is carrying a signal associated with, for example, the transmission of a packet, translating from the original frequency channel to an alternative frequency channel and retransmitting the frequency translated version of the received signal on the alternative channel. Details of internal repeater operation may be found in co-pending PCT Application No. PCT/US03/16208.
  • Repeater 200 may thus receive and transmit packets at the same time on different frequency channels thereby extending the coverage and performance of the connection between AP 100 and client unit 105, and between peer-to-peer connections such as from one client unit to another client unit.
  • repeater unit 200 further acts as a wireless bridge allowing two different groups of units to communicate where optimum RF propagation and coverage or, in many cases, any RF propagation and coverage was not previously possible.
  • repeater 200 is preferably configured to receive a signal and translate the frequency of the received signal with very little distortion or loss of the signal by properly controlling the gain of an exemplary transceiver section via Automatic Gain Control (AGC) circuitry 300 shown, for example, in FIG. 2.
  • AGC Automatic Gain Control
  • wireless repeater 200 shown is capable of receiving two different frequencies simultaneously, determining which one is present, translating the frequency of the one that is present to the other frequency and retransmitting a frequency translated version of the received signal.
  • AGC circuitry 300 utilizes RF delay and filter elements 307-310 to allow analog storage of an exemplary received waveform while signal detection and transmitter configuration takes place. It should be noted that signal detection may occur both prior to and during transit of signals in RF delay elements 307-310 providing time to perform system configuration. It should be noted that a detector power level is preferably used to set a gain value on a parallel signal path as part of the gain control operation.
  • Repeater AGC circuitry 300 further includes logarithmic amplifier 301 and 302, AGC control circuit 303 and 304, gain control element 305 and 306, which may preferably include variable gain or variable attenuator elements, and RF delay element 307-310 which may preferably include analog storage devices such as, for example, delay lines and/or band pass filters.
  • Low pass filter 311 and 312, and analog to digital converter (ADC) 313 and 314 are further preferably used to accomplish gain control under the direction and control of, for example, microprocessor 315.
  • repeater 200 in accordance with various exemplary embodiments, is configured to simultaneously detect and process two different frequency signals, received signal 330 is split and propagated on two different RF paths, for example, using RF splitter 316. Likewise, because the two different frequency paths must be delayed and controlled separately, each signal path is further split by, for example, IF Splitters' 317 and 318.
  • One of the split signal outputs from IF Splitter 317 is preferably coupled to logarithmic amplifiers 301 and the other split signal output is preferably coupled to gain control elements 305.
  • one of the split signal outputs from IF Splitter 318 is preferably coupled to logarithmic amplifiers 302 and the other split signal output is preferably coupled to gain control elements 306.
  • logarithmic amplifiers 301 and 302 preferably provide an output voltage proportional to the logarithm of the power of received signal 330, tracking the envelope thereof, other devices known to those of ordinary skill in the art may also be used to track the envelope or samples of the envelope directly or proportionately.
  • processor 315 preferably detects the presence of an IF signal on detection paths DET1 331 and DET2 332.
  • signal detection may be based on the signal level exceeding a threshold using, for example, analog or digital signal comparison implements in processor 315, or could be performed by other means well known to those of ordinary skill in the art.
  • gain control is applied to the signal using for example, AGC control circuits 303 and 304 on IF path IF 1 333 or IF2 334 respectively, depending on the channel.
  • gain control is applied to signals on IF paths L 1 333 and IF2 334 using AGC control circuits 303 and 304 which circuits provide, inter alia, filtering of the analog voltage at the output of, for example, logarithmic amplifiers 301 and 302, any DC offset adjustment which may be necessary, AGC set point reference and control, level shifting/scaling, any required polarity reversal, and the like as would be appreciated by one of ordinary skill in the art.
  • the output of AGC control circuits 303 and 304 are fed to gain control elements 305 and 306 which may provide either adjustable gain or adjustable attenuation o f received signal 330 based on a value associated with, for example, the desired transmitter output power.
  • AGC control circuits 303 and 304 may be one of a variety of gain control circuits, devices, or the like, as would be well known to those of ordinary skill in the art.
  • a variable attenuator could be used for gain control element 305 under the following conditions: desired output power +15dBm, received signal power - 80dBm, total transceiver losses 65dB, total transceiver gains 165dB.
  • variable attenuator associated with, for example, gain control element 305 should be set according to the relation: Rx Signal Power - Desired Output Power + Total Gains - Total Losses, thus the attenuation would be - 80dBm - 15dBm +165dB - 65dB resulting in 5dB of attenuation. It will be appreciated that a voltage may be calculated and applied to the gain control element 305, for example, by AGC control circuit 303 resulting in the desired 5dB attenuation setting. It should also be noted that while ACG control circuit 303 and gain control element 305 are described herein, the above description applies to the operation of AGC control circuit 304 and gain control element 306.
  • receive signal 330 in order to be retransmitted in accordance with various exemplary embodiments, and in accordance with the present example, is preferably output from gain c ontrol element 305 and delayed via S urface Acoustic Wave (SAW) filters 308 and 310.
  • SAW S urface Acoustic Wave
  • the delay introduced by SAW filters 308 and 310 acts to essentially store the analog waveform while AGC and signal detection processes, for example as described above, are carried out, meaning that detection and gain control setting are preferably completed during the propagation interval of the signal.
  • RF delays are imposed through SAW filters 307-310 enabling analog signal storage and channel selection, jammer suppression, and a feed-forward variable gain control path.
  • AGC control circuits 303 and 304 and gain control elements 305 and 306 may be biased or otherwise set under control of for example processor 315, which is preferably a micro-processor, such as a general purpose processor, dedicated processor, signal processing processor, or the like as would be understood by one of ordinary skill in the art. Further, set points may be obtained by processor 315 from a look up table or the like depending on which channel received signal 330 is received on and which channel is selected for signal retransmission.
  • IF Switch 319 and LO Switch 320 are preferably set to retransmit received signal 330 at a different frequency without significantly cutting off the waveform preamble. It is important to note that detection and power sensing, for example, as described above, is preferably performed on detector paths DETl 331 and DET2 332, but actual gain control may be applied the on IF paths LF1 333and IF2 334. More specifically referring again to FIG. 2, outputs from the logarithmic amplifiers 301 and 302 are fed to AGC control circuits 303 and 304 which circuits are making adjustments either as variable gain or attenuation with regard to gain control elements 305 and 306.
  • One factor in determining a sequence of signal detection and gain control is the effect caused by splitting the output voltage from logarithmic amplifiers 301 and 302 into a signal detection path and a gain control path, each having potentially two different filter bandwidths.
  • the gain control path is the path to AGC control circuits 303 and 304
  • the signal detection path is the path leading to low pass filters 311 and 312, as previously described.
  • the AGC control values and the signal detection filter bandwidth could be set differently.
  • the AGC control loop could be set to react very quickly to the incoming power envelop while signal detection, as carried out, for example, in ADC 313 and 314 and processor 315, could be configured to react more slowly.
  • received signal 330 propagating in gain control elements 305 and 306 can be tracked very accurately while the portion of received signal 330 propagating in ADC 313 and 314 and processor 315 may track more slowly, but with more detection process gain.
  • two separate detectors are used for performing detection of the presence of received signal 330 and for detection of the power level thereof in order to set gain.
  • signal detection may occur more slowly than AGC as described, different signal detection and AGC filter bandwidths may be used beneficially, allowing variable control elements associated with AGC such as gain control elements 305 and 306 to have a faster or slower response than the output of filters 31 l and 312.
  • Another factor in controlling gain is the relative distance between the receive and transmit channels. Specifically, depending on the distance therebetween, the target output power or set point from the gain control elements 305 and 306 can be different to the extent that additional performance may be gained when the receive and transmit channels are further apart in frequency. Gain values may be increased in gain control elements 305 and 306 while continuing to meet performance requirements. Further, AGC control circuits 303 and 304 may be programmed to increase power based on the frequency difference or, alternatively, processor 315 may be programmed to control AGC control circuits 303 and 304 based on frequency separation. Adjusting set points based on frequency separation may further include applying more filtering to any leakage signals picked up by a receiver to avoid self interference.
  • a factor affecting the choice of which channels to operate on during initial repeater power up maybe influenced by choosing repeating channels based on the ability to transmit more power in different FCC bands or bands controlled by other regulatory bodies. For example, in the U-NII bands for operation in the United States, the maximum allowable transmit power for CH36-48 is 50mW, for CH52-64 is 250m W, and for CH149 - 161 is 1W. Therefore it is possible to receive a signal in on a channel associated with one of the lower power bands and choose a channel on a different b and allowing higher transmit power, thereby allowing a higher AGC set point. Thus the set points for a translation, say from Fl to F2 and F2 to Fl would be different.
  • the decision of which channels to select is preferably pre-programmed during manufacturing, or, alternatively could be programmed in the field, in, for example, AGC control circuits 303 and 304 or processor 315.
  • gain control may require AGC calibration during initial manufacturing. Calibration may be desirable to allow the use of lower tolerance p arts thus reducing cost. Calibration may further provide for accuracy required for regional or band specific power settings. Accordingly, calibration may include setting up circuits and devices in accordance with one or more of the following; regional regulatory rules, frequency channel, received power level, transmit power level, temperature, and the like.
  • repeater 200 u sing, for example, processor 315, may store calibration tables and the like and be configured, for example through the use of software, programs, instructions or the like, to pass specific calibration values to AGC control circuits 305 and 306. Processor 315 would preferably utilize a digital to analog conversion process to control the set point.
  • detector outputs may be used for AGC and signal detection.
  • Signal detection may be performed in an analog only configuration using, for example, a threshold comparator under the control of processor 315 which may be configured to actively control, for example, an analog reference voltage a threshold comparator uses to make the detection decision.
  • received signal 330 may be digitized and a detection decision made, for example, in processor 315.
  • an analog comparator (not shown) having a threshold controlled by processor 315 may be used.
  • Such a configuration could be equipped with a digital override to allow for a fast initial decision, converging to a slower more accurate and controllable decision using software, programs, instructions, and the like readable and executable by processor 315.
  • AGC control circuits 303 and 304 and/or detector could be turned off by processor 315 to prevent signal transmission.
  • the normal AGC setting may be directly controlled and overridden.
  • Such control is further useful in situations including when a system feedback oscillation is detected.
  • AGC set points As well as different signal detector configurations in the present invention. Additionally, various components, such as the gain control elements 305 and 306, AGC gain control 303 and 304, functionality of processor 315 and other elements could be combined into a single integrated device. Other changes and alterations to specific components, and the interconnections thereof, can be made by one of ordinary skill in the art without deviating from the scope and spirit of the present invention.

Abstract

A frequency translating repeater (200) for use in a time division duplex radio protocol communications system includes an automatic gain control feature. Specifically, a received signal (330) is split to provide signal detection paths (331, 332) wherein detection is performed by amplifiers (301, 302) filters (311, 312), converters (313, 314) and a processor (315). Delay is added using analog circuits such as SAW filters (307, 308, 309, 310) and gain adjustment provided by gain control elements (303, 304, 305, 306).

