WO2016149419A1 - Noise-shaping crest factor reduction with polyphase transforming - Google Patents

Noise-shaping crest factor reduction with polyphase transforming Download PDF

Info

Publication number
WO2016149419A1
WO2016149419A1 PCT/US2016/022713 US2016022713W WO2016149419A1 WO 2016149419 A1 WO2016149419 A1 WO 2016149419A1 US 2016022713 W US2016022713 W US 2016022713W WO 2016149419 A1 WO2016149419 A1 WO 2016149419A1
Authority
WO
WIPO (PCT)
Prior art keywords
composite signal
filter
components
coupled
waveform
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/US2016/022713
Other languages
French (fr)
Inventor
Christopher H. Dick
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.)
Xilinx Inc
Original Assignee
Xilinx 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 Xilinx Inc filed Critical Xilinx Inc
Publication of WO2016149419A1 publication Critical patent/WO2016149419A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2626Arrangements specific to the transmitter only
    • H04L27/2627Modulators
    • H04L27/2628Inverse Fourier transform modulators, e.g. inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators
    • H04L27/2631Inverse Fourier transform modulators, e.g. inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators with polyphase implementation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • H04L1/0009Systems modifying transmission characteristics according to link quality, e.g. power backoff by adapting the channel coding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2614Peak power aspects
    • H04L27/2623Reduction thereof by clipping
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2614Peak power aspects
    • H04L27/2623Reduction thereof by clipping
    • H04L27/2624Reduction thereof by clipping by soft clipping
    • 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
    • H04B1/005Details 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 adapting radio receivers, transmitters andtransceivers for operation on two or more bands, i.e. frequency ranges
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
    • H04L5/001Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT the frequencies being arranged in component carriers

