Direct digital conversion tuner and method for using same
11 claims: 2 independent, 9 dependent
- c-fr-01-0001Syntoniseur d'échantillonnage direct (100) permettant de recevoir un signal RF (112) ayant de multiples canaux, comprenant :un amplificateur de faible bruit (102) permettant d'amplifier le signal RF (112), dans lequel l'amplificateur de faible bruit est un élément d'une extrémité avant du syntoniseur, une entrée de l'amplificateur représentant une entrée de l'extrémité avant du syntoniseur, et conçu pour recevoir ledit signal RF ayant de multiples canaux, un pré-filtre configurable dynamiquement (104) relié à la sortie de l'amplificateur de faible bruit (102), ledit pré-filtre étant adapté pour filtrer tout sauf un sous-ensemble de canaux provenant des multiples canaux, un convertisseur analogique-numérique à bits multiples (106) relié à une sortie du pré-filtre (104), dans lequel le convertisseur analogique-numérique (106) est adapté pour convertir le sous-ensemble de canaux à partir des multiples canaux en un signal numérique à bits multiples, et fonctionne à une fréquence supérieure à deux fois une fréquence de la fréquence la plus élevée du sous-ensemble de canaux provenant des multiples canaux ;et un processeur de signal numérique (110) adapté pour traiter numériquement le signal numérique à bits multiples afin d'obtenir des informations provenant d'un ou de plusieurs des canaux sélectionnés à l'intérieur du sous-ensemble de canaux provenant des multiples canaux.
- c-fr-01-0002Syntoniseur (100) selon l'une quelconque des revendications précédentes, comprenant en outre un module de mise en forme de bruit (108) relié au convertisseur analogique-numérique (106).
- c-fr-01-0003Syntoniseur (100) selon l'une quelconque des revendications précédentes, dans lequel le convertisseur analogique-numérique (106) comprend un convertisseur analogique-numérique entre 8 et 12 bits.
- c-fr-01-0004Syntoniseur (100) selon l'une quelconque des revendications précédentes, dans lequel le convertisseur analogique-numérique fonctionne à plus de 1 GHz.
- c-fr-01-0005Syntoniseur (100) selon l'une quelconque des revendications précédentes, dans lequel le convertisseur analogique-numérique comprend un échantillon, un module de retenue et des comparateurs 2 n , dans lequel n est égal à un nombre de bits dans l'échantillon et le module de retenue.
- c-fr-01-0006Syntoniseur (100) selon l'une quelconque des revendications précédentes, dans lequel le convertisseur analogique-numérique comprend un convertisseur analogique-numérique de pipeline à étages multiples, dans lequel chaque étage du convertisseur analogique-numérique de pipeline à étages multiples comprend un ou plusieurs bits.
- c-fr-01-0007Syntoniseur (100) selon l'une quelconque des revendications précédentes, dans lequel le convertisseur analogique-numérique comprend un convertisseur analogique-numérique à boucle ouverte.
- c-fr-01-0008Syntoniseur (100) selon l'une quelconque des revendications précédentes, dans lequel l'amplificateur de faible bruit et le filtre passe-bande configurable dynamiquement sont implantés sur un seul circuit intégré.
- c-fr-01-0009Procédé de syntonisation d'un signal RF (112) ayant de multiples canaux à l'aide d'un syntoniseur d'échantillonnage direct (100), comprenant les étapes consistant à :recevoir ledit signal RF (112) ayant de multiples canaux ;amplifier ledit signal RF (112) reçu par un amplificateur de faible bruit (102) ;dans lequel l'amplificateur de faible bruit est un élément d'une extrémité avant du syntoniseur, une entrée de l'amplificateur représentant une entrée de l'extrémité avant du syntoniseur, et configuré pour recevoir ledit signal RF ayant de multiples canaux, pré-filtrer le signal amplifié (112) à l'aide d'un pré-filtre configurable dynamiquement (104) relié à une sortie de l'amplificateur de faible bruit (102), ledit pré-filtrage étant adapté pour filtrer tout sauf un sous-ensemble de canaux des multiples canaux, convertir le sous-ensemble de canaux provenant des multiples canaux en un signal numérique à bits multiples (118), dans lequel ladite conversion est exécutée à un taux d'échantillonnage qui est supérieur à deux fois la fréquence d'une fréquence la plus élevée du sous-ensemble de canaux provenant des multiples canaux ;et traiter numériquement le signal numérique à bits multiples afin d'obtenir des informations provenant d'un ou de plusieurs des canaux sélectionnés à l'intérieur du sous-ensemble de canaux provenant des multiples canaux.
- c-fr-01-0010Procédé selon la revendication 9, comprenant en outre une mise en forme du bruit du signal numérique à bits multiples (118).
- c-fr-01-0011Procédé selon la revendication 9 ou 10, dans lequel la conversion consiste à convertir le sous-ensemble de canaux en un signal de numérique entre 8 et 10 bits.
