WO2008011062A2 - Systems and methods for providing millimeter wave signal improvements - Google Patents

Systems and methods for providing millimeter wave signal improvements Download PDF

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Publication number
WO2008011062A2
WO2008011062A2 PCT/US2007/016277 US2007016277W WO2008011062A2 WO 2008011062 A2 WO2008011062 A2 WO 2008011062A2 US 2007016277 W US2007016277 W US 2007016277W WO 2008011062 A2 WO2008011062 A2 WO 2008011062A2
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WO
WIPO (PCT)
Prior art keywords
signal
millimeter wave
signals
level
threshold value
Prior art date
Legal status (The legal status 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 status listed.)
Ceased
Application number
PCT/US2007/016277
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French (fr)
Other versions
WO2008011062A3 (en
Inventor
Robert Hardacker
Hiroyuki Mita
Kenichi Kawasaki
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Sony Corp
Sony Electronics Inc
Original Assignee
Sony Corp
Sony Electronics 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 Sony Corp, Sony Electronics Inc filed Critical Sony Corp
Priority to JP2009520818A priority Critical patent/JP5487965B2/en
Priority to CN2007800274300A priority patent/CN101490568B/en
Priority to EP07810573.1A priority patent/EP2041585B1/en
Priority to KR1020097000908A priority patent/KR101429307B1/en
Priority to CA2657613A priority patent/CA2657613C/en
Publication of WO2008011062A2 publication Critical patent/WO2008011062A2/en
Publication of WO2008011062A3 publication Critical patent/WO2008011062A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/06Receivers
    • H04B1/16Circuits
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. Transmission Power Control [TPC] or power classes
    • H04W52/04Transmission power control [TPC]
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/246TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters where the output power of a terminal is based on a path parameter calculated in said terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/06Receivers
    • H04B1/10Means associated with receiver for limiting or suppressing noise or interference
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/06Receivers
    • H04B1/10Means associated with receiver for limiting or suppressing noise or interference
    • H04B1/1027Means associated with receiver for limiting or suppressing noise or interference assessing signal quality or detecting noise/interference for the received signal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/309Measuring or estimating channel quality parameters
    • H04B17/318Received signal strength
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. Transmission Power Control [TPC] or power classes
    • H04W52/04Transmission power control [TPC]
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/245TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account received signal strength
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/309Measuring or estimating channel quality parameters
    • H04B17/336Signal-to-interference ratio [SIR] or carrier-to-interference ratio [CIR]

Definitions

  • the invention relates in general to systems and methods for wireless transmissions, and in particular to improving millimeter wave signals.
  • the 57 - 64 GHz (“60 GHz band”) band is located in the millimeter- wave portion of the electromagnetic spectrum and has been largely unexploited for commercial wireless applications.
  • energy propagation in the 60 GHz band has unique characteristics that make possible many other benefits such as excellent immunity to interference, high security, and frequency re-use.
  • wireless transmissions in the 60 GHz range exhibit the aforementioned beneficial characteristics, they still suffer from certain drawbacks, including the fact that such transmission typically only span a maximum distance measured in tens of meters.
  • very short distances between the receiver-side and transmitter-side of a high frequency system will reintroduce the multipath issue and cause signal reception interference.
  • a radio frequency receiver includes a receiver circuit for processing radio
  • the attenuator circuit may be used to ⁇ determine a signal strength of the millimeter wave RF signals, compare this signal strength to a first threshold value. If the signal strength is
  • a level of attenuation applied to the millimeter wave RF signals may then be increased.
  • FIG. IA is one embodiment of a transmission system for carrying out one or more aspects of the invention.
  • FIG. IB is a diagram showing how an attenuator of FIG. IA may 5 attenuate an RF signal
  • FIG. 1C depicts wireless signal reflection without attenuation
  • FIG. ID depicts one embodiment of wireless signal reflection with attenuation
  • FIGs. 2A — 2B are process diagrams of how a receiver may be used to 10 carry out one or more embodiments of the invention.
  • FIG. 3 is a process diagram of how a transceiver may be used to carry out another embodiment of the invention.
  • One aspect of the invention is to provide a radio frequency receiver/transceiver for processing millimeter wave RF signals.
  • the receiver/transceiver includes a variable attenuator 5 circuit coupled between a receiver circuit and an antenna.