Definitions

  • ICs integrated circuit devices
  • PAPR peak-to-average power ratio
  • circuitry used to provide a PAPR reduced signal used a significant amount of circuit complexity for channelization and recombination.
  • each channel had a digital down converter and a digital up converter, including multipliers among other circuitry associated therewith, for a noise-shaping crest factor reduction (“NS-CFR”) path for providing an error signal for PAPR reduction. If there were N channels or N carriers in a composite signal, then there were N instances of such conventional NS-CFR paths. Hence, it is desirable and useful to provide an IC having reduced complexity for providing a NS-CFR path.
  • An apparatus relates generally to data communication.
  • a delay is coupled to receive a composite signal having multiple carriers to provide a delayed version of the composite signal.
  • a waveform generator is coupled to receive the composite signal to provide a waveform. The waveform generator is coupled for noise-shaping crest factor reduction.
  • a signal combiner is coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform. The signal combiner is coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof.
  • the waveform generator includes: a threshold and clip block, a polyphase transform block, a filter block, and an inverse polyphase transform block.
  • the threshold and clip block is coupled to receive the composite signal to provide clipping noise with the composite signal.
  • the polyphase transform block is coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers.
  • the filter block is coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components for removing therefrom original components of the composite signal, as well as some in-band and out-of-band distortion.
  • the inverse polyphase transform block is coupled to receive the filtered components to provide second spectrally translated components for composition as the waveform.
  • a system relates generally to data communication.
  • the multi-radio base station includes a PAPR device.
  • the PAPR device includes a delay, a waveform generator, and a signal combiner.
  • the delay is coupled to receive a composite signal having multiple carriers for the different communication protocols to provide a delayed version of the composite signal.
  • the waveform generator is coupled to receive the composite signal to provide a waveform.
  • the waveform generator is for noise- shaping crest factor reduction using polyphase transformation.
  • the signal combiner is coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform.
  • the signal combiner is coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof.
  • a method relates generally to data communication.
  • a composite signal is received by a delay and a waveform generator.
  • the waveform generator is for noise-shaping crest factor reduction using polyphase transformation.
  • the composite signal is delayed by the delay to provide a delayed composite signal.
  • a waveform is generated by the waveform generator from the composite signal.
  • the waveform is output from the waveform generator having clipping noise with respect to bands of corresponding carriers of the composite signal.
  • the waveform is subtracted from the delayed version of the composite signal for peak-to-amplitude power ratio reduction.
  • a reduced peak version of the delayed version of the composite signal delayed is output from the signal combiner.
  • FIG. 1 is a block diagram depicting an exemplary peak-to-average power ratio (“PAPR”) device.
  • PAPR peak-to-average power ratio
  • FIG. 2A is a block diagram depicting an exemplary polyphase transform block.
  • FIG. 2B is a block diagram depicting another exemplary polyphase transform block.
  • FIG. 3A is a block diagram depicting an exemplary filter block.
  • FIG. 3B is a block diagram depicting another exemplary filter block.
  • FIG. 4 is a block diagram depicting an exemplary inverse polyphase transform block.
  • FIG. 5 is a flow diagram depicting an exemplary data communication flow.
  • FIG. 6 is a flow diagram depicting an exemplary of a waveform generation flow.
  • FIG. 7 is a simplified block diagram depicting an exemplary columnar Field Programmable Gate Array (“FPGA”) architecture.
  • FPGA Field Programmable Gate Array
  • FIG. 8 is a network diagram depicting an exemplary a wireless network.
  • clipping noise is generated for a composite signal.
  • This clipping noise along with such composite signal is decomposed into channels with a polyphase transform, and original components of such composite signal may be filtered out on a carrier-by-carrier or channel- by-channel basis leaving channelized clipping noise components or spectra for each carrier, as well as possibly some in-band and/or out-of-band distortion introduced by generation of such clipping noise.
  • This distortion may likewise be filtered out along with original components of such composite signal with a channelized filter.
  • Such channelized clipping noise components may be composed into a PAPR reducing waveform with an inverse polyphase transform for combination.
  • Such recomposed signal may be combined with such composite signal to have a PAPR reduced composite signal for transmission.
  • FIG. 1 is a block diagram depicting an exemplary PAPR device 100.
  • PAPR device 100 may include a delay 103, a signal combiner 105, and a waveform generator 1 04.
  • Waveform generator 104 may be considered a NS- CFR device 104. In other words, waveform generator 104 may be configured for NS-CFR, as described below in additional detail.
  • Delay 103 and waveform generator 104 may be commonly coupled at an input node 150 to receive a composite signal 101 .
  • Composite signal 101 may have multiple carriers 106.
  • Composite signal 101 , delayed composite signal 101 D, reduced peaks composite signal 102, and waveform 1 17 may all be digital signals in a frequency domain.
  • reduced peaks composite signal 1 02 may generally be thought of as a version of composite signal 101 with a reduced PAPR though possibly with more in-band and/or out-of-band distortion due to such PAPR reduction, where any such added in-band and/or out-of-band distortion may be controllably limited as described below.
  • Delay 103 may output a delayed version or copy of composite signal 101 , namely delayed composite signal 1 01 D.
  • Delay 103 may provide a delay to match a delay of signal propagation from input node 150 through waveform generator 104 to signal combiner 1 05.
  • delayed composite signal 101 D and a waveform 1 17 corresponding thereto for a same composite signal 1 01 as delayed composite signal 101 D may both arrive at signal combiner 105 generally at a same time for subtraction of waveform 1 17 from delayed composite signal 1 01 D corresponding thereto.
  • Composite signal 1 01 may include two or more carriers 106, namely a composite signal x n for n a number of carriers. Such carriers may all be of a same type, or carriers may be a mixture of carriers. Examples of carrier signal formats or protocols that may be used include LTE, WCDMA, and CDMA200, among others. Some examples of carriers include LTE 5, 1 0, 15, 20 MHz carriers, 5 MHz WCDMA carriers, among others. Accordingly, a sampling rate for composite signal 101 depends on composition of composite signal 101 . Effectively composite signal 101 may be considered a wideband waveform with spectral portions thereof associated with input component carriers.
  • waveform generator 104 may be commonly coupled to input node 150 to receive composite signal 101 to provide an output waveform 1 17 from waveform generator 104.
  • Signal combiner 105 may be coupled at a positive input port thereof to an output of delay 103 to receive delayed composite signal 101 D, and signal combiner 105 may be coupled at a negative input port thereof to an output port of waveform generator 104 to receive waveform 1 17.
  • output of signal combiner 105 may be coupled to reduce at least one peak in such delayed composite signal 1 01 by application of waveform 1 17 to delayed composite signal 101 D.
  • a composite signal 102 output from signal combiner 105 may have reduced peaks in comparison to composite signal 101 corresponding thereto.
  • composite signal 102 may have in- band and/or out-of-band distortion limited for a communication protocol and/or a channel specified limit after PAPR provided by PAPR device 100.
  • Waveform generator 104 may include a threshold and clip block 1 10, a polyphase transform block 1 12, a filter block 1 14, and an inverse polyphase transform block 1 16 coupled in series to provide waveform 1 17, namely a PAPR reducing signal 1 17.
  • Threshold and clip block 1 10 receives a composite 101 from input node 150, and threshold and clip block 1 10 may be configured to provide clipping noise 1 1 1 as an output therefrom. Clipping noise 1 1 1 output is a digital output in a frequency domain. As described below in additional detail, threshold and clip block 1 10 may be coupled to receive composite signal 101 to provide clipping noise components for PAPR reduction in such composite signal 101 .
  • a clipping noise generator as described in the Paper may be used for threshold and clip block 1 10, or some other form of clipping noise generator may be used in accordance with the description herein.
  • this form of clipping is termed a "soft clipping of peaks,” so as to reduce in-band and out-of- band noise generated in comparison with a hard clipping of peaks.
  • other types of non-linear noise generators may be used provided in-band and out-of-band noise generation is not unduly excessive.
  • Polyphase transform block 1 12 may be coupled to receive clipping noise 1 1 1 from threshold and clip block 1 10.
  • Polyphase transform block 1 12 may convert, namely polyphase transform, such clipping noise 1 1 1 to first spectrally translated components 1 13 of such clipping noise channelized corresponding to channels of carriers 1 06.
  • clipping noise 1 1 1 may be associated with such spectral portions.
  • clipping noise 1 1 1 may have contributions, namely in-band and out-of-band noise, associated with carriers 106 composing composite signal 101 .
  • first spectrally translated components 1 1 3 may be associated with carriers 106 of composite signal 101 .
  • Filter block 1 14 may be coupled to polyphase transform block 1 12 to receive first spectrally translated components 1 13.
  • Filter block 1 14 may filter such first spectrally translated components 1 13 to provide filtered components 1 15 corresponding to such first spectrally translated components 1 13 received.
  • Inverse polyphase transform block 1 16 may be coupled to filter block 1 14 to receive such filtered components 1 15.
  • Both polyphase transform block 1 12 and inverse polyphase transform block 1 16 may be configured to process multi-frequency division multiplexed signals, as described below in additional detail.
  • Inverse polyphase transform block 1 16 may convert, namely inversely polyphase transform, such filtered components 1 15 to provide second spectrally translated components 404 of FIG. 4, as described below in additional detail, which may be commutated by a commutator of inverse polyphase transform block 1 16 to provide waveform 1 17.
  • waveform 1 17 may generally be a channel-by-channel composition of clipping noise contributions for
  • Waveform 1 17 may have removed, such as by channel filtering with channelized filter 1 14, therefrom original components of composite signal 101 , effectively leaving substantially only commutated clipping noise contributions corresponding to carriers 106, namely corresponding to channel bands of such carriers, of composite signal 1 01 , as well as possibly limited amounts of in-band and/or out-of-band distortion generated by threshold and clip block 1 10 not filtered out by such channel filtering.
  • FIG. 2A is a block diagram depicting an exemplary polyphase transform block 1 12.
  • Polyphase transform block 1 12 includes a commutator 204, polyphase filters 202, and an I nverse Fourier Transform block ("I FT") 203.
  • I FT I nverse Fourier Transform block
  • Clipping noise 1 1 1 may be received by commutator 204 at a common input port or node 21 1 of commutator 204.
  • Commutator 204 may include M output ports 212, for M a positive integer. Clipping noise 1 1 1 sourced from input port 21 1 may be respectively commutated, as generally indicated by arrow 213, to each of output ports 212 for input to M polyphase filters of polyphase filter bank 202.
  • Commutator 204 may be for carrier configurations where all carrier signals, or carrier bands of carrier signal configuration, are equally spaced apart from one another. Along those lines, such a carrier signal configuration may have a significant amount of structure in a carrier line-up or carrier floorplan thereof for purposes of such commutation. Known details regarding commutator 204 are not described herein for purposes of clarity and not limitation.
  • the value of M at a minimum may be the number of distinct carriers 106 in composite signal 101 .
  • commutator 204 may channelize noise components 205 of clipping noise 1 1 1 for each channel 305 of FIG. 3A corresponding to multiple carriers 106 of composite signal 101 .
  • outputs ports 212 may be respectively coupled to polyphase filters hrj(n) 202-0 through h
  • 202-(M-1 ) may respectively be coupled to receive channelized noise
  • An I FT 203 which may be for an I DFT or an I FFT, may be coupled to receive decomposed components 206 as an M-point frequency domain input to transform such decomposed components 206 from a digital frequency domain into a digital M-point time domain output, namely as first spectrally translated components 1 13.
  • An I FT, and/or a downstream Fourier Transform block (“FT") may be for every point size to be used, and thus is not limited to powers of two or to number of carriers 1 06.
  • the number of carriers 1 06 of composite signal 101 may be equivalent to the number of points of I FT and/or such a downstream FT.
  • output of I FT 203 is a digital output.
  • Polyphase transform block 1 12 receives a digital input as clipping noise 1 1 1 and provides a digital output as first spectrally translated components 1 13.
  • Polyphase transform block 1 12 effectively may be thought of as a baseband polyphase filter, or decimator, with an I DFT, the latter of which may be implemented in a cost effective manner as an I FFT.
  • FIG. 2B is a block diagram depicting another exemplary polyphase transform block 1 12.
  • Polyphase transform block 1 12 of FIGS. 2A and 2B are the same, except in the example implementation of FIG. 2B, polyphase transform block 1 12 has a different configuration of commutator 204 and a different configuration of polyphase filter bank 202.
  • Clipping noise 1 1 1 may be received by commutator 204 at a common input port or node 21 1 of commutator 204.
  • Commutator 204 may include M output ports 212, for M a positive integer. Clipping noise 1 1 1 sourced from input port 21 1 may be respectively commutated, as generally indicated by arrows 21 3 and 214, to each adjacent pair of output ports 212 for input to M polyphase filters of polyphase filter bank 202.
  • Commutator 204 may be for carrier configurations where all carrier signals, or carrier bands of carrier signal configuration, are not equally spaced apart from one another. Along those lines, such a carrier signal configuration may have carrier bands which can be arbitrarily positioned in frequency. Furthermore, such a carrier signal configuration may have same or different bandwidths.
