The present invention discloses a point to point radio link chain with one or more repeaters.
Radio links, in particular microwave radio links are an attractive alternative to optical fiber for the transmission of electromagnetic signals. One reason for this attractiveness is the higher propagation speed offered by microwave radio links, which is due to difference between the speed of light in air and the speed of light in an optical fiber, the difference sometimes being as much as 50%.
Thus, a connection between two microwave radio links will offer a higher propagation speed than a connection by means of optical fiber over the same distance. However, connections by means of microwave radio links suffer from attenuation as a function of distance, which necessitates the use of repeater stations if the connection is to be successful over distances of certain lengths. Repeater stations will introduce imperfections in the signals which they retransmit, thereby degrading the performance of the connection.
It is an object to obviate at least some of the disadvantages of long-distance microwave point-to-point connections identified above, and to provide an improved point-to-point connection which is particularly useful at microwave frequencies.
This object is obtained by means of a microwave radio link chain which comprises a first transmitter, a first receiver and one or more repeaters between the first transmitter and the first receiver, with the one or more repeaters being arranged to receive signals originally transmitted by the first transmitter and to transmit the received signals in the direction of the first receiver. In the microwave radio link chain, one or more of the repeaters is/are arranged to invert the spectrum of the signals before they are transmitted by the repeater.
Since one or more of the repeaters is/are arranged to invert the spectrum of the signals before they are transmitted, the effect that is gained is the following: the impairments caused to a signal by a repeater are often linearly frequency-dependent, which means that if a number of frequency inverting repeaters are used, the impact of the repeaters will be “self healing” in that the impairments caused by the repeaters will be evened out over the spectrum. If, in “a minimum embodiment”, only one inverting repeater is used, this will serve to mitigate impairments caused on either side of the inverter in the microwave radio link chain, since impairments which will be caused to the signal after the inverter will be “pre-empted” by the frequency inversion which is caused in the inverting repeater.
In embodiments of the microwave radio link chain, one or more of the repeaters is also arranged to amplify the received signals before they are transmitted.
In embodiments of the microwave radio link chain, one or more repeater is arranged to perform signal processing on the received signal before it is transmitted by the repeater.
In embodiments of the microwave radio link chain, the first receiver is arranged to detect if a received signal has been spectrum-inverted an odd number of times, and if that is the case, to spectrum-invert such received signals.
Optimal results are obtained if all receivers and transmitters in the microwave radio link chain have similar transfer functions. Thus, in embodiments of the microwave radio link chain, two or more repeaters are arranged to transmit the signals by means of transmitter functions which have similar transfer functions, and in embodiments of the microwave radio link chain, at least one repeater is arranged to transmit the signals by means of a transmitter function which has a transfer functions similar to that of the first transmitter.
In embodiments of the microwave radio link chain, two or more repeaters are arranged to receive the signals by means of receiver functions which have similar transfer functions, and in embodiments of the microwave radio link chain, at least one repeater is arranged to receive the signals by means of a transmitter function which has a transfer function similar to that of the first receiver.
The object is also obtained by means of a microwave repeater which is arranged to:
In embodiments, the microwave repeater station is arranged to amplify the received microwave signals.
In embodiments, the microwave repeater station is arranged to perform signal processing on the received microwave signals.
There is also disclosed a method for transmitting a microwave signal from a transmitting radio link to a receiving radio link. The method comprises:
The method also comprises spectrum inverting the transmitted microwave signal at one or more points along a line between the transmitting and the receiving radio link.
In embodiments, the method further comprises amplifying the transmitted microwave signal at one or more points along a line between the transmitting and the receiving radio link.
In embodiments, the method further comprises performing signal processing of the transmitted microwave signal at one or more points along a line between the transmitting and the receiving radio link.
In embodiments, the method further comprises detecting in the receiving radio link if a received microwave signal has been spectrum-inverted an odd number of times, and if that is the case, spectrum-inverting such received microwave signals.
