This invention relates to the field of digital frequency modulation (FM), and in particular to a digital FM radio transmitter.
In OEM bluetooth hands-free car kit applications, a bluetooth transceiver/voice processor is usually pre-wired to car stereo speakers. However, in aftermarket applications, either the car electronic system has to be modified or an additional speaker has to be placed in the car. Both these methods are cumbersome as they generally have to be performed by a qualified car-electronic technician. To avoid this problem, some bluetooth hands-free car kit manufacturers use a short range FM transmitter to broadcast voice and music from the bluetooth hands-free car kit to the car stereo. This solution uses one of many off-the-shelf FM transmitters.
Such transmitters are based on analog technology where the carrier frequency is changed by changing a capacitance of an LC oscillator (L-inductor, C-capacitor). The capacitance of the LC oscillator is changed by changing the bias voltage of a varactor diode with a trimmer potentiometer. Because the frequency of LC based oscillators is very sensitive to temperature and aging and because the temperature in the car can vary by as much as 50° C. (the car left on the sun vs. car with air-conditioning on), the carrier frequency of these FM transmitters can drift by as much as 10%. Hence, FM transmitters require very frequent retuning, making them not very useful for in-car applications. These solutions also require a voice/music signal in analog domain or a Digital-to-Analog (D/A) Converter to convert a voice/music signal from the digital to analog domain in systems where voice/music is stored, processed and transmitted digitally.
In accordance with the invention the FM transmitter is implemented in digital domain all the way to the antenna from digital samples (voice/music/data). The carrier frequency can be selected in very fine steps (less than 1 Hz), and its temperature stability can be in the range from 0.0001% (1 ppm) to 0.002% (20 ppm) depending on the temperature stability of the crystal oscillator used to drive FM transceiver digital oscillator. The RF transmission power can also be adjusted digitally. This invention thus provides a fully digital FM transmitter, from voice/music digital samples up to the passive band pass filter preceding the antenna.
According to a first aspect of the invention there is provided a digital FM transmitter, comprising a digital controlled oscillator for generating a modulated RF carrier; a processor for receiving digital input samples and generating therefrom a modulating signal for input to said digital controlled oscillator; and a bandpass filter for filtering frequency components of said modulated carrier outside a predetermined frequency band and supplying said filtered modulated RF carrier to an antenna. The processor is typically be a digital signal processor, although a general purpose processor could be employed.
This invention can be used in hands-free car kit applications as well as in the other application such as MP3 players, desktop phones, where the user may wish to broadcast the voice/music, which can be received by any FM Radio receiver inside a premises or car.
Optionally, the output from the DCO can be passed through an analog phase locked loop (APLL) to multiply the frequency of the DCO output clock, if needed, and to attenuate spurs with frequencies 100 KHz or more from the carrier.
Another aspect of the invention provides a method of generating a frequency modulated RF signal comprising generating a carrier with a digital controlled oscillator; receiving input samples at a processor; generating a modulating signal in said processor; supplying said modulating signal to said digital controlled oscillator to modulated said carrier; and filtering an RF signal from the output of said digital controlled oscillator to supply to an antenna.
The invention will now be described in more detail, by way of example, with reference to the accompanying drawings, in which:
In accordance with the principles of the invention, the FM modulation is performed by changing the center frequency of a digitally controlled oscillator (DCO) in proportion to the amplitude of voice/music digital samples. The rate of update of the center frequency of the DCO is equal to the sampling frequency of the voice/music signal—typically, the sampling frequency is 8 KHz, 16 KHz, 44.1 KHz or 48 KHz, but the transmitter can be used for any other sampling frequency. The carrier frequency can be changed on the fly, merely by changing the center frequency of the DCO with fine resolution. The resolution of the DCO depends on the number of bits inside the DCO. High accuracies equivalent to the accuracy of the crystal oscillator used to drive DCO can be achieved.