  • the receiver circuit may be used to detect a signal strength, and compare such signal strength to a threshold value. Where the signal strength is above the threshold value, a level of attenuation applied to the millimeter wave RF signals may be increased to improve the signal quality.
  • the millimeter wave RF signals have a frequency of between approximately 57 GHz and 95 GHz.
  • the threshold value against which the signal strengths may be compared is related to the specific implementation of the receiver circuit. One skilled in the art would optimize a receiver for an optimum input level range above which
  • Another aspect of the invention is for the aforementioned receiver/transceiver to also compare the signal strength of the received signal to a second threshold value. If the signal strength is below this second threshold value, the level of attenuate applied to the millimeter 20 wave RF signal may be decreased.
  • Still another aspect of the invention is for the aforementioned receiver/transceiver to also determine a signal quality of the millimeter wave RF signals, and compare this signal quality to a threshold quality value. Where the determined signal quality is below the threshold 25 quality, and the signal strength is above the previously-mentioned threshold strength value, the level of attenuation being applied to the millimeter wave RF signals may be increased.
  • the aforementioned receiver/transceiver may 30 simply determine if the signal quality of the millimeter wave RF signals is-
  • Still another aspect of the invention is for the aforementioned receiver/transceiver to be able to determine if the millimeter wave RF 5 signals are reflection signals. If so, the level of attenuation applied to said millimeter wave RF signals may be increased.
  • the invention enables the RF transmission of data in the 60GHz band at multi-Gigabit per second (Gbps) data rates.
  • FIG. IA depicts one embodiment of a wireless communication 10 system 100 for implementing one or more aspects of the invention.
  • system 100 may enable the RF transmission of data in the millimeter-wave range at multi-Gbps data rates.
  • data is transmitted at a rate of between 1 Gbps and 10 Gbps.
  • system 100 includes a first transceiver circuit 15 110 for processing millimeter wave signals.
  • such signals are in the 60GHz band.
  • System 100 further includes a first attenuation circuit 120, as well as an antenna 130 for receiving and sending millimeter wave signals (i.e., signal 140).
  • the first transceiver circuit 110 provides an RF signal to the antenna 130 which converts the 20 information into an electromagnetic wave (i.e., signal 140).
  • the transmission medium for electromagnetic wave propagation is free space.
  • the level of attenuation provided by first attenuator 120 may be based on a control signal 145 from the first transceiver 110.
  • control signal 145 may be based on signal quality information received 25 from any known digital demodulation process.
  • the electromagnetic signal 140 is intercepted by the receiving antenna 150 which converts it back to an RF signal.
  • Second attenuator circuit 160 may then be used to attenuate the signal 150 before passing it to the second transceiver circuit 170.
  • 30 attenuators 120 and 160 are variable controlled attenuators. The level of
  • Atty Docket No.: 101162.56141WO - 6 - Initial July 17, 201 attenuation provided by second attenuator 160 may, in one embodiment, be based on a control signal 175 received from the second transceiver 170. . As with control signal 145, control signal 175 may be based on signal quality information received from any known digital demodulation 5 process.
  • system 100 of FIG. IA is depicted as being a two- transceiver system, in other embodiments more transceivers may be included in the system 100.
  • the transceiver circuits 110 and 170 may be comprised of only transmitters and/or receivers.
  • signal 140 may be transmitted at frequencies above the 60
  • signal 140 may be encoded with data transmitted at multi-Gigabit per second (Gbps) rates.
  • Gbps gigabit per second
  • the distance between the individual antennas 130 and 150 may range from centimeters to tens of meters.
  • FIG. IB illustrates how a signal may be attenuated by one or both of attenuator circuits 120 and 160.
  • the signal power level provided to the attenuator is denoted as Pi n
  • the output power level is denoted as Pout.
  • FIG 1C depicts one embodiment where signal 140 is reflected without the use of an attenuator.
  • antenna surface 180 functions as the reflector. Without an attenuator, the reflected signal 25 strength is simply R.
  • FIG. ID depicts the case where signal 140 is attenuated by attenuator 185 prior to reaching the reflective surface 180.
  • the reflected signal actually passes through the attenuator 185 twice, and therefore the amount of attenuation can be represented as 30 R/(A*A), even though the signal delivered to the reflective surface 180 was attenuated by a I/A factor.
