Background of the Invention
The subject invention pertains to distortion correcting circuitry for telephone lines or cables. More particularly, this invention pertains to an adaptive equalizer for use in modems designed to operate over short distance metallic telephone circuits which are typically under 30 miles in length. In certain typical data communication situations automatic or adaptive, adjustment for any one line from a variety of lines is necessary. The loss characteristics of the variety of lines differ from one line to another over a wide degree depending on the size (gauge) and the wire length of the particular line in use. In order to compensate for distortion, due to the loss characteristic of such lines, it is necessary to utilize a circuit which will provide numerous degrees of amplitude slope compensation. Accordingly, an adaptive equalizer circuit for general application must be designed to operate on any given line and account for the diverse loss characteristics presented by the vast variety of such lines that may be available to modems.
One typical prior art circuit useful in systems as described above is set forth in an article entitled "Local Distribution Systems" appearing in the Bell Systems Technical Journal, pages 919-942 of the May/June issue, 1975. That prior art circuitry employs a fixed equalizer designed to compensate for the line having the worst degree of loss of amplitude with frequency that would be expected for the wide variety of lines. A second circuit in combination with the fixed equalizer automatically adjusts the line signal, based on the peak output of the fixed equalizer, such that the output of the second circuit hopefully compensates for the distortion caused by the fixed equalizer. Thus, this prior art circuit operates, in summary, to compensate to the greatest extreme that is expected, and there after distorts further in an attempt to recover back to an equalized condition.
The subject invention provides a totally different approach to solving the equalizer problems described above. This invention eliminates the need for a fixed equalizer and the need for any additional signal distortion circuit as described in the above-noted Bell Technical Journal. Rather than setting up a fixed slope and adding line losses in variable amounts, as is known in the prior art; the present invention provides a resonant circuit in a variable gain amplifier feedback path which responds to feedback signals so as to cause the gain of the amplifier to automatically adjust in a manner inversely matching the particular loss characteristic for any given line selected as needed from a wide variety of lines all of which have widely varying loss characteristics. The present invention, operating with its new features, provides simplified circuitry and valuable improvements in the communication art.
Summary of the Invention
It is therefore an object of the invention to provide an improved equalizer circuit.
It is another object of the invention to provide an adaptive equalizer for use in equalizing short distance metallic lines.
These and other objects and advantages are accomplished according to the invention by an amplifier and means for controlling the amplifier's gain to inversely match the loss characteristic produced by various metallic lines.
More specifically, an operational amplifier is provided with a parallel resonant circuit in its feedback path. A variable resistance in the feedback path is adjusted in response to the amplifier output signal. As the resistance is varied, not only does the overall voltage gain vary, but, as the overall voltage gain is increased a markedly higher rate of gain increase occurs near the resonant frequency of the parallel resonant circuit. This operation causes the overall gain in frequency of the amplifier to closely approximate the loss characteristic and thus compensate for the distortion produced by the transmission line, regardless of its length or wire size.
Brief Description of the Drawings
The preferred embodiment and best mode presently contemplated for practicing the just summarized invention will now be described in detail in conjunction with the drawings of which:
FIG. 1 is a circuit schematic of the preferred embodiment of the invention.
FIG. 2 is a gain vs. frequency plot illustrating operation of the circuit of FIG. 1.
FIGS. 3A, 3B and 3C include the features of FIG. 2 in conjunction with other graphs which depict the equalizer operation of this invention.
Detailed Description of the Preferred Embodiment
As illustrated in FIG. 1, the preferred embodiment of the invention includes an operational amplifier 11, which receives an input on a terminal 13 and produces an output signal on an output terminal 15. The input signal is the received signal from a short metallic line, which may be lowpass filtered by a previous stage before being supplied to the input terminal 13.
The gain between the input and output terminals 13, 15 is controlled by a parallel resonant feedback circuit 17 connected between the output terminal and the inverting input 19 of the operational amplifier and by a variable resistance 21 connected between signal ground and the inverting input 19, and controlled in response to the output of the output terminal 15. The feedback circuit 17 includes a capacitor C.sub.1, a resistor R.sub.1 and an inductor L.sub.1.