The output frequency of the DCO is then fed to a bandpass filter, which converts square wave FM signal to sine wave FM signal and then to a passive attenuator (to reduce the power of the transmitter) before being fed to the antenna. The DCO output frequency can be lower than the required FM Radio Frequency as long as the one of the odd harmonics of the DCO output frequency is inside the FM Radio band. This is possible because the DCO output clock is a square wave clock; hence it has main odd harmonics (3rd, 5th, 7th etc). The maximum voltage of these harmonics decreases with n where n is the harmonic number. Hence, this feature can be used to adjust the RF signal power simply by selecting which harmonic will be in the FM Radio Band. For instance, if the fifth harmonic of the DCO output clock is in the FM Radio Band, the transmission power can be increased by changing the DCO output frequency so that the third harmonics of the output clock falls in FM Radio Band. Analogously, the power can be decreased by reducing the output frequency of the DCO so that seventh harmonic falls inside the FM Radio Band.
In
After the pre-emphasis filter, the signal is weighted in frequency deviation multiplier 24 by multiplying be the factor NDFM. The output is added to the center frequency value Nfc of the DCO 12 in adder 26 and then fed to an input of adder 27 in the DCO 12. The weighting factor depends on maximum frequency deviation for FM signal (75 KHz for broadcast FM radio) and the output frequency of the DCO 12. All these operations are done at the sampling rate of the voice/music signal (8 KHz, 16 KHz, 44.1 KHz or 48 KHz).
The weighting factor has to satisfy following equation:
fc/DFM=Nfc/(max_ampl·ND
where fc is the carrier frequency, DFM is maximum frequency deviation, max_ampl is the maximum amplitude of the modulating signal (for 16 bit samples this is 0x7FFF), Nfc is a number which specifies carrier frequency generated by DCO and NDFM is the number representing maximum frequency deviation.
Hence,
If the maximum frequency of the DCO output is lower than the required FM Radio frequency then NDFM and Nfc have to be scaled down by the ratio of the required FM carrier frequency and the DCO output frequency.
As mentioned previously, the maximum DCO output frequency does not have to be in the FM Radio band (88 to 108 MHz) as long as one of the odd (or even) harmonics of the DCO output signal (The DCO output is squarewave signal) fits inside the FM Radio band. By selecting which harmonic will be placed in the FM Radio the FM transmitter, the output power can be adjusted because amplitude of the harmonics drops with ratio n where n is the harmonic number.
The frequency generated by DCO can be calculated from the following formula:
where
NDCO=Nfc+ND
x(n) is the input voice/music digital signal, DCO_ACC_WIDTH is the width in bits of the DCO's accumulator 13 and fCLK is the master frequency of the DCO 12 as shown in
The overflow output of the DCO has an average frequency equal to fDCO, but its instantaneous frequency is not equal to fDCO because the DCO overflow output transitions are not aligned with ideal fDCO transitions, but with the master clock fCLK of the DCO. The instantaneous phase error of the DCO overflow output varies between the zero and the period width of the fCLK clock. Its value is numerically given by the DCO remainder value at the time of DCO overflow condition.
The second solution uses an APLL 21 (analog phase locked loop) between the DCO 12 and bandpass filter 16 to filter phase noise outside the APLL loop bandwidth.
The third solution, shown in
If the tapped delay line 22 is followed by an APLL 21, as shown in
The fourth solution, shown in
The fifth solution shown in
Number | Date | Country | Kind |
---|---|---|---|
0718492.2 | Sep 2007 | GB | national |
Number | Name | Date | Kind |
---|---|---|---|
5905388 | Van Der Valk et al. | May 1999 | A |
6560447 | Rahman et al. | May 2003 | B2 |
7071792 | Meck | Jul 2006 | B2 |
20010000313 | Zhang | Apr 2001 | A1 |
20010027092 | Muschallik et al. | Oct 2001 | A1 |
20020191727 | Staszewski et al. | Dec 2002 | A1 |
20050195917 | Staszewski et al. | Sep 2005 | A1 |
20050258908 | Mitric | Nov 2005 | A1 |
20060033582 | Staszewski et al. | Feb 2006 | A1 |
20070085623 | Staszewski et al. | Apr 2007 | A1 |
20080231381 | Reddy | Sep 2008 | A1 |
Number | Date | Country |
---|---|---|
10308921 | Sep 2004 | DE |
2004062087 | Jul 2004 | WO |
Number | Date | Country | |
---|---|---|---|
20090081969 A1 | Mar 2009 | US |