  • Process 200 begins with the receiving of a signal at block 200.
  • this signal is a millimeter wave RF signal.
  • a 5 determination is made at block 210 of whether or not the strength of the signal may be considered strong. In one embodiment, this is done by comparing the strength of the received signal to a predetermined threshold. Typical attenuation may range from OdB to 12dB.
  • process 10 200 will move to block 220 where the level of attenuation being applied to the incoming signal, if any, may be reduced. If, on the other hand, the signal is above the predetermined threshold, then process 200 will move to block 230.
  • a determination may be made as to the quality of the 15 received signal. This may be accomplished by measuring various signal parameters that indicate the quality of the signal, such as bit error rate (BER), signal-to-noise ratio (SNR), carrier-to-noise ratio (CNR), number of errors corrected, etc. If such parameters indicate that signal quality is unacceptable, the amount of attenuation applied to the received signal 20 may be increased at block 240. If such parameters indicate that signal quality is acceptable, the signal may be processed in the normal course at block 250. It should be appreciated that the level of attenuation (or the rate at which it changes) may be a function of the quality of signal received, or alternatively, it may predetermined. In one embodiment, the 25 level of attenuation may be changed from about 0 dB to about 12 dB at blocks 220 and 240.
  • BER bit error rate
  • SNR signal-to-noise ratio
  • CNR carrier-to-noise ratio
  • Atty Docket No.: 101162.56141WO - 8 - Initial July 17, 20( between a given transmitter and receiver decreases, the signal strength will increase causing the attenuation level to increase (block 240).
  • Process 255 begins with the receiving of a signal at block
  • process 255 will move to block 285 where the level of signal attenuation may be •15 increased. Moreover, the amount of the attenuation increase applied at block 285 may be between about 0 dB and 12 dB.
  • process 255 will continue to block 290 where the current signal attenuation level will not be changed.
  • FIG. 3 depicts an embodiment of process 300 for how a transceiver 30 may be used to implement one or more aspects of the invention.
  • Atty Docket No.: 101162.56141WO - 9 - Initial July 17, 20 300 begins at block 305 with the detection of an RF signal. Once a signal is detected, process 300 will continue to block 310 where a determination • may be made as to whether the detected signal is a reflection of a signal sent by the transceiver in question, or whether it is a signal originating 5 from another source (e.g., a second transceiver).
  • a determination • may be made as to whether the detected signal is a reflection of a signal sent by the transceiver in question, or whether it is a signal originating 5 from another source (e.g., a second transceiver).
  • process 300 will continue to block 315 where the amount of attenuation applied to outgoing signals may be increased. In one embodiment, the amount of attenuation may be increased by between
  • the process 300 will continue to block 320.
  • the strength of the detected signal may be determined. In one embodiment, this is done by comparing the strength of the detected signal to a predetermined threshold.
  • process 300 will move to block 325 where the level of attenuation being applied to the detected signal may be decreased. Thereafter, the signal may be processed in the normal course at block 335.
  • process 300 will move to block 330.
  • a determination may be made as to the quality of the detected signal. This may be accomplished by measuring various signal parameters that indicate the quality of the signal, such as BER, SNR, etc. If such
  • the signal may be processed in the normal course at block 335. If, on the other hand, the signal quality is determined at block 330 to be unacceptable, then process 300 will continue to block 340 where the detected signal may be attenuated. It should be appreciated that the level of attenuation may be
  • the detected signal may again be checked for quality (block 345). If the signal quality is now acceptable, then no change is made to the attenuation level applied to the signal (block 350). If, on the other hand, the signal quality is still unacceptable, 5 the level of attenuation applied to the incoming signal may be increased at block 355.
  • process 300 may proceed in one of two ways. In one embodiment, the process may revert back to block 340 where the signal is again attenuated, but this 10 time at the higher attenuation level. This may continue until the signal quality is acceptable, as determined at block 345. Alternatively, the process 300 may proceed to block 335 for signal processing, with the increased level of attenuation being applied prospectively to future incoming signals.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Quality & Reliability (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Input Circuits Of Receivers And Coupling Of Receivers And Audio Equipment (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Circuits Of Receivers In General (AREA)

Abstract

A radio frequency receiver includes a receiver circuit for processing RF signals, an antenna to receive millimeter wave RF signals, and an attenuator circuit, coupled between the receiver circuit and antenna. In one embodiment, the attenuator circuit may be used to determine a signal strength of the millimeter wave RF signals, compare this signal strength to a first threshold value. If the signal strength is above the first threshold value, a level of attenuation applied to the millimeter wave RF signals may then be increased.