Independent claims11
128 paragraphs in 10 sections, as filed
CROSS REFERENCE TO RELATED APPLICATIONS
CROSS REFERENCE TO RELATED APPLICATIONS
0001This application claims the benefit under 35 U.S.C. § 119(e) to <patcit id="pcit0001" dnum="US53702504P"><text>U.S. Provisional Application No. 60/537,025, filed January 20, 2004</text></patcit>.
0001This application claims the benefit under 35 U.S.C. § 119(e) to <patcit id="pcit0001" dnum="US53702504P" dnum-type="L"><text>U.S. Provisional Application No. 60/537,025, filed January 20, 2004</text></patcit>.
BACKGROUND OF THE INVENTION
BACKGROUND OF THE INVENTION
Field of the Invention
Field of the Invention
0002The invention relates to tuners.
0002The invention relates to tuners.
Related Art
Related Art
0003Radio frequency (RF) tuners extract information from a selected channel within a spectrum of available channels. RF tuners are used in, for example, cable modems, satellite set top boxes, cable set top boxes, and the like. Document <patcit id="pcit0002" dnum="US6373418B1"><text>US6373418 B1</text></patcit> discloses a direct sampling receiver.
0003Radio frequency (RF) tuners extract information from a selected channel within a spectrum of available channels. RF tuners are used in, for example, cable modems, satellite set top boxes, cable set top boxes, and the like. Document <patcit id="pcit0002" dnum="US6373418B1"><text>US6373418 B1</text></patcit> discloses a direct sampling receiver.
0004What are needed, therefore, are improved methods and systems for tuning an RF signal.
0004What are needed, therefore, are improved methods and systems for tuning an RF signal.
SUMMARY OF THE INVENTION
SUMMARY OF THE INVENTION
0005The present invention is directed to improved methods and systems for tuning. More particularly, the invention relates to direct sampling tuners. The invention can be implemented in, for example, cable modems, satellite set top boxes, cable set top boxes, and the like. The present invention reduces or eliminates mixers, SAW filters, and other analog components.
0005The present invention is directed to improved methods and systems for tuning. More particularly, the invention relates to direct sampling tuners. The invention can be implemented in, for example, cable modems, satellite set top boxes, cable set top boxes, and the like. The present invention reduces or eliminates mixers, SAW filters, and other analog components.
0006The invention is defined in the claims.
0006The invention is defined in the claims.
0007According to the invention, a method for tuning an RF signal having one or more selected channels is provided, comprising: <ul><li>receiving multiple channels;</li><li>filtering all but a sub-set of channels from the multiple channels;</li><li>converting the sub-set of channels to a multi-bit digital signal, wherein said converting is performed at a sample rate that is greater than twice the frequency of a highest frequency in the sub-set of channels; and</li><li>digitally processing the multi-bit digital signal to obtain information from one or more selected channels within the sub-set of channels.</li></ul>
0007According to the invention, a method for tuning an RF signal having one or more selected channels is provided, comprising: <ul id="ul0001" list-style="none" compact="compact"><li>receiving multiple channels;</li><li>filtering all but a sub-set of channels from the multiple channels;</li><li>converting the sub-set of channels to a multi-bit digital signal, wherein said converting is performed at a sample rate that is greater than twice the frequency of a highest frequency in the sub-set of channels; and</li><li>digitally processing the multi-bit digital signal to obtain information from one or more selected channels within the sub-set of channels.</li></ul>
0008Advantageously, converting comprises converting the sub-set of channels to between an 8 to 10 bit digital signal.
0008Advantageously, converting comprises converting the sub-set of channels to between an 8 to 10 bit digital signal.
0009Advantageously, the method further comprises noise shaping the multi-bit digital signal.
0009Advantageously, the method further comprises noise shaping the multi-bit digital signal.
0010Advantageously, converting comprises converting the sub-set of channels to between an 8 to 10 bit digital signal.
0010Advantageously, converting comprises converting the sub-set of channels to between an 8 to 10 bit digital signal.
0011Advantageously, converting is performed at or above 1 GHz.
0011Advantageously, converting is performed at or above 1 GHz.
0012Advantageously, converting comprises interleaving.
0012Advantageously, converting comprises interleaving.
0013Advantageously, the digital processing comprises one or more of channel filtering, equalization, demodulation, decimation, and/or gain control.
0013Advantageously, the digital processing comprises one or more of channel filtering, equalization, demodulation, decimation, and/or gain control.
0014Additional features and advantages of the invention will be set forth in the description that follows. Yet further features and advantages will be apparent to a person skilled in the art based on the description set forth herein or may be learned by practice of the invention. It is to be understood that both the foregoing summary and the following detailed description are exemplary and explanatory, and are intended to provide further explanation of the invention as claimed.
0014Additional features and advantages of the invention will be set forth in the description that follows. Yet further features and advantages will be apparent to a person skilled in the art based on the description set forth herein or may be learned by practice of the invention. It is to be understood that both the foregoing summary and the following detailed description are exemplary and explanatory, and are intended to provide further explanation of the invention as claimed.