The value of the variable resistance 21 is controlled in accordance with a voltage developed by a full-wave rectifier 23 and an integrator 25. The output signal at terminal 15 is thus full-wave rectified by the rectifier 23 and then integrated by the integrator 25 to provide a voltage control signal related to the average value of the rectified output level.
The operation of the circuit of FIG. 1 may be explained as follows. The parallel resonant circuit 17 causes amplifier 11 to produce a family of gain vs frequency curves as illustrated in FIG. 2, as the value of the variable resistor 21 changes. The three curves 31, 33, 35 illustrate the gain vs frequency plot for low, medium and high received levels, respectively.
As may be seen, near the resonant frequency determined by 1/(2.pi..sqroot.LC), the gain for each level curve 31, 33, 35 experiences a markedly higher increase over lower frequency values. Moreover, as the received level decreases in strength, the plots increase in slope. The response illustrated in FIG. 2 is of particular use in baseband metallic transmission, for it very nearly compensates for the severe amplitude attenuation encountered on low-grade metallic circuits while still providing the small amount of compensation needed for high quality metallic circuits.
FIGS. 3A, 3B and 3C illustrate further the operation of the preferred embodiment. FIG. 3A shows the line loss characteristics of three typical types of telephone lines from a wide variety of lines. It should be understood that many different loss characteristics would be present, and only three loss characteristics are shown for sake of simplicity. A loss characteristic is determined as a function of gauge and length of the line. Thus, if gauge were held constant, the three curves 31A, 33A, and 35A would represent different line lengths. For example, the curves 31A, 33A and 35A for No 19 gauge wire lines would respectively depict the approximate attenuation distortion characteristics of 12, 6 and 1/2 mile line lengths. Conversely, if length were held constant then these three curves would approximately represent different gauge wires for the common line length. The manner in which numerous gauge and wire lengths produce a family of loss characteristic curves is known to the prior art and thus no further detailed description is required.
Comparison of the middle graph of FIG. 3B shows that curves 31, 33, and 35 closely approach (on an inverse basis) the loss characteristic encountered for the telephone lines depicted in 31A, 33A, and 35A of FIG. 3A. Automatic adjustment of voltage controlled resistor 21, FIG. 1, thus provides a quick and efficient means for compensating for the wide variety of loss that may be encountered.
The lower graph, FIG. 3C, depicts the equalized condition for the three lines as provided by the principles of this invention wherein the curves of 31A, 33A, 35A (FIG. 3A) are added to 31, 33 and 35 (FIG. 3B). The operating frequency of interest falls below the resonant frequency selected for the resonant circuit 17, FIG. 1. That frequency is depicted in FIG. 2 as 1/2.pi..sqroot.LC. The particular frequency may be selected as required for a particular modem speed and class of telephone lines. The graph of FIG. 3C shows that the principle of this invention rapidly and automatically compensates for the diverse loss characteristics of a wide variety of lines for frequencies below the resonant frequency. The equalized condition is depicted by the curves of the graph in FIG. 3C.
In summary, the just described preferred embodiment automatically compensates for both low quality and high quality metallic transmission paths. Since the circuit of the preferred embodiment is a stable feedback control circuit it is self-adjusting. By employing well-known fast settling full-wave rectifier and integrator circuits for the rectifier 23 and the integrator 25, the entire feedback control loop can be caused to settle in typically less than 2 milliseconds, thus providing a rapid means of equalizing to a metallic line transmission path. Such rapid equalization is of considerable significance in the multidrop polled configuration data modems whereby one central modem receiver must rapidly re-equalize to remote transmitters, each of which may be transmitting through a different quality metallic circuit.
As will be apparent to those skilled in the art, the just described preferred embodiment may be subjected to many modifications and adaptations without departing from the scope and spirit of the invention. Therefore, it is to be understood that, within the scope of the appended claims, the invention may be practiced other than as specifically described above.