Description

SYSTEMS AND METHODS FOR PROVIDING MILLIMETER WAVE
SIGNAL IMPROVEMENTS
1. Field of the Invention
[0001] The invention relates in general to systems and methods for wireless transmissions, and in particular to improving millimeter wave signals.
2. Background
[0002] There has recently been a pronounced increase in the types of communication applications that require the use of wireless data transfer. Such applications include, for example, video conferencing, video-on- demand, high speed Internet access, high speed local area networks, online gaming, and high definition television. In the home or office, for example, computing devices continue to be connected using wireless networking systems. Many additional types of devices are also being designed with wireless communication in mind. [0003] At frequencies below about below 3 GHz, antennas are generally omnidirectional, which cause antennas in proximity to interfere with each other, or experience what is known as "multipath." At higher frequencies (e.g. from about 3 to about 60 GHz), signals become somewhat directional, which reduces the multipath issue mentioned above. However, at very close distances signal reflections off of the receiver and transmitter reintroduce the multipath issue. These reflections cause signal interference and degrade the overall quality of the communication.
[0004] The 57 - 64 GHz ("60 GHz band") band is located in the millimeter- wave portion of the electromagnetic spectrum and has been largely unexploited for commercial wireless applications. In addition to the higher-data rates that can be accomplished in this spectrum, energy propagation in the 60 GHz band has unique characteristics that make possible many other benefits such as excellent immunity to interference, high security, and frequency re-use. [0005] While wireless transmissions in the 60 GHz range exhibit the aforementioned beneficial characteristics, they still suffer from certain drawbacks, including the fact that such transmission typically only span a maximum distance measured in tens of meters. As mentioned above, very short distances between the receiver-side and transmitter-side of a high frequency system will reintroduce the multipath issue and cause signal reception interference. As such, there is a need in the art for a system and method which improves signal quality at millimeter wave frequencies by reducing multipath effects.
Atty Docket No.: 101162.56141WO - 2 - Initial July 17, 20< BRIEF SUMMARY OF THE INVENTION
[0006] Disclosed and claimed herein are systems and methods for providing millimeter wave signal improvements. In one embodiment, a radio frequency receiver includes a receiver circuit for processing radio
5 frequency (RF) signals, an antenna to receive millimeter wave RF signals, and an attenuator circuit, coupled between the receiver circuit and antenna. In one embodiment, the attenuator circuit may be used to \ determine a signal strength of the millimeter wave RF signals, compare this signal strength to a first threshold value. If the signal strength is
10 above the first threshold value, a level of attenuation applied to the millimeter wave RF signals may then be increased.
[0007] Other aspects, features, and techniques of the invention will be apparent to one skilled in the relevant art in view of the following description of the exemplary embodiments of the invention.
Atty Docket No.: 101162.56141WO - 3 - Initial July 17, 20 BRIEF DESCRIPTION OF DRAWINGS
[0008] FIG. IA is one embodiment of a transmission system for carrying out one or more aspects of the invention;
[0009] FIG. IB is a diagram showing how an attenuator of FIG. IA may 5 attenuate an RF signal;
[0010] FIG. 1C depicts wireless signal reflection without attenuation;
[0011] FIG. ID depicts one embodiment of wireless signal reflection with attenuation;
[0012] FIGs. 2A — 2B are process diagrams of how a receiver may be used to 10 carry out one or more embodiments of the invention; and
[0013] FIG. 3 is a process diagram of how a transceiver may be used to carry out another embodiment of the invention.
Atty Docket No.: 101162.56141WO - 4 - Initial July 17, 20 DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0014] One aspect of the invention is to provide a radio frequency receiver/transceiver for processing millimeter wave RF signals. In one embodiment, the receiver/transceiver includes a variable attenuator 5 circuit coupled between a receiver circuit and an antenna. The receiver circuit may be used to detect a signal strength, and compare such signal strength to a threshold value. Where the signal strength is above the threshold value, a level of attenuation applied to the millimeter wave RF signals may be increased to improve the signal quality.