BRIEF DESCRIPTION OF THE DRAWINGS/FIGURES
BRIEF DESCRIPTION OF THE DRAWINGS/FIGURES
0015The present invention will be described with reference to the accompanying drawings, wherein like reference numbers may indicate identical or functionally similar elements. Also, the leftmost digit(s) of the reference numbers may identify the drawings in which the associated elements are first introduced. <figref idrefs="f0001">Figure 1</figref> is a block diagram of a direct sampling tuner, according to one embodiment of the present invention.
0015The present invention will be described with reference to the accompanying drawings, wherein like reference numbers may indicate identical or functionally similar elements. Also, the leftmost digit(s) of the reference numbers may identify the drawings in which the associated elements are first introduced. <figref idref="f0001">Figure 1</figref> is a block diagram of a direct sampling tuner, according to one embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
DETAILED DESCRIPTION OF THE INVENTION
Introduction
Introduction
0016The present invention is directed to improved methods and systems for tuning an RF signal. More particularly, the invention is directed to direct sampling tuning for, among other things, cable modems, satellite set top boxes, cable set top boxes, and the like. Direct sampling is performed at or above the Nyquist rate, or at a sub-sampling rate.
0016The present invention is directed to improved methods and systems for tuning an RF signal. More particularly, the invention is directed to direct sampling tuning for, among other things, cable modems, satellite set top boxes, cable set top boxes, and the like. Direct sampling is performed at or above the Nyquist rate, or at a sub-sampling rate.
0017Throughout this description "direct sampling" refers to sampling of a received signal, as opposed to systems that frequency down-convert a received signal prior to demodulation.
0017Throughout this description "direct sampling" refers to sampling of a received signal, as opposed to systems that frequency down-convert a received signal prior to demodulation.
0018The invention includes multiple features that can be implemented alone and/or in various combinations with one another.
0018The invention includes multiple features that can be implemented alone and/or in various combinations with one another.
Exemplary Tuners
Exemplary Tuners
0019Tuners discriminate between available channels by filtering out unwanted channels. It is generally impractical to filter at higher frequencies because the necessary filter agility and narrowness is prohibitively expensive at higher frequencies. Instead, conventional tuners mix received signals with a lower frequency clock signal to generate lower frequency replicas or images of the received signals. The lower frequency signals are then filtered to obtain the desired signal or channel. The desired signal or channel is then sampled or demodulated to extract the desired channel information therein.
0019Tuners discriminate between available channels by filtering out unwanted channels. It is generally impractical to filter at higher frequencies because the necessary filter agility and narrowness is prohibitively expensive at higher frequencies. Instead, conventional tuners mix received signals with a lower frequency clock signal to generate lower frequency replicas or images of the received signals. The lower frequency signals are then filtered to obtain the desired signal or channel. The desired signal or channel is then sampled or demodulated to extract the desired channel information therein.
0020Conventional tuners include heterodyne-based tuners (including super heterodyne-based tuners), which use mixers for the down-conversion process. Mixers essentially sample the modulated signal at less than the Nyquist rate. However, this can cause well known imaging problems. The imaging problems are typically overcome with SAW filters (standing acoustic wave filters). SAW filters have significant losses, so additional gain stages are required. The additional gain stages consume additional power and contribute to poor noise figures. In addition, non-ideal and non-uniform operating characteristics associated with these and other analog components in heterodyne-based tuners make component layout burdensome. For example, placement and interconnection of the SAW filters affect the overall performance of the tuner. As a result, heterodyne-based tuners tend to be expensive in terms of the number of components required, manufacturing efforts, and power consumption.
0020Conventional tuners include heterodyne-based tuners (including super heterodyne-based tuners), which use mixers for the down-conversion process. Mixers essentially sample the modulated signal at less than the Nyquist rate. However, this can cause well known imaging problems. The imaging problems are typically overcome with SAW filters (standing acoustic wave filters). SAW filters have significant losses, so additional gain stages are required. The additional gain stages consume additional power and contribute to poor noise figures. In addition, non-ideal and non-uniform operating characteristics associated with these and other analog components in heterodyne-based tuners make component layout burdensome. For example, placement and interconnection of the SAW filters affect the overall performance of the tuner. As a result, heterodyne-based tuners tend to be expensive in terms of the number of components required, manufacturing efforts, and power consumption.
0021Conventional tuners also include direct conversion and low IF (intermediate frequency) tuners, in which a mixer is utilized to convert a modulated signal directly to baseband or to a very low frequency. Direct conversion tuners avoid intermediate stages that are normally associated with heterodyne-based tuners, but they also utilize mixers. As a result, low IF tuners also suffer from images, which require significant down-stream correction circuitry. A problem in direct conversion tuners is harmonic mixing where harmonics of the local oscillator frequency mix undesired channels to a baseband on top of the channel of interest. This is especially a problem for broadband signals, such as cable and satellite.