  • commutator 204 may be for a non-maximally decimated polyphase filter bank 202.
  • commutator 204 may channelize noise components 205 of clipping noise 1 1 1 for each channel 305 of FIG. 3A corresponding to multiple carriers 106 of composite signal 101 .
  • outputs ports 212 may be respectively coupled to polyphase filters hrj(n) 202-0 through hM-i (n) 202-(M- 1 ) of polyphase filter bank 202.
  • 202-(M-1 ) may respectively be coupled to receive channelized noise
  • polyphase filters 202 may have more refined steps to provide more frequency and/or bandwidth adaptive capability for a less predictable or predefined structure.
  • polyphase filters hrj(n) 202-0 through hM-i(n) 202-(M-1 ) may include half increments of polyphase filters, such as polyphase filter hivi/2-1 (n) 202-(M/2-1 ) for example paired with polyphase filter h -i (n) 202-(M-1 ).
  • polyphase transformer block 1 12 may be coupled to channelize noise components, to respectively polyphase filter with polyphase filters such channelized noise components, and to spectrally transform such filtered-channelized noise components into a time domain for each of band of corresponding carriers.
  • FIG. 3A is a block diagram depicting an exemplary filter block 1 14.
  • Filter block 1 14 may be a channelized filter 1 14.
  • Channelized filter 1 14 may include a bank of filters 31 1 , wherein each filter 310-1 through 310-M of such bank of filters 31 1 includes at least one filter stage 301 for each channel 305 of channelized filter 1 14.
  • each filter 310-1 through 310-M of such bank of filters 31 1 includes at least one filter stage 301 for each channel 305 of channelized filter 1 14.
  • each filter 310-1 through 310-M of such bank of filters 31 1 includes at least one filter stage 301 for each channel 305 of channelized filter 1 14.
  • each filter 310-1 through 310-M of such bank of filters 31 1 includes at least one filter stage 301 for each channel 305 of channelized filter 1 14.
  • each filter 310-1 through 310-M of such bank of filters 31 1 includes at least one filter stage 301 for each channel 305 of channelized filter 1 14.
  • Channelized first spectrally translated components 1 13 digitally output in parallel from I FT 203 may respectively be provided to channelized filter stages 301 -1 through 301 -M of channelized filter 1 14 for corresponding channels 305-1 through 305-M.
  • Such carriers may have corresponding channel bandwidths.
  • Original signal in such carries 106 may generally be removed for each corresponding channel band by corresponding channelized multi-stage filters 310-1 through 310-M.
  • First filtered outputs 306-1 through 306-M respectively from channelized filter stages 301 -1 through 301 -M may respectively be input to serially coupled channelized filter stages 302-1 through 302-M of channelized filter 1 14 for corresponding channels 305-1 through 305-M.
  • each filter 310 for channels 305-1 through 305-M is illustratively depicted as having two filter stages coupled in series, more than two filter stages may be coupled in series for each of channels 305-1 through 305-M in other implementations.
  • Channelized filtered components 1 15 may be respectively output from each final filter stage, namely channelized filter stages 302-1 through 302-M in this example.
  • Channelized filter stages of filter block 1 14 may be used to remove original spectral components of composite signal 101 , namely carrier components 1 06 of composite signal 101 prior to clipping noise generation.
  • digital channelized filtered components 1 15 output by filter block 1 14 may be associated with spectral components of clipping noise 1 1 1 in association with corresponding carriers 106.
  • the number of channels M may accordingly depend upon the number of channels used by carriers 106 of composite signal 1 01 .
  • FIG. 3B is a block diagram depicting another exemplary filter block 1 14.
  • Filter block 1 14 may be a channelized filter 1 14.
  • Channelized filter 1 14 may include at least one filter stage 301 -1 of a filter 310.
  • a filter 310 of channelized filter 1 14 may include a plurality of filter stages, such as filter stages 301 -1 and 301 -2 coupled in series, or a single filter stage 301 -1 .
  • two filter stages 301 are illustratively depicted, in other implementations more than two filter stages 301 may be coupled in series.
  • Channelized filter 1 14 of FIG. 3B includes an input commutator 319 and an output commutator 320.
  • Input commutator 319 may be coupled to receive first spectrally translated components 1 13 from filter block 1 14 to cycle through each thereof on a channel-by-channel basis to provide each as a single filter input 306 to filter 310 to provide a single filter output 307 from filter 310.
  • single filter input 306 may be input to filter stage 301 -1 and output of filter state 301 -1 may be input to serially coupled filter stage 301 -2, and output of filter state 301 -2 may be single filter output 307.
  • Single filter output 307 may be provided as an input to an output port of commutator 320 coupled to receive single filter output 307 from the filter 310 to provide filtered components 1 15 for each channel 305 of channelized filter 1 14.
  • Output commutator 320 may be synchronized with input commutator 31 9 to cycle through each channel on a channel-by-channel basis to receive each single filter output 307 to provide filtered components 1 15 for each channel 305 of channelized filter 1 14. It should be appreciated that filtered components 1 15 may be channelized clipping noise spectra in a digital time domain.
  • a channelized filter may be coupled to filter filtered- channelized noise components in a digital time domain for each channel of corresponding carriers to controllably limit in-band distortion and/or to
  • Channelized filter 1 14 by configuring filters 310 differently from one another may be configured to controllably limit such first amount of in-band distortion, such first amount of out-of-band distortion, such second amount of in- band distortion, and such second amount of out-of-band distortion differently for such first carrier 1 06-1 than for such second carrier 106-2. These amounts of distortions may be different from one another. Moreover, a specified in-band distortion limit for carrier 106-1 may be different than a specified in-band distortion limit for carrier 106-2, and likewise for out-of-band distortion limits.
  • FIG. 4 is a block diagram depicting an exemplary inverse polyphase transform block 1 16.
  • Inverse polyphase transform block 1 16 includes a Fourier Transform ("FT") 403, a bank of polyphase filters 420, and an output commutator 401 .
  • FT Fourier Transform
  • FT 403 may be coupled to receive channelized digital time domain filtered components 1 1 5 as an M-point input to transform such filtered components 1 15 into an M-point frequency domain output 413.
  • M-point frequency domain output 413 may respectively be input to polyphase filters 402-0 through 402-(M- 1 ) of polyphase filter bank 420.
  • Outputs of polyphase filters 402-0 through 402- (M-1 ) of polyphase filter bank 420 may be second spectrally translated components 404.
  • Second spectrally translated components 404 may be channelized corresponding to channels 305 of multiple carriers 106 of composite signal 1 01 .
  • inverse polyphase transform block 1 16 may be coupled to spectrally transform channelized filtered noise components into a frequency domain to provide an M-point output vector that is presented to an M-input interface of an M-path polyphase filter bank 420 with polyphase filters 402 to provide an M-point channelized output as second spectrally translated components 404.
  • An output commutator 401 may be coupled to deliver samples from each of such filter segments of second spectrally translated components 404, such as starting from an output of polyphase filter 402-0 and sequentially proceeding to an output of polyphase filter 402-(M-1 ), and then wrap around at the bottom and begin again at the top, namely begin again at an output of polyphase filter 402-0.
  • output commutator 401 may cycle through each channel of channels 305 to sequentially provide outputs of second spectrally translated components 404 to provide a composite waveform 1 17 of clipping noise components
  • a PAPR reducing waveform 1 17 is a channel-by-channel, and then a repeat thereof, composition of noise clipping components respectively associated with carriers 106 of delayed composite signal 1 01 D.
  • These noise clipping components may include some in-band distortion and/or some out-of-band distortion respectively associated with carriers 106; however, such in-band and out-of-band distortion may be controlled, namely limited, by configuration of polyphase filters of polyphase filter banks 202 and/or 420 on a per channel basis, where each such channel may be associated with a communication protocol and/or a carrier specific limit for either or both of such types of distortion.
  • in-band and/or out-of-band distortion for each carrier band of carriers 106 may be controlled on a channel-by-channel basis.
  • Waveform 1 1 7 may thus be used for peak reduction or cancellation, namely PAPR reduction, in delayed composite signal 101 D to produce a composite signal 102 with reduced peaks.
  • signal combiner 105 which may be a summation junction, summer or subtractor
  • waveforms 101 D and 1 17 may be synchronously input to signal combiner 105 to subtract waveform 1 17 from delayed composite signal 1 01 D on a channel band-by-channel band basis respectively for carriers 106 thereof.
  • a reordering operation of heterodyning and filtering with polyphase filtering as described herein means that multipliers for channelizing and dechannelizing may be avoided. This may amount to approximately a log-base-2 advantage in a reduction in resources in comparison to such conventional multiplier usage. As the number of carriers increases for wider bands, for conventional multiplier usage such cost linearly may increase, but with a polyphase transforming as described herein such increased cost may be controlled as log-base-2.
  • polyphase and/or channel filtering as described herein may be used for wideband wave forms with multiple carriers of same or different communication protocols and/or channel bandwidths
  • a polyphase transform as described herein is capable of dealing with multi-channel signals, or more particularly multi-frequency division multiplexed signals.
  • PAPR may be reduced in delayed composite signal 101 D while limiting introduction of the amount of in-band distortion, sometimes referred to error vector magnitude, and limiting introduction of the amount of out-of-band ("COB") distortion in a controlled manner.
  • This controlled manner may be different for different communication protocols, such as for example an LTE specification and WCDMA specification.
  • this controlled manner may be different for different carriers of the same communication protocol.
  • polyphase transforming, as well as inverse polyphase transforming may be performed on a channel-by-channel basis. As channels may be specific to carriers, the amount of distortion allowed to be added to reduce PAPR for a communication protocol and/or carrier specific limit may be tailored using the above-described channelization.
  • FIG. 5 is a flow diagram depicting an exemplary data communication flow
  • a composite signal 101 may be received by a delay 103 and a waveform generator 104.
  • a delayed version of composite signal 101 namely delayed composite signal 101 D, may be provided from delay 103.
  • a PAPR cancelation or reduction waveform 1 17 may be generated by waveform generator 104 from composite signal 101 .
  • waveform generator 104 may generate waveform generator 104 from composite signal 101 .
  • 104 may be configured for NS-CFR using polyphase transformation, as previously described.
  • such waveform 1 17 may be output from waveform generator 104, where such waveform 1 17 has clipping noise, as well as possibly limited in-band distortion and out-of-band distortion, with respect to bands of corresponding carriers 106 of composite signal 101 D.
  • waveform 1 1 7 may be subtracted with a signal combiner 105 from delayed composite signal 101 D for PAPR reduction.
  • a reduced peak version of composite signal 1 01 D namely a reduced PAPR version thereof, may be output from signal combiner
  • FIG. 6 is a flow diagram depicting an exemplary of a waveform generation flow 600.
  • Waveform generation flow 600 may be for waveform generator 1 04 for generation of waveform 1 17 from composite signal 1 01 .
  • a composite signal 101 may be received by a threshold and clip block 1 10.
  • noise components 1 1 1 for carriers 106 may be generated by threshold and clip block 1 10 for PAPR reduction.
  • components 1 1 1 may be channelized with first polyphase filters 202 of a polyphase transform block 1 12, namely polyphase filtering, to provide
  • decomposed components 206 may be spectrally transformed or converted into a time domain for each of the bands of carriers 106 with an Inverse Fourier Transform block 203 of polyphase transform block 1 12.
  • noise components 206 for each of the channels may be filtered with a
  • channelized filter 1 14 to controllably limit in-band distortion and controllably limit out-of-band distortion for each of the bands for each of carriers 1 06 of composite signal 1 01 to provide filtered components 1 15.
  • This filtering to provide such control of in-band and out-of-band distortion may likewise filter out original spectral components of composite signal 101 .
  • filtered components 1 15 may be spectrally transformed into a frequency domain with a Fourier Transform block 403 of an inverse polyphase transform block 1 16 to provide an M-point output 413 for M a positive integer greater than zero.
  • M-point output 413 may be polyphase filtered with second polyphase filters 402 to provide translated components 404.
  • translated components 404 may be commutated into waveform 1 17.
  • PLDs Programmable logic devices
  • FPGA field programmable gate array
  • programmable tiles typically include an array of programmable tiles. These programmable tiles can include, for example, input/output blocks (“lOBs”), configurable logic blocks (“CLBs”), dedicated random access memory blocks (“BRAMs”), multipliers, digital signal processing blocks (“DSPs”), processors, clock managers, delay lock loops (“DLLs”), and so forth.
  • lOBs input/output blocks
  • CLBs configurable logic blocks
  • BRAMs dedicated random access memory blocks
  • DSPs digital signal processing blocks
  • processors processors
  • clock managers delay lock loops
  • DLLs delay lock loops
  • Each programmable tile typically includes both programmable
  • the programmable interconnect typically includes a large number of interconnect lines of varying lengths interconnected by programmable interconnect points ("PIPs").
  • PIPs programmable interconnect points
  • the programmable logic implements the logic of a user design using programmable elements that can include, for example, function generators, registers, arithmetic logic, and so forth.
  • the programmable interconnect and programmable logic are typically programmed by loading a stream of configuration data into internal configuration memory cells that define how the programmable elements are configured.
  • the configuration data can be read from memory (e.g., from an external PROM) or written into the FPGA by an external device.
  • the collective states of the individual memory cells then determine the function of the FPGA.