Description

WIRELESS LOCAL AREA NETWORK REPEATER WITH AUTOMATIC GAIN CONTROL FOR EXTENDING NETWORK COVERAGE
CROSS REFERENCE TO RELATED APPLICATIONS [0001] This application is related to and claims priority from pending U.S. Provisional Application Number 60/418,288 filed October 15, 2002, and is further related to PCT Application PCT/US03/16208 entitled WIRELESS LOCAL AREA NETWORK REPEATER, the contents of which are incorporated herein by reference.
BACKGROUND OF THE INVENTION [0002] The present invention relates generally to wireless local area networks (WLANs) and, articularly, the present invention relates to e tending the coverage area associated with a WLAN repeater using Automatic Gain Control (AGC).
[0003] Several standard protocols for wireless local area networks, commonly referred to as WLANs, are becoming popular. These include protocols such as 802.11 (as set forth in the 802.11 wireless standards), home RF, and Bluetooth. The standard wireless protocol with the most commercial success to date is the 802.11b protocol although next generation protocols, such as 802.1 lg, are also gaining popularity.
[0004] While the specifications of products utilizing the above standard wireless protocols commonly indicate data rates on the order of, for example, 11 MBPS and ranges on the order of, for example, 100 meters, these performance levels are rarely, if ever, realized. Performance shortcomings between actual and specified performance levels have many causes including attenuation of the radiation paths of RF signals, which for 802.1 lb are in the range of 2.4 GHz in an operating environment such as an indoor environment. Access point to client ranges are generally less than the coverage range required in a typical home, and may be as little as 10 to 15 meters. Further, in structures having split floor plans, such as ranch style or two story homes, or those constructed of materials capable of attenuating RF signals, areas in which wireless coverage is needed may be physically separated by distances outside of the range of, for example, an 802.11 protocol based system. Attenuation problems may be exacerbated in the presence of interference in the operating band, such as interference from other 2.4GHz devices or wideband interference with in-band energy. Still further, data rates of devices operating using the above standard wireless protocols are dependent on signal strength. As distances in the area of coverage increase, wireless system performance typically decreases. Lastly, the structure of the protocols themselves may affect the operational range.
[0005] Repeaters are commonly used in the mobile wireless industry to increase the range of wireless systems. However, problems and complications arise in that system receivers and transmitters may operate at the same frequency in a WLAN utilizing, for example, 802.11 WLAN or 802.16 WMAN wireless protocols. In such systems, when multiple transmitters operate simultaneously, as would be the case in repeater operation, difficulties a rise . T ypical W LAN p rotocols p rovide no d efined r eceive and transmit periods and, thus, because random packets from each wireless network node are spontaneously generated and transmitted and are not temporally predictable, packet collisions may occur. Some remedies exist to address such difficulties, such as, for example, collision avoidance and random back-off protocols, which are used to avoid two or more nodes transmitting packets at the same time. Under 802.11 standard protocol, for example, a distributed coordination function (DCF) may be used for collision avoidance.
[0006] Such operation is significantly different than the operation of many other cellular repeater systems, such as those systems based on IS-136, IS-95 or IS-2000 standards, where the receive and transmit bands are separated by a deplexing frequency offset. Frequency division duplexing (FDD) operation simplifies repeater operation since conflicts associated with repeater operation, such as those arising in situations where the receiver and transmitter channels are on the same frequency for both the uplink and the downlink, are not present.
[0007] Other cellular mobile systems separate receive and transmit channels by time rather than by frequency and further utilize scheduled times for specific uplink/downlink transmissions. Such operation is commonly referred to as time division duplexing (TDD). Repeaters for these systems are more easily built, as the transmission and reception times are well known and are broadcast by a base station. Receivers and transmitters for these systems may be isolated by any number of means including physical separation, antenna atterns, or polarization isolation. Even for these systems, the cost and complexity of a repeater may be greatly reduced by not offering the known timing information that is broadcast, thus allowing for economically feasible repeaters.
[0008] Thus, WLAN repeaters operating on the same frequencies have unique constraints due to the above spontaneous transmission capabilities and therefore require a unique solution. Since these repeaters use the same frequency for receive and transmit channels, some form of isolation must exist between the receive and transmit channels of the repeater. While some related systems such as, for example, CDMA systems used in wireless telephony, achieve chamiel isolation using sophisticated techniques such as directional antennas, physical separation of the receive and transmit antennas, or the like, such techniques are not practical for WLAN repeaters in many operating environments such as in the home where complicated hardware or lengthy cabling is not desirable or may be too costly.
[0009] One system, described in International Application No. PCT US03/16208 and commonly owned by the assignee of the present application, resolves many of the above identified problems by providing a repeater which isolates receive and transmit channels using a frequency detection and translation method. The WLAN repeater described therein allows two WLAN units to communicate by translating packets associated with one device at a first frequency channel to a second frequency channel used by a second device. The direction associated with the translation or conversion, such as from the frequency associated with the first channel to the frequency associated with the second channel, or from the second channel to the first channel, depends upon a real time configuration of the repeater and the WLAN environment. The WLAN repeater may be configured to monitor both channels for transmissions and, when a transmission is detected, translate the received signal at the first frequency to the other channel, where it is transmitted at the second frequency.
[0010] The above described approach solves both the isolation issue and the spontaneous transmission problems as described above by monitoring and translating in response to packet transmissions and may further be implemented in a small inexpensive unit. However, a WLAN repeater, in order to be legally compliant, must transmit within the power and spectrum limitations promulgated by, for example, the FCC. Difficulties arise however in that a received signal may have a widely varying power level requiring precise compensation for factors contributing to disruptions and failed or suboptimal signal retransmission caused by interference and the like.
SUMMARY OF THE INVENTION [0011] Accordingly, in various exemplary and alternative exemplary embodiments, the present invention extends the coverage area in a wireless environment such as a WLAN environment, and, broadly speaking, in any time division duplex system including IEEE 802.16, IEEE 802.20 and TDS-CDMA, with a unique frequency detection and translation method. An exemplary WLAN frequency translating repeater allows two WLAN nodes or units to communicate by translating packets from a first frequency channel used by one device to a second frequency channel used by a second device. The direction of the conversion from channel 1 to channel 2, verses from channel 2 to Channel 1, is dependent upon real time configuration. The repeater may preferably monitor both channels for transmissions, and when a transmission on a channel is detected, the repeater is configured to translate the received signal to the other channel, where it is transmitted.
[0012] In a preferred embodiment, the signal received is detected on a first signal path and gain is applied on a second signal path. Further, the gain signal path preferably includes delay circuits to permit signal detection and gain setting to occur before the signal must be retransmitted. The gain is set based upon the detected receive power level to achieve a target transmit power level that is constant independent of the receive power level. However, the target power may be first determined or adjusted based upon criteria that includes one or more of the following: separation between receive and transmit frequencies, regulatory rule compliance, temperature, received power level, transmit power level and detected interference. A microprocessor with software, including calibration tables, is appropriate for performing the calculation of an appropriate gain set point, which fixes the target output power. The details of this invention are described in detail in the figure descriptions that follow.
[0013] The preferred approach solves both the isolation issue, allowing a small inexpensive unit, and it solves the spontaneous transmission problem as it monitors and responds in reaction to the transmissions, with a constant output power at the transmitter. This output power may be different depending on the configuration of the repeater as determined by the microprocessor.
BRIEF DESCRIPTION OF THE DRAWINGS [0014] FIG. 1 is a diagram illustrating a WLAN including an exemplary repeater having automatic gain control in accordance with various exemplary embodiments. [0015] FIG. 2 is a schematic drawing illustrating an exemplary gain control interface unit of Figure 1.
DETAILED DESCRIPTION OF THE INVENTION [0016] Referring now to FIG. 1, a wide area connection 101, which could be, for example, an Ethernet connection, a Tl line, a wideband wireless connection or any other electrical connection providing a data communications path, may be connected to a wireless gateway, or access point (AP) 100. The wireless gateway 100 sends RF signals, such as IEEE 802.11 packets or signals based upon Bluetooth, Hyperlan, or other wireless communication protocols, to client units 104, 105, which may be personal computers, personal digital assistants, or any other devices capable of communicating with other like devices through one of the above mentioned wireless protocols. Respective propagation, or RF, paths to each of the client units 104, 105 are shown as 102, 103.
[0017] While the signal carried over RF path 102 is of sufficient strength to maintain high-speed data packet communications between the client unit 104 and the wireless gateway 100, the signals carried over the RF path 103 and intended for the client unit 105 would be attenuated when passing through a structural barrier such as walls 1 06 or 107 to a point where few, if any, data packets are received in either direction if not for a wireless repeater 200, the structure and operation of which will now be described.
[0018] To enhance the coverage and/or communication data rate to the client unit 105, wireless repeater 200 receives packets transmitted on a first frequency channel 201 from the wireless gateway 100. The wireless repeater 200, which may be housed in an enclosure typically having dimensions of, for example, 2.5"x3.5"x.5", and which preferably is capable of being plugged into a standard electrical outlet and operating on 110 V AC power, detects the presence of a packet on the first frequency channel 201, receives the packet and re-transmits the packet with more power on a second frequency channel 202. Unlike conventional WLAN operating protocols, the client unit 105 operates on the second frequency channel, even though the wireless gateway 100 operates on the first frequency channel. To perform the return packet operation, the wireless repeater 200 detects the presence of a transmitted packet on the second frequency channel 202 from the client unit 105, receives the packet on the second frequency channel 202, and re-transmits the packet on the first frequency channel 201. The wireless gateway 100 then receives the packet on the first frequency channel 201. In this way, the wireless repeater 200 is capable of simultaneously receiving and transmitting signals as well as extending the coverage and performance of the wireless gateway 100 to the client unit 105.
[0019] To address the difficulties posed by obstructions as described above and attendant attenuation of the signal strength along obstructed paths and thus to enhance the coverage and/or communication data rate to client unit 105, exemplary wireless repeater 200, as shown in FIG. 1, may be used to retransmit packets beyond a range limited by propagation path constraints through, for example, frequency translation. Packets transmitted on a first frequency channel 201 from AP 100 are received at repeater 200 and re-transmitted, preferably with a greater power level, on a second frequency channel 202. Client unit 105 preferably operates on second frequency channel 202 as if AP 100 were also operating on it, such as with no knowledge that AP 1 00 is really operating on first frequency channel 201 such that the frequency translation is transparent. To perform return packet operations, repeater unit 200 detects the presence of a transmitted return packet on second frequency channel 202 from client unit 1 05, and is preferably c onfigured to receive the packet on second frequency channel 202, and to retransmit the data packet to, for example AP 100, on first frequency channel 201.
[0020] Wireless repeater 200 is preferably capable of receiving two different frequencies simultaneously, such as first frequency channel 201 and second frequency channel 202 determining which channel is carrying a signal associated with, for example, the transmission of a packet, translating from the original frequency channel to an alternative frequency channel and retransmitting the frequency translated version of the received signal on the alternative channel. Details of internal repeater operation may be found in co-pending PCT Application No. PCT/US03/16208.
[0021] Repeater 200 may thus receive and transmit packets at the same time on different frequency channels thereby extending the coverage and performance of the connection between AP 100 and client unit 105, and between peer-to-peer connections such as from one client unit to another client unit. When many units are isolated from one another, repeater unit 200 further acts as a wireless bridge allowing two different groups of units to communicate where optimum RF propagation and coverage or, in many cases, any RF propagation and coverage was not previously possible.
[0022] In accordance with various exemplary embodiments, repeater 200 is preferably configured to receive a signal and translate the frequency of the received signal with very little distortion or loss of the signal by properly controlling the gain of an exemplary transceiver section via Automatic Gain Control (AGC) circuitry 300 shown, for example, in FIG. 2. In a preferred embodiment, wireless repeater 200 shown is capable of receiving two different frequencies simultaneously, determining which one is present, translating the frequency of the one that is present to the other frequency and retransmitting a frequency translated version of the received signal.
[0023] In accordance with one preferred exemplary embodiment, AGC circuitry 300 utilizes RF delay and filter elements 307-310 to allow analog storage of an exemplary received waveform while signal detection and transmitter configuration takes place. It should be noted that signal detection may occur both prior to and during transit of signals in RF delay elements 307-310 providing time to perform system configuration. It should be noted that a detector power level is preferably used to set a gain value on a parallel signal path as part of the gain control operation.
[0024] Repeater AGC circuitry 300 further includes logarithmic amplifier 301 and 302, AGC control circuit 303 and 304, gain control element 305 and 306, which may preferably include variable gain or variable attenuator elements, and RF delay element 307-310 which may preferably include analog storage devices such as, for example, delay lines and/or band pass filters. Low pass filter 311 and 312, and analog to digital converter (ADC) 313 and 314 are further preferably used to accomplish gain control under the direction and control of, for example, microprocessor 315.
[0025] Since repeater 200, in accordance with various exemplary embodiments, is configured to simultaneously detect and process two different frequency signals, received signal 330 is split and propagated on two different RF paths, for example, using RF splitter 316. Likewise, because the two different frequency paths must be delayed and controlled separately, each signal path is further split by, for example, IF Splitters' 317 and 318. One of the split signal outputs from IF Splitter 317 is preferably coupled to logarithmic amplifiers 301 and the other split signal output is preferably coupled to gain control elements 305. Likewise, one of the split signal outputs from IF Splitter 318 is preferably coupled to logarithmic amplifiers 302 and the other split signal output is preferably coupled to gain control elements 306. The output of logarithmic amplifiers 301 is fed to AGC control circuit 303 and low pass filter 311. Likewise, the output of logarithmic amplifiers 302 is fed to AGC control circuit 304 and low pass filter 312. It should be noted that while logarithmic amplifiers 301 and 302 preferably provide an output voltage proportional to the logarithm of the power of received signal 330, tracking the envelope thereof, other devices known to those of ordinary skill in the art may also be used to track the envelope or samples of the envelope directly or proportionately.
[0026] The basic operation of components along the detection path of received signal 330 such as, for example, low pass filters 311 and 312, analog-to-digital converters (ADC) 313 and 314, and processor 315 for example, would be readily apparent to those of ordinary skill in the art and thus a detailed review of the basic operation thereof is omitted, such operation is disclosed in detail in commonly assigned co-pending PCT Patent Application No. PCT/US03/16208. However it should be briefly noted that processor 315 preferably detects the presence of an IF signal on detection paths DET1 331 and DET2 332. As described in the above identified co-pending application, signal detection may be based on the signal level exceeding a threshold using, for example, analog or digital signal comparison implements in processor 315, or could be performed by other means well known to those of ordinary skill in the art. Once the signal is detected, gain control is applied to the signal using for example, AGC control circuits 303 and 304 on IF path IF 1 333 or IF2 334 respectively, depending on the channel.
[0027] With reference still to FIG. 2 of the drawings, gain control is applied to signals on IF paths L 1 333 and IF2 334 using AGC control circuits 303 and 304 which circuits provide, inter alia, filtering of the analog voltage at the output of, for example, logarithmic amplifiers 301 and 302, any DC offset adjustment which may be necessary, AGC set point reference and control, level shifting/scaling, any required polarity reversal, and the like as would be appreciated by one of ordinary skill in the art. The output of AGC control circuits 303 and 304 are fed to gain control elements 305 and 306 which may provide either adjustable gain or adjustable attenuation o f received signal 330 based on a value associated with, for example, the desired transmitter output power. It should be noted that AGC control circuits 303 and 304 may be one of a variety of gain control circuits, devices, or the like, as would be well known to those of ordinary skill in the art.
[0028] As an example of gain control in accordance with various exemplary embodiments, a variable attenuator could be used for gain control element 305 under the following conditions: desired output power +15dBm, received signal power - 80dBm, total transceiver losses 65dB, total transceiver gains 165dB.
[0029] Under these conditions, a variable attenuator associated with, for example, gain control element 305, should be set according to the relation: Rx Signal Power - Desired Output Power + Total Gains - Total Losses, thus the attenuation would be - 80dBm - 15dBm +165dB - 65dB resulting in 5dB of attenuation. It will be appreciated that a voltage may be calculated and applied to the gain control element 305, for example, by AGC control circuit 303 resulting in the desired 5dB attenuation setting. It should also be noted that while ACG control circuit 303 and gain control element 305 are described herein, the above description applies to the operation of AGC control circuit 304 and gain control element 306.
[0030] Thus receive signal 330 in order to be retransmitted in accordance with various exemplary embodiments, and in accordance with the present example, is preferably output from gain c ontrol element 305 and delayed via S urface Acoustic Wave (SAW) filters 308 and 310. It will be appreciated that the delay introduced by SAW filters 308 and 310 acts to essentially store the analog waveform while AGC and signal detection processes, for example as described above, are carried out, meaning that detection and gain control setting are preferably completed during the propagation interval of the signal.
[0031] In accordance with various exemplary and preferred exemplary embodiments, RF delays are imposed through SAW filters 307-310 enabling analog signal storage and channel selection, jammer suppression, and a feed-forward variable gain control path. AGC control circuits 303 and 304 and gain control elements 305 and 306 may be biased or otherwise set under control of for example processor 315, which is preferably a micro-processor, such as a general purpose processor, dedicated processor, signal processing processor, or the like as would be understood by one of ordinary skill in the art. Further, set points may be obtained by processor 315 from a look up table or the like depending on which channel received signal 330 is received on and which channel is selected for signal retransmission. It should be noted that different bands have different transmit power limitations in different countries, thus the selection of gain set points may be driven by several factors resulting from the need to meet FCC requirements and related specifications for the desired band such as spectral re-growth and Effective Isotropic Radiated Power (EIRP).
[0032] After detection and setting of the gain control, IF Switch 319 and LO Switch 320 are preferably set to retransmit received signal 330 at a different frequency without significantly cutting off the waveform preamble. It is important to note that detection and power sensing, for example, as described above, is preferably performed on detector paths DETl 331 and DET2 332, but actual gain control may be applied the on IF paths LF1 333and IF2 334. More specifically referring again to FIG. 2, outputs from the logarithmic amplifiers 301 and 302 are fed to AGC control circuits 303 and 304 which circuits are making adjustments either as variable gain or attenuation with regard to gain control elements 305 and 306.
[0033] One factor in determining a sequence of signal detection and gain control is the effect caused by splitting the output voltage from logarithmic amplifiers 301 and 302 into a signal detection path and a gain control path, each having potentially two different filter bandwidths. As can be noted from FIG. 2, the gain control path is the path to AGC control circuits 303 and 304, while the signal detection path is the path leading to low pass filters 311 and 312, as previously described. Thus, if desired, the AGC control values and the signal detection filter bandwidth could be set differently. For example, the AGC control loop could be set to react very quickly to the incoming power envelop while signal detection, as carried out, for example, in ADC 313 and 314 and processor 315, could be configured to react more slowly. As a result, received signal 330 propagating in gain control elements 305 and 306 can be tracked very accurately while the portion of received signal 330 propagating in ADC 313 and 314 and processor 315 may track more slowly, but with more detection process gain.
[0034] It should be noted that in accordance with various exemplary and preferred exemplary embodiments, two separate detectors are used for performing detection of the presence of received signal 330 and for detection of the power level thereof in order to set gain. Thus, since signal detection may occur more slowly than AGC as described, different signal detection and AGC filter bandwidths may be used beneficially, allowing variable control elements associated with AGC such as gain control elements 305 and 306 to have a faster or slower response than the output of filters 31 l and 312.
[0035] Another factor in controlling gain is the relative distance between the receive and transmit channels. Specifically, depending on the distance therebetween, the target output power or set point from the gain control elements 305 and 306 can be different to the extent that additional performance may be gained when the receive and transmit channels are further apart in frequency. Gain values may be increased in gain control elements 305 and 306 while continuing to meet performance requirements. Further, AGC control circuits 303 and 304 may be programmed to increase power based on the frequency difference or, alternatively, processor 315 may be programmed to control AGC control circuits 303 and 304 based on frequency separation. Adjusting set points based on frequency separation may further include applying more filtering to any leakage signals picked up by a receiver to avoid self interference.
[0036] A factor affecting the choice of which channels to operate on during initial repeater power up maybe influenced by choosing repeating channels based on the ability to transmit more power in different FCC bands or bands controlled by other regulatory bodies. For example, in the U-NII bands for operation in the United States, the maximum allowable transmit power for CH36-48 is 50mW, for CH52-64 is 250m W, and for CH149 - 161 is 1W. Therefore it is possible to receive a signal in on a channel associated with one of the lower power bands and choose a channel on a different b and allowing higher transmit power, thereby allowing a higher AGC set point. Thus the set points for a translation, say from Fl to F2 and F2 to Fl would be different. The decision of which channels to select is preferably pre-programmed during manufacturing, or, alternatively could be programmed in the field, in, for example, AGC control circuits 303 and 304 or processor 315.
[0037] In accordance with other aspects of the present invention, gain control may require AGC calibration during initial manufacturing. Calibration may be desirable to allow the use of lower tolerance p arts thus reducing cost. Calibration may further provide for accuracy required for regional or band specific power settings. Accordingly, calibration may include setting up circuits and devices in accordance with one or more of the following; regional regulatory rules, frequency channel, received power level, transmit power level, temperature, and the like. In accordance with various exemplary and preferred exemplary embodiments, repeater 200 u sing, for example, processor 315, may store calibration tables and the like and be configured, for example through the use of software, programs, instructions or the like, to pass specific calibration values to AGC control circuits 305 and 306. Processor 315 would preferably utilize a digital to analog conversion process to control the set point.
[0038] As mentioned above, different detector outputs may be used for AGC and signal detection. Signal detection may be performed in an analog only configuration using, for example, a threshold comparator under the control of processor 315 which may be configured to actively control, for example, an analog reference voltage a threshold comparator uses to make the detection decision. Alternatively, received signal 330 may be digitized and a detection decision made, for example, in processor 315. Once concern related to using a digital path and processor 315 includes delay associated with, for example, digital sampling and decision making instructions in a processor 315.
[0039] In accordance with various alternative exemplary embodiments an analog comparator (not shown) having a threshold controlled by processor 315 may be used. Such a configuration could be equipped with a digital override to allow for a fast initial decision, converging to a slower more accurate and controllable decision using software, programs, instructions, and the like readable and executable by processor 315. For example, if an interferer is detected, and processor 315 recognizes that the packet duration is longer than the wireless protocol will allow, AGC control circuits 303 and 304 and/or detector could be turned off by processor 315 to prevent signal transmission. Thus the normal AGC setting may be directly controlled and overridden. Such control is further useful in situations including when a system feedback oscillation is detected.
[0040] One of ordinary skill in the art will recognize that various techniques can be utilized to determine AGC set points as well as different signal detector configurations in the present invention. Additionally, various components, such as the gain control elements 305 and 306, AGC gain control 303 and 304, functionality of processor 315 and other elements could be combined into a single integrated device. Other changes and alterations to specific components, and the interconnections thereof, can be made by one of ordinary skill in the art without deviating from the scope and spirit of the present invention.
[0041] The invention has been described in detail with particular references to presently preferred embodiments tliereof, but it will be understood that variations and modifications can be effected within the spirit and scope of the invention.