0021Conventional tuners also include direct conversion and low IF (intermediate frequency) tuners, in which a mixer is utilized to convert a modulated signal directly to baseband or to a very low frequency. Direct conversion tuners avoid intermediate stages that are normally associated with heterodyne-based tuners, but they also utilize mixers. As a result, low IF tuners also suffer from images, which require significant down-stream correction circuitry. A problem in direct conversion tuners is harmonic mixing where harmonics of the local oscillator frequency mix undesired channels to a baseband on top of the channel of interest. This is especially a problem for broadband signals, such as cable and satellite.
Exemplary Direct Sampling Tuners
Exemplary Direct Sampling Tuners
0022<figref idrefs="f0001">FIG. 1</figref> is a block diagram of a tuner 100, according to one embodiment of the present invention. Tuner 100 includes a direct sampling analog-to-digital converter ("ADC") 106. The ADC 106 samples a signal 116 at a Nyquist frequency (i.e., greater than twice the frequency of the signal 116). As a result, image problems associated with conventional tuners are substantially eliminated.
0022<figref idref="f0001">FIG. 1</figref> is a block diagram of a tuner 100, according to one embodiment of the present invention. Tuner 100 includes a direct sampling analog-to-digital converter ("ADC") 106. The ADC 106 samples a signal 116 at a Nyquist frequency (i.e., greater than twice the frequency of the signal 116). As a result, image problems associated with conventional tuners are substantially eliminated.
0023A front end of the tuner 100 includes a low noise amplifier ("LNA") 102. The LNA 102 amplifies a received signal 112.
0023A front end of the tuner 100 includes a low noise amplifier ("LNA") 102. The LNA 102 amplifies a received signal 112.
0024The front end of the tuner 100 also includes a pre-filter 104. The pre-filter 104 is a dynamically configurable pre-filter, configured to pass a selected band of the amplified signal 112 to the ADC 106.
0024The front end of the tuner 100 also includes a pre-filter 104. The pre-filter 104 is a dynamically configurable pre-filter, configured to pass a selected band of the amplified signal 112 to the ADC 106.
0025In one example, the tuner 100 further includes a noise-shaping module 108, which improves the resolution of the output of the ADC 106.
0025In one example, the tuner 100 further includes a noise-shaping module 108, which improves the resolution of the output of the ADC 106.
0026tuner 100 further includes a digital signal processor ("DSP") 110. In one example, an entire band received at the ADC 106 is digitized so that multiple or desired channels of the band can be demodulated using the DSP 110.
0026tuner 100 further includes a digital signal processor ("DSP") 110. In one example, an entire band received at the ADC 106 is digitized so that multiple or desired channels of the band can be demodulated using the DSP 110.
0027In this embodiment, the tuner 100 eliminates many of the analog components of conventional tuners, such as mixers, SAW filters, and multiple power-consuming gain stages. This, in turn, reduces manufacturing efforts and component costs. The reduced number of analog components improves the manufacturability of the tuner 100 because digital systems can be manufactured in quantity without the system variabilities that come with analog manufacturing. The reduction of analog components also provides operational power savings over conventional tuners because frequency synthesizers, mixers, saw filters are not necessary. The reduced number of stages in the tuner 100 (i.e., the LNA 102 is substantially the only gain in the front end) provides improved noise figures.
0027In this embodiment, the tuner 100 eliminates many of the analog components of conventional tuners, such as mixers, SAW filters, and multiple power-consuming gain stages. This, in turn, reduces manufacturing efforts and component costs. The reduced number of analog components improves the manufacturability of the tuner 100 because digital systems can be manufactured in quantity without the system variabilities that come with analog manufacturing. The reduction of analog components also provides operational power savings over conventional tuners because frequency synthesizers, mixers, saw filters are not necessary. The reduced number of stages in the tuner 100 (i.e., the LNA 102 is substantially the only gain in the front end) provides improved noise figures.
Exemplary High Speed, High Resolution ADC
Exemplary High Speed, High Resolution ADC
0028In one example, the direct sampling ADC 106 is a high speed, high resolution ADC that effectively samples the entire spectrum of the signal 116 at the Nyquist rate.
0028In one example, the direct sampling ADC 106 is a high speed, high resolution ADC that effectively samples the entire spectrum of the signal 116 at the Nyquist rate.
0029For example, in a cable channel environment, where the highest frequency is typically around 860 MHz, the ADC 106 is operated at greater than 1720 MHz. Also, for example, in a satellite environment, where the frequency is about 2150 MHz, the ADC 106 is operated at greater than 4300 MHz. In one example, in order to operate the ADC 106 at one or more of these speeds, the ADC 106 is implemented in an open loop system, i.e., without feedback. In one example, corrections can be implemented downstream in the DSP 110.
0029For example, in a cable channel environment, where the highest frequency is typically around 860 MHz, the ADC 106 is operated at greater than 1720 MHz. Also, for example, in a satellite environment, where the frequency is about 2150 MHz, the ADC 106 is operated at greater than 4300 MHz. In one example, in order to operate the ADC 106 at one or more of these speeds, the ADC 106 is implemented in an open loop system, i.e., without feedback. In one example, corrections can be implemented downstream in the DSP 110.