10 [0015] In one embodiment, the millimeter wave RF signals have a frequency of between approximately 57 GHz and 95 GHz. The threshold value against which the signal strengths may be compared is related to the specific implementation of the receiver circuit. One skilled in the art would optimize a receiver for an optimum input level range above which
15 the aforementioned threshold level would be set.
[0016] Another aspect of the invention is for the aforementioned receiver/transceiver to also compare the signal strength of the received signal to a second threshold value. If the signal strength is below this second threshold value, the level of attenuate applied to the millimeter 20 wave RF signal may be decreased.
[0017] Still another aspect of the invention is for the aforementioned receiver/transceiver to also determine a signal quality of the millimeter wave RF signals, and compare this signal quality to a threshold quality value. Where the determined signal quality is below the threshold 25 quality, and the signal strength is above the previously-mentioned threshold strength value, the level of attenuation being applied to the millimeter wave RF signals may be increased.
[0018] In another embodiment, rather than compare the signal quality to a threshold quality value, the aforementioned receiver/transceiver may 30 simply determine if the signal quality of the millimeter wave RF signals is-
Atty Docket No.: 101162.56141 WO - 5 - Initial July 17, 20' unacceptable. If so, the level of attenuation applied to said millimeter wave RF signals may be increased.
[0019] Still another aspect of the invention is for the aforementioned receiver/transceiver to be able to determine if the millimeter wave RF 5 signals are reflection signals. If so, the level of attenuation applied to said millimeter wave RF signals may be increased.
[0020] In certain embodiments, the invention enables the RF transmission of data in the 60GHz band at multi-Gigabit per second (Gbps) data rates.
[0021] FIG. IA depicts one embodiment of a wireless communication 10 system 100 for implementing one or more aspects of the invention. In certain embodiments, system 100 may enable the RF transmission of data in the millimeter-wave range at multi-Gbps data rates. In one embodiment, data is transmitted at a rate of between 1 Gbps and 10 Gbps.
[0022] As shown in FIG. IA, system 100 includes a first transceiver circuit 15 110 for processing millimeter wave signals. In one embodiment, such signals are in the 60GHz band. System 100 further includes a first attenuation circuit 120, as well as an antenna 130 for receiving and sending millimeter wave signals (i.e., signal 140). The first transceiver circuit 110 provides an RF signal to the antenna 130 which converts the 20 information into an electromagnetic wave (i.e., signal 140). The transmission medium for electromagnetic wave propagation is free space. The level of attenuation provided by first attenuator 120 may be based on a control signal 145 from the first transceiver 110. In one embodiment, control signal 145 may be based on signal quality information received 25 from any known digital demodulation process.
[0023] The electromagnetic signal 140 is intercepted by the receiving antenna 150 which converts it back to an RF signal. Second attenuator circuit 160 may then be used to attenuate the signal 150 before passing it to the second transceiver circuit 170. According to one embodiment, 30 attenuators 120 and 160 are variable controlled attenuators. The level of
Atty Docket No.: 101162.56141WO - 6 - Initial July 17, 201 attenuation provided by second attenuator 160 may, in one embodiment, be based on a control signal 175 received from the second transceiver 170. . As with control signal 145, control signal 175 may be based on signal quality information received from any known digital demodulation 5 process.
[0024] While the system 100 of FIG. IA is depicted as being a two- transceiver system, in other embodiments more transceivers may be included in the system 100. Similarly, the transceiver circuits 110 and 170 may be comprised of only transmitters and/or receivers. In other 10 embodiments, signal 140 may be transmitted at frequencies above the 60
GHz band, such as up to 95 GHz. Moreover, signal 140 may be encoded with data transmitted at multi-Gigabit per second (Gbps) rates. In certain embodiments, the distance between the individual antennas 130 and 150 may range from centimeters to tens of meters.
15 [0025] FIG. IB illustrates how a signal may be attenuated by one or both of attenuator circuits 120 and 160. The signal power level provided to the attenuator is denoted as Pin, while the output power level is denoted as Pout. The amount of attenuation may be expressed in dBs according to the equation, Pdb = 10 x Log (Pout / Pin). Thus, if half the signal power is lost
20 while passing through the attenuator (Pout / Pin = 2), the magnitude of attenuation in decibels is 10 x Log (2), or 3 dB.