  • a CPLD includes two or more "function blocks” connected together and to input/output ("I/O") resources by an interconnect switch matrix.
  • Each function block of the CPLD includes a two-level AND/OR structure similar to those used in Programmable Logic Arrays ("PLAs”) and Programmable Array Logic (“PAL”) devices.
  • PLAs Programmable Logic Arrays
  • PAL Programmable Array Logic
  • configuration data is typically stored on-chip in non-volatile memory.
  • configuration data is stored on-chip in non-volatile memory, then downloaded to volatile memory as part of an initial configuration (programming) sequence.
  • PLDs programmable logic devices
  • the data bits can be stored in volatile memory (e.g. , static memory cells, as in FPGAs and some CPLDs), in non-volatile memory (e.g. , FLASH memory, as in some CPLDs), or in any other type of memory cell.
  • volatile memory e.g. , static memory cells, as in FPGAs and some CPLDs
  • non-volatile memory e.g. , FLASH memory, as in some CPLDs
  • any other type of memory cell e.g., static memory cells, as in FPGAs and some CPLDs
  • PLDs are programmed by applying a processing layer, such as a metal layer, that programmably interconnects the various elements on the device. These PLDs are known as mask programmable devices. PLDs can also be implemented in other ways, e.g. , using fuse or antifuse technology.
  • the terms "PLD” and "programmable logic device” include but are not limited to these exemplary devices, as well as encompassing devices that are only partially programmable. For example, one type of PLD includes a combination of hard- coded transistor logic and a programmable switch fabric that programmably interconnects the hard-coded transistor logic.
  • FIG. 7 illustrates an FPGA architecture 700 that includes a large number of different programmable tiles including multi-gigabit transceivers (“MGTs”) 701 , configurable logic blocks (“CLBs”) 702, random access memory blocks (“BRAMs”) 703, input/output blocks (“lOBs”) 704, configuration and clocking logic (“CONFIG/CLOCKS”) 705, digital signal processing blocks (“DSPs”) 706, specialized input/output blocks (“I/O”) 707 (e.g. , configuration ports and clock ports), and other programmable logic 708 such as digital clock managers, analog-to-digital converters, system monitoring logic, and so forth.
  • Some FPGAs also include dedicated processor blocks (“PROC”) 710.
  • each programmable tile includes a programmable interconnect element ("I NT") 71 1 having standardized connections to and from a corresponding interconnect element in each adjacent tile. Therefore, the programmable interconnect elements taken together implement the
  • programmable interconnect element 71 1 also includes the connections to and from the programmable logic element within the same tile, as shown by the examples included at the top of FIG. 7.
  • a BRAM 703 can include a BRAM logic element (“BRL”) 713 in addition to one or more programmable interconnect elements. Typically, the number of interconnect elements included in a tile depends on the height of the tile. In the pictured embodiment, a BRAM tile has the same height as five CLBs, but other numbers (e.g. , four) can also be used.
  • a DSP tile 706 can include a DSP logic element (“DSPL”) 714 in addition to an appropriate number of programmable interconnect elements.
  • An IOB 704 can include, for example, two instances of an input/output logic element (“IOL”) 715 in addition to one instance of the programmable interconnect element 71 1 . As will be clear to those of skill in the art, the actual I/O pads connected, for example, to the I/O logic element 715 typically are not confined to the area of the input/output logic element 715.
  • a horizontal area near the center of the die (shown in FIG. 7) is used for configuration, clock, and other control logic.
  • Vertical columns 709 extending from this horizontal area or column are used to distribute the clocks and configuration signals across the breadth of the FPGA.
  • Some FPGAs utilizing the architecture illustrated in FIG. 7 include additional logic blocks that disrupt the regular columnar structure making up a large part of the FPGA.
  • the additional logic blocks can be programmable blocks and/or dedicated logic.
  • processor block 710 spans several columns of CLBs and BRAMs.
  • FIG. 7 is intended to illustrate only an exemplary FPGA architecture.
  • the numbers of logic blocks in a row the relative width of the rows, the number and order of rows, the types of logic blocks included in the rows, the relative sizes of the logic blocks, and the
  • FIG. 8 is a network diagram depicting an exemplary a wireless network 800.
  • Wireless network 800 may include base stations 81 1 and 812, as well as mobile devices 801 , mobile devices 802, and mobile devices 803.
  • Base stations 81 1 and 812 may be in communication with one another via a wireless backhaul 821 , or base stations 81 1 and 812 may be in communication with one another via wired backhauls 820 and 822, respectively, and such wired backhauls 820 and 822 may be coupled to the Internet 810.
  • Mobile devices 801 , mobile devices 802, and mobile devices 803 may communicate with base station 81 1 with a plurality of different communication protocols and/or different carrier bands, such as previously described.
  • base station 81 1 may each be equipped with at least one PAPR device 100.
  • PAPR device 100 may be used to reduce PAPR prior to signal transmission. Reducing PAPR prior to signal transmission means that such base stations 81 1 and 812 may use a less expensive (i.e. , narrower bandwidth for linearity in transmission) and less power consuming radios for transmission of composite signal 102 for data
  • PAPR devices 100 may be configured to limit in-band distortion and out-of-band distortion differently for such different communication protocols and/or carriers to stay within specified limits thereof.
  • waveform generator 104 is a NS-CFR device which does not linearly scale in complexity with a number of channels N, but rather scales as log-base-2. This means less complexity, as well as less power consumption for base stations 81 1 and 812.
  • Each of such base stations 81 1 and 812 may have multiple antennas for transmitting wideband signaling waveforms, such as OFDM, and thus such base stations 81 1 and 812 may employ channel multiplexing techniques such as OFDMA.
  • OFDM wideband signaling waveforms
  • OFDMA channel multiplexing techniques
  • an input waveform such as composite signal 101
  • WCDMA or LTE or a mixture thereof
  • carriers 106 a very efficient version of the conventional NS-CFR path that exploits multi-rate filters, symmetry in coefficient sets, and half-band filters, generally results in deployment of 56 physical multipliers, each of which may be operating at 368.64MHz in this example.
  • a channelized NS-CFR device or waveform generator 104 as described herein may use only 22 multipliers to realize the same functionality as such conventional approach. Additionally, support of multiple antennas in a single device is not uncommon.
  • NS-CFR may use 4x56 or 8x56, respectively, multipliers on a single IC. This is to be contrasted with 4x22 or 8x22, respectively, multipliers for a same functionality using a channelizer NS-CFR device 104 as described herein.
  • an apparatus for data communication may include: a delay coupled to receive a composite signal having multiple carriers to provide a delayed version of the composite signal; a waveform generator coupled to receive the composite signal to provide a waveform; wherein the waveform generator may be coupled for noise-shaping crest factor reduction; a signal combiner coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform; and wherein the signal combiner may be coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof; wherein the waveform generator comprises: a threshold and clip block coupled to receive the composite signal to provide clipping noise with the composite signal; a polyphase transform block coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers; a filter block coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components for removing there
  • the polyphase transform block may include: a commutator coupled to receive the clipping noise to channelize noise components of the clipping noise corresponding to the channels; and polyphase filters respectively coupled to receive the channelized noise components to provide decomposed components.
  • the polyphase transform block may further include an Inverse Fourier Transform block coupled to receive the decomposed components as an M-point frequency domain input to transform the decomposed components into an M-point time domain output to provide the first spectrally translated components.
  • the filter block may be a channelized filter.
  • the channelized filter may include at least one filter stage for each of the channels.
  • the channelized filter may include: a filter having at least one filter stage; an input commutator coupled to receive the first spectrally translated components to provide a single filter input to the filter of the channelized filter to provide a single filter output; and an output commutator coupled to receive the single filter output from the filter of the channelized filter to provide the filtered components respectively for the channels.
  • the channelized filter may include a bank of filters, wherein each multi-stage filter of the bank of filters may have a plurality of filter stages coupled in series.
  • the inverse polyphase transform block may include: a Fourier Transform block coupled to receive the filtered components as an M-point time domain input to transform the filtered components into an M- point frequency domain output as the second spectrally translated components; a polyphase filter bank having polyphase filters respectively coupled to receive the second spectrally translated components channelized for the channels; and an output commutator coupled to receive the second spectrally translated components to compose the waveform on a channel-by-channel basis for the channels for correspondence with the multiple carriers in the composite signal.
  • the signal combiner may be coupled to subtract the waveform from the delayed version of the composite signal to output a version of the composite signal with a reduced peak-to-average power ratio and with the in-band distortion and the out-of-band distortion; and the filter block may be configured to limit the in-band distortion and the out-of-band distortion.
  • both the polyphase transform block and the inverse polyphase transform block may be coupled to process multi-frequency division multiplexed signals; and the composite signal and the waveform may be digital signals in a frequency domain.
  • M-points of the M-point frequency domain output may not be a power of two.
  • M-points of the M-point time domain input may be equal in number to a number of the channels.
  • the waveform may have a first amount of the in- band distortion and a first amount of the out-of-band distortion for the peak-to- average power ratio reduction of a first carrier of the multiple carriers; the waveform may have a second amount of the in-band distortion and a second amount of the out-of-band distortion for the peak-to-average power ratio reduction of the second carrier of the multiple carriers; and the filter block may be a channelized filter coupled to controllably limit the first amount of the in-band distortion, the first amount of the out-of-band distortion, the second amount of the in-band distortion, and the second amount of the out-of-band distortion differently for the first carrier than for the second carrier.
  • the first carrier of the multiple carriers and the second carrier of the multiple carriers may be for different carrier communication protocols.
  • the carrier communication protocols may be selected from a group consisting of LTE, WCDMA, and CDMA2000.
  • a system for data communication may include: a multi-radio base station; a plurality of mobile devices in communication with the base station; wherein the plurality of mobile devices use a plurality of different communication protocols for the data communication; wherein the multi-radio base station includes a peak-to-average power reduction device; wherein the peak-to-average power reduction device comprises: a delay coupled to receive a composite signal having multiple carriers for the plurality of different communication protocols to provide a delayed version of the composite signal; a waveform generator coupled to receive the composite signal to provide a waveform; wherein the waveform generator may be coupled for noise-shaping crest factor reduction using polyphase transformation; a signal combiner coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform; and wherein the signal combiner may be coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof.
  • the waveform generator may include: a threshold and clip block coupled to receive the composite signal to provide clipping noise; a polyphase transform block coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers; a filter block coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components; and an inverse polyphase transform block coupled to receive the filtered components to provide second spectrally translated components for composition as the waveform.
  • the inverse polyphase transform block may include: a Fourier Transform block coupled to receive the filtered components as an M- point time domain input to transform the filtered components into an M-point frequency domain output as the second spectrally translated components; a polyphase filter bank having polyphase filters respectively coupled to receive the second spectrally translated components channelized for the channels; and an output commutator coupled to receive the second spectrally translated components to compose the waveform on a channel-by-channel basis for the channels for correspondence with the multiple carriers in the composite signal; the signal combiner may be coupled to subtract the waveform from the delayed version of the composite signal to output a version of the composite signal with a reduced peak-to-average power ratio and with reduced in-band distortion and out-of-band distortion for the data communication; and the filter block may be coupled to limit the in-band distortion and limit the out-of-band distortion differently for the plurality of different communication protocols.
  • a method for data communication may include: receiving a composite signal by a delay and a waveform generator; wherein the waveform generator may be for noise-shaping crest factor reduction using polyphase transformation; delaying of the composite signal by the delay to provide a delayed composite signal; generating a waveform by the waveform generator from the composite signal; outputting the waveform from the waveform generator having clipping noise with respect to bands of corresponding carriers of the composite signal; subtracting the waveform from the delayed version of the composite signal with a signal combiner for peak-to-amplitude power ratio reduction; and outputting a reduced peak version of the delayed version of the composite signal delayed from the signal combiner.
  • the generating of the waveform may include: receiving the composite signal by a threshold and clip block; generating the clipping noise by the threshold and clip block for the peak-to-amplitude power ratio reduction; channelizing noise components of the noise components with first polyphase filters of a polyphase transform block coupled to provide decomposed