0030The ADC 106 is a multi-bit ADC. In a cable channel environment the ADC 106 can be, for example, a 10 bit ADC, that can yield ENOB (effective number of bits) of 8 bits. ENOB is the measured performance (in bits) of the ADC 106 with respect to input frequency f<sub>IN</sub>. As f<sub>IN</sub> increases, overall noise (particularly the distortion components) also increases, thereby reducing the ENOB and SINAD (signal-to-noise and distortion ratio). ENOB is related to SINAD by the following equation: <maths id="math0001" num=""><math display="block"><mrow><mi>ENOB</mi><mo>=</mo><mfrac><mrow><mi>SINAD</mi><mo>−</mo><mn>1.76</mn></mrow><mn>6.02</mn></mfrac></mrow></math><img id="ib0001" file="imgb0001.tif" wi="46" he="10" img-content="math" img-format="tif" /></maths>
0030The ADC 106 is a multi-bit ADC. In a cable channel environment the ADC 106 can be, for example, a 10 bit ADC, that can yield ENOB (effective number of bits) of 8 bits. ENOB is the measured performance (in bits) of the ADC 106 with respect to input frequency f<sub>IN</sub>. As f<sub>IN</sub> increases, overall noise (particularly the distortion components) also increases, thereby reducing the ENOB and SINAD (signal-to-noise and distortion ratio). ENOB is related to SINAD by the following equation: <maths id="math0001" num=""><math display="block"><mrow><mi>ENOB</mi><mo>=</mo><mfrac><mrow><mi>SINAD</mi><mo>−</mo><mn>1.76</mn></mrow><mn>6.02</mn></mfrac></mrow></math><img file="EP1557958B1_D0001.tif" /></maths>
0031In a satellite environment, the ADC 106 can be a 12 bit ADC. As described below, noise shaping can be employed to reduce the number of bits in the ADC 106, without loss of accuracy.
0031In a satellite environment, the ADC 106 can be a 12 bit ADC. As described below, noise shaping can be employed to reduce the number of bits in the ADC 106, without loss of accuracy.
0032It is to be appreciated that the ADC 106 can be any number of bits, and respectively, any ENOB, depending on its application and/or environment.
0032It is to be appreciated that the ADC 106 can be any number of bits, and respectively, any ENOB, depending on its application and/or environment.
0033In various examples described below, the ADC 106 is implemented in one or more of a variety of ways.
0033In various examples described below, the ADC 106 is implemented in one or more of a variety of ways.
0034In one example, the ADC 106 is implemented as a flash ADC. Flash ADCs are well known to those skilled in the art. A Flash ADC uses a series of comparators with different threshold voltages to convert an analog signal to a digital output.
0034In one example, the ADC 106 is implemented as a flash ADC. Flash ADCs are well known to those skilled in the art. A Flash ADC uses a series of comparators with different threshold voltages to convert an analog signal to a digital output.
0035In one example, the ADC 106 is implemented as a sample and hold circuit. Such a sample and hold can be implemented with 2<sup>n</sup> comparators, where n represents the number of bits in the ADC 106. Sample and hold circuits and comparators are well known to those skilled in the art.
0035In one example, the ADC 106 is implemented as a sample and hold circuit. Such a sample and hold can be implemented with 2<sup>n</sup> comparators, where n represents the number of bits in the ADC 106. Sample and hold circuits and comparators are well known to those skilled in the art.
0036Another example implementation for the ADC 106 is a pipeline ADC or subranging quantizer. Pipeline ADCs are well know to those skilled in the art. A pipeline ADC uses two or more steps of subranging. First, a coarse conversion is done. In a second step, the difference to the input signal is determined with a digital to analog converter (DAC). This difference is then converted finer, and the results are combined in a last step. This type of ADC is fast, has a high resolution and only requires a small die size. As another explanation, pipeline ADCs consist of numerous consecutive stages, each containing a track/hold (T/H), a low-resolution ADC and DAC, and a summing circuit that includes an interstage amplifier to provide gain.
0036Another example implementation for the ADC 106 is a pipeline ADC or subranging quantizer. Pipeline ADCs are well know to those skilled in the art. A pipeline ADC uses two or more steps of subranging. First, a coarse conversion is done. In a second step, the difference to the input signal is determined with a digital to analog converter (DAC). This difference is then converted finer, and the results are combined in a last step. This type of ADC is fast, has a high resolution and only requires a small die size. As another explanation, pipeline ADCs consist of numerous consecutive stages, each containing a track/hold (T/H), a low-resolution ADC and DAC, and a summing circuit that includes an interstage amplifier to provide gain.