Claims

CLAIMS What is claimed is:
1. A frequency translating repeater for use in a time division duplexing (TDD) radio protocol system, the frequency translating repeater comprising: a detector circuit configured to detect if a signal is present on one of two frequency channels associated with the frequency translating repeater; a frequency translator configured to change a frequency channel associated with the signal from the one of the two frequency channels to an other of the two frequency channels; and a delay circuit c onfigured to add a delay to the s ignal to compensate for a signal detection interval and a transmitter configuration interval.
2. The frequency translating repeater according to claim 1, wherein the delay circuit includes an analog storage device.
3. The frequency translating repeater according to claim 1, wherein the delay circuit includes at least one surface acoustic wave filter configured for one or more of: analog signal storage and channel selection.
4. The frequency translating repeater according to claim 1, wherein the detector circuit includes a processor.
5. The frequency translating repeater according to claim 4, wherein the detector circuit further includes an analog detection circuit.
6. The frequency translating repeater according to claim 1, further comprising a gain control circuit having one of a gain value and an attenuation value associated therewith.
7. The frequency translating repeater according to claim 6, wherein: the detector is further for detecting a received signal strength of the signal, and the gain control circuit is further for using the received signal strength of the signal to adjust a gain value of the signal.
8. The frequency translating repeater according to claim 7, wherein the gain confrol circuit is further for controlling at least one of the gain value and the attenuation value based on a predetermined criteria to achieve a specific signal fransmit output power.
9. The frequency translating repeater according to claim 8, wherein the predetermined criteria is for modifying the specific signal transmit output power and includes at least one of the following: frequency separation between a receive frequency and a transmit frequency, a regulatory rule, a temperature, a received power level, a transmit power level, and a detected interference level.
10. The frequency translating repeater according to claim 8, wherein the processor further includes a memory and wherein the predetermined criteria are stored in the memory.
11. A frequency franslating repeater for use in a time division duplexing (TDD) radio protocol system, the frequency franslating repeater comprising: a detector circuit configured to detect if a signal is present on one of two frequency channels associated with the frequency franslating repeater and to detect a received detected signal power of the signal; a frequency translator configured to change a frequency channel associated with the signal from the one of the two frequency channels to an other of the two frequency channels; a delay circuit c onfigured to add a delay to the s ignal to compensate for a signal detection interval and a transmitter configuration interval; and
' a gain confrol circuit configured to adjust a gain value of the signal at least in part based on the received detected signal power detected by the detector circuit.
12. The frequency translating repeater according to claim 11, wherein the gain control circuit is further configured to adjust the gain value based at least in part on criteria including which of the one of the two frequency channels the signal is received on, and which of the other of the two frequency channels is changed to.
13. The frequency translating repeater according to claim 12, wherein the criteria further includes at least one of a regulatory rule for transmission, an operating temperature, and frequency separation between receive and transmit frequencies.
14. The frequency franslating repeater according to claim 11, wherein the criteria further includes a distance between a receive frequency and a transmit frequency, and wherein the automatic gain confrol circuit is further configured to apply more filtering to the signal based on the distance.
15. A frequency translating repeater for use in a time division duplexing (TDD) radio protocol system, the frequency translating repeater comprising: a detector circuit configured to detect if a signal is present on one of two frequency channels associated with the frequency translating repeater; a frequency converter configured to convert the signal from a radio frequency (RF) signal to an intermediate frequency (IF) signal; a frequency translator configured to change a frequency channel associated with the IF signal from the one of the two frequency channels to an other of the two frequency channels; a delay circuit configured to add a delay to the IF signal to compensate for a signal detection interval and a transmitter configuration interval; and a gain confrol circuit configured to adjust a gain value of the IF signal.
16. The frequency translating repeater according to claim 15, wherein the gain control circuit is further configured to adjust the gain value of the IF signal at least in part based on a received detected signal power detected by the detector circuit.
17. The frequency translating repeater according to claim 15, wherein the detector circuit and the gain c ontrol circuit are located respectively on a first and a second signal path.
18. The frequency franslating repeater according to claim 17, wherein the detector circuit includes a logarithmic amplifier and wherein the output of the logarithmic amplifier is coupled to the gain control circuit for confrol thereof.
19. The frequency franslatmg repeater according to claim 18, wherein the detector circuit and the automatic gain control circuit each have different bandwidths.
20. The frequency translating repeater according to claim 19, wherein the automatic gain control circuit includes a processor and a memory storing a predetermined criteria and wherein the processor is configured to use the predetermined criteria to establish an offset gain value of the IF signal, resulting at least in part in a transmitter target output power independent of the detected receive power of the signal as detected by the detector circuit.
21. The frequency translating repeater according to claim 20, wherein processor is further configured to: convert the output of the logarithmic amplifier to a digital signal; and establish the gain value of the IF signal using the digital signal.
22. A method for frequency franslation in a frequency translating repeater for use in a time division duplexing (TDD) radio protocol system, the method comprising: a detecting if a signal is present on one of two frequency channels associated with the frequency franslating repeater; changing a frequency channel associated with the signal from the one of the two frequency channels to an other of the two frequency channels; and adding a delay to the signal to equivalent to a signal detection interval and a transmitter configuration interval.
23. The method according to claim 22, wherein the adding the delay includes delaying the signal in an analog storage device.
24. The method according to claim 22, wherein the adding the delay includes at delaying the signal in at least one surface acoustic wave filter configured for one or more of: analog signal storage and channel selection.
25. The method according to claim 24, wherein the detecting includes detecting in an analog detection circuit.
26. The method according to claim 21, further comprising setting a gain associated with the signal.
27. The method according to claim 26, wherein the setting the gain further includes setting the gain in part based on a predetermined criteria.
28. The method according to claim 27, wherein the predetermined criteria includes at least one of the following: a distance between a receive frequency and a transmit frequency, a regulatory rule, a temperature, a received power level, a transmit power level, and a detected interference level.
29. The method according to claim 28, further comprising storing the predetermined criteria in a memory.
30. A method for frequency translation in a frequency translating repeater for use in a time division duplexing (TDD) radio protocol system, the method comprising: detecting if a signal is present on one of two frequency channels associated with the frequency franslating repeater; changing a frequency channel associated with the signal from the one of the two frequency channels to an other of the two frequency channels; adding a delay to the signal to compensate for a signal detection interval and a transmitter configuration interval; and adjusting a gain value of the signal in part based on a detected receive power level of the signal.
31. The method according to claim 30, wherein the adjusting the gain value is based on a criteria including which of the one of the two frequency channels the signal is received on, and which of the other of the two frequency channels is changed to.
32. The method according to claim 30, wherein the criteria further includes a regulatory rule for transmission.
33. The method according to claim 31, wherein the criteria further includes frequency separation between a receive frequency and a transmit frequency.
34. A method for frequency franslation in a frequency translating repeater for use in a time division duplexing (TDD) radio protocol system, the method comprising: detecting if a signal is present on one of two frequency channels associated with the frequency franslating repeater and, if so, a receive power level of the signal; converting the signal from a radio frequency (RF) signal to an intermediate frequency (IF) signal; changing a frequency channel associated with the IF signal from the one of the two frequency channels to an other of the two frequency channels; adding a delay to the IF signal to compensate for a signal detection interval and a transmitter configuration interval; and adjusting a gain value of the IF signal based at least in part on the detected receive power level of the signal.
35. The method according to claim 34, wherein the detecting and the adjusting are performed respectively on a first and a second signal path.
36. The method according to claim 35, wherein the detecting further includes generating a logarithmic signal from the signal and using the logarithmic signal for the adjusting.
37. The method according to claim 36, wherein the adjusting further includes using a predetermined criteria the adjusting the gain value of the IF signal.
38. The method according to claim 19, wherein the generating further includes converting the logarithmic signal to a digital signal; and wherein the adjusting further adjusting the gain value of the IF signal using the digital signal.
39. A frequency translating repeater for use in a time division duplexing communication system, the frequency translating repeater comprising: at least two receivers capable of receiving transmissions on at least first and second frequency channels; at least one transmitter capable of transmitting on the first frequency channel; at least one transmitter capable of transmitting on the second frequency channel; a detector circuit configured to detect if a signal is present on one of two frequency channels associated with the frequency translating repeater and for detecting a receive power level of the signal; a frequency translator configured to change a frequency channel associated with the signal from an initial one of the first and second frequency c hannels to a subsequent one of the first and second frequency channels; a microprocessor capable of configuring the first and second frequency channels based on pre-determined parameters stored therein, wherein configuration of a specific frequency for at least one of the first and second frequency channels is based on the pre-determined parameters, and the pre-determined parameters include at least one of the following: regulatory transmitter power limitations, regulatory out-of-band emissions limitations, and frequency separation between the first and second frequency channels.
PCT/US2003/029130 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control for extending network coverage WO2004036789A1 (en)

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BR0315372-0A BR0315372A (en) 2002-10-15 2003-10-15 Frequency translation repeater, and, method for frequency translation
US10/531,078 US8060009B2 (en) 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control for extending network coverage
CA002502876A CA2502876A1 (en) 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control for extending network coverage
JP2004544751A JP4541891B2 (en) 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control to extend network coverage
EP03759271A EP1604468B1 (en) 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control for extending network coverage
MXPA05003929A MXPA05003929A (en) 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control for extending network coverage.
DE60322440T DE60322440D1 (en) 2002-10-15 2003-10-15 WLAN REPEATER WITH AUTOMATIC GAIN CONTROL FOR ADVANCED NET COVER
AU2003275001A AU2003275001A1 (en) 2002-10-15 2003-10-15 Wireless local area network repeater with automatic gain control for extending network coverage
US11/340,860 US8078100B2 (en) 2002-10-15 2006-01-27 Physical layer repeater with discrete time filter for all-digital detection and delay generation

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US60/418,288 2002-10-15

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Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008505513A (en) * 2004-06-03 2008-02-21 ワイデファイ インコーポレイテッド Frequency conversion repeater with low cost, high performance local oscillator structure
US8023885B2 (en) 2004-05-13 2011-09-20 Qualcomm Incorporated Non-frequency translating repeater with downlink detection for uplink and downlink synchronization
US8027642B2 (en) 2004-04-06 2011-09-27 Qualcomm Incorporated Transmission canceller for wireless local area network
US8060009B2 (en) 2002-10-15 2011-11-15 Qualcomm Incorporated Wireless local area network repeater with automatic gain control for extending network coverage
US8059727B2 (en) 2005-01-28 2011-11-15 Qualcomm Incorporated Physical layer repeater configuration for increasing MIMO performance
US8078100B2 (en) 2002-10-15 2011-12-13 Qualcomm Incorporated Physical layer repeater with discrete time filter for all-digital detection and delay generation
US8111645B2 (en) 2002-11-15 2012-02-07 Qualcomm Incorporated Wireless local area network repeater with detection
US8122134B2 (en) 2002-10-11 2012-02-21 Qualcomm Incorporated Reducing loop effects in a wireless local area network repeater
US8498234B2 (en) 2002-06-21 2013-07-30 Qualcomm Incorporated Wireless local area network repeater
US8559379B2 (en) 2006-09-21 2013-10-15 Qualcomm Incorporated Method and apparatus for mitigating oscillation between repeaters
US8774079B2 (en) 2006-10-26 2014-07-08 Qualcomm Incorporated Repeater techniques for multiple input multiple output utilizing beam formers
US8885688B2 (en) 2002-10-01 2014-11-11 Qualcomm Incorporated Control message management in physical layer repeater