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Physics & Mathematics (AREA)
  • Discrete Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Mathematical Physics (AREA)
  • Quality & Reliability (AREA)
  • Noise Elimination (AREA)

Abstract

Apparatus, system and method relates generally to data communication with noise-shaping crest factor reduction using polyphase transformation. In such a method, a composite signal (101) is received by a delay (103) and a waveform generator (104). The waveform generator (104) is for noise-shaping crest factor reduction using polyphase transformation. The composite signal (101) is delayed by the delay (103) to provide a delayed composite signal (101 D). A waveform (117) is generated by the waveform generator (104) from the composite signal (101). The waveform (117) is output from the waveform generator (104) having clipping noise (111) with respect to bands of corresponding carriers (106) of the composite signal (101). The waveform (117) is subtracted from the delayed version of the composite signal (101 D) for peak-to-amplitude power ratio reduction. A reduced peak (or PAPR) version (102) of the delayed version (101 D) of the composite signal (101) delayed is output from the signal combiner (105).

Description

NOISE-SHAPING CREST FACTOR REDUCTION WITH POLYPHASE
TRANSFORMING FIELD OF THE INVENTION
The following description relates to integrated circuit devices ("ICs").
More particularly, the following description relates to noise-shaping crest factor reduction by use of polyphase transforming for an IC. BACKGROUND
With respect to peak-to-average power ratio ("PAPR"), a PAPR reduced signal permits a power amplifier input back-off to be reduced, which in turn increases the efficiency of an amplification process. Moreover, a power amplifier input bias set point may be set to operate with higher efficiency for a PAPR reduced signal input for transmission. However, in the past, circuitry used to provide a PAPR reduced signal used a significant amount of circuit complexity for channelization and recombination. Along those lines, generally in the past each channel had a digital down converter and a digital up converter, including multipliers among other circuitry associated therewith, for a noise-shaping crest factor reduction ("NS-CFR") path for providing an error signal for PAPR reduction. If there were N channels or N carriers in a composite signal, then there were N instances of such conventional NS-CFR paths. Hence, it is desirable and useful to provide an IC having reduced complexity for providing a NS-CFR path.
SUMMARY
An apparatus relates generally to data communication. In such an apparatus, a delay is coupled to receive a composite signal having multiple carriers to provide a delayed version of the composite signal. A waveform generator is coupled to receive the composite signal to provide a waveform. The waveform generator is coupled for noise-shaping crest factor reduction. A signal combiner is coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform. The signal combiner is coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof. The waveform generator includes: a threshold and clip block, a polyphase transform block, a filter block, and an inverse polyphase transform block. The threshold and clip block is coupled to receive the composite signal to provide clipping noise with the composite signal. The polyphase transform block is coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers. The filter block is coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components for removing therefrom original components of the composite signal, as well as some in-band and out-of-band distortion. The inverse polyphase transform block is coupled to receive the filtered components to provide second spectrally translated components for composition as the waveform.
A system relates generally to data communication. In such a system, there is a multi-radio base station and mobile devices in communication with the base station. The mobile devices use a different communication protocols for the data communication. The multi-radio base station includes a PAPR device. The PAPR device includes a delay, a waveform generator, and a signal combiner. The delay is coupled to receive a composite signal having multiple carriers for the different communication protocols to provide a delayed version of the composite signal. The waveform generator is coupled to receive the composite signal to provide a waveform. The waveform generator is for noise- shaping crest factor reduction using polyphase transformation. The signal combiner is coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform. The signal combiner is coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof.
A method relates generally to data communication. In such a method, a composite signal is received by a delay and a waveform generator. The waveform generator is for noise-shaping crest factor reduction using polyphase transformation. The composite signal is delayed by the delay to provide a delayed composite signal. A waveform is generated by the waveform generator from the composite signal. The waveform is output from the waveform generator having clipping noise with respect to bands of corresponding carriers of the composite signal. The waveform is subtracted from the delayed version of the composite signal for peak-to-amplitude power ratio reduction. A reduced peak version of the delayed version of the composite signal delayed is output from the signal combiner.
Other features will be recognized from consideration of the Detailed Description and Claims, which follow.
BRIEF DESCRIPTION OF THE DRAWINGS
Accompanying drawings show exemplary apparatus(es) and/or method(s). However, the accompanying drawings should not be taken to limit the scope of the claims, but are for explanation and understanding only.
FIG. 1 is a block diagram depicting an exemplary peak-to-average power ratio ("PAPR") device.
FIG. 2A is a block diagram depicting an exemplary polyphase transform block.
FIG. 2B is a block diagram depicting another exemplary polyphase transform block.
FIG. 3A is a block diagram depicting an exemplary filter block.
FIG. 3B is a block diagram depicting another exemplary filter block.
FIG. 4 is a block diagram depicting an exemplary inverse polyphase transform block.
FIG. 5 is a flow diagram depicting an exemplary data communication flow.
FIG. 6 is a flow diagram depicting an exemplary of a waveform generation flow.
FIG. 7 is a simplified block diagram depicting an exemplary columnar Field Programmable Gate Array ("FPGA") architecture.
FIG. 8 is a network diagram depicting an exemplary a wireless network.
DETAILED DESCRIPTION
In the following description, numerous specific details are set forth to provide a more thorough description of the specific examples described herein. It should be apparent, however, to one skilled in the art, that one or more other examples and/or variations of these examples may be practiced without all the specific details given below. In other instances, well known features have not been described in detail so as not to obscure the description of the examples herein. For ease of illustration, the same number labels are used in different diagrams to refer to the same items; however, in alternative examples the items may be different.
Before describing the examples illustratively depicted in the several figures, a general introduction is provided to further understanding.
As is known, it is desirable to reduce, including without limitation reduce, including without limitation minimize, the ratio of a peak of an RF envelop to an average of a corresponding RF signal. Such reduction may be carried out with a degree of control of an amount of in-band distortion generated. This in-band distortion is corruptive with respect to a modulation waveform, or more generally quality of a transmission. Along those lines, peak- to-average power ratio ("PAPR") reduction is described in additional detail in "Reconfigurable Digital Front-End Hardware for Wireless Base-Station Transmitters: Analysis, Design and FPGA Implementation" by Navid Lashkarian, et al., published in IEEE Transactions on Circuits and Systems I: Regular Papers (volume 54, issue 8) in August 2007 at pages 1666-1677 (hereinafter "the Paper"). In the Paper, noise shaping crest factor reduction ("CFR") is disclosed. Additionally, a clipping noise generator is described in the Paper; however, other forms of clipping noise generators may be used in accordance with the following description.
As described below in additional detail, clipping noise is generated for a composite signal. This clipping noise along with such composite signal is decomposed into channels with a polyphase transform, and original components of such composite signal may be filtered out on a carrier-by-carrier or channel- by-channel basis leaving channelized clipping noise components or spectra for each carrier, as well as possibly some in-band and/or out-of-band distortion introduced by generation of such clipping noise. This distortion may likewise be filtered out along with original components of such composite signal with a channelized filter. Such channelized clipping noise components may be composed into a PAPR reducing waveform with an inverse polyphase transform for combination. Such recomposed signal may be combined with such composite signal to have a PAPR reduced composite signal for transmission. This is significant as the number of multipliers used in providing noise-shaping CFR ("NS-CFR") as described herein is substantially less than in a convention NS-CFR path. Moreover, as the number of carriers and/or antennas used increases, such reduction in multiplier count becomes more dramatic.
With the above general understanding borne in mind, various
configurations for PAPR reduction are generally described below.
FIG. 1 is a block diagram depicting an exemplary PAPR device 100.
PAPR device 100 may include a delay 103, a signal combiner 105, and a waveform generator 1 04. Waveform generator 104 may be considered a NS- CFR device 104. In other words, waveform generator 104 may be configured for NS-CFR, as described below in additional detail.
Delay 103 and waveform generator 104 may be commonly coupled at an input node 150 to receive a composite signal 101 . Composite signal 101 may have multiple carriers 106. Composite signal 101 , delayed composite signal 101 D, reduced peaks composite signal 102, and waveform 1 17 may all be digital signals in a frequency domain. As described below in additional detail, reduced peaks composite signal 1 02 may generally be thought of as a version of composite signal 101 with a reduced PAPR though possibly with more in-band and/or out-of-band distortion due to such PAPR reduction, where any such added in-band and/or out-of-band distortion may be controllably limited as described below.
Delay 103 may output a delayed version or copy of composite signal 101 , namely delayed composite signal 1 01 D. Delay 103 may provide a delay to match a delay of signal propagation from input node 150 through waveform generator 104 to signal combiner 1 05. Along those lines, delayed composite signal 101 D and a waveform 1 17 corresponding thereto for a same composite signal 1 01 as delayed composite signal 101 D may both arrive at signal combiner 105 generally at a same time for subtraction of waveform 1 17 from delayed composite signal 1 01 D corresponding thereto.
Composite signal 1 01 may include two or more carriers 106, namely a composite signal xn for n a number of carriers. Such carriers may all be of a same type, or carriers may be a mixture of carriers. Examples of carrier signal formats or protocols that may be used include LTE, WCDMA, and CDMA200, among others. Some examples of carriers include LTE 5, 1 0, 15, 20 MHz carriers, 5 MHz WCDMA carriers, among others. Accordingly, a sampling rate for composite signal 101 depends on composition of composite signal 101 . Effectively composite signal 101 may be considered a wideband waveform with spectral portions thereof associated with input component carriers.
Again, waveform generator 104 may be commonly coupled to input node 150 to receive composite signal 101 to provide an output waveform 1 17 from waveform generator 104. Signal combiner 105 may be coupled at a positive input port thereof to an output of delay 103 to receive delayed composite signal 101 D, and signal combiner 105 may be coupled at a negative input port thereof to an output port of waveform generator 104 to receive waveform 1 17. By effectively subtracting waveform 1 17 from delayed composite signal 101 D, output of signal combiner 105 may be coupled to reduce at least one peak in such delayed composite signal 1 01 by application of waveform 1 17 to delayed composite signal 101 D. Accordingly, a composite signal 102 output from signal combiner 105 may have reduced peaks in comparison to composite signal 101 corresponding thereto. Along those lines, composite signal 102 may have in- band and/or out-of-band distortion limited for a communication protocol and/or a channel specified limit after PAPR provided by PAPR device 100.
Waveform generator 104 may include a threshold and clip block 1 10, a polyphase transform block 1 12, a filter block 1 14, and an inverse polyphase transform block 1 16 coupled in series to provide waveform 1 17, namely a PAPR reducing signal 1 17.
Threshold and clip block 1 10 receives a composite 101 from input node 150, and threshold and clip block 1 10 may be configured to provide clipping noise 1 1 1 as an output therefrom. Clipping noise 1 1 1 output is a digital output in a frequency domain. As described below in additional detail, threshold and clip block 1 10 may be coupled to receive composite signal 101 to provide clipping noise components for PAPR reduction in such composite signal 101 .
A clipping noise generator as described in the Paper may be used for threshold and clip block 1 10, or some other form of clipping noise generator may be used in accordance with the description herein. Sometimes this form of clipping is termed a "soft clipping of peaks," so as to reduce in-band and out-of- band noise generated in comparison with a hard clipping of peaks. In other configurations, other types of non-linear noise generators may be used provided in-band and out-of-band noise generation is not unduly excessive.
Polyphase transform block 1 12 may be coupled to receive clipping noise 1 1 1 from threshold and clip block 1 10. Polyphase transform block 1 12 may convert, namely polyphase transform, such clipping noise 1 1 1 to first spectrally translated components 1 13 of such clipping noise channelized corresponding to channels of carriers 1 06. Along those lines, considering composite signal 101 as a wideband signal with spectral portions associated with carriers thereof, clipping noise 1 1 1 may be associated with such spectral portions. I n other words, clipping noise 1 1 1 may have contributions, namely in-band and out-of-band noise, associated with carriers 106 composing composite signal 101 . Thus, such first spectrally translated components 1 1 3 may be associated with carriers 106 of composite signal 101 . Filter block 1 14 may be coupled to polyphase transform block 1 12 to receive first spectrally translated components 1 13.
Filter block 1 14 may filter such first spectrally translated components 1 13 to provide filtered components 1 15 corresponding to such first spectrally translated components 1 13 received. Inverse polyphase transform block 1 16 may be coupled to filter block 1 14 to receive such filtered components 1 15. Both polyphase transform block 1 12 and inverse polyphase transform block 1 16 may be configured to process multi-frequency division multiplexed signals, as described below in additional detail.
Inverse polyphase transform block 1 16 may convert, namely inversely polyphase transform, such filtered components 1 15 to provide second spectrally translated components 404 of FIG. 4, as described below in additional detail, which may be commutated by a commutator of inverse polyphase transform block 1 16 to provide waveform 1 17. Effectively, waveform 1 17 may generally be a channel-by-channel composition of clipping noise contributions for
corresponding carriers 106 of composite signal 101 .
Waveform 1 17 may have removed, such as by channel filtering with channelized filter 1 14, therefrom original components of composite signal 101 , effectively leaving substantially only commutated clipping noise contributions corresponding to carriers 106, namely corresponding to channel bands of such carriers, of composite signal 1 01 , as well as possibly limited amounts of in-band and/or out-of-band distortion generated by threshold and clip block 1 10 not filtered out by such channel filtering.
FIG. 2A is a block diagram depicting an exemplary polyphase transform block 1 12. Polyphase transform block 1 12 includes a commutator 204, polyphase filters 202, and an I nverse Fourier Transform block ("I FT") 203.
Clipping noise 1 1 1 may be received by commutator 204 at a common input port or node 21 1 of commutator 204. Commutator 204 may include M output ports 212, for M a positive integer. Clipping noise 1 1 1 sourced from input port 21 1 may be respectively commutated, as generally indicated by arrow 213, to each of output ports 212 for input to M polyphase filters of polyphase filter bank 202. Commutator 204 may be for carrier configurations where all carrier signals, or carrier bands of carrier signal configuration, are equally spaced apart from one another. Along those lines, such a carrier signal configuration may have a significant amount of structure in a carrier line-up or carrier floorplan thereof for purposes of such commutation. Known details regarding commutator 204 are not described herein for purposes of clarity and not limitation. The value of M at a minimum may be the number of distinct carriers 106 in composite signal 101 .
Effectively, commutator 204 may channelize noise components 205 of clipping noise 1 1 1 for each channel 305 of FIG. 3A corresponding to multiple carriers 106 of composite signal 101 . Along those lines, outputs ports 212 may be respectively coupled to polyphase filters hrj(n) 202-0 through h| |-i (n) 202-(M-
1 ) of polyphase filter bank 202. Polyphase filters hrj(n) 202-0 through h -1 (n)
202-(M-1 ) may respectively be coupled to receive channelized noise
components 205 from commutator 204 to provide corresponding decomposed components 206 respectively output from polyphase filters hrj(n) 202-0 through hM-i (n) 202-(M-1 ).