0037In one example, the ADC 106 "sub-samples" the signal 116. Sub-sampling refers to sampling of the signal 116 at less than the Nyquist rate with respect to the carrier frequency of the signal 116, but at the Nyquist rate with respect to the information modulated thereon. For example, for channel having a carrier frequency at 860 MHz, the bandwidth of the channel is typically in the range of 6 Mhz wide. Thus, while the ADC 106 sub-samples the carrier, it over samples the modulating information.
0037In one example, the ADC 106 "sub-samples" the signal 116. Sub-sampling refers to sampling of the signal 116 at less than the Nyquist rate with respect to the carrier frequency of the signal 116, but at the Nyquist rate with respect to the information modulated thereon. For example, for channel having a carrier frequency at 860 MHz, the bandwidth of the channel is typically in the range of 6 Mhz wide. Thus, while the ADC 106 sub-samples the carrier, it over samples the modulating information.
0038The ADC 106 outputs samples 118, which are processed digitally in the DSP 110 to extract the information from a desired channel. The DSP 110 performs one or more of a variety of operations on the sampled information, as described below.
0038The ADC 106 outputs samples 118, which are processed digitally in the DSP 110 to extract the information from a desired channel. The DSP 110 performs one or more of a variety of operations on the sampled information, as described below.
0039The ADC 106 is optionally implemented in an interleaved fashion as described in, for example, U.S. Patent Application Serial No. <patcit id="pcit0003" dnum="US10085071B"><text>10/085,071</text></patcit> ("the '071 Application") (that published June 27, 2002 as <patcit id="pcit0004" dnum="US20020080898A1"><text>U.S. Published Application No. 2002-0080898 A1</text></patcit>), entitled, "Methods and Systems for DSP Based Receivers," filed on March 1, 2002, and incorporated herein by reference in its entirety.
0039The ADC 106 is optionally implemented in an interleaved fashion as described in, for example, U.S. Patent Application Serial No. <patcit id="pcit0003" dnum="US10085071B"><text>10/085,071</text></patcit> ("the '071 Application") (that published June 27, 2002 as <patcit id="pcit0004" dnum="US20020080898A1" dnum-type="L"><text>U.S. Published Application No. 2002-0080898 A1</text></patcit>), entitled, "Methods and Systems for DSP Based Receivers," filed on March 1, 2002, and incorporated herein by reference in its entirety.
LNA and Optional Pre-Filter
LNA and Optional Pre-Filter
0040The received signal 112 is typically a relatively weak signal. The LNA 102 increases the amplitude and/or power of the signal 112 so that it can be processed within the tuner 100. For example, the LNA can be designed to bring the signal 112 up to about 1 volt so that its big enough to fill substantially all the codes in the ADC 106. ADC codes are well known to those skilled in the relevant art.
0040The received signal 112 is typically a relatively weak signal. The LNA 102 increases the amplitude and/or power of the signal 112 so that it can be processed within the tuner 100. For example, the LNA can be designed to bring the signal 112 up to about 1 volt so that its big enough to fill substantially all the codes in the ADC 106. ADC codes are well known to those skilled in the relevant art.
0041Optional pre-filter 104 is utilized to reduce the complexity of the ADC 106. As described above, the ADC 106 samples the spectrum of the signal 116. When the optional pre-filter 104 is omitted, the spectrum of signal 116 is effectively the spectrum of a received signal 112. Omission of the pre-filter 104 is typically suitable when the spectrum of interest in the received signal 112 is relatively narrow or when you want to demodulate multiple channels. When the spectrum of interest in signal 112 is relatively broad, however, the pre-filter 104 is optionally utilized to reduce the spectrum sampled by the ADC 106.
0041Optional pre-filter 104 is utilized to reduce the complexity of the ADC 106. As described above, the ADC 106 samples the spectrum of the signal 116. When the optional pre-filter 104 is omitted, the spectrum of signal 116 is effectively the spectrum of a received signal 112. Omission of the pre-filter 104 is typically suitable when the spectrum of interest in the received signal 112 is relatively narrow or when you want to demodulate multiple channels. When the spectrum of interest in signal 112 is relatively broad, however, the pre-filter 104 is optionally utilized to reduce the spectrum sampled by the ADC 106.
0042For example, in a cable tuner environment, there can be up to 135 channels, or more, within the signal 112. The pre-filter 104 is optionally implemented as a dynamically configurable band pass filter that passes a selectable band of interest, or sub-set of the channels, to the ADC 106. This reduces the linearity, dynamic range, and number of bits required of the ADC 106. In other words, pre-filter 104 reduces the required complexity of the ADC 106.
0042For example, in a cable tuner environment, there can be up to 135 channels, or more, within the signal 112. The pre-filter 104 is optionally implemented as a dynamically configurable band pass filter that passes a selectable band of interest, or sub-set of the channels, to the ADC 106. This reduces the linearity, dynamic range, and number of bits required of the ADC 106. In other words, pre-filter 104 reduces the required complexity of the ADC 106.
0043In one example, the pre-filter 104 can be implemented as a digitally selectable bank of filters, each filter having a different pass band.