[0026] FIG 1C depicts one embodiment where signal 140 is reflected without the use of an attenuator. In this embodiment, antenna surface 180 functions as the reflector. Without an attenuator, the reflected signal 25 strength is simply R.
[0027] FIG. ID, on the other hand, depicts the case where signal 140 is attenuated by attenuator 185 prior to reaching the reflective surface 180. IN this case, the reflected signal actually passes through the attenuator 185 twice, and therefore the amount of attenuation can be represented as 30 R/(A*A), even though the signal delivered to the reflective surface 180 was attenuated by a I/A factor.
Atty Docket No.: 101162.56141 WO - 7 - Initial July 17, 20( [0028] Referring now to FIG. 2A, depicted is a simplified process 200 for how a receiver may implement one or more aspects of the invention. Process 200 begins with the receiving of a signal at block 200. In one embodiment, this signal is a millimeter wave RF signal. Once received, a 5 determination is made at block 210 of whether or not the strength of the signal may be considered strong. In one embodiment, this is done by comparing the strength of the received signal to a predetermined threshold. Typical attenuation may range from OdB to 12dB. If the received signal is not strong (i.e., not above the threshold), then process 10 200 will move to block 220 where the level of attenuation being applied to the incoming signal, if any, may be reduced. If, on the other hand, the signal is above the predetermined threshold, then process 200 will move to block 230.
[0029] At block 230, a determination may be made as to the quality of the 15 received signal. This may be accomplished by measuring various signal parameters that indicate the quality of the signal, such as bit error rate (BER), signal-to-noise ratio (SNR), carrier-to-noise ratio (CNR), number of errors corrected, etc. If such parameters indicate that signal quality is unacceptable, the amount of attenuation applied to the received signal 20 may be increased at block 240. If such parameters indicate that signal quality is acceptable, the signal may be processed in the normal course at block 250. It should be appreciated that the level of attenuation (or the rate at which it changes) may be a function of the quality of signal received, or alternatively, it may predetermined. In one embodiment, the 25 level of attenuation may be changed from about 0 dB to about 12 dB at blocks 220 and 240.
[0030] Using the process of FIG. 2A, a relatively constant signal quality can be maintained and the effects of multipath minimized. This is made possible by the fact that as the distance between a given transmitter and 30 receiver increases, the signal strength will decrease causing the attenuation level to decrease (block 220). Alternatively, as the distance
Atty Docket No.: 101162.56141WO - 8 - Initial July 17, 20( between a given transmitter and receiver decreases, the signal strength will increase causing the attenuation level to increase (block 240).
[0031] Referring now to FIG. 2B, depicted is another embodiment of a process 255 for how an RF receiver can implement one or more aspects of 5 the invention. Process 255 begins with the receiving of a signal at block
260. Once received, a determination is made at block 265 of how strong the received signal is (e.g., dB level). If the received signal is too weak (as determined at block 270), then the level of signal attenuation applied to incoming signals may be reduced at block 275. Moreover, the amount of 10 the attenuation decrease at block 285 may be between about 0 dB and 12 dB. If, on the other hand, the received signal is not too weak, then process 255 will continue to block 280.
[0032] At block 280, if a signal is determined to be too strong, process 255 will move to block 285 where the level of signal attenuation may be •15 increased. Moreover, the amount of the attenuation increase applied at block 285 may be between about 0 dB and 12 dB.
[0033] If it is alternatively determined at block 280 that the signal is not too strong, process 255 will continue to block 290 where the current signal attenuation level will not be changed.
20 [0034] Using the process of FIG. 2B, a relatively constant signal quality can be maintained and the effects of multipath minimized. This is made possible by the fact that as the distance between a given transmitter and receiver increases, the signal strength will decrease causing the attenuation level to be decreased (block 275). Alternatively, as the
25 distance between a given transmitter and receiver decreases, the signal strength will increase causing the attenuation level to be increased (block 285). If the distance remains constant, so too will the current attenuation level (block 290).
[0035] FIG. 3 depicts an embodiment of process 300 for how a transceiver 30 may be used to implement one or more aspects of the invention. Process
Atty Docket No.: 101162.56141WO - 9 - Initial July 17, 20 300 begins at block 305 with the detection of an RF signal. Once a signal is detected, process 300 will continue to block 310 where a determination may be made as to whether the detected signal is a reflection of a signal sent by the transceiver in question, or whether it is a signal originating 5 from another source (e.g., a second transceiver).