An I FT 203, which may be for an I DFT or an I FFT, may be coupled to receive decomposed components 206 as an M-point frequency domain input to transform such decomposed components 206 from a digital frequency domain into a digital M-point time domain output, namely as first spectrally translated components 1 13. An I FT, and/or a downstream Fourier Transform block ("FT"), may be for every point size to be used, and thus is not limited to powers of two or to number of carriers 1 06. Along those lines, the number of carriers 1 06 of composite signal 101 may be equivalent to the number of points of I FT and/or such a downstream FT.
Again, output of I FT 203 is a digital output. Polyphase transform block
1 12 receives a digital input as clipping noise 1 1 1 and provides a digital output as first spectrally translated components 1 13. Polyphase transform block 1 12 effectively may be thought of as a baseband polyphase filter, or decimator, with an I DFT, the latter of which may be implemented in a cost effective manner as an I FFT.
FIG. 2B is a block diagram depicting another exemplary polyphase transform block 1 12. Polyphase transform block 1 12 of FIGS. 2A and 2B are the same, except in the example implementation of FIG. 2B, polyphase transform block 1 12 has a different configuration of commutator 204 and a different configuration of polyphase filter bank 202.
Clipping noise 1 1 1 may be received by commutator 204 at a common input port or node 21 1 of commutator 204. Commutator 204 may include M output ports 212, for M a positive integer. Clipping noise 1 1 1 sourced from input port 21 1 may be respectively commutated, as generally indicated by arrows 21 3 and 214, to each adjacent pair of output ports 212 for input to M polyphase filters of polyphase filter bank 202. Commutator 204 may be for carrier configurations where all carrier signals, or carrier bands of carrier signal configuration, are not equally spaced apart from one another. Along those lines, such a carrier signal configuration may have carrier bands which can be arbitrarily positioned in frequency. Furthermore, such a carrier signal configuration may have same or different bandwidths. Known details regarding commutator 204 are not described herein for purposes of clarity and not limitation. The value of M at a minimum may be the number of distinct carriers 1 06 in composite signal 101 . In this example, commutator 204 may be for a non-maximally decimated polyphase filter bank 202.
Effectively, commutator 204 may channelize noise components 205 of clipping noise 1 1 1 for each channel 305 of FIG. 3A corresponding to multiple carriers 106 of composite signal 101 . Along those lines, outputs ports 212 may be respectively coupled to polyphase filters hrj(n) 202-0 through hM-i (n) 202-(M- 1 ) of polyphase filter bank 202. Polyphase filters hrj(n) 202-0 through h -i (n)
202-(M-1 ) may respectively be coupled to receive channelized noise
components 205 from commutator 204 to provide corresponding decomposed components 206 respectively output from polyphase filters hrj(n) 202-0 through h|vi-i(n) 202-(M-1 ). However, in this example, polyphase filters 202 may have more refined steps to provide more frequency and/or bandwidth adaptive capability for a less predictable or predefined structure. Along those lines, polyphase filters hrj(n) 202-0 through hM-i(n) 202-(M-1 ) may include half increments of polyphase filters, such as polyphase filter hivi/2-1 (n) 202-(M/2-1 ) for example paired with polyphase filter h -i (n) 202-(M-1 ).
To recapitulate, polyphase transformer block 1 12 may be coupled to channelize noise components, to respectively polyphase filter with polyphase filters such channelized noise components, and to spectrally transform such filtered-channelized noise components into a time domain for each of band of corresponding carriers.
FIG. 3A is a block diagram depicting an exemplary filter block 1 14. Filter block 1 14 may be a channelized filter 1 14. Channelized filter 1 14 may include a bank of filters 31 1 , wherein each filter 310-1 through 310-M of such bank of filters 31 1 includes at least one filter stage 301 for each channel 305 of channelized filter 1 14. In an implementation with only "one filter stage 301 " for each channel 305, such "one filter stage 301 " may be considered a filter 301 . However, for purposes of clarity by way of example, it shall be assumed for this filter block 1 14 more than one filter stage is used for each channel filter.
Channelized first spectrally translated components 1 13 digitally output in parallel from I FT 203 may respectively be provided to channelized filter stages 301 -1 through 301 -M of channelized filter 1 14 for corresponding channels 305-1 through 305-M. Along those lines, for carriers 106 of composite signal 101 , such carriers may have corresponding channel bandwidths. Original signal in such carries 106 may generally be removed for each corresponding channel band by corresponding channelized multi-stage filters 310-1 through 310-M. First filtered outputs 306-1 through 306-M respectively from channelized filter stages 301 -1 through 301 -M may respectively be input to serially coupled channelized filter stages 302-1 through 302-M of channelized filter 1 14 for corresponding channels 305-1 through 305-M. Even though each filter 310 for channels 305-1 through 305-M is illustratively depicted as having two filter stages coupled in series, more than two filter stages may be coupled in series for each of channels 305-1 through 305-M in other implementations.
Channelized filtered components 1 15 may be respectively output from each final filter stage, namely channelized filter stages 302-1 through 302-M in this example. Channelized filter stages of filter block 1 14 may be used to remove original spectral components of composite signal 101 , namely carrier components 1 06 of composite signal 101 prior to clipping noise generation. Accordingly, digital channelized filtered components 1 15 output by filter block 1 14 may be associated with spectral components of clipping noise 1 1 1 in association with corresponding carriers 106. The number of channels M may accordingly depend upon the number of channels used by carriers 106 of composite signal 1 01 .
FIG. 3B is a block diagram depicting another exemplary filter block 1 14. Filter block 1 14 may be a channelized filter 1 14. Channelized filter 1 14 may include at least one filter stage 301 -1 of a filter 310. In an implementation with only "one filter stage 301 ", such "one filter stage 301 " may be considered a filter 310. Thus, a filter 310 of channelized filter 1 14 may include a plurality of filter stages, such as filter stages 301 -1 and 301 -2 coupled in series, or a single filter stage 301 -1 . Again, even though two filter stages 301 are illustratively depicted, in other implementations more than two filter stages 301 may be coupled in series.
Channelized filter 1 14 of FIG. 3B includes an input commutator 319 and an output commutator 320. Input commutator 319 may be coupled to receive first spectrally translated components 1 13 from filter block 1 14 to cycle through each thereof on a channel-by-channel basis to provide each as a single filter input 306 to filter 310 to provide a single filter output 307 from filter 310. For a multiple stage filter 310, single filter input 306 may be input to filter stage 301 -1 and output of filter state 301 -1 may be input to serially coupled filter stage 301 -2, and output of filter state 301 -2 may be single filter output 307. Single filter output 307 may be provided as an input to an output port of commutator 320 coupled to receive single filter output 307 from the filter 310 to provide filtered components 1 15 for each channel 305 of channelized filter 1 14. Output commutator 320 may be synchronized with input commutator 31 9 to cycle through each channel on a channel-by-channel basis to receive each single filter output 307 to provide filtered components 1 15 for each channel 305 of channelized filter 1 14. It should be appreciated that filtered components 1 15 may be channelized clipping noise spectra in a digital time domain.
To recapitulate, a channelized filter may be coupled to filter filtered- channelized noise components in a digital time domain for each channel of corresponding carriers to controllably limit in-band distortion and/or to
controllably limit out-of-band distortion for each band of such carriers of a composite signal to provide channelized filtered noise components. For example, suppose composite signal or waveform 101 after passing through threshold and clip block 1 10 has a first amount of in-band distortion and a first amount of out-of-band distortion for a carrier 106-1 of FIG. 1 , and has a second amount of in-band distortion and a second amount of out-of-band distortion for a carrier 106-2. Channelized filter 1 14 by configuring filters 310 differently from one another may be configured to controllably limit such first amount of in-band distortion, such first amount of out-of-band distortion, such second amount of in- band distortion, and such second amount of out-of-band distortion differently for such first carrier 1 06-1 than for such second carrier 106-2. These amounts of distortions may be different from one another. Moreover, a specified in-band distortion limit for carrier 106-1 may be different than a specified in-band distortion limit for carrier 106-2, and likewise for out-of-band distortion limits.
FIG. 4 is a block diagram depicting an exemplary inverse polyphase transform block 1 16. Inverse polyphase transform block 1 16 includes a Fourier Transform ("FT") 403, a bank of polyphase filters 420, and an output commutator 401 .
FT 403 may be coupled to receive channelized digital time domain filtered components 1 1 5 as an M-point input to transform such filtered components 1 15 into an M-point frequency domain output 413. Such M-point frequency domain output 413 may respectively be input to polyphase filters 402-0 through 402-(M- 1 ) of polyphase filter bank 420. Outputs of polyphase filters 402-0 through 402- (M-1 ) of polyphase filter bank 420 may be second spectrally translated components 404. Second spectrally translated components 404 may be channelized corresponding to channels 305 of multiple carriers 106 of composite signal 1 01 . Thus, inverse polyphase transform block 1 16 may be coupled to spectrally transform channelized filtered noise components into a frequency domain to provide an M-point output vector that is presented to an M-input interface of an M-path polyphase filter bank 420 with polyphase filters 402 to provide an M-point channelized output as second spectrally translated components 404.
An output commutator 401 may be coupled to deliver samples from each of such filter segments of second spectrally translated components 404, such as starting from an output of polyphase filter 402-0 and sequentially proceeding to an output of polyphase filter 402-(M-1 ), and then wrap around at the bottom and begin again at the top, namely begin again at an output of polyphase filter 402-0. Thus, output commutator 401 may cycle through each channel of channels 305 to sequentially provide outputs of second spectrally translated components 404 to provide a composite waveform 1 17 of clipping noise components
corresponding to carriers 1 06 of delayed composite signal 1 01 D for channel-by- channel combination therewith. In other words, a PAPR reducing waveform 1 17 is a channel-by-channel, and then a repeat thereof, composition of noise clipping components respectively associated with carriers 106 of delayed composite signal 1 01 D. These noise clipping components may include some in-band distortion and/or some out-of-band distortion respectively associated with carriers 106; however, such in-band and out-of-band distortion may be controlled, namely limited, by configuration of polyphase filters of polyphase filter banks 202 and/or 420 on a per channel basis, where each such channel may be associated with a communication protocol and/or a carrier specific limit for either or both of such types of distortion. Thus, in-band and/or out-of-band distortion for each carrier band of carriers 106 may be controlled on a channel-by-channel basis.
Waveform 1 1 7 may thus be used for peak reduction or cancellation, namely PAPR reduction, in delayed composite signal 101 D to produce a composite signal 102 with reduced peaks. Along those lines, to output composite signal 102 from signal combiner 105, which may be a summation junction, summer or subtractor, waveforms 101 D and 1 17 may be synchronously input to signal combiner 105 to subtract waveform 1 17 from delayed composite signal 1 01 D on a channel band-by-channel band basis respectively for carriers 106 thereof.
Accordingly, it should be appreciated that a reordering operation of heterodyning and filtering with polyphase filtering as described herein means that multipliers for channelizing and dechannelizing may be avoided. This may amount to approximately a log-base-2 advantage in a reduction in resources in comparison to such conventional multiplier usage. As the number of carriers increases for wider bands, for conventional multiplier usage such cost linearly may increase, but with a polyphase transforming as described herein such increased cost may be controlled as log-base-2.
Furthermore, polyphase and/or channel filtering as described herein may be used for wideband wave forms with multiple carriers of same or different communication protocols and/or channel bandwidths A polyphase transform as described herein is capable of dealing with multi-channel signals, or more particularly multi-frequency division multiplexed signals.
Accordingly, PAPR may be reduced in delayed composite signal 101 D while limiting introduction of the amount of in-band distortion, sometimes referred to error vector magnitude, and limiting introduction of the amount of out-of-band ("COB") distortion in a controlled manner. This controlled manner may be different for different communication protocols, such as for example an LTE specification and WCDMA specification. Moreover, this controlled manner may be different for different carriers of the same communication protocol. However, as described herein, polyphase transforming, as well as inverse polyphase transforming, may be performed on a channel-by-channel basis. As channels may be specific to carriers, the amount of distortion allowed to be added to reduce PAPR for a communication protocol and/or carrier specific limit may be tailored using the above-described channelization.
FIG. 5 is a flow diagram depicting an exemplary data communication flow
500. At 501 , a composite signal 101 may be received by a delay 103 and a waveform generator 104. At 502, a delayed version of composite signal 101 , namely delayed composite signal 101 D, may be provided from delay 103. At 503, a PAPR cancelation or reduction waveform 1 17 may be generated by waveform generator 104 from composite signal 101 . Again, waveform generator
104 may be configured for NS-CFR using polyphase transformation, as previously described.
At 504, such waveform 1 17 may be output from waveform generator 104, where such waveform 1 17 has clipping noise, as well as possibly limited in-band distortion and out-of-band distortion, with respect to bands of corresponding carriers 106 of composite signal 101 D. At 505, waveform 1 1 7 may be subtracted with a signal combiner 105 from delayed composite signal 101 D for PAPR reduction. At 506, a reduced peak version of composite signal 1 01 D, namely a reduced PAPR version thereof, may be output from signal combiner
105 as composite signal 102.
FIG. 6 is a flow diagram depicting an exemplary of a waveform generation flow 600. Waveform generation flow 600 may be for waveform generator 1 04 for generation of waveform 1 17 from composite signal 1 01 .
At 601 , a composite signal 101 may be received by a threshold and clip block 1 10. At 602, noise components 1 1 1 for carriers 106 may be generated by threshold and clip block 1 10 for PAPR reduction. At 603, such noise
components 1 1 1 may be channelized with first polyphase filters 202 of a polyphase transform block 1 12, namely polyphase filtering, to provide
decomposed components 206.
At 604, decomposed components 206 may be spectrally transformed or converted into a time domain for each of the bands of carriers 106 with an Inverse Fourier Transform block 203 of polyphase transform block 1 12. At 605, noise components 206 for each of the channels may be filtered with a
channelized filter 1 14 to controllably limit in-band distortion and controllably limit out-of-band distortion for each of the bands for each of carriers 1 06 of composite signal 1 01 to provide filtered components 1 15. This filtering to provide such control of in-band and out-of-band distortion may likewise filter out original spectral components of composite signal 101 .
At 606, filtered components 1 15 may be spectrally transformed into a frequency domain with a Fourier Transform block 403 of an inverse polyphase transform block 1 16 to provide an M-point output 413 for M a positive integer greater than zero. At 607, such M-point output 413 may be polyphase filtered with second polyphase filters 402 to provide translated components 404. At 608, translated components 404 may be commutated into waveform 1 17.
Because one or more of the examples described herein may be implemented in an FPGA, a detailed description of such an IC is provided.
However, it should be understood that other types of ICs may benefit from the technology described herein.
Programmable logic devices ("PLDs") are a well-known type of integrated circuit that can be programmed to perform specified logic functions. One type of PLD, the field programmable gate array ("FPGA"), typically includes an array of programmable tiles. These programmable tiles can include, for example, input/output blocks ("lOBs"), configurable logic blocks ("CLBs"), dedicated random access memory blocks ("BRAMs"), multipliers, digital signal processing blocks ("DSPs"), processors, clock managers, delay lock loops ("DLLs"), and so forth. As used herein, "include" and "including" mean including without limitation.
Each programmable tile typically includes both programmable
interconnect and programmable logic. The programmable interconnect typically includes a large number of interconnect lines of varying lengths interconnected by programmable interconnect points ("PIPs"). The programmable logic implements the logic of a user design using programmable elements that can include, for example, function generators, registers, arithmetic logic, and so forth.
The programmable interconnect and programmable logic are typically programmed by loading a stream of configuration data into internal configuration memory cells that define how the programmable elements are configured. The configuration data can be read from memory (e.g., from an external PROM) or written into the FPGA by an external device. The collective states of the individual memory cells then determine the function of the FPGA.
