Present invention relates to a method and a device for signal amplitude detection. More in particular, the present invention relates to a method and a device for determining the amplitude of a signal having a first signal level and a second signal level, such as binary signals.
Signals of this kind typically have an average signal level, which is halfway between the said first and second signal levels. The average signal level could be particularly zero volts when the first and the second levels are symmetrically to zero volt level i.e. they are +V and −V. The amplitude of the above mentioned signals is defined as the half difference between the first level and the second level.
In many applications it is desirable or necessary to determine the amplitude of the signal in a simple manner. It is furthermore desirable to control the signal levels relative to the average signal level for compatibility with any supply voltages of the circuits processing the signal. The average signal level determines a DC component in the signal.
It is therefore an object of the present invention to provide a method for determining the amplitude of a signal having a first signal level and a second signal level, the method comprising the steps of:
By shifting the signal in such a way that a first signal level equals a reference level, which reference level is preferably predetermined, the average signal level is shifted by an amount equal to its amplitude. As a result, the amount of the signal shift represents the amplitude of the signal.
Additionally, shifting the average signal level allows control of all signal levels, thus making it possible that signal levels stay within suitable limits.
Preferably, the shift amount is determined on the basis of the shifted signal and the reference level. That is, the amount of the signal shift is obtained from the shifted signal itself and the reference level. This typically involves the use of feedback.
Advantageously, the shift amount is continuously determined. Thus the signal level is shifted by the correct amount, irrespective of any changing external circumstances, and a reliable amplitude measurement is obtained.
It will be understood that in situations where the original signal has a DC level equal to zero, the step of removing any DC component from the signal may be omitted.
The present invention further provides a device for determining the amplitude of a signal having a first signal level and a second signal level, the device comprising:
Such a device employs the same inventive concept as the method described above: by shifting the signal level over an amount equal to its amplitude, the amplitude itself is obtained.
Preferably, the shift circuit is coupled to an output of a differential amplifier which is coupled to receive the reference level and an indication of the power of the shifted signal.
Advantageously, a signal power determination circuit is coupled between the shift circuit and the differential amplifier.
It will be understood that in situations where the original signal has a DC level equal to zero, the decoupling circuit may be omitted.
In a preferred embodiment, the reference level is equal to a supply voltage, such as a positive supply voltage. However, other reference levels, such as those generated by dedicated circuits, may also be used.
The present invention will further be explained below with reference to exemplary embodiments illustrated in the accompanying drawings, in which:
The amplitude detector 1 shown merely by way of non-limiting example in
The decoupling circuit 2 is constituted by two capacitors, which remove any DC component present in the signal supplied to the input terminals 7. The shift circuit 3 is known per se, however an advantageous embodiment will be discussed below with reference to
Signal power determination circuit 6 is known per se, however an advantageous embodiment will be discussed below with reference to
The operation of the amplitude detector 1 of
The shift circuit 3 is, in this particular embodiment, arranged such that no signal shift is effected when the control signal Vcon which is inputted to the shift circuit is zero. As can be seen, in this embodiment the control signal Vcon is the output voltage of differential amplifier 5. Consequently, there will be no signal shift when the output signal Vrms of the signal power determination circuit 6 is equal to the reference voltage Vref.
As Vrms is greater than Vref, differential amplifier 5 produces a negative control signal Vcon. As shown in
As can be seen, the device of the present invention is relatively simple, while its feedback loop provides a continuous adjustment, thus allowing to follow any changes in the amplitude or to compensate any adverse environmental effects such as a temperature change.
The embodiment of
As explained above, the amplitude detector 1 of
The present invention is based upon the insight that shifting the average signal level (DC level) of a signal by such an amount that a maximum or minimum signal value equals a reference level (for example zero volts) produces an excellent indication of the signal amplitude. The present invention is based on the further insight that a very efficient way of realising this shifting of the average signal level is by using a feedback loop.
It will be understood by those skilled in the art that the present invention is not limited to the embodiments illustrated above and that many modifications and additions may be made without departing from the scope of the invention as defined in the appending claims.
Number | Date | Country | Kind |
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02079305.5 | Oct 2002 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB03/04229 | 9/22/2003 | WO | 4/14/2005 |