This invention relates generally to digital radios and, more particularly, to performance enhancement of the digital radio in response to increasing functionality.
At the present time, digital radio systems employ a multiplicity of formats for broadcast band transmission. The common factor of the digital radio broadcast band is the inclusion of at least one digitally modulated-channel in the transmitted broadcast band. Because the broadcast band transmission can include both digital- and analog-encoded signals, the digital radio can be required to demodulate and decode both types of modulated signals simultaneously.
Referring to
In addition to the already computation-intensive demodulation and processing unit of the digital radio, increased functionality is being added to the digital radio. Even without the increased functionality requirement, the processing capabilities are close to being fully utilized. The Texas Instruments digital signal processor (DSP) using a C64X core can operate at 500 MHz (millions of clock cycles per second). In automotive applications, the processor must furthermore operate in a large ambient temperature range that compromises the DSP performance. Substantially all of this processing capability is used in routine demodulation/processing of the broadcast band, for example in implementing the fast Fourier transform and other computationally-intense algorithms. If audio processing applications, such as equalization, are included in the digital radio, an additional 50 MHz can be required. Similarly, when the digital radio is required to process MP3 files, an additional 50 MHz is required. As will be clear, as further functionality, such as automotive dual zone audio (i.e., dual zone meaning that some passengers can listen to one program while other passengers can listen to a second program) becomes common, additional performance is required.
A need has therefore been felt for apparatus and an associated method having the feature that processing capability of a digital radio can be increased. It would be another feature of the apparatus and associated method to provide increased performance in a digital radio without designing a new processor. It would be yet another feature of the present invention to provide increased performance in a digital radio while retaining the software that has already been developed for the demodulation/processing unit.
The aforementioned and other features are accomplished, according to the present invention, by providing in the digital radio an audio postprocessor coupled to the output of the demodulation/processing unit. The audio postprocessor permits the demodulation/processing unit to off-load selected repetitious procedures used in processing the audio signal stream. The use of an audio postprocessor in the digital radio allows much of the software already developed to be retained, selected portions of the processing being transferred to the audio postprocessor.
Other features and advantages of the present invention will be more clearly understood upon reading of the following description and the accompanying drawings and claims.
1. Detailed Description of the Drawings
Referring to
Operation of the Preferred Embodiment
The present invention provides for the inclusion in a digital radio of audio postprocessor unit to assist in processing. The postprocessor unit permits the demodulation/processing unit of the digital radio to off-load hardware-intensive processing (e.g., such as equalization) of the audio signal reconstructed from transmitted by the broadcast band. By using the postprocessor unit 21, much of the original software can be utilized. As will be clear from
While the invention has been described with respect to the embodiments set forth above, the invention is not necessarily limited to these embodiments. Accordingly, other embodiment variations, and improvements not described herein, are not necessarily excluded from the scope of the invention, the scope of the invention being defined by the following claims.