Another type of PLD is the Complex Programmable Logic Device, or CPLD. A CPLD includes two or more "function blocks" connected together and to input/output ("I/O") resources by an interconnect switch matrix. Each function block of the CPLD includes a two-level AND/OR structure similar to those used in Programmable Logic Arrays ("PLAs") and Programmable Array Logic ("PAL") devices. In CPLDs, configuration data is typically stored on-chip in non-volatile memory. In some CPLDs, configuration data is stored on-chip in non-volatile memory, then downloaded to volatile memory as part of an initial configuration (programming) sequence.
For all of these programmable logic devices ("PLDs"), the functionality of the device is controlled by data bits provided to the device for that purpose. The data bits can be stored in volatile memory (e.g. , static memory cells, as in FPGAs and some CPLDs), in non-volatile memory (e.g. , FLASH memory, as in some CPLDs), or in any other type of memory cell.
Other PLDs are programmed by applying a processing layer, such as a metal layer, that programmably interconnects the various elements on the device. These PLDs are known as mask programmable devices. PLDs can also be implemented in other ways, e.g. , using fuse or antifuse technology. The terms "PLD" and "programmable logic device" include but are not limited to these exemplary devices, as well as encompassing devices that are only partially programmable. For example, one type of PLD includes a combination of hard- coded transistor logic and a programmable switch fabric that programmably interconnects the hard-coded transistor logic.
As noted above, advanced FPGAs can include several different types of programmable logic blocks in the array. For example, FIG. 7 illustrates an FPGA architecture 700 that includes a large number of different programmable tiles including multi-gigabit transceivers ("MGTs") 701 , configurable logic blocks ("CLBs") 702, random access memory blocks ("BRAMs") 703, input/output blocks ("lOBs") 704, configuration and clocking logic ("CONFIG/CLOCKS") 705, digital signal processing blocks ("DSPs") 706, specialized input/output blocks ("I/O") 707 (e.g. , configuration ports and clock ports), and other programmable logic 708 such as digital clock managers, analog-to-digital converters, system monitoring logic, and so forth. Some FPGAs also include dedicated processor blocks ("PROC") 710.
In some FPGAs, each programmable tile includes a programmable interconnect element ("I NT") 71 1 having standardized connections to and from a corresponding interconnect element in each adjacent tile. Therefore, the programmable interconnect elements taken together implement the
programmable interconnect structure for the illustrated FPGA. The
programmable interconnect element 71 1 also includes the connections to and from the programmable logic element within the same tile, as shown by the examples included at the top of FIG. 7.
For example, a CLB 702 can include a configurable logic element ("CLE") 712 that can be programmed to implement user logic plus a single
programmable interconnect element ("I NT") 71 1 . A BRAM 703 can include a BRAM logic element ("BRL") 713 in addition to one or more programmable interconnect elements. Typically, the number of interconnect elements included in a tile depends on the height of the tile. In the pictured embodiment, a BRAM tile has the same height as five CLBs, but other numbers (e.g. , four) can also be used. A DSP tile 706 can include a DSP logic element ("DSPL") 714 in addition to an appropriate number of programmable interconnect elements. An IOB 704 can include, for example, two instances of an input/output logic element ("IOL") 715 in addition to one instance of the programmable interconnect element 71 1 . As will be clear to those of skill in the art, the actual I/O pads connected, for example, to the I/O logic element 715 typically are not confined to the area of the input/output logic element 715.
In the pictured embodiment, a horizontal area near the center of the die (shown in FIG. 7) is used for configuration, clock, and other control logic.
Vertical columns 709 extending from this horizontal area or column are used to distribute the clocks and configuration signals across the breadth of the FPGA.
Some FPGAs utilizing the architecture illustrated in FIG. 7 include additional logic blocks that disrupt the regular columnar structure making up a large part of the FPGA. The additional logic blocks can be programmable blocks and/or dedicated logic. For example, processor block 710 spans several columns of CLBs and BRAMs.
Note that FIG. 7 is intended to illustrate only an exemplary FPGA architecture. For example, the numbers of logic blocks in a row, the relative width of the rows, the number and order of rows, the types of logic blocks included in the rows, the relative sizes of the logic blocks, and the
interconnect/logic implementations included at the top of FIG. 7 are purely exemplary. For example, in an actual FPGA more than one adjacent row of CLBs is typically included wherever the CLBs appear, to facilitate the efficient implementation of user logic, but the number of adjacent CLB rows varies with the overall size of the FPGA. FIG. 8 is a network diagram depicting an exemplary a wireless network 800. Wireless network 800 may include base stations 81 1 and 812, as well as mobile devices 801 , mobile devices 802, and mobile devices 803. Base stations 81 1 and 812 may be in communication with one another via a wireless backhaul 821 , or base stations 81 1 and 812 may be in communication with one another via wired backhauls 820 and 822, respectively, and such wired backhauls 820 and 822 may be coupled to the Internet 810.
Mobile devices 801 , mobile devices 802, and mobile devices 803 may communicate with base station 81 1 with a plurality of different communication protocols and/or different carrier bands, such as previously described.
Accordingly, base station 81 1 , as well as base station 812, may each be equipped with at least one PAPR device 100. PAPR device 100 may be used to reduce PAPR prior to signal transmission. Reducing PAPR prior to signal transmission means that such base stations 81 1 and 812 may use a less expensive (i.e. , narrower bandwidth for linearity in transmission) and less power consuming radios for transmission of composite signal 102 for data
communication. Additionally, as described herein, PAPR devices 100 may be configured to limit in-band distortion and out-of-band distortion differently for such different communication protocols and/or carriers to stay within specified limits thereof.
It should be understood that waveform generator 104 is a NS-CFR device which does not linearly scale in complexity with a number of channels N, but rather scales as log-base-2. This means less complexity, as well as less power consumption for base stations 81 1 and 812. Each of such base stations 81 1 and 812 may have multiple antennas for transmitting wideband signaling waveforms, such as OFDM, and thus such base stations 81 1 and 812 may employ channel multiplexing techniques such as OFDMA. By using channelization based on polyphase transforms, complexity for NS-CFR may be substantially reduced. For example, if an input waveform, such as composite signal 101 , includes WCDMA or LTE, or a mixture thereof, carriers 106, a very efficient version of the conventional NS-CFR path that exploits multi-rate filters, symmetry in coefficient sets, and half-band filters, generally results in deployment of 56 physical multipliers, each of which may be operating at 368.64MHz in this example. In comparison, a channelized NS-CFR device or waveform generator 104 as described herein may use only 22 multipliers to realize the same functionality as such conventional approach. Additionally, support of multiple antennas in a single device is not uncommon. If, for example, a single IC is to support 4 antennas or 8 antennas, then the number of multipliers for NS-CFR is multiplied by the number of antennas supported. In the above example, such a convention NS-CFR may use 4x56 or 8x56, respectively, multipliers on a single IC. This is to be contrasted with 4x22 or 8x22, respectively, multipliers for a same functionality using a channelizer NS-CFR device 104 as described herein.
Some additional examples are provided below.
In one example, an apparatus for data communication may include: a delay coupled to receive a composite signal having multiple carriers to provide a delayed version of the composite signal; a waveform generator coupled to receive the composite signal to provide a waveform; wherein the waveform generator may be coupled for noise-shaping crest factor reduction; a signal combiner coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform; and wherein the signal combiner may be coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof; wherein the waveform generator comprises: a threshold and clip block coupled to receive the composite signal to provide clipping noise with the composite signal; a polyphase transform block coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers; a filter block coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components for removing therefrom original components of the composite signal and configured to limit in-band and out-of-band distortion; and an inverse polyphase transform block coupled to receive the filtered components to provide second spectrally translated components for composition as the waveform .
In some such apparatus, the polyphase transform block may include: a commutator coupled to receive the clipping noise to channelize noise components of the clipping noise corresponding to the channels; and polyphase filters respectively coupled to receive the channelized noise components to provide decomposed components.
In some such apparatus, the polyphase transform block may further include an Inverse Fourier Transform block coupled to receive the decomposed components as an M-point frequency domain input to transform the decomposed components into an M-point time domain output to provide the first spectrally translated components.
In some such apparatus, the filter block may be a channelized filter.
In some such apparatus, the channelized filter may include at least one filter stage for each of the channels.
In some such apparatus, the channelized filter may include: a filter having at least one filter stage; an input commutator coupled to receive the first spectrally translated components to provide a single filter input to the filter of the channelized filter to provide a single filter output; and an output commutator coupled to receive the single filter output from the filter of the channelized filter to provide the filtered components respectively for the channels.
In some such apparatus, the channelized filter may include a bank of filters, wherein each multi-stage filter of the bank of filters may have a plurality of filter stages coupled in series.
In some such apparatus, the inverse polyphase transform block may include: a Fourier Transform block coupled to receive the filtered components as an M-point time domain input to transform the filtered components into an M- point frequency domain output as the second spectrally translated components; a polyphase filter bank having polyphase filters respectively coupled to receive the second spectrally translated components channelized for the channels; and an output commutator coupled to receive the second spectrally translated components to compose the waveform on a channel-by-channel basis for the channels for correspondence with the multiple carriers in the composite signal.
In some such apparatus, the signal combiner may be coupled to subtract the waveform from the delayed version of the composite signal to output a version of the composite signal with a reduced peak-to-average power ratio and with the in-band distortion and the out-of-band distortion; and the filter block may be configured to limit the in-band distortion and the out-of-band distortion. In some such apparatus, both the polyphase transform block and the inverse polyphase transform block may be coupled to process multi-frequency division multiplexed signals; and the composite signal and the waveform may be digital signals in a frequency domain.
In some such apparatus, M-points of the M-point frequency domain output may not be a power of two.
In some such apparatus, M-points of the M-point time domain input may be equal in number to a number of the channels.
In some such apparatus, the waveform may have a first amount of the in- band distortion and a first amount of the out-of-band distortion for the peak-to- average power ratio reduction of a first carrier of the multiple carriers; the waveform may have a second amount of the in-band distortion and a second amount of the out-of-band distortion for the peak-to-average power ratio reduction of the second carrier of the multiple carriers; and the filter block may be a channelized filter coupled to controllably limit the first amount of the in-band distortion, the first amount of the out-of-band distortion, the second amount of the in-band distortion, and the second amount of the out-of-band distortion differently for the first carrier than for the second carrier.
In some such apparatus, the first carrier of the multiple carriers and the second carrier of the multiple carriers may be for different carrier communication protocols.
In some such apparatus, wherein the carrier communication protocols may be selected from a group consisting of LTE, WCDMA, and CDMA2000.
In another system, a system for data communication may be provided. Such a system may include: a multi-radio base station; a plurality of mobile devices in communication with the base station; wherein the plurality of mobile devices use a plurality of different communication protocols for the data communication; wherein the multi-radio base station includes a peak-to-average power reduction device; wherein the peak-to-average power reduction device comprises: a delay coupled to receive a composite signal having multiple carriers for the plurality of different communication protocols to provide a delayed version of the composite signal; a waveform generator coupled to receive the composite signal to provide a waveform; wherein the waveform generator may be coupled for noise-shaping crest factor reduction using polyphase transformation; a signal combiner coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform; and wherein the signal combiner may be coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof.
In such a system, the waveform generator may include: a threshold and clip block coupled to receive the composite signal to provide clipping noise; a polyphase transform block coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers; a filter block coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components; and an inverse polyphase transform block coupled to receive the filtered components to provide second spectrally translated components for composition as the waveform.
In such a system, the inverse polyphase transform block may include: a Fourier Transform block coupled to receive the filtered components as an M- point time domain input to transform the filtered components into an M-point frequency domain output as the second spectrally translated components; a polyphase filter bank having polyphase filters respectively coupled to receive the second spectrally translated components channelized for the channels; and an output commutator coupled to receive the second spectrally translated components to compose the waveform on a channel-by-channel basis for the channels for correspondence with the multiple carriers in the composite signal; the signal combiner may be coupled to subtract the waveform from the delayed version of the composite signal to output a version of the composite signal with a reduced peak-to-average power ratio and with reduced in-band distortion and out-of-band distortion for the data communication; and the filter block may be coupled to limit the in-band distortion and limit the out-of-band distortion differently for the plurality of different communication protocols.
In another example a method for data communication may be provided. Such a method may include: receiving a composite signal by a delay and a waveform generator; wherein the waveform generator may be for noise-shaping crest factor reduction using polyphase transformation; delaying of the composite signal by the delay to provide a delayed composite signal; generating a waveform by the waveform generator from the composite signal; outputting the waveform from the waveform generator having clipping noise with respect to bands of corresponding carriers of the composite signal; subtracting the waveform from the delayed version of the composite signal with a signal combiner for peak-to-amplitude power ratio reduction; and outputting a reduced peak version of the delayed version of the composite signal delayed from the signal combiner.
In such a method, the generating of the waveform may include: receiving the composite signal by a threshold and clip block; generating the clipping noise by the threshold and clip block for the peak-to-amplitude power ratio reduction; channelizing noise components of the noise components with first polyphase filters of a polyphase transform block coupled to provide decomposed
components; spectrally transforming the decomposed components into a time domain for each of the bands of the carriers with an Inverse Fourier Transform block of the polyphase transform block; filtering the decomposed components for each of the channels with a channelized filter coupled to controllably limit in-band distortion and controllably limit out-of-band distortion for each of the bands for each of the carriers of the composite signal to provide filtered components;
spectrally transforming the filtered components into a frequency domain with a Fourier Transform block of an inverse polyphase transform block to provide an M-point output for M a positive integer; polyphase filtering of the M-point output with second polyphase filters to provide translated components; and
commutating the translated components into the waveform.
While the foregoing describes exemplary apparatus(es) and/or method(s), other and further examples in accordance with the one or more aspects described herein may be devised without departing from the scope hereof, which is determined by the claims that follow and equivalents thereof. Claims listing steps do not imply any order of the steps. Trademarks are the property of their respective owners.

