The present invention generally relates to modulating radio frequency (RF) signals and, more particularly, to methods and apparatus for hierarchical modulation.
Hierarchical modulation is a modulation scheme wherein two signals with possibly different modulations are added together to generate a transmission signal. These two signals are referred to herein as the upper layer (UL) signal and the lower layer (LL) signal.
At the receiver, the received signal has a UL signal component and a LL signal component, i.e., the received signal is a combination of the upper and lower layers, and the receiver processes the received signal to recover therefrom the upper layer data (conveyed in the UL signal component) and the lower layer data (conveyed in the LL signal component). With respect to recovery of the upper layer data, the receiver simply demodulates and processes the received signal as if it were only composed of the UL signal component plus channel noise—in effect treating the LL signal component of the received signal as noise. Unfortunately, this extra noise may degrade the performance of the UL receiver.
The problem stated above may be reduced, if not eliminated, by the present invention, which is directed to a method and apparatus for hierarchical modulation with a radial constellation.
According to an illustrative embodiment of the inventive concept, a hierarchical modulator employs a radial-type Quadrature Phase-Shift Keying-Binary Phase Shift Keying (QPSK-BPSK) constellation.
According to another embodiment of the inventive concept, there is provided a method for hierarchical modulation relating to a first signal and a second signal. In particular, the first signal is mapped to a QPSK symbol constellation and the second signal is mapped to a BPSK symbol constellation. The first and second signals are then combined such that the resulting symbol constellation is a radial-type QPSK-BPSK constellation.
According to another embodiment of the inventive concept, an apparatus for hierarchical modulation includes a mapping module for mapping a first signal and a second signal to symbols of a radial-type QPSK-BPSK constellation.
According to another embodiment of the inventive concept, a receiver includes a hierarchical demodulator that uses a radial-type constellation to recover the upper layer and lower layer signals.
According to yet another aspect of the present invention, there is provided a program storage device readable by machine, tangibly embodying a program of instructions executable by the machine to perform method steps for hierarchical modulation relating to a first signal and a second signal. In particular, the first signal is mapped to a QPSK symbol constellation and the second signal is mapped to a BPSK symbol constellation. The first and second signals are then combined such that the resulting symbol constellation is a radial-type QPSK-BPSK constellation.
These and other aspects, features and advantages of the present invention will become apparent from the following detailed description of preferred embodiments, which is to be read in connection with the accompanying drawings.
Other than the inventive concept, the elements shown in the figures are well known and will not be described in detail. Also, familiarity with satellite-based systems is assumed and is not described in detail herein. For example, other than the inventive concept, satellite transponders, downlink signals, symbol constellations, a radio-frequency (rf) front-end, or receiver section, such as a low noise block down-converter, hierarchical modulator, hierarchical demodulator, formatting and source encoding methods (such as Moving Picture Expert Group (MPEG)-2 Systems Standard (ISO/IEC 13818-1)) for generating transport bit streams and decoding methods such as log-likelihood ratios, soft-input-soft-output (SISO) decoders, Viterbi decoders are well-known and not described herein. In addition, the inventive concept may be implemented using conventional programming techniques, which, as such, will not be described herein. Finally, like-numbers on the figures represent similar elements.
The present invention is directed to methods and apparatus for hierarchical modulation with radial-type constellations. It is to be understood that the present invention may be implemented in various forms of hardware, software, firmware, special purpose processors, or a combination thereof. Preferably, the present invention is implemented as a combination of hardware and software. Moreover, the software is preferably implemented as an application program tangibly embodied on a program storage device. The application program may be uploaded to, and executed by, a machine comprising any suitable architecture. Preferably, the machine is implemented on a computer platform having hardware such as one or more central processing units (CPU), a random access memory (RAM), and input/output (I/O) interface(s). The computer platform also includes an operating system and microinstruction code. The various processes and functions described herein may either be part of the microinstruction code or part of the application program (or a combination thereof) that is executed via the operating system. In addition, various other peripheral devices may be connected to the computer platform such as an additional data storage device and a printing device.
It is to be further understood that, because some of the constituent system components and method steps depicted in the accompanying figures are preferably implemented in software, the actual connections between the system components (or the process steps) may differ depending upon the manner in which the present invention is programmed. Given the teachings herein, one of ordinary skill in the related art will be able to contemplate these and similar implementations or configurations of the present invention.
Hierarchical modulation is a modulation scheme wherein two signals with possibly different modulations are added together to generate a signal for transmission. For illustration purposes, a specific kind of hierarchical modulation is described herein, wherein a constellation (e.g., a mini-constellation) replaces each symbol of an original QPSK constellation. This constellation may be, but is not limited to, Binary Phase-Shift Keying (BPSK). The original QPSK signal is referred to as the upper layer (UL) signal, and the signal that is carried by the mini-constellation(s) is referred to as the lower layer (LL) signal. It is to be appreciated that the present invention is not limited to solely the modulation and constellation types and arrangements shown and described herein and, thus, other modulation and constellation types and arrangements may also be utilized in accordance with the present invention, while maintaining the spirit of the present invention.
Turning now to
Referring now to
UL data and LL data are input to UL encoder 305 and LL encoder 310, respectively, for encoding (step 505 of
The magnitude of the signal from mapper 315 is adjusted by multiplier 320 and pulse shaped by pulse shaping filter 325 (step 520 of
Another view of a transmitter in accordance with the principles of the invention is shown in
Turning now to
Illustrative simulation results comparing the illustrative radial-type constellation of
The simulations involve hierarchical QPSK-BPSK, with non-uniform 8PSK constellations having 15.5° (
In accordance with a feature of the invention, a radial-type constellation facilitates carrier recovery, while carrier recovery in a non-uniform 8PSK of the prior art is affected by the separation angle between the two constellation points within one quadrant. On the other hand, the radial-type constellation limits the performance of the upper layer, which may result in a higher PSNR (peak symbol energy to noise ratio) to satisfy both the upper and lower layer BER requirements. It should be noted that when an existing legacy receiver sets a limit on the separation angle, the radial-type constellation may be used to reduce the PSNR requirement. For example, if a legacy receiver requires that the separation angle be less than or equal to 12.0 degrees, then the radial type constellation that corresponds to a 13.2 degree non-uniform 8PSK constellation can be used to reduce the system PSNR requirement.
Although the illustrative embodiments have been described herein with reference to the accompanying drawings, it is to be understood that the present invention is not limited to those precise embodiments, and that various other changes and modifications may be affected therein by one of ordinary skill in the related art without departing from the scope or spirit of the invention. All such changes and modifications are intended to be included within the scope of the invention as defined by the appended claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/US04/22780 | 7/15/2004 | WO | 00 | 2/10/2006 |
Number | Date | Country | |
---|---|---|---|
60496470 | Aug 2003 | US |