Families Citing this family (36)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7230935B2 (en) 2002-10-24 2007-06-12 Widefi, Inc. Physical layer repeater with selective use of higher layer functions based on network operating conditions
CN1706117B (en) * 2002-10-24 2010-06-23 高通股份有限公司 Wireless local area network repeater with in-band control channel
AU2003300938A1 (en) 2002-12-16 2004-07-29 Widefi, Inc. Improved wireless network repeater
US7333829B2 (en) * 2003-03-24 2008-02-19 Quorum Systems Multi-mode wireless bridge system and method using a single-radio transceiver
US20070268846A1 (en) * 2006-03-31 2007-11-22 Widefi, Inc. Enhanced physical layer repeater for operation in WiMAX systems
US7599711B2 (en) * 2006-04-12 2009-10-06 Adc Telecommunications, Inc. Systems and methods for analog transport of RF voice/data communications
US7751823B2 (en) * 2006-04-13 2010-07-06 Atc Technologies, Llc Systems and methods for controlling a level of interference to a wireless receiver responsive to an activity factor associated with a wireless transmitter
BRPI0715908A2 (en) * 2006-09-01 2014-03-18 Qualcomm Inc REPEATER WITH A RECEIVER ANTENNA AND DUAL TRANSMITTER CONFIGURATION WITH ADJUSTMENT FOR MORE INSULATION
EP3247146B1 (en) * 2007-01-04 2020-04-29 Qualcomm Incorporated Method and apparatus for distributed spectrum sensing for wireless communication
US8023886B2 (en) * 2007-09-28 2011-09-20 Broadcom Corporation Method and system for repeater with gain control and isolation via polarization
CN101159497A (en) * 2007-11-16 2008-04-09 深圳国人通信有限公司 Self-excitation detection and process method for repeater
US8902995B2 (en) 2009-07-02 2014-12-02 Qualcomm Incorporated Transmitter quieting and reduced rate encoding
US9112618B2 (en) 2009-07-02 2015-08-18 Qualcomm Incorporated Coding latency reductions during transmitter quieting
US8537772B2 (en) 2009-07-02 2013-09-17 Qualcomm Incorporated Transmitter quieting during spectrum sensing
US8958475B2 (en) 2009-07-02 2015-02-17 Qualcomm Incorporated Transmitter quieting and null data encoding
US8780982B2 (en) 2009-07-02 2014-07-15 Qualcomm Incorporated Transmitter quieting and different encoding rates for portions of a set of frames
JP5712934B2 (en) 2009-12-24 2015-05-07 日本電気株式会社 Relay device, relay system, relay method, wireless communication system, program
US8346160B2 (en) 2010-05-12 2013-01-01 Andrew Llc System and method for detecting and measuring uplink traffic in signal repeating systems
US8532566B2 (en) * 2011-06-08 2013-09-10 Andrew Llc System and method for reducing desensitization of a base station transceiver for mobile wireless repeater systems
US8649418B1 (en) 2013-02-08 2014-02-11 CBF Networks, Inc. Enhancement of the channel propagation matrix order and rank for a wireless channel
US8422540B1 (en) 2012-06-21 2013-04-16 CBF Networks, Inc. Intelligent backhaul radio with zero division duplexing
US8774708B2 (en) * 2011-11-10 2014-07-08 Qualcomm Incorporated Estimation of repeater loop delay for repeater gain control
GB2498212B (en) * 2012-01-09 2013-12-04 Renesas Mobile Corp Method and apparatus for time division duplex communication
US8750903B1 (en) 2012-02-28 2014-06-10 CellAntenna Corporation Cell phone control and localization for restricted facilities
CA2814303A1 (en) 2013-04-26 2014-10-26 Cellphone-Mate, Inc. Apparatus and methods for radio frequency signal boosters
US9797978B1 (en) 2014-09-03 2017-10-24 Howard Melamed UAV, system, and method for radio frequency spectral analysis
US9715009B1 (en) 2014-12-19 2017-07-25 Xidrone Systems, Inc. Deterent for unmanned aerial systems
US9689976B2 (en) 2014-12-19 2017-06-27 Xidrone Systems, Inc. Deterent for unmanned aerial systems
US9529360B1 (en) 2015-01-28 2016-12-27 Howard Melamed System and method for detecting and defeating a drone
US9847035B1 (en) 2015-01-28 2017-12-19 Howard Melamed Methods for radio frequency spectral analysis
US10270481B1 (en) * 2015-12-22 2019-04-23 Amazon Technologies, Inc. Wireless communication receiver gain management system
US10051683B1 (en) 2017-02-27 2018-08-14 Sprint Communications Company L.P. Wireless repeater chain channel control
EP3451532A1 (en) 2017-08-31 2019-03-06 Wilson Electronics, LLC Protection of power amplifiers in a signal booster
US10907940B1 (en) 2017-12-12 2021-02-02 Xidrone Systems, Inc. Deterrent for unmanned aerial systems using data mining and/or machine learning for improved target detection and classification
US10715244B2 (en) * 2017-12-29 2020-07-14 Wilson Electronics, Llc Signal booster with balanced gain control
US11277251B1 (en) 2019-07-03 2022-03-15 Michael Patrick Millard Radio frequency spectrum management system and method

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5726980A (en) * 1995-03-30 1998-03-10 Northern Telecom Limited Time division duplex communications repeater
US6404775B1 (en) * 1997-11-21 2002-06-11 Allen Telecom Inc. Band-changing repeater with protocol or format conversion
US20020109585A1 (en) * 2001-02-15 2002-08-15 Sanderson Lelon Wayne Apparatus, method and system for range extension of a data communication signal on a high voltage cable
US20030185163A1 (en) * 2002-03-27 2003-10-02 Bertonis James G. System and method for wireless cable data transmission