Claims

What is claimed is: 1 . An apparatus for data communication, comprising:
a delay coupled to receive a composite signal having multiple carriers to provide a delayed version of the composite signal;
a waveform generator coupled to receive the composite signal to provide a waveform;
wherein the waveform generator is coupled for noise-shaping crest factor reduction;
a signal combiner coupled to the delay to receive the delayed version of the composite signal and coupled to the waveform generator to receive the waveform; and
wherein the signal combiner is coupled to reduce at least one peak in the delayed version of the composite signal by application of the waveform to the delayed version of the composite signal for peak-to-average power ratio reduction thereof;
wherein the waveform generator comprises:
a threshold and clip block coupled to receive the composite signal to provide clipping noise with the composite signal;
a polyphase transform block coupled to convert the clipping noise with the composite signal to first spectrally translated components channelized for channels corresponding to the multiple carriers;
a filter block coupled to receive the first spectrally translated components to provide filtered components corresponding to the first spectrally translated components for removing therefrom original components of the composite signal and configured to limit in-band and out-of-band distortion; and
an inverse polyphase transform block coupled to receive the filtered components to provide second spectrally translated components for composition as the waveform.
2. The apparatus according to claim 1 , wherein the polyphase transform block comprises: a commutator coupled to receive the clipping noise to channelize noise components of the clipping noise corresponding to the channels; and
polyphase filters respectively coupled to receive the channelized noise components to provide decomposed components.
3. The apparatus according to claim 1 or claim 2, wherein the polyphase transform block further comprises an Inverse Fourier Transform block coupled to receive the decomposed components as an M-point frequency domain input to transform the decomposed components into an M-point time domain output to provide the first spectrally translated components.
4. The apparatus according to claim 1 , wherein the filter block is a channelized filter, wherein the channelized filter comprises at least one filter stage for each of the channels
5. The apparatus according to claim 4, wherein the channelized filter comprises:
a filter having at least one filter stage;
an input commutator coupled to receive the first spectrally translated components to provide a single filter input to the filter of the channelized filter to provide a single filter output; and
an output commutator coupled to receive the single filter output from the filter of the channelized filter to provide the filtered components respectively for the channels.
6. The apparatus according to claim 4, wherein the channelized filter comprises a bank of filters, wherein each multi-stage filter of the bank of filters has a plurality of filter stages coupled in series.
7. The apparatus according to claim 1 or claim 2, wherein the inverse polyphase transform block comprises:
a Fourier Transform block coupled to receive the filtered components as an M-point time domain input to transform the filtered components into an M- point frequency domain output as the second spectrally translated components; a polyphase filter bank having polyphase filters respectively coupled to receive the second spectrally translated components channelized for the channels; and
an output commutator coupled to receive the second spectrally translated components to compose the waveform on a channel-by-channel basis for the channels for correspondence with the multiple carriers in the composite signal.
8. The apparatus according to claim 1 or claim 2, wherein:
the signal combiner is coupled to subtract the waveform from the delayed version of the composite signal to output a version of the composite signal with a reduced peak-to-average power ratio and with the in-band distortion and the out- of-band distortion; and
the filter block is configured to limit the in-band distortion and the out-of- band distortion.
9. The apparatus according to claim 1 or claim 2, wherein:
both the polyphase transform block and the inverse polyphase transform block are coupled to process multi-frequency division multiplexed signals; and the composite signal and the waveform are digital signals in a frequency domain.
10. The apparatus according to claim 7, wherein M-points of the M-point frequency domain output is not a power of two.
1 1 . The apparatus according to claim 1 1 , wherein M-points of the M-point time domain input is equal in number to a number of the channels.
12. The apparatus according to claim 1 or claim 2, wherein:
the waveform has a first amount of the in-band distortion and a first amount of the out-of-band distortion for the peak-to-average power ratio reduction of a first carrier of the multiple carriers;
the waveform has a second amount of the in-band distortion and a second amount of the out-of-band distortion for the peak-to-average power ratio reduction of the second carrier of the multiple carriers; and the filter block is a channelized filter coupled to controllably limit the first amount of the in-band distortion, the first amount of the out-of-band distortion, the second amount of the in-band distortion, and the second amount of the out- of-band distortion differently for the first carrier than for the second carrier.
13. The apparatus according to claim 12, wherein the first carrier of the multiple carriers and the second carrier of the multiple carriers are for different carrier communication protocols.
14. A method for data communication, comprising:
receiving a composite signal by a delay and a waveform generator;
wherein the waveform generator is for noise-shaping crest factor reduction using polyphase transformation;
delaying of the composite signal by the delay to provide a delayed composite signal;
generating a waveform by the waveform generator from the composite signal;
outputting the waveform from the waveform generator having clipping noise with respect to bands of corresponding carriers of the composite signal; subtracting the waveform from the delayed version of the composite signal with a signal combiner for peak-to-amplitude power ratio reduction; and outputting a reduced peak version of the delayed version of the composite signal delayed from the signal combiner.
15. The method according to claim 14, wherein the generating of the waveform comprises:
receiving the composite signal by a threshold and clip block;
generating the clipping noise by the threshold and clip block for the peak- to-amplitude power ratio reduction;
channelizing noise components of the noise components with first polyphase filters of a polyphase transform block coupled to provide decomposed components; spectrally transforming the decomposed components into a time domain for each of the bands of the carriers with an Inverse Fourier Transform block of the polyphase transform block;
filtering the decomposed components for each of the channels with a channelized filter coupled to controllably limit in-band distortion and controllably limit out-of-band distortion for each of the bands for each of the carriers of the composite signal to provide filtered components;
spectrally transforming the filtered components into a frequency domain with a Fourier Transform block of an inverse polyphase transform block to provide an M-point output for M a positive integer;
polyphase filtering of the M-point output with second polyphase filters to provide translated components; and
commutating the translated components into the waveform.
PCT/US2016/022713 2015-03-18 2016-03-16 Noise-shaping crest factor reduction with polyphase transforming Ceased WO2016149419A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US14/662,099 2015-03-18
US14/662,099 US9503301B2 (en) 2015-03-18 2015-03-18 Noise-shaping crest factor reduction with polyphase transforming

Publications (1)

Publication Number Publication Date
WO2016149419A1 true WO2016149419A1 (en) 2016-09-22

Family

ID=55642897

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2016/022713 Ceased WO2016149419A1 (en) 2015-03-18 2016-03-16 Noise-shaping crest factor reduction with polyphase transforming

Country Status (2)

Country Link
US (1) US9503301B2 (en)
WO (1) WO2016149419A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3772837A1 (en) * 2019-08-05 2021-02-10 Rohde & Schwarz GmbH & Co. KG Transmitter module, data transmission system and data transmission method

Families Citing this family (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9882756B2 (en) 2014-01-16 2018-01-30 Crestcom, Inc. Communication system with PAPR management using noise-bearing subcarriers
FR3034935B1 (en) * 2015-04-10 2017-05-05 Thales Sa METHOD OF REDUCING THE FACTOR CREATED BY MULTICHANNEL TRANSMISSION BY INTELLIGENT AND ADAPTIVE SCREENING / FILTERING
US9848342B1 (en) 2016-07-20 2017-12-19 Ccip, Llc Excursion compensation in multipath communication systems having performance requirements parameters
US11082279B2 (en) 2018-09-27 2021-08-03 At&T Intellectual Property I, L.P. Facilitation of reduction of peak to average power ratio for 5G or other next generation network
US10659270B2 (en) 2018-10-10 2020-05-19 At&T Intellectual Property I, L.P. Mapping reference signals in wireless communication systems to avoid repetition
US11418992B2 (en) 2018-11-02 2022-08-16 At&T Intellectual Property I, L.P. Generation of demodulation reference signals in advanced networks
CN111343119B (en) * 2018-12-18 2022-10-14 深圳市中兴微电子技术有限公司 Data processing method and device and computer readable storage medium
US11297579B2 (en) 2019-01-21 2022-04-05 Qualcomm Incorporated Reference signaling for low peak-to-average power ratio
FI20205278A1 (en) 2020-03-18 2021-09-19 Nokia Solutions & Networks Oy Modification of signals for transmission
FI20216045A1 (en) * 2021-10-08 2022-05-19 Nokia Solutions & Networks Oy Cfr error deposition out of the transmission band
US20260088844A1 (en) * 2024-09-20 2026-03-26 Samsung Electronics Co., Ltd. Method and apparatus for a reconfigurable subarray architecture (rsa) and obtaining channel state information (csi) in a wireless communication system

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7061990B2 (en) * 2000-07-21 2006-06-13 Pmc-Sierra Inc. Systems and methods for the dynamic range compression of multi-bearer single-carrier and multi-carrier waveforms
JP5433327B2 (en) * 2009-07-10 2014-03-05 株式会社日立製作所 Peak factor reduction device and base station

Non-Patent Citations (4)

* Cited by examiner, † Cited by third party
Title
KOLLÁR Z ET AL: "Clipping Based Iterative PAPR Reduction Techniques for FBMC", PROCEEDINGS OF THE 17TH INTERNATIONAL OFDM WORKSHOP 2012 (INOWO'12) : AUGUST 29TH - 30TH 2012, ESSEN, GERMANY / UNIVERSITY DUISBURG-ESSEN, VDE-VERL, BERLIN [U.A.], 29 August 2012 (2012-08-29), pages 139 - 145, XP002757900, ISBN: 978-3-8007-3360-6 *
LASHKARIAN N ET AL: "Reconfigurable Digital Front-End Hardware for Wireless Base-Station Transmitters: Analysis, Design and FPGA Implementation", IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS I: REGULAR PAPERS, IEEE, US, vol. 54, no. 8, 1 August 2007 (2007-08-01), pages 1666 - 1677, XP011189296, ISSN: 1549-8328, DOI: 10.1109/TCSI.2007.902608 *
NAVID LASHKARIAN ET AL.: "Reconfigurable Digital Front-End Hardware for Wireless Base-Station Transmitters: Analysis, Design and FPGA Implementation", IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS I: REGULAR PAPERS, vol. 54, no. 8, August 2007 (2007-08-01), pages 1666 - 1677, XP011189296, DOI: doi:10.1109/TCSI.2007.902608
ZILLMANN P ET AL: "Turbo Equalization for Clipped and Filtered COFDM Signals", PROCEEDINGS OF THE 2007 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC 2007), 24-28 JUNE 2007, GLASGOW, UK, IEEE, PISCATAWAY, NJ, USA, 1 June 2007 (2007-06-01), pages 4335 - 4340, XP031126348, ISBN: 978-1-4244-0353-0 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3772837A1 (en) * 2019-08-05 2021-02-10 Rohde & Schwarz GmbH & Co. KG Transmitter module, data transmission system and data transmission method
US10951450B2 (en) 2019-08-05 2021-03-16 Rohde & Schwarz Gmbh & Co. Kg Transmitter module, data transmission system and data transmission method

Also Published As

Publication number Publication date
US20160277229A1 (en) 2016-09-22
US9503301B2 (en) 2016-11-22

Similar Documents

Publication Publication Date Title
US9503301B2 (en) Noise-shaping crest factor reduction with polyphase transforming
US9172409B2 (en) Multi-path digital pre-distortion
EP1114516B1 (en) Flexibility enhancement to the modified fast convolution algorithm
EP3314837B1 (en) Waveform adaptable digital predistortion
US9014319B1 (en) Cancellation pulse crest factor reduction
US7227902B2 (en) Method and apparatus for digital channelisation and de-channelisation
US9313078B1 (en) Pulse cancellation crest factor reduction with a low sampling rate
EP3141078B1 (en) Waveform differentiating repeater
CN106341140B (en) M-way filter with external and internal channelizers for adjusting passband bandwidth
Yli-Kaakinen et al. Optimized fast convolution based filtered-OFDM processing for 5G
Darak et al. A reconfigurable filter bank for uniform and non-uniform channelization in multi-standard wireless communication receivers
Mahesh et al. Reconfigurable discrete Fourier transform filter banks for multi-standard channelizers
Roufarshbaf et al. Efficient analog multiband channelization for bandwidth scaling in mm-wave systems
Harris et al. A reduced PAPR PR-NMDFB based DUC architecture for transmit downlink of combined 3GPP LTE and UMTS signals

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 16713230

Country of ref document: EP

Kind code of ref document: A1

DPE1 Request for preliminary examination filed after expiration of 19th month from priority date (pct application filed from 20040101)
NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 16713230

Country of ref document: EP

Kind code of ref document: A1