1. Field of the Invention
The present invention generally relates to automatic gain control (AGC) for apparatuses such as television signal receivers, and more particularly, to an apparatus and method for providing AGC that avoids excessive tuner gain reduction and compensates for interference from both analog and digital signals.
2. Background Information
Apparatuses such as television signal receivers use AGC to control the gain of a tuner in order to maintain the amplitude of the tuner's output signal at a relatively constant level. One problem associated with current AGC techniques may occur when a relatively weak desired signal is being received in the presence of much stronger undesired adjacent signals that overload the tuner and interfere with the reception of the desired signal.
The aforementioned problem is particularly applicable to television signal receivers capable of receiving both analog and digital signals. Prior to the introduction of digital television, adjacent channel frequencies were never assigned in the same geographical area. This practice, in the vast majority of cases, prevented interference from adjacent channel frequencies. With the introduction of digital television, however, it was required that adjacent channels be used such that both analog and digital signals could be transmitted during a transition period until virtually all television signal receivers are replaced with new units capable of digital reception. As a result, a relatively weak desired analog or digital television signal may suffer interference from stronger undesired adjacent analog or digital signals.
Known AGC techniques detect the presence of stronger undesired adjacent signals and compensate for them by reducing the gain of the tuner. In certain cases, however, the tuner gain may be reduced to a very low level such that the desired signal is below a critical level for proper demodulation. For example, in cases where the undesired adjacent signals are 20 to 40 dB stronger than the desired signal, known AGC techniques often reduce the tuner gain to a level that prevents proper demodulation. Known AGC techniques are also deficient in that they fail to make adequate provision for interference from both digital and analog signals.
Accordingly, there is a need for an apparatus and method for providing AGC that addresses the foregoing problems, and thereby avoids excessive tuner gain reduction and compensates for interference from both analog and digital signals. The present invention addresses these and/or other issues.
In accordance with an aspect of the present invention, signal processing apparatus is disclosed. According to an exemplary embodiment, the signal processing apparatus comprises tuning means for tuning an RF signal to generate an IF signal. First filtering means filter the IF signal to generate a filtered IF signal. AGC detecting means enables generation of an AGC signal for the tuning means responsive to the filtered IF signal. The AGC detecting means includes second filtering means for attenuating a predetermined carrier frequency.
In accordance with another aspect of the present invention, a method for providing AGC is disclosed. According to an exemplary embodiment, the method comprises steps of using a tuner to tune an RF signal to generate an IF signal, filtering the IF signal to generate a filtered IF signal, generating an AGC signal responsive to the filtered IF signal, wherein the generating step includes attenuating a predetermined carrier frequency, and providing the AGC signal to the tuner.
In accordance with still another aspect of the present invention, a television signal receiver is disclosed. According to an exemplary embodiment, the television signal receiver comprises a tuner operative to tune an RF signal to generate an IF signal. A first filter is operative to filter the IF signal to generate a filtered IF signal. An AGC detector is operative to enable generation of an AGC signal for the tuner responsive to the filtered IF signal. The AGC detector includes a second filter operative to attenuate a predetermined carrier frequency.
The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
The exemplifications set out herein illustrate preferred embodiments of the invention, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
Referring now to the drawings, and more particularly to
As shown in
Tuner 10 is operative to perform a signal tuning function. According to an exemplary embodiment, tuner 10 receives an RF input signal from a signal source such as a terrestrial, cable, satellite, internet and/or other signal source, and performs the signal tuning function by filtering and frequency downconverting (i.e., single or multiple stage downconversion) the RF input signal to thereby generate an IF signal between 41 and 47 MHz. This IF signal is represented at Point A in
SAW filter 20 is operative to filter the IF signal provided from tuner 10 to thereby generate differential, filtered IF signals. These filtered IF signals are represented at Point B in
AGC detector 30 is operative to sample a predetermined signal and enable generation of an RF AGC signal for tuner 10. According to the exemplary embodiment of
AGC processing block 40 is operative to perform processing functions associated with generating the RF AGC signal for tuner 10. According to an exemplary embodiment, AGC processing block 40 performs functions including, but not limited to, monitoring thresholds above which gain reduction begins, and adjusting AGC speed. AGC processing block 40 may for example be implemented using an IC such as a NXT2004 manufactured by ATI. However, with respect to the inventive concepts of the present invention, AGC processing block 40 is not required. Accordingly, the output signal of AGC detector 30 could be directly applied to tuner 10 as the RF AGC signal.