Family Cites Families (266)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3363250A (en) 1965-07-20 1968-01-09 Jacobson Irving Monitoring system for remote radio control
US4001691A (en) 1975-01-30 1977-01-04 Gruenberg Elliot Communications relay system
US4081752A (en) 1975-05-30 1978-03-28 Sanyo Electric Co., Ltd. Digital frequency synthesizer receiver
US4204016A (en) 1975-07-25 1980-05-20 Chavannes Marc A Reinforced paper products
US4000467A (en) 1975-10-24 1976-12-28 Bell Telephone Laboratories, Incorporated Automatic repeater stressing
GB1545623A (en) 1976-05-19 1979-05-10 Elap Transmission system and repeater stations therefor
GB1590826A (en) 1976-09-21 1981-06-10 Post Office Level stabilisers
US4368541A (en) 1980-06-30 1983-01-11 Evans Robert M Multiplexing arrangement for a plurality of voltage controlled filters
US4334323A (en) 1980-09-08 1982-06-08 Zenith Radio Corporation Self tracking tuner
FR2526609A1 (en) 1982-05-04 1983-11-10 Thomson Csf MULTI-PORT SIGNAL RECEIVER PROTECTS DISTURBING SIGNALS
CA1235751A (en) 1985-01-09 1988-04-26 Junji Namiki One frequency repeater for a digital microwave radio system with cancellation of transmitter-to-receiver interference
FR2592256B1 (en) 1985-12-20 1988-02-12 Trt Telecom Radio Electr DEVICE FOR CONTROLLING THE TRANSMIT POWER OF A RADIO BEAM
US4783843A (en) 1986-05-23 1988-11-08 Peninsula Engineering Group, Inc. Split band filter for cellular mobile radio
US4723302A (en) 1986-08-05 1988-02-02 A. C. Nielsen Company Method and apparatus for determining channel reception of a receiver
JPS63160442A (en) * 1986-12-24 1988-07-04 Hitachi Denshi Ltd Data transmission system
EP0286306B1 (en) 1987-04-03 1993-10-06 Fujitsu Limited Method and apparatus for vapor deposition of diamond
US4820568A (en) 1987-08-03 1989-04-11 Allied-Signal Inc. Composite and article using short length fibers
US5023930A (en) 1987-08-03 1991-06-11 Orion Industries, Inc. Booster with detectable boost operation
US4922259A (en) 1988-02-04 1990-05-01 Mcdonnell Douglas Corporation Microstrip patch antenna with omni-directional radiation pattern
US5095528A (en) 1988-10-28 1992-03-10 Orion Industries, Inc. Repeater with feedback oscillation control
FR2646977B1 (en) 1989-05-10 1994-07-29 Thomson Csf METHOD AND DEVICE FOR TRANSMITTING INFORMATION BETWEEN RADIO TRANSCEIVERS OF THE SAME NETWORK OPERATING IN FREQUENCY ESCAPE
US5220562A (en) 1989-05-12 1993-06-15 Hitachi, Ltd. Bridge apparatus and a communication system between networks using the bridge apparatus
US5485486A (en) 1989-11-07 1996-01-16 Qualcomm Incorporated Method and apparatus for controlling transmission power in a CDMA cellular mobile telephone system
US5349463A (en) 1990-08-17 1994-09-20 Victor Company Of Japan Optical radio repeater with signal quality detection
JP2591338B2 (en) 1990-11-20 1997-03-19 松下電器産業株式会社 Sub-sampling device, interpolation device, transmitting device, receiving device, and recording medium
EP0495575B1 (en) 1991-01-18 1997-08-06 National Semiconductor Corporation Repeater interface controller
GB9102220D0 (en) 1991-02-01 1991-03-20 British Telecomm Method and apparatus for decoding video signals
US5280480A (en) 1991-02-21 1994-01-18 International Business Machines Corporation Source routing transparent bridge
US5678198A (en) 1991-05-22 1997-10-14 Southwestern Bell Technology Resources, Inc. System for controlling signal level at both ends of a transmission link, based upon a detected value
JPH0530000A (en) 1991-07-18 1993-02-05 Fujitsu Ltd Mobile body communication system
JP2722892B2 (en) * 1991-10-04 1998-03-09 富士通株式会社 Removal circuit for MSK signal of receiver output
US5341364A (en) 1992-06-02 1994-08-23 At&T Bell Laboratories Distributed switching in bidirectional multiplex section-switched ringtransmission systems
GB2268374A (en) 1992-06-23 1994-01-05 Ibm Network addressing
US5377255A (en) 1992-07-14 1994-12-27 Pcs Microcell International Inc. RF repeaters for time division duplex cordless telephone systems
US5408618A (en) 1992-07-31 1995-04-18 International Business Machines Corporation Automatic configuration mechanism
GB2272599A (en) 1992-11-12 1994-05-18 Nokia Telecommunications Oy A method of cellular radio communication and a cellular radio system for use in such method
AU672054B2 (en) 1992-12-30 1996-09-19 Radio Communication Systems Ltd. Bothway RF repeater for personal communications systems
US5333175A (en) 1993-01-28 1994-07-26 Bell Communications Research, Inc. Method and apparatus for dynamic power control in TDMA portable radio systems
US5371734A (en) 1993-01-29 1994-12-06 Digital Ocean, Inc. Medium access control protocol for wireless network
JPH06260866A (en) 1993-03-04 1994-09-16 Mitsubishi Electric Corp Automatic output power control circuit device
FR2703199B1 (en) 1993-03-26 1995-06-02 Matra Communication Radio transmission method using repeating spectrum inverting stations.
JPH06291697A (en) 1993-03-31 1994-10-18 Matsushita Electric Ind Co Ltd Transmitter receiver
US5373503A (en) 1993-04-30 1994-12-13 Information Technology, Inc. Group randomly addressed polling method
US5515376A (en) 1993-07-19 1996-05-07 Alantec, Inc. Communication apparatus and methods
FR2708814B1 (en) 1993-07-30 1995-09-01 Alcatel Mobile Comm France Method for covering the shadow areas of a radiocommunication network, and radio repeater for implementing this method.
JP3337795B2 (en) 1993-12-10 2002-10-21 富士通株式会社 Relay device
US5471642A (en) 1994-01-28 1995-11-28 Palmer; James K. Re-broadcast system for a plurality of AM signals
FI108098B (en) 1994-03-03 2001-11-15 Nokia Networks Oy Method for controlling a subscriber station, radio system and subscriber station operating on a direct channel
US5519619A (en) 1994-03-14 1996-05-21 Motorola, Inc. Route planning method for hierarchical map routing and apparatus therefor
US5648984A (en) 1994-08-10 1997-07-15 Alcatel Networks Systems, Inc. Multidirectional repeater for data transmission between electrically isolated and/or physically different signal transmission media
US5832035A (en) 1994-09-20 1998-11-03 Time Domain Corporation Fast locking mechanism for channelized ultrawide-band communications
JPH0897762A (en) 1994-09-26 1996-04-12 Infuorabu:Kk Repeater for mobile communication
US5608755A (en) 1994-10-14 1997-03-04 Rakib; Selim Method and apparatus for implementing carrierless amplitude/phase encoding in a network
US5873028A (en) 1994-10-24 1999-02-16 Ntt Mobile Communications Network Inc. Transmission power control apparatus and method in a mobile communication system
US5727033A (en) 1994-11-30 1998-03-10 Lucent Technologies Inc. Symbol error based power control for mobile telecommunication system
US5684801A (en) 1994-12-30 1997-11-04 Lucent Technologies Portable wireless local area network
US5654979A (en) 1995-01-13 1997-08-05 Qualcomm Incorporated Cell site demodulation architecture for a spread spectrum multiple access communication systems
JPH08242475A (en) 1995-03-06 1996-09-17 Toshiba Corp Method for call reception and call transmission for private branch of exchange
US5651010A (en) 1995-03-16 1997-07-22 Bell Atlantic Network Services, Inc. Simultaneous overlapping broadcasting of digital programs
MY121893A (en) 1995-04-28 2006-03-31 Qualcomm Inc Method and apparatus for providing variable rate data in a communications system using statistical multiplexing.
US6101400A (en) 1997-08-20 2000-08-08 Interwave Communications, Inc. Methods and apparatus for improved base station transceivers
US6535732B1 (en) 1995-05-04 2003-03-18 Interwave Communications International, Ltd. Cellular network having a concentrated base transceiver station and a plurality of remote transceivers
US5784683A (en) 1995-05-16 1998-07-21 Bell Atlantic Network Services, Inc. Shared use video processing systems for distributing program signals from multiplexed digitized information signals
US5697052A (en) 1995-07-05 1997-12-09 Treatch; James E. Cellular specialized mobile radio system
US5754540A (en) 1995-07-18 1998-05-19 Macronix International Co., Ltd. Expandable integrated circuit multiport repeater controller with multiple media independent interfaces and mixed media connections
US5890055A (en) 1995-07-28 1999-03-30 Lucent Technologies Inc. Method and system for connecting cells and microcells in a wireless communications network
US5745846A (en) 1995-08-07 1998-04-28 Lucent Technologies, Inc. Channelized apparatus for equalizing carrier powers of multicarrier signal
JP2755241B2 (en) 1995-08-25 1998-05-20 住友電気工業株式会社 Oscillation detection device for wireless repeater and wireless repeater to which this device is applied
US6108364A (en) * 1995-08-31 2000-08-22 Qualcomm Incorporated Time division duplex repeater for use in a CDMA system
US6128512A (en) 1995-09-06 2000-10-03 Cisco Systems, Inc. Cellular communication system with dedicated repeater channels
CA2208842C (en) 1995-10-26 2001-01-16 Ntt Mobile Communications Network Inc. Booster system
JPH09130322A (en) 1995-11-02 1997-05-16 Kokusai Electric Co Ltd Relay amplification system for vehicular communication
US6005884A (en) 1995-11-06 1999-12-21 Ems Technologies, Inc. Distributed architecture for a wireless data communications system
JP3406443B2 (en) 1995-12-08 2003-05-12 日本ビクター株式会社 Wireless transmission equipment
US5771174A (en) 1995-12-21 1998-06-23 Measurex Corporation Distributed intelligence actuator controller with peer-to-peer actuator communication
US5884181A (en) 1996-01-19 1999-03-16 Bell Communications Research, Inc. Interference reduction in shared-frequency wireless communication systems
KR100188692B1 (en) 1996-01-20 1999-06-01 윤종용 Digital filter
US5767788A (en) 1996-03-19 1998-06-16 Ness; James C. Computer aided dispatch and locator cellular system
US5764636A (en) 1996-03-28 1998-06-09 Cisco Technology, Inc. Color blocking logic mechanism for a high-performance network switch
JPH09284509A (en) 1996-04-10 1997-10-31 Canon Inc Picture processor
US5883884A (en) 1996-04-22 1999-03-16 Roger F. Atkinson Wireless digital communication system having hierarchical wireless repeaters with autonomous hand-off
JP3039402B2 (en) 1996-12-05 2000-05-08 日本電気株式会社 Transmission power control device for mobile communication system
US6774685B2 (en) 1996-05-13 2004-08-10 Micron Technology, Inc. Radio frequency data communications device
US5930230A (en) 1996-05-28 1999-07-27 Qualcomm Incorporated High data rate CDMA wireless communication system
SE510569C2 (en) 1996-05-31 1999-06-07 Allgon Ab Variable bandwidth repeater
US5794145A (en) 1996-06-07 1998-08-11 Telxon Corporation Mobile device multiband antenna system
DE69729784T2 (en) 1996-06-27 2005-06-23 Ntt Docomo, Inc. ARRANGEMENT FOR TRANSMISSION CONTROL
US6215982B1 (en) 1996-06-28 2001-04-10 Cisco Systems, Inc. Wireless communication method and device with auxiliary receiver for selecting different channels