0043In one example, the pre-filter 104 can be implemented as a digitally selectable bank of filters, each filter having a different pass band.
0044The pre-filter 104 provides the selected sub-set of channels, to the ADC 106, which directly samples the selected band of interest. The samples are then processed by the DSP 110 to decode information from one or more selected channels.
0044The pre-filter 104 provides the selected sub-set of channels, to the ADC 106, which directly samples the selected band of interest. The samples are then processed by the DSP 110 to decode information from one or more selected channels.
0045In one example, the pre-filter 104 and the LNA 102 are integrated on a same integrated circuit chip. In other examples, the circuit chip can also include additional elements illustrated in <figref idrefs="f0001">FIG. 1</figref>.
0045In one example, the pre-filter 104 and the LNA 102 are integrated on a same integrated circuit chip. In other examples, the circuit chip can also include additional elements illustrated in <figref idref="f0001">FIG. 1</figref>.
0046In one example, the LNA 102 includes autonomous gain control, which will keep the output 114 at a relatively fixed voltage level so that substantially all the codes in the ADC 106 are filled.
0046In one example, the LNA 102 includes autonomous gain control, which will keep the output 114 at a relatively fixed voltage level so that substantially all the codes in the ADC 106 are filled.
Optional Noise Shaping
Optional Noise Shaping
0047In one example, noise shaping module 108 performs noise shaping on the output bits 118 of the ADC 106. This allows the ADC 106 to be implemented with fewer bits without loss of accuracy. For example, when X bits are desired (X=1, 2, 3, ...) the ADC 106 is implemented as a X-Y bit ADC (Y=1, 2, 3, but is always less than X) along with noise shaping module 108.
0047In one example, noise shaping module 108 performs noise shaping on the output bits 118 of the ADC 106. This allows the ADC 106 to be implemented with fewer bits without loss of accuracy. For example, when X bits are desired (X=1, 2, 3, ...) the ADC 106 is implemented as a X-Y bit ADC (Y=1, 2, 3, but is always less than X) along with noise shaping module 108.
0048In one example, noise shaping is performed on very low bit samplers, such as 1 or 2 bit samplers. In order to perform noise shaping on higher bit samplers, a relatively high accuracy digital to analog converter ("DAC") is needed in the noise-shaping module 108. In other words, noise shaping is performed to a relatively high resolution.
0048In one example, noise shaping is performed on very low bit samplers, such as 1 or 2 bit samplers. In order to perform noise shaping on higher bit samplers, a relatively high accuracy digital to analog converter ("DAC") is needed in the noise-shaping module 108. In other words, noise shaping is performed to a relatively high resolution.
Digital Signal Processing
Digital Signal Processing
0049The DSP 110 can be implemented in one or more of a variety of ways and with one or more of a variety of features. For example, and without limitation, the DSP 110 can perform one or more of: channel filtering, equalization, demodulation, decimation, and/or gain control.
0049The DSP 110 can be implemented in one or more of a variety of ways and with one or more of a variety of features. For example, and without limitation, the DSP 110 can perform one or more of: channel filtering, equalization, demodulation, decimation, and/or gain control.
0050In the example using the noise-shaping module 108, in one example the noise shaping module is incorporated within the DSP 110.
0050In the example using the noise-shaping module 108, in one example the noise shaping module is incorporated within the DSP 110.
0051In one example, the LNA 102 and/or the pre-filter 104 can be implemented on a chip with the DSP 110.
0051In one example, the LNA 102 and/or the pre-filter 104 can be implemented on a chip with the DSP 110.
0052Additional features that can be implemented in the DSP 110, alone and/or in various combinations with one another, are taught in, for example, the '071 application, which is discussed above.
0052Additional features that can be implemented in the DSP 110, alone and/or in various combinations with one another, are taught in, for example, the '071 application, which is discussed above.
Conclusions
Conclusions
0053The present invention has been described above with the aid of functional building blocks illustrating the performance of specified functions and relationships thereof. The boundaries of these functional building blocks have been arbitrarily defined herein for the convenience of the description. Alternate boundaries can be defined so long as the specified functions and relationships thereof are appropriately performed. Any such alternate boundaries are thus within the scope of the claimed invention. One skilled in the art will recognize that these functional building blocks can be implemented by discrete components, application specific integrated circuits, processors executing appropriate software and the like and combinations thereof.
0053The present invention has been described above with the aid of functional building blocks illustrating the performance of specified functions and relationships thereof. The boundaries of these functional building blocks have been arbitrarily defined herein for the convenience of the description. Alternate boundaries can be defined so long as the specified functions and relationships thereof are appropriately performed. Any such alternate boundaries are thus within the scope of the claimed invention. One skilled in the art will recognize that these functional building blocks can be implemented by discrete components, application specific integrated circuits, processors executing appropriate software and the like and combinations thereof.
0054While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only, and not limitation. Thus, the breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims.
0054While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only, and not limitation. Thus, the breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims.