The invention will be described in more detail in the following, with reference to the appended drawings, in which
Embodiments of the present invention will be described more fully hereinafter with reference to the accompanying drawings, in which embodiments of the invention are shown. The invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Like numbers in the drawings refer to like elements throughout.
The terminology used herein is for the purpose of describing particular embodiments only, and is not intended to limit the invention.
If a signal is passed through a multitude of repeaters with characteristics such as those shown in
A principle used in the microwave radio link chain disclosed herein is to invert the spectrum of the signal which is received in one or more of the repeaters in a microwave radio link chain. By means of such inverting repeaters, the signal impairments caused by preceding repeaters and/or by a transmitter from which the signals originate will be reversed, and the microwave radio link chain will become “self healing” with respect to the signal impairments caused by the repeaters and/or the original transmitter.
As shown in
The repeater 210 also comprises an inverting unit 255 which inverts the spectrum of its input signals, and thus outputs a signal which has an inverted spectrum as compared to the signal that was input to the inverting unit 255. In embodiments, the repeater 210 also comprises an amplifier unit 250, which, as the name implies, amplifies an input signal and outputs an amplified signal.
Regarding the amplifying unit 250 and the amplification in the repeater 210 in general, the following can be said: although the amplifier unit 250 is shown in
If the repeater 210 is not equipped with a separate receiving unit 230, the receive antenna 221 may be connected directly to the amplifier unit 250 or to the inverter unit 255.
As shown in
Returning now to the inverting unit 255, the function of this unit is as follows: the term “inverting a frequency spectrum” is here used in the sense that is also shown in
In
The function of spectrum inversion, i.e. the function of the unit 255 of
As show in
Since one of the signals produced in the mixer can be seen as the inverse of the input signal, in order to achieve the inversion of the frequency spectrum of the input signal, the signal (sum/difference) which is the inverse of the input signal is preserved as the output signal of the inverting unit 255 by means of a filter, suitably a band-pass filter, BPF, which only admits the inverted signal, in this case the difference signal fc,in,−f0 and rejects the other signal, in this case the “sum signal” fc,in+f0. Naturally, if it is desired not to invert the input signal, the BPF can be designed to only admit the non-inverted signal, or the BPF can be tunable, so that either effect can be achieved, as desired at any particular moment.
In addition to using a tunable filter to select the desired signal, i.e. either fin+f0 or fin−f0, the desired inversion function can be achieved by means of using a BPF with a set transfer function, in which case the multiplication frequency f0 can be adaptively chosen to place the desired component (sum/difference) within the pass-band of the BPF. The control of f0 is suitably performed by means of software, which senses/detects the frequency fc,in, and sets f0 accordingly, in order to achieve the desired function.
The method 600 also comprises, step 610, spectrum inverting the transmitted microwave signal at one or more points along a line between the transmitting and the receiving radio link.
In embodiments of the method 600, there is further comprised, step 612, amplifying the transmitted microwave signal at at least one of said one or more points.
In embodiments of the method 600, there is further comprised, step 615, performing signal processing of the transmitted microwave signal at at least one of said one or more points.
In embodiments of the method 600, there is further comprised, step 625, detecting in the receiving radio link if a received microwave signal has been spectrum-inverted an odd number of times, and if that is the case, step 630, spectrum-inverting such received microwave signals. If a received microwave signal has not been spectrum-inverted an odd number of times, then, step 635, there is no spectrum-inversion of the received microwave signal performed in the receiver. The reason for wanting to detect if a received microwave signal has been spectrum-inverted an odd number of times, and if that is the case, to “correct” the spectrum, is that in some embodiments, it may be beneficial to use a received microwave signal which exactly corresponds to the transmitted signal.
In the drawings and specification, there have been disclosed exemplary embodiments of the invention. However, many variations and modifications can be made to these embodiments without substantially departing from the principles of the present invention. Accordingly, although specific terms are employed, they are used in a generic and descriptive sense only and not for purposes of limitation.
The invention is not limited to the examples of embodiments described above and shown in the drawings, but may be freely varied within the scope of the appended claims.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2013/061588 | 6/5/2013 | WO | 00 |