JPH1022756A (en) 1996-07-04 1998-01-23 Mitsubishi Electric Corp Radio transmitter and its transmission control method
JP2768354B2 (en) * 1996-07-15 1998-06-25 日本電気株式会社 Relay system, transmission device and relay device used for the same
US5857144A (en) 1996-08-09 1999-01-05 Ericsson, Inc. In-band vehicular repeater for trunked radio system
FR2753589B1 (en) 1996-09-17 1998-10-09 Alcatel Espace RELAYS FOR RADIOCOMMUNICATION SYSTEM
US5875179A (en) 1996-10-29 1999-02-23 Proxim, Inc. Method and apparatus for synchronized communication over wireless backbone architecture
CA2224035A1 (en) 1996-12-19 1998-06-19 J. Leland Langston Repeater node network system and method
US6222503B1 (en) * 1997-01-10 2001-04-24 William Gietema System and method of integrating and concealing antennas, antenna subsystems and communications subsystems
FR2760167B1 (en) 1997-02-21 2000-08-04 Sagem RADIOTELEPHONY METHOD BETWEEN A BASE STATION AND A MOBILE TELEPHONE THROUGH A REPEATER
US6584144B2 (en) 1997-02-24 2003-06-24 At&T Wireless Services, Inc. Vertical adaptive antenna array for a discrete multitone spread spectrum communications system
JPH10247874A (en) 1997-03-04 1998-09-14 Kokusai Electric Co Ltd Time-division duplex system portable telephone repeater
US5963846A (en) 1997-03-31 1999-10-05 Motorola, Inc. Method and system for repeating pages
US6173162B1 (en) 1997-06-16 2001-01-09 Telefonaktiebolaget Lm Ericsson (Publ) Multiple code channel power control in a radio communication system
JP3123467B2 (en) 1997-06-18 2001-01-09 日本電気株式会社 bridge
US6014380A (en) 1997-06-30 2000-01-11 Sun Microsystems, Inc. Mechanism for packet field replacement in a multi-layer distributed network element
JPH1141131A (en) 1997-07-15 1999-02-12 Toshiba Corp Radio communication device
US6061548A (en) 1997-07-17 2000-05-09 Metawave Communications Corporation TDMA repeater eliminating feedback
US5959968A (en) 1997-07-30 1999-09-28 Cisco Systems, Inc. Port aggregation protocol
WO1999007077A2 (en) 1997-07-31 1999-02-11 Stanford Syncom Inc. Means and method for a synchronous network communications system
US6484012B1 (en) * 1997-08-04 2002-11-19 Wireless Facilities, Inc. Inter-band communication repeater system
US6574211B2 (en) 1997-11-03 2003-06-03 Qualcomm Incorporated Method and apparatus for high rate packet data transmission
US6377612B1 (en) 1998-07-30 2002-04-23 Qualcomm Incorporated Wireless repeater using polarization diversity in a wireless communications system
US6128729A (en) 1997-12-16 2000-10-03 Hewlett-Packard Company Method and system for automatic configuration of network links to attached devices
US6188694B1 (en) 1997-12-23 2001-02-13 Cisco Technology, Inc. Shared spanning tree protocol
US6032194A (en) 1997-12-24 2000-02-29 Cisco Technology, Inc. Method and apparatus for rapidly reconfiguring computer networks
US6202114B1 (en) 1997-12-31 2001-03-13 Cisco Technology, Inc. Spanning tree with fast link-failure convergence
JPH11266180A (en) 1998-03-18 1999-09-28 Fujitsu Ltd Array antenna system for radio base station
US6944139B1 (en) 1998-03-27 2005-09-13 Worldspace Management Corporation Digital broadcast system using satellite direct broadcast and terrestrial repeater
US6339694B1 (en) 1998-03-30 2002-01-15 Airnet Communications Corporation Method and apparatus employing automatic RF muting and wireless remote control of RF downlink transmission for a wireless repeater
JPH11298421A (en) 1998-04-13 1999-10-29 Nippon Hoso Kyokai <Nhk> Synchronization repeater
US6400968B1 (en) 1998-05-04 2002-06-04 Conexant Systems, Inc. System and method for extending the range of a base unit
FI106674B (en) 1998-05-14 2001-03-15 Nokia Networks Oy A method for monitoring the operation of a cellular radio system
JP2000031877A (en) 1998-07-09 2000-01-28 Sharp Corp Mobile communication system
ATE492074T1 (en) 1998-07-28 2011-01-15 Samsung Electronics Co Ltd SWITCHED TRANSMISSION IN CONTROL HOLD STATE IN A CDMA COMMUNICATIONS SYSTEM
US6304575B1 (en) 1998-08-31 2001-10-16 Cisco Technology, Inc. Token ring spanning tree protocol
JP2000082983A (en) 1998-09-03 2000-03-21 Kokusai Electric Co Ltd Radio repeater amplifier device
KR100547713B1 (en) 1998-10-20 2006-03-23 삼성전자주식회사 Variable Channel Device for Wideband Code Division Multiple Access System
US6121932A (en) 1998-11-03 2000-09-19 Motorola, Inc. Microstrip antenna and method of forming same
JP2002529745A (en) 1998-11-11 2002-09-10 サムソン・エレクトロニクス・カンパニー・リミテッド Digital correlator in satellite signal receiver of radio navigation system
SE520836C3 (en) 1998-11-18 2003-10-01 Saab Ab Repeater interference transmitter and sleeve arrangement for the same
US6088570A (en) 1998-11-24 2000-07-11 Airnet Communications Corporation Method and apparatus employing delay elements in multiple diversity paths of a wireless system repeater translator to allow for selective diversity and automatic level control in a time-division multiple access system
US6628624B1 (en) 1998-12-09 2003-09-30 Cisco Technology, Inc. Value-added features for the spanning tree protocol
SG87784A1 (en) 1998-12-09 2002-04-16 Kent Ridge Digital Labs Csma/cd wireless lan
JP3484670B2 (en) 1999-02-15 2004-01-06 日本電気エンジニアリング株式会社 Satellite communication system
JP2002538640A (en) 1999-02-25 2002-11-12 バークレー コンセプト リサーチ コーポレイション Multi-channel distributed wireless repeater network
JP2000286652A (en) 1999-03-31 2000-10-13 Harada Ind Co Ltd Controller
GB2349294B (en) 1999-04-19 2001-07-11 Marconi Comm Ltd Communications system
US6304563B1 (en) 1999-04-23 2001-10-16 Qualcomm Incorporated Method and apparatus for processing a punctured pilot channel
US6163276A (en) 1999-05-17 2000-12-19 Cellnet Data Systems, Inc. System for remote data collection
GB2351420A (en) 1999-06-23 2000-12-27 Motorola Ltd Power control in a radio communication system
EP1063789B1 (en) 1999-06-23 2007-08-01 Sony Deutschland GmbH Transmit and receiving antenna diversity
JP2001016152A (en) 1999-06-30 2001-01-19 Mitsubishi Electric Corp Wireless repeater
WO2001052447A2 (en) * 2000-01-14 2001-07-19 Andrew Corporation Repeaters for wireless communication systems
US6934511B1 (en) 1999-07-20 2005-08-23 Andrew Corporation Integrated repeater
JP2001111575A (en) 1999-08-03 2001-04-20 Matsushita Electric Ind Co Ltd Repeater device for converting radio lan cross channel and radio terminal device
US6690657B1 (en) 2000-02-25 2004-02-10 Berkeley Concept Research Corporation Multichannel distributed wireless repeater network
EP1203458A4 (en) 1999-08-10 2002-11-05 Airnet Communications Corp Translating repeater system with improved backhaul efficiency
JP2001136115A (en) 1999-11-01 2001-05-18 Mitsubishi Electric Corp Method for eliminating sneak-path wave for antenna system for relay station
US6285863B1 (en) * 1999-11-24 2001-09-04 Lucent Technologies Inc. System and method for providing automatic gain control with high dynamic range
US6718160B2 (en) 1999-12-29 2004-04-06 Airnet Communications Corp. Automatic configuration of backhaul and groundlink frequencies in a wireless repeater
WO2001054431A1 (en) 2000-01-10 2001-07-26 Airnet Communications Corporation Packet based backhaul channel configuration for a wireless repeater
US6664932B2 (en) 2000-01-12 2003-12-16 Emag Technologies, Inc. Multifunction antenna for wireless and telematic applications
ES2160087B1 (en) 2000-02-18 2003-03-01 Mier Comunicaciones S A PROCEDURE FOR REPETITION OF SIGNALS IN INSOFREQUENCY AND REPEATER OF SIGNS IN ISOFREQUENCY.
JP2001244864A (en) 2000-02-29 2001-09-07 Hitachi Ltd Radio repeating system
US7703107B2 (en) 2000-04-06 2010-04-20 Infineon Technologies Ag Virtual machine interface for hardware reconfigurable and software programmable processors
KR100328853B1 (en) 2000-04-27 2002-03-20 이상철 System and method for supervising repeater by using wireless mobile
KR100403738B1 (en) 2000-05-24 2003-10-30 삼성전자주식회사 Data transmission apparatus and method for an harq data communication system
EP1162764B1 (en) 2000-06-05 2007-08-15 Sony Deutschland GmbH Indoor wireless system using active reflector
US7103344B2 (en) 2000-06-08 2006-09-05 Menard Raymond J Device with passive receiver
US6766113B1 (en) 2000-06-16 2004-07-20 Lucent Technologies Inc. Control channel processor and switching mechanism
US20010054060A1 (en) 2000-06-16 2001-12-20 Fillebrown Lisa A. Personal wireless network
US6501955B1 (en) 2000-06-19 2002-12-31 Intel Corporation RF signal repeater, mobile unit position determination system using the RF signal repeater, and method of communication therefor
EP1204223B1 (en) 2000-06-20 2007-02-28 Mitsubishi Denki Kabushiki Kaisha Repeater
US6473131B1 (en) 2000-06-30 2002-10-29 Stmicroelectronics, Inc. System and method for sampling an analog signal level
US6331792B1 (en) 2000-06-30 2001-12-18 Conexant Systems, Inc. Circuit and method for unlimited range frequency acquisition
US6574198B1 (en) 2000-07-06 2003-06-03 Ericsson Inc. Systems and methods for maintaining a signaling link in a communications network
US6452910B1 (en) 2000-07-20 2002-09-17 Cadence Design Systems, Inc. Bridging apparatus for interconnecting a wireless PAN and a wireless LAN
US7366103B2 (en) 2000-08-18 2008-04-29 Nortel Networks Limited Seamless roaming options in an IEEE 802.11 compliant network
US6778612B1 (en) 2000-08-18 2004-08-17 Lucent Technologies Inc. Space-time processing for wireless systems with multiple transmit and receive antennas
US7339926B2 (en) 2000-09-14 2008-03-04 Harington Valve Llc System and method for wireless communication in a frequency division duplexing region
US7710503B2 (en) 2000-09-25 2010-05-04 Thomson Licensing Apparatus and method for optimizing the level of RF signals based upon the information stored on a memory
US6563468B2 (en) 2001-04-27 2003-05-13 Tyco Electronics Logistics Ag Omni directional antenna with multiple polarizations
JP3596452B2 (en) * 2000-09-28 2004-12-02 日本電信電話株式会社 Wireless repeater
US6539204B1 (en) 2000-09-29 2003-03-25 Mobilian Corporation Analog active cancellation of a wireless coupled transmit signal
WO2002030022A2 (en) 2000-10-06 2002-04-11 Aryya Communications, Inc. Systems and methods for interference mitigation among multiple wlan protocols
CA2323881A1 (en) * 2000-10-18 2002-04-18 Dps Wireless Inc. Adaptive personal repeater
BR0107355A (en) 2000-10-20 2002-09-10 Samsung Electronics Co Ltd Apparatus and method for determining a packet data rate in a mobile communication system
US6807165B2 (en) 2000-11-08 2004-10-19 Meshnetworks, Inc. Time division protocol for an ad-hoc, peer-to-peer radio network having coordinating channel access to shared parallel data channels with separate reservation channel
KR100464485B1 (en) 2000-11-09 2004-12-31 엘지전자 주식회사 A method and a device of transmitting high-speed packet data
US6985516B1 (en) 2000-11-27 2006-01-10 Qualcomm Incorporated Method and apparatus for processing a received signal in a communications system