Contents10
2 sheets
Sheet 1 Sheet 2
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| US5339459A | Cites | United States of America | Examiner |
| US6373418B1 | Cites | United States of America | Examiner |
| WO9639750A1 | Cites | World Intellectual Property Organization (WIPO) | Examiner |
| WO2004068731A | Cites | World Intellectual Property Organization (WIPO) | – |
| WO9639750A1 | Cites | World Intellectual Property Organization (WIPO) | – |
| US5339459A | Cites | United States of America | – |
| US5963856A | Cites | United States of America | – |
| US6373418B1 | Cites | United States of America | – |
| ARNDT M ET AL: "SOFTWARE RADIO: THE CHALLENGES FOR RECONFIGURABLE TERMINALS LA RADIO LOGICIELLE: LES ENJEUX POUR DES TERMINAUX RECONFIGURABLES" ANNALES DES TELECOMMUNICATIONS - ANNALS OF TELECOMMUNICATIONS, PRESSES POLYTECHNIQUES ET UNIVERSITAIRES ROMANDES, LAUSANNE, CH, vol. 57, no. 7/8, July 2002 (2002-07), pages 570-612, XP001124779 ISSN: 0003-4347 | Non-patent | – | – |
15 members in 4 offices
Priority claims8
| Document | Office | Kind | Date |
|---|---|---|---|
| 537025P | United States of America | – | |
| 53702504 | United States of America | P | |
| 952168 | United States of America | – | |
| 95216804 | United States of America | A | |
| 537025P | – | – | – |
| 952168 | – | – | – |
| US20040537025P | – | – | – |
| US20040952168 | – | – | – |
Members15
| Document | Office | Kind | |
|---|---|---|---|
| US2005157818A1 | United States of America | A1 | |
| EP1557957A1 | European Patent Office (EPO) | A1 | |
| EP1557958A1 | European Patent Office (EPO) | A1 | |
| CN1655450A | China | A | |
| TW200536314A | Taiwan Province of China | A | |
| TWI262687B | Taiwan Province of China | B | |
| US7522901B2 | United States of America | B2 | |
| US2009181629A1 | United States of America | A1 | |
| US7970373B2 | United States of America | B2 | |
| US2011280297A1 | United States of America | A1 | |
| CN1655450B | China | B | |
| US8670740B2 | United States of America | B2 | |
| US2014128015A1 | United States of America | A1 | |
| EP1557958B1This record | European Patent Office (EPO) | B1 | |
| EP1557957B1 | European Patent Office (EPO) | B1 |
29 legal events, as 4 offices reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | Office | |
|---|---|---|---|
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Application deemed withdrawn, or ip right lapsed, due to non-payment of renewal feeWithdrawnR119 | R119 | DE | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Change of applicant/patenteeR081 | R081 | DE | |
| Change of representativeR082 | R082 | DE | |
| Notification of lapseLapsedST | ST | FR | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Gb: european patent ceased through non-payment of renewal feeCeasedGBPC | GBPC | EP | |
| No opposition filedOpposition26N | 26N | EP | |
| No opposition filed within time limitOppositionORIGINAL CODE: 0009261PLBE | PLBE | EP | |
| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: NO OPPOSITION FILED WITHIN TIME LIMITSTAA | STAA | EP | |
| No opposition filed against granted patent, or epo opposition proceedings concluded without decisionGrantedR097 | R097 | DE | |
| Dpma publication of mentioned ep patent grantGrantedR096 | R096 | DE | |
| Designated contracting statesAK | AK | EP | |
| European patent grantedGrantedFG4D | FG4D | GB | |
| Change of applicant/patenteeR081 | R081 | DE | |
| (expected) grantORIGINAL CODE: 0009210GRAA | GRAA | EP | |
| Grant fee paidORIGINAL CODE: EPIDOSNIGR3GRAS | GRAS | EP | |
| Intention to grant announcedINTG | INTG | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| First examination report despatched17Q | 17Q | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP1 | RAP1 | EP | |
| Designation fees paidAKX | AKX | EP | |
| Request for examination filed17P | 17P | EP | |
| Designated contracting statesAK | AK | EP | |
| Request for extension of the european patentAX | AX | EP | |
| Public reference made under article 153(3) epc to a published international application that has entered the european phaseORIGINAL CODE: 0009012PUAI | PUAI | EP |
Numbers
- Publication
- 1557958
- Publication, DOCDB
- 1557958
- Publication, EPODOC
- EP1557958
- Application
- 50008127
- Application, DOCDB
- 05000812
- Application, EPODOC
- EP20050000812
Titles3
- German
- Digitaler direkt umwandelnder Radioempfänger und Verfahren zu dessen Benutzung
- English
- Direct digital conversion tuner and method for using same
- French
- Récepteur de radio à transformation directe et procédé pour son utilisation
Classification
- CPC, 4
- H03J3/26
- H03G3/3042
- H04B1/0003
- H04B1/28
- IPC, 1
- H04B1 28
Designated states1
- Contracting states, 1
- United Kingdom
