This application is the US National Stage of International Application No. PCT/DE03/02673, filed Aug. 8, 2003 and claims the benefit thereof. The International Application claims the benefits of German application No. 10240140.3 DE filed Aug. 30, 2002, both of the applications are incorporated by reference herein in their entirety.
This invention relates to a communication arrangement and transmission unit for information transfer over a transmission line and a circuit arrangement for connection to the transmission unit.
In current subscriber access networks—also referred to as access networks for short—the subscribers are frequently connected by means of copper wire pairs or 2-wire lines to the locally closest switching equipment. Over said 2-wire line, both narrow-band signals, for example signals embodied in accordance with the ISDN transmission method, and wideband signals, for example signals embodied by means of an xDSL transmission method, are transferred between the switching equipment and the subscribers connected thereto.
The echo compensation method has the disadvantage that on account of the incomplete line balance in the hybrid circuit and as a result of additional reflections on the transmission path, some of the send signals enter the home receiver as an echo and so overlay the incoming receive signal as an interference signal. Through the use of an echo compensator said echo is balanced adaptively, i.e. adjusts itself automatically to the line, and is subtracted from the signal of the receive direction (consisting of receive signal and echo), with the result that finally only the desired receive signal reaches the receiver. The echo compensator is configured as a transversal filter (low-pass) whose coefficients are adaptively set by a controller.
With longer subscriber access lines, the signal transmitted by a subscriber in the direction of the switching center or, as the case may be, switching equipment—referred to in the following as the upstream signal—is heavily attenuated at the point of reception (switching equipment) and heavily distorted due to the frequency-dependent group delay. The signal transmitted, in comparison therewith, at high power in the direction of the subscriber—referred to in the following as the downstream signal—overlays the upstream signal. The purpose of the hybrid circuit or, as the case may be, of the hybrid and the echo compensator is to subtract almost completely the downstream signal reflected at the hybrid circuit on the switching equipment side, which downstream signal overlays the user information signal received on the switching equipment side in the upstream direction. This means that even the smallest changes in the impedance of the 2-wire line lead to a change in the transhybrid loss (with regard to phase and amplitude) and the echo compensator together with the equalizer have to be reset.
For the connection scenario illustrated in
A line driver implemented with the aid of a differential operational amplifier is described for example in U.S. Pat. No. 5,856,758. By means of said line driver a specific output impedance—also referred to as impedance synthesis—is synthesized by means of a voltage and current feedback in the active state. As a result of the impedance synthesis a reduction in the power dissipation is achieved and at the same time the supply voltage is minimized. However, when line drivers implementing an impedance synthesis are activated or, as the case may be, deactivated, abrupt changes in the output impedance—also referred to as impedance jumps—disadvantageously occur.
Line drivers without impedance synthesis are also known, for the operation of which, however, the open-circuit voltage has to be increased by up to 6 dB and the external resistors have to be increased significantly by a specific impedance synthesis factor. This leads to an increased power consumption and to additional power dissipation.
With current solutions for the design of xDSL line drivers, impedance jumps can be avoided to a large extent only under the conditions listed below:
The object of the invention is therefore to avoid interfering interruptions to the ISDN transmission on subscriber access lines caused by the activation or deactivation of the xDSL transmission, more particularly of the xDSL line drivers. The object is achieved on the basis of a communication arrangement, a transmission device, and a circuit arrangement according to the features patent claims.
In the communication arrangement for information transfer according to the invention, there is connected to at least one transmission line at least one transmission unit having an active or passive operating state in each case for the purpose of sending and/or receiving information having an input impedance dependent on the current operating state. The essential aspect of the communication arrangement according to the invention is that sensing means for detecting the current operating state of the transmission unit are provided, to which there are assigned impedance means by means of which at least one switchable electrical component is connected as a function of the detected operating state in such a way that the input impedance of the at least one transmission unit is kept to an approximately constant value.
The essential advantage of the communication arrangement according to the invention is that impedance jumps during the activation or, as the case may be, deactivation of the transmission unit connected to the transmission line are prevented. As a result of the avoidance of impedance jumps, the interference to or, as the case may be, interruption of an already running transmission of information over the same transmission line—for example, an ISDN transmission—is avoided. As a result of the avoidance of impedance jumps the transhybrid loss (with regard to phase and amplitude) is kept to an approximately constant value, with the result that with regard to the ISDN transmission the echo compensator and equalizer no longer have to be reset.