AU2002235258A1 (en) 2000-12-27 2002-07-08 Ensemble Communications, Inc. Adaptive call admission control for use in a wireless communication system
TWM249366U (en) 2001-01-02 2004-11-01 Z Com Inc Radio signal detection device of wireless local area network
WO2002058414A1 (en) 2001-01-20 2002-07-25 Samsung Electronics Co., Ltd System and method for remotely controlling a mobile terminal
US7027418B2 (en) 2001-01-25 2006-04-11 Bandspeed, Inc. Approach for selecting communications channels based on performance
US7113745B2 (en) 2001-02-21 2006-09-26 Ericsson Inc. Method to achieve diversity in a communication network
JP2002271255A (en) 2001-03-12 2002-09-20 Toshiba Digital Media Engineering Corp Repeater equipment and interexchange method
US7088734B2 (en) * 2001-03-27 2006-08-08 Motorola, Inc. Slot format and method for increasing random access opportunities in a wireless communication system
JP3943859B2 (en) 2001-05-01 2007-07-11 株式会社エヌ・ティ・ティ・ドコモ Mobile communication system, mobile communication method, and mobile station
US7027770B2 (en) 2001-05-22 2006-04-11 Andrew Corporation Repeater for customer premises
US7167526B2 (en) 2001-06-07 2007-01-23 National Univ. Of Singapore Wireless communication apparatus and method
US7594010B2 (en) 2001-06-28 2009-09-22 King's London College Virtual antenna array
US6934555B2 (en) 2001-06-29 2005-08-23 Telefonaktiebolaget Lm Ericsson (Publ) Software analysis tool for CDMA system
KR100601929B1 (en) 2001-07-23 2006-07-14 삼성전자주식회사 Multi-band radio-frequency module whose configuration is minimized
US20030026363A1 (en) 2001-07-31 2003-02-06 Jan Stoter Adaptive automatic gain control
WO2003013005A2 (en) 2001-08-02 2003-02-13 Spotwave Wireless Inc. Adaptive on-frequency repeater
ATE346442T1 (en) 2001-09-14 2006-12-15 Motorola Inc METHOD FOR IMPROVING COMMUNICATION CAPABILITY IN A WIRELESS TELECOMMUNICATIONS SYSTEM
US7123670B2 (en) 2001-09-24 2006-10-17 Atheros Communications, Inc. Fine frequency offset estimation and calculation and use to improve communication system performance
WO2003037027A1 (en) 2001-10-18 2003-05-01 Fujitsu Limited Mobile communication system and communication method thereof
US7924751B2 (en) 2001-11-20 2011-04-12 Qualcomm Incorporated Reverse link power controlled repeater
JP2003174394A (en) 2001-12-06 2003-06-20 Hitachi Kokusai Electric Inc Communication unit
US7406647B2 (en) 2001-12-06 2008-07-29 Pulse-Link, Inc. Systems and methods for forward error correction in a wireless communication network
JP4052835B2 (en) 2001-12-28 2008-02-27 株式会社日立製作所 Wireless transmission system for multipoint relay and wireless device used therefor
JP2003244050A (en) 2002-02-14 2003-08-29 Hitachi Cable Ltd Method for controlling transmission power for repeater
US6904266B1 (en) 2002-02-19 2005-06-07 Navini Networks, Inc. Wireless enhancer using a switch matrix
US7050758B2 (en) 2002-02-28 2006-05-23 Nortel Networks Limited Self-configuring repeater system and method
US7315573B2 (en) 2002-02-28 2008-01-01 Texas Instruments Incorporated Channel monitoring for improved parameter selection in a communication system
US6781544B2 (en) 2002-03-04 2004-08-24 Cisco Technology, Inc. Diversity antenna for UNII access point
US7058071B1 (en) 2002-03-04 2006-06-06 Cisco Systems Wireless Networking (Australia) Pty Limited Method and apparatus using pipelined execution data sets for processing transmission frame sequences conforming to a wireless network MAC protocol
US6990313B1 (en) * 2002-03-14 2006-01-24 Sprint Communications Company L.P. Wireless repeater with intelligent signal display
JP3799282B2 (en) 2002-03-22 2006-07-19 Necインフロンティア株式会社 Wireless LAN base station capable of automatic wireless channel alignment
EP1359684A1 (en) 2002-04-30 2003-11-05 Motorola Energy Systems Inc. Wireless transmission using an adaptive transmit antenna array
KR100827140B1 (en) 2002-05-03 2008-05-02 삼성전자주식회사 Apparatus for generating reception/transmission reference timing in mobile communication terminal and method thereof
JP2003332963A (en) 2002-05-17 2003-11-21 Toshiba Corp Radio communication system and apparatus thereof
CN1186401C (en) 2002-05-17 2005-01-26 中山大学 Nano diamond particle surface treatment method
US7113498B2 (en) 2002-06-05 2006-09-26 Broadcom Corporation Virtual switch
US7120930B2 (en) 2002-06-13 2006-10-10 Nvidia Corporation Method and apparatus for control of security protocol negotiation
AU2003251538A1 (en) 2002-06-21 2004-01-06 Ipr Licensing, Inc. Covert spatially separated antenna package for repeater
US20040047335A1 (en) 2002-06-21 2004-03-11 Proctor James Arthur Wireless local area network extension using existing wiring and wireless repeater module(s)
US20040157551A1 (en) * 2002-06-21 2004-08-12 Tantivy Communications, Inc Repeater for extending range of time division duplex communication system
US8498234B2 (en) 2002-06-21 2013-07-30 Qualcomm Incorporated Wireless local area network repeater
US20030235170A1 (en) 2002-06-21 2003-12-25 Trainin Solomon B. Method, apparatus, and system for distributed access points for wireless local area network (LAN)
WO2004001986A2 (en) 2002-06-21 2003-12-31 Ipr Licensing, Inc. Repeater for extending range of time division duplex communication system
US7058368B2 (en) 2002-06-27 2006-06-06 Nortel Networks Limited Adaptive feedforward noise cancellation circuit
US7355993B2 (en) 2002-06-27 2008-04-08 Adkins Keith L Method and apparatus for forward link gain control in a power controlled repeater
JP2004056210A (en) 2002-07-16 2004-02-19 Matsushita Electric Ind Co Ltd Mobile communication system, base station apparatus, and mobile station apparatus
KR100702746B1 (en) 2002-08-20 2007-04-03 엘지전자 주식회사 Method and apparatus for managing power of wireless local area network module in computer system
US7590145B2 (en) 2002-09-17 2009-09-15 Scientific-Atlanta, Inc. Multiplexing octets from a data flow over MPEG packets
US6788256B2 (en) 2002-09-19 2004-09-07 Cingular Wireless, Llc Concealed antenna assembly
US8885688B2 (en) 2002-10-01 2014-11-11 Qualcomm Incorporated Control message management in physical layer repeater
JP4490273B2 (en) 2002-10-01 2010-06-23 クゥアルコム・インコーポレイテッド Wireless local area network with repeaters to enhance network coverage
AU2003274992A1 (en) 2002-10-11 2004-05-04 Widefi, Inc. Reducing loop effects in a wireless local area network repeater
ATE402527T1 (en) 2002-10-15 2008-08-15 Qualcomm Inc WLAN REPEATER WITH AUTOMATIC GAIN CONTROL FOR EXTENDED NETWORK COVERAGE
CN1706117B (en) 2002-10-24 2010-06-23 高通股份有限公司 Wireless local area network repeater with in-band control channel
US7230935B2 (en) 2002-10-24 2007-06-12 Widefi, Inc. Physical layer repeater with selective use of higher layer functions based on network operating conditions
JP2006506897A (en) 2002-11-15 2006-02-23 ワイデファイ インコーポレイテッド Wireless local area network detection repeater
AU2003300938A1 (en) 2002-12-16 2004-07-29 Widefi, Inc. Improved wireless network repeater
US7391383B2 (en) 2002-12-16 2008-06-24 Next-Rf, Inc. Chiral polarization ultrawideband slot antenna
US20040146013A1 (en) 2003-01-22 2004-07-29 Hong Kong Applied Science And Technology Research Institute Co., Ltd Wireless local area network time division duplex relay system with high speed automatic up-link and down-link detection
US7440785B2 (en) 2003-03-07 2008-10-21 Nortel Networks Limited Method and apparatus for enhancing link range in a wireless network using self-configurable antenna
US20040229563A1 (en) 2003-02-14 2004-11-18 Kabushiki Kaisha Toshiba Communication network for indoor environment
EP1604461A4 (en) 2003-02-24 2009-08-12 Qualcomm Inc Repeater oscillation prevention
WO2004079922A2 (en) 2003-02-26 2004-09-16 Ems Technologies, Inc. Cellular signal enhancer
JP4529375B2 (en) 2003-04-28 2010-08-25 パナソニック電工株式会社 Wireless relay device
US20040218683A1 (en) 2003-05-01 2004-11-04 Texas Instruments Incorporated Multi-mode wireless devices having reduced-mode receivers
TWI360317B (en) 2003-05-28 2012-03-11 Ericsson Telefon Ab L M Method and architecture for wireless communication
US7215964B2 (en) 2003-06-06 2007-05-08 Nokia Corporation Asymmetric radio access network, and associated method, for communicating data at high data rates
US7352696B2 (en) 2003-08-08 2008-04-01 Intel Corporation Method and apparatus to select an adaptation technique in a wireless network
JP2005072646A (en) 2003-08-22 2005-03-17 Toshiba Corp Reception re-transmission shared antenna for gap filler
US7676194B2 (en) 2003-08-22 2010-03-09 Rappaport Theodore S Broadband repeater with security for ultrawideband technologies
KR100585726B1 (en) 2003-09-03 2006-06-07 엘지전자 주식회사 Method and apparatus for beam forming of array antenna in mobile terminal
US7194275B2 (en) 2003-10-02 2007-03-20 Telefonaktiebolaget Lm Ericsson (Publ) Position determination of mobile stations
JP4354245B2 (en) 2003-10-02 2009-10-28 日本電信電話株式会社 Wireless relay device
US7123676B2 (en) 2003-11-17 2006-10-17 Quellan, Inc. Method and system for antenna interference cancellation
US7430397B2 (en) 2003-12-05 2008-09-30 Ntt Docomo, Inc. Radio repeater and radio relay transmission method
JP4398752B2 (en) 2004-02-19 2010-01-13 株式会社エヌ・ティ・ティ・ドコモ Wireless relay system, wireless relay device, and wireless relay method
EP1745567B1 (en) 2004-05-13 2017-06-14 QUALCOMM Incorporated Non-frequency translating repeater with detection and media access control
US7132988B2 (en) 2004-05-19 2006-11-07 Delphi Technologies, Inc. Directional patch antenna
KR20070026558A (en) 2004-06-03 2007-03-08 위데피, 인코포레이티드 Frequency translating repeater with low cost high performance local oscillator architecture
US7623826B2 (en) 2004-07-22 2009-11-24 Frank Pergal Wireless repeater with arbitrary programmable selectivity
US7773535B2 (en) 2004-08-12 2010-08-10 Motorola, Inc. Method and apparatus for closed loop transmission
US7844216B2 (en) 2004-09-07 2010-11-30 Samsung Electronics Co., Ltd. Wireless repeater using a single RF chain for use in a TDD wireless network
US7966012B2 (en) 2004-09-09 2011-06-21 Parkervision, Inc. Wireless protocol converter
US20060203757A1 (en) 2005-03-11 2006-09-14 Spotwave Wireless Inc. Adaptive repeater system
US7733285B2 (en) 2005-05-18 2010-06-08 Qualcomm Incorporated Integrated, closely spaced, high isolation, printed dipoles
US8130629B2 (en) 2005-11-25 2012-03-06 Go Net Systems Ltd Simultaneous simulcast and single cast hybrid multi-tone communication system
US7409186B2 (en) 2006-07-13 2008-08-05 Wilson Electronics, Inc. Detection and elimination of oscillation within cellular network amplifiers
US7486929B2 (en) 2006-07-13 2009-02-03 Wilson Electronics, Inc. Processor-controlled variable gain cellular network amplifiers with oscillation detection circuit
US20080057862A1 (en) 2006-08-31 2008-03-06 Smith James P Ultra wide band stand-alone repeater/selector and systems
US7729669B2 (en) 2006-09-26 2010-06-01 Wilson Electronics Processor controlled variable gain cellular network amplifier