[0036] If it is determined at block 310 that the signal is in fact a reflection, then process 300 will continue to block 315 where the amount of attenuation applied to outgoing signals may be increased. In one embodiment, the amount of attenuation may be increased by between
10 about 0 dB and 12 dB. If, on the other hand, it is determined that the detected signal is not a reflection, then the process 300 will continue to block 320. At block 320, the strength of the detected signal may be determined. In one embodiment, this is done by comparing the strength of the detected signal to a predetermined threshold. One skilled in the art
15 would identify a preferred signal strength range based upon the implementation. If the received signal is determined to not be strong, then process 300 will move to block 325 where the level of attenuation being applied to the detected signal may be decreased. Thereafter, the signal may be processed in the normal course at block 335.
20 [0037] If, on the other hand, the signal is above the predetermined threshold, then process 300 will move to block 330. At block 330, a determination may be made as to the quality of the detected signal. This may be accomplished by measuring various signal parameters that indicate the quality of the signal, such as BER, SNR, etc. If such
25 parameters indicate that signal quality is acceptable, the signal may be processed in the normal course at block 335. If, on the other hand, the signal quality is determined at block 330 to be unacceptable, then process 300 will continue to block 340 where the detected signal may be attenuated. It should be appreciated that the level of attenuation may be
30 a function of the quality of signal received, or it may predetermined.
Atty DocketNo.: 101162.56141WO - 10 - Initial July 17, 20( [0038] Once the detected signal is attenuated at block 340, it may again be checked for quality (block 345). If the signal quality is now acceptable, then no change is made to the attenuation level applied to the signal (block 350). If, on the other hand, the signal quality is still unacceptable, 5 the level of attenuation applied to the incoming signal may be increased at block 355.
[0039] After the level if attenuation is increased at block 355, process 300 may proceed in one of two ways. In one embodiment, the process may revert back to block 340 where the signal is again attenuated, but this 10 time at the higher attenuation level. This may continue until the signal quality is acceptable, as determined at block 345. Alternatively, the process 300 may proceed to block 335 for signal processing, with the increased level of attenuation being applied prospectively to future incoming signals.
15 [0040] While the preceding description has been directed to particular embodiments, it is understood that those skilled in the art may conceive modifications and/or variations to the specific embodiments described herein. Any such modifications or variations which fall within the purview of this description are intended to be included herein as well. It is
20 understood that the description herein is intended to be illustrative only and is not intended to limit the scope of the invention.
Atty Docket No.: 101162.56141 WO - 11 - Initial My 17, 201

Claims

CLAIMSWhat is claimed is:
1. A radio frequency receiver comprising:
5 a receiver circuit for processing radio frequency (RF) signals; an antenna to receive millimeter wave RF signals; and an attenuator circuit coupled between said receiver circuit and antenna, wherein said attenuator circuit is to, determine a signal strength of said millimeter wave RF signals,
10 compare said signal strength to a first threshold value, and if said signal strength is above the first threshold value, increase a level of attenuation applied to said millimeter wave RF signals.
15 2. The radio frequency receiver of claim 1, wherein said millimeter wave RF signal have a frequency of between approximately 57 GHz and 95 GHz.
3. The radio frequency receiver of claim 1, wherein said attenuator circuit is further to,
20 compare said signal strength to a second threshold value, and if said signal strength is below the second threshold value, decrease the level of attenuate applied to said millimeter wave RF signal.
25 4. The radio frequency receiver of claim 1, wherein said attenuator circuit is further to, determine a signal quality of said millimeter wave RF signals,
Atty Docket No.: 101162.56141WO - 12 - Initial July 17, 20 compare said signal quality to a threshold quality value, and if said signal quality is below the threshold quality, and the signal strength is above the first threshold value, increase the level of attenuation applied to said millimeter wave 5 RF signals.
5. The radio frequency receiver of claim 1, wherein said attenuator circuit is further to, determine if a signal quality of said millimeter wave RF signals 10 is unacceptable, and if so increase the level of attenuation applied to said millimeter wave RF signals.
6. The radio frequency receiver of claim 1, wherein said attenuator circuit 15 is further to, determine if said millimeter wave RF signals are reflection signals, and if so increase the level of attenuation applied to said millimeter wave RF signals.