Amplifier 50 is operative to amplify the filtered IF signals provided from SAW filter 20 to thereby generate an amplified IF signal. SAW filter 60 is operative to filter the amplified IF signal provided from amplifier 50 to thereby generate another set of differential, filtered IF signals for demodulation and further processing.
Demodulation and processing block 70 is operative to demodulate and further process (e.g., decode, etc.) the differential, filtered IF signals provided from SAW filter 60 to thereby generate demodulated audio and/or video signals for output. According to an exemplary embodiment, demodulation and processing block 70 is operative to perform various different types of signal demodulation including analog demodulation (e.g., NTSC, PAL, SECAM, etc.) and digital demodulation (e.g., ATSC, QAM, etc.), as well as various types of signal decoding including analog decoding (e.g., NTSC, PAL, SECAM, etc.) and digital decoding (e.g., MPEG, etc.).
Audio processing and speakers block 80 is operative to process the demodulated audio signals provided from demodulation and processing block 70 and provide an audio output. Video display 90 is operative to provide a video display corresponding to the demodulated video signals provided from demodulation and processing block 70.
Referring to
As shown in
By controlling the frequency response of SAW filter 20 and providing trap filter 35 as described above, the resulting RF AGC signal applied to tuner 10 is not only optimized to prevent overload of a much greater variation of interfering signal levels, but is also optimized for both analog and digital interfering signals. The benefits of the present invention are evident from the frequency response graph of
Referring to
Referring to
At step 410, signal processing apparatus 100 tunes an RF signal to generate a corresponding IF signal. According to an exemplary embodiment, tuner 10 receives an RF input signal from a signal source such as a terrestrial, cable, satellite, internet and/or other signal source, and performs the signal tuning function by filtering and frequency downconverting (i.e., single or multiple stage downconversion) the RF input signal to thereby generate an IF signal between 41 and 47 MHz, at step 410. This IF signal is represented at Point A in
At step 420, signal processing apparatus 100 filters the IF signal to generate filtered IF signals. According to an exemplary embodiment, SAW filter 20 filters the IF signal generated by tuner 10 at step 410 to thereby generate differential, filtered IF signals at step 420. These filtered IF signals are represented at Point B in
At step 430, signal processing apparatus 100 generates an AGC signal responsive to one of the filtered IF signals by attenuating a predetermined carrier frequency. According to an exemplary embodiment, AGC detector 30 samples one of the differential, filtered IF signals generated by SAW filter 20 at step 420 and generates an output signal which enables generation of the RF AGC signal at step 430. As previously indicated herein, AGC detector 30 includes trap filter 35 which attenuates the 47.25 MHz analog sound carrier and thereby controls analog adjacent channel interference. The AGC signal generated at step 430 may be the direct output of AGC detector 30, or may be the output of AGC processing block 40 as previously described herein.
At step 440, signal processing apparatus 100 provides the AGC signal to its tuner 10. According to an exemplary embodiment, the AGC signal generated at step 430 is provided to tuner 10 from either AGC detector 30 or AGC processing block 40 depending on the particular embodiment. The AGC signal in turn controls the gain of tuner 10 and thereby facilitates the RF AGC function of signal processing apparatus 100.
As described herein, the present invention provides an apparatus and method for providing AGC that avoids excessive tuner gain reduction and compensates for interference from both analog and digital signals. The present invention may be applicable to various apparatuses, either with or without a display device. Accordingly, the phrases “signal processing apparatus” and “television signal receiver” as used herein may refer to systems or apparatuses including, but not limited to, television sets, computers or monitors that include a display device, and systems or apparatuses such as set-top boxes, video cassette recorders (VCRs), digital versatile disk (DVD) players, video game boxes, personal video recorders (PVRs), radios, computers or other apparatuses that may not include a display device.
While this invention has been described as having a preferred design, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/US04/41855 | 12/14/2004 | WO | 5/10/2006 |
Number | Date | Country | |
---|---|---|---|
60531727 | Dec 2003 | US |