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5726980A (en) * 1995-03-30 1998-03-10 Northern Telecom Limited Time division duplex communications repeater
US6404775B1 (en) * 1997-11-21 2002-06-11 Allen Telecom Inc. Band-changing repeater with protocol or format conversion
US20020109585A1 (en) * 2001-02-15 2002-08-15 Sanderson Lelon Wayne Apparatus, method and system for range extension of a data communication signal on a high voltage cable
US20030185163A1 (en) * 2002-03-27 2003-10-02 Bertonis James G. System and method for wireless cable data transmission

Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8498234B2 (en) 2002-06-21 2013-07-30 Qualcomm Incorporated Wireless local area network repeater
US8885688B2 (en) 2002-10-01 2014-11-11 Qualcomm Incorporated Control message management in physical layer repeater
US8122134B2 (en) 2002-10-11 2012-02-21 Qualcomm Incorporated Reducing loop effects in a wireless local area network repeater
US8060009B2 (en) 2002-10-15 2011-11-15 Qualcomm Incorporated Wireless local area network repeater with automatic gain control for extending network coverage
US8078100B2 (en) 2002-10-15 2011-12-13 Qualcomm Incorporated Physical layer repeater with discrete time filter for all-digital detection and delay generation
US8111645B2 (en) 2002-11-15 2012-02-07 Qualcomm Incorporated Wireless local area network repeater with detection
US8027642B2 (en) 2004-04-06 2011-09-27 Qualcomm Incorporated Transmission canceller for wireless local area network
US8023885B2 (en) 2004-05-13 2011-09-20 Qualcomm Incorporated Non-frequency translating repeater with downlink detection for uplink and downlink synchronization
US8095067B2 (en) 2004-06-03 2012-01-10 Qualcomm Incorporated Frequency translating repeater with low cost high performance local oscillator architecture
JP2008505513A (en) * 2004-06-03 2008-02-21 ワイデファイ インコーポレイテッド Frequency conversion repeater with low cost, high performance local oscillator structure
US8059727B2 (en) 2005-01-28 2011-11-15 Qualcomm Incorporated Physical layer repeater configuration for increasing MIMO performance
US8559379B2 (en) 2006-09-21 2013-10-15 Qualcomm Incorporated Method and apparatus for mitigating oscillation between repeaters
US8774079B2 (en) 2006-10-26 2014-07-08 Qualcomm Incorporated Repeater techniques for multiple input multiple output utilizing beam formers

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