20
7. A communication system comprising: a first transceiver including a first attenuation circuit and a first antenna for sending and receiving millimeter wave radio frequency (RF) signals; and
25 a second transceiver for communicating with the first transceiver, the second transceiver including a second attenuation circuit and a second antenna for sending and receiving the millimeter wave RF signals, wherein in the first and second transceiver are each to,
Atty Docket No.: 101162.56141WO - 13 - Initial July 17, 2007 determine signal strengths of received millimeter wave RF signals, compare said signal strengths to a first threshold value, and if a given signal strength is above the first threshold value,
5 increase a level of attenuation applied to said millimeter wave
RP signals.
8. The communication system of claim 7, wherein said millimeter wave RF signal have a frequency of between approximately 57 GHz and 130 GHz.
10
9. The communication system of claim 7, wherein said first and second transceiver circuits are each further to, compare said signal strengths to a second threshold value, and if the given signal strength is below the second threshold value,
15 decrease the level of attenuation applied to said millimeter wave
RF signal.
10. The communication system of claim 7, wherein each of said first and second transceivers are further to,
20 determine signal qualities of said millimeter wave RF signals, compare said signal qualities to a threshold quality value, and if a given signal quality is above the threshold quality, and the given signal strength is above the first threshold value, increase the level of attenuation applied to said millimeter wave 25 RF signals.
Atty Docket No.: 101162.5614 IWO - 14 - Initial July 17, 2007
11. The communication system of claim 7, wherein each of said first and second transceivers are further to, determine if signal qualities of said millimeter wave RF signals are unacceptable, and if so
5 increase the level of attenuation applied to said millimeter wave
RF signals.
12. The communication system of claim 7, wherein each of said first and second transceivers are further to,
10 determine if said millimeter wave RF signals are reflection signals, and if so increase the level of attenuation applied to said millimeter wave RF signals.
15 13. A method comprising: receiving a millimeter wave radio frequency (RF) signal; comparing said signal strength to a first threshold value, and if said signal strength is above the first threshold value, increasing a level of attenuation applied to said millimeter wave RF 20 signals.
14. The method of claim 13, wherein said millimeter wave RF signal have a frequency of between approximately 57 GHz and 95 GHz.
25 15. The method of claim 13, further comprising: comparing said signal strength to a second threshold value, and if said signal strength is below the second threshold value; and
Atty Docket No.: 101162.56141WO - 15 - Initial July 17, 2007 decreasing the level of attenuation applied to said millimeter wave RF signal.
16. The method of claim 13, further comprising:
5 determining a signal quality of said millimeter wave RF signals; comparing said signal quality to a threshold quality value, and if said signal quality is below the threshold quality, and the signal strength is above the first threshold value; and increasing the level of attenuation applied to said millimeter wave RF 10 signals.
17. The method of claim 13, further comprising: determining if a signal quality of said millimeter wave RF signals is unacceptable; and if so
15 increasing the level of attenuation applied to said millimeter wave RF signals.
Atty Docket No.: 101162.56141WO - 16 - Initial July 17, 2007
PCT/US2007/016277 2006-07-17 2007-07-17 Systems and methods for providing millimeter wave signal improvements Ceased WO2008011062A2 (en)

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CN2007800274300A CN101490568B (en) 2006-07-17 2007-07-17 Systems and methods for providing millimeter wave signal improvements
EP07810573.1A EP2041585B1 (en) 2006-07-17 2007-07-17 Systems and methods for providing millimeter wave signal improvements
KR1020097000908A KR101429307B1 (en) 2006-07-17 2007-07-17 Systems and methods for providing millimeter wave signal enhancement
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US7860473B2 (en) 2010-12-28
CA2657613C (en) 2013-12-31
JP2009544229A (en) 2009-12-10
KR20090030311A (en) 2009-03-24
CN101490568A (en) 2009-07-22
WO2008011062A3 (en) 2008-04-10
JP5487965B2 (en) 2014-05-14
EP2041585A4 (en) 2012-07-04
KR101429307B1 (en) 2014-08-11
EP2041585A2 (en) 2009-04-01
EP2041585B1 (en) 2017-03-29
US20080014890A1 (en) 2008-01-17
CN101490568B (en) 2011-12-14
CA2657613A1 (en) 2008-01-24

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