Further advantageous embodiments of the communication arrangement according to the invention and a transmission device for sending and/or receiving information and a circuit arrangement which can be connected to the transmission device can be derived from the dependent claims.
The communication arrangement according to the invention will be explained in more detail below with reference to a block diagram.
According to the invention the switch S is connected to an evaluation logic by means of which the active or, as the case may be, passive state of the xDSL line driver LD can be determined. For example the evaluation logic can be embodied as the sensing unit EE assigned to the xDSL line driver LD for the purpose of evaluating wake-up signals transmitted over the transmission line UL in accordance with the ITU-T G.992.2 standard. On the basis of the wake-up signals brought to the xDSL line driver LD the current active or, as the case may be, passive state can be determined in each case by the sensing unit EE and the switch S opened or, as the case may be, closed depending on the detected state.
Furthermore each of the outputs AO of the two operational amplifiers OP1,2 is feedback-coupled to a corresponding input EO of the respective operational amplifier OP1,2 in each case via a resistor R3T, R3R. Also, the input EO of the first operational amplifier OP1 is connected via a resistor R2T and a resistor R1R to the output AO of the second operational amplifier OP2. Similarly, the input EO of the second operational amplifier OP2 is connected to the output AO of the first operational amplifier OP1 via a resistor R2R and a resistor R1T. Each of the outputs of the two operational amplifiers OP1,2 is connected via the resistor R1T, R1R to a transformer Tr2. The inputs EO of the two operational amplifiers OP1,2 are connected to each other via resistors R4T, R4R and via an alternating voltage source U0 (which in this exemplary embodiment represents the xDSL data signal to be transmitted in the direction of the subscriber).
The xDSL line driver LD is connected to the subscriber access line UL via the transformer Tr2 having the transmission ratio ü: 1. It will be assumed in the following that the xDSL line driver LD is activated only when there is actually information present on the switching center VST side that is to be transmitted to the subscriber access line UL or when wake-up signals are detected by the sensing unit. The inductors L1T, L1R represented in
Let the following values be assumed for this exemplary embodiment:
C1≈1 μF, C2≈10 nF
LTr1≈10 mH, LTr2≈1 mH, L1≈200 μH
Let the following ratios be assumed for the circuitry of the xDSL line driver LD:
R1T=R1R,R2T=R2R
R3T=R3R, R4T=R4R
R2,R3,R4>>R1
With regard to the xDSL line driver the following impedance synthesis factor ksynth. is produced:
ksynth.(=R2/R2−R3)
The output impedance Zout of the xDSL line driver LD is yielded as:
Zout=ksynth.*(2*R1)
According to the invention the following value is specified for the switchable resistor ZSyn:
ZSyn=Zout−2*R1
In the calculation of the resistor ZSyn the resistors R2, R3 and R4 can usually be ignored, because they lie approximately 2 orders of magnitude over the value of R1.
According to the invention the sensing unit EE and the switch S connected thereto are configured as follows:
Taking into account the specification according to the invention for the impedance
ZSyn=Zout−2*R1
the following applies:
Zout=2*R1+Zsyn=2*R1+Zout−2*R1=Zout
It follows from the last relation that the xDSL line driver LD is terminated by the same output impedance Zout both in the active and in the passive state. Through the switching of a resistor with the value ZSyn=Zout−2*R1 between the two outputs AO of the operational amplifiers OP1,2 of the line driver LD in the idle condition, an impedance jump is avoided on the side of the xDSL line driver during the activation or, as the case may be, deactivation of the xDSL transmission, which activation or deactivation would otherwise lead to an interruption of the ISDN transmission because of the need to reset the echo compensator.
Alternatively, the switchable impedance ZSyn according to the invention can be embodied—optionally together with the switch S—as external supplementary circuitry (not shown) assigned to the xDSL line driver. According to a further embodiment variant (not shown) the supplementary circuitry may also comprise the sensing unit EE.
Number | Date | Country | Kind |
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102 40 140.3 | Aug 2002 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE03/02673 | 8/8/2003 | WO | 2/18/2005 |