Claims
- 1. Apparatus for processing an audio signal so as to impart a group delay T.sub.gd to the components of said audio signal, comprising means for delaying lower-frequency components more than relatively higher-frequency components of said audio signal, comprising:
- a first operational amplifier having said audio signal connected to a non-inverting input terminal thereof, and having its output terminal connected in a feedback loop to an inverting input terminal thereof;
- a second operational amplifier having its non-inverting and inverting input terminals connected to the output terminal of said first operational amplifier through differential resistances;
- wherein a capacitance C is connected between the non-inverting input terminal of said second operational amplifier and ground;
- wherein said audio signal, having been processed by said first and second operational amplifiers, is provided to further processing or amplification stages by way of an output terminal of said second operational amplifier; and
- wherein said operational amplifiers and said differential resistances connected therebetween are provided on a single integrated-circuit chip, while said capacitance C is provided as an external, user-adjustable component, whereby the user may select the relative difference in the delay imparted to said higher-frequency components with respect to said lower-frequency components.
- 2. The apparatus of claim 1, wherein said group delay T.sub.gd is an inverse-square function of the frequency of the individual components of the audio signal.
- 3. The apparatus of claim 1, wherein said group delay T.sub.gd is described by the following: ##EQU9## wherein: .omega. represents frequency components of the audio signal to be enhanced;
- R is the resistance between the output terminal of the first operational amplifier and the non-inverting input of the second operational amplifier; and
- .alpha..sub.o =1/RC.
- 4. The apparatus of claim 1, wherein said group delay T.sub.gd is a logarithmic function of the frequency of the individual components of the audio signal.
- 5. The apparatus of claim 4, where when .omega..apprxeq..alpha..sub.o, said logarithmic function is defined by: ##EQU10## wherein: .omega. represents frequency components of the audio signal to be enhanced;
- .alpha..sub.o =1/RC; and
- R is the resistance between the output terminal of the first operational amplifier and the non-inverting input of the second operational amplifier.
- 6. A method for constructing a building-block integrated circuit for use in several classes of audio enhancement processor devices, and for configuring said building-block circuit for use in a particular class of device, comprising the steps of:
- forming an integrated circuit on a substrate, said integrated circuit defining at least two pairs of operational amplifiers, each having inverting and noninverting input terminals and an output terminal, and said integrated circuit further comprising:
- first and second external input terminals connected to the noninverting input of a first operational amplifier of each of said pairs of operational amplifiers, respectively;
- a conductor connecting the output terminal of the first operational amplifier of each pair to the noninverting input terminal of the second operational amplifier of that pair, with a resistance R interposed therebetween;
- a conductor connecting the output terminal of the first operational amplifier of each pair to the inverting input terminal thereof, in feedback configuration;
- a conductor connecting the output terminal of the second operational amplifier of each pair to the inverting input terminal thereof, in feedback configuration;
- conductors connecting the output terminals of the second operational amplifier of each pair to first and second external output terminals, respectively; and
- conductors connecting non-inverting input terminals of the second operational amplifiers of each pair to first and second external capacitance terminals, respectively;
- selecting the type and value of an external capacitance C in accordance with the intended use of a particular example of said integrated circuit in a particular class of device;
- connecting an external capacitance C of the selected type and value between one or both of said first and second external capacitance terminals of said particular example of said integrated circuit and ground;
- connecting the input terminal of the first pair of operational amplifiers to a source of an input signal to be processed;
- connecting the output terminal of the second operational amplifier of said first pair to the input terminal connected to the noninverting input of the first operational amplifier of the second pair;
- connecting the output terminal of the second operational amplifier of said first pair to a further amplification stage; and
- a buffer capacitor being interposed in the connection between the output terminal of the second operational amplifier of said first pair and the input terminal connected to the noninverting input of the first operational amplifier of the second pair.
- 7. The method of claim 6, comprising the further step of providing said external capacitance C as a variable capacitor, disposed to permit variation of C by a user to adjust the processing provided to said signals.
- 8. The method of claim 6, wherein a feedback resistor R.sub.fb is interposed in the connection between the output terminal of the second operational amplifier of each pair and the inverting input terminal thereof.
- 9. The method of claim 8, comprising the further step of providing said feedback resistor R.sub.fb as an external variable resistor, disposed to permit variation of R.sub.fb by a user to adjust the processing provided to said signals.
Parent Case Info
This is a continuation of application Ser. No. 08/081,209 filed Jun. 25, 1993, now U.S. Pat. No. 5,425,106.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
5425106 |
Katz et al. |
Jun 1995 |
|
Non-Patent Literature Citations (1)
Entry |
National Semiconductor LM-324, from p. 3-142 of National Semiconductor's Linear Data Book, Jun. 1976. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
81209 |
Jun 1993 |
|