EP2039006A2 - Apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode - Google Patents

Apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode

Info

Publication number
EP2039006A2
EP2039006A2 EP07795654A EP07795654A EP2039006A2 EP 2039006 A2 EP2039006 A2 EP 2039006A2 EP 07795654 A EP07795654 A EP 07795654A EP 07795654 A EP07795654 A EP 07795654A EP 2039006 A2 EP2039006 A2 EP 2039006A2
Authority
EP
European Patent Office
Prior art keywords
signal
mode
node
output
signal mode
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP07795654A
Other languages
German (de)
French (fr)
Other versions
EP2039006A4 (en
Inventor
Chadwick N. Marak
Jefferey C. Dunnihoo
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Semiconductor Components Industries LLC
Original Assignee
California Micro Devices Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US11/424,533 external-priority patent/US7446565B2/en
Priority claimed from US11/424,535 external-priority patent/US7321241B1/en
Application filed by California Micro Devices Corp filed Critical California Micro Devices Corp
Publication of EP2039006A2 publication Critical patent/EP2039006A2/en
Publication of EP2039006A4 publication Critical patent/EP2039006A4/en
Withdrawn legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03KPULSE TECHNIQUE
    • H03K19/00Logic circuits, i.e. having at least two inputs acting on one output; Inverting circuits
    • H03K19/0175Coupling arrangements; Interface arrangements

Definitions

  • the present invention provides an apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode, and, more particularly from a CMOS signal mode to an I2C signal mode.
  • Circuits that provide level shifting from one signal mode to another signal mode are known. Circuits that provide an active pull-up function or an active pulldown function on an input signal are also known. An example of the latter type of circuit is the Linear TechnologyLTC1694,which provides active pull-up using a multiple discreet components.
  • the present invention provides for both logic translation and dynamic level shifting of a signal that is transmitted on a single bus.
  • an integrated circuit that causes an input signal having one signal mode with a high state, a low state and a transition state to be dynamically level shifted to another signal mode with a respective high and low state, while minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.
  • the one signal mode is a CMOS mode and the another signal mode is an I2C mode, and the input signal is a 10OkHz signal.
  • the method includes the steps of translating the input signal from one signal mode with a high state, a low state and a transition state to an output signal having another signal mode with a respective high and low state; and minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.
  • FIG. 1 illustrates a block diagram of the active pull-up/logic translation circuit according to the present invention
  • FIGs. 2A and 2B illustrate signal waveforms related to the active pull- up/logic translation circuit according to the present invention.
  • FIG. 3 illustrates a block diagram of a circuit that provides functionality as described by the invention described herein as well as slew rate control described by an invention that is incorporated by reference herein.
  • Figure 1 illustrates the active pull-up/logic translation circuit 100 according to the present invention. It is preferably integrated onto a single chip, and can have functions other than those described by the present invention disposed therein.
  • the invention is described with reference to the HDMI specification and the CMOS to I2C translation that is in many instances required thereby. While so described, . , the present invention is not limited by this embodiment.
  • the invention comes, however, from recognition of certain requirements of the HDMI specification.
  • the HDMI spec states that the bus capacitance cannot exceed 80OpF which is broken down as follows: -5OpF from a source (i.e. DVD player) -5OpF from a sink (i.e. TV) -70OpF from a HDMI cable
  • HDMI cables that meet the cable specification rating are typically very expensive due to their having such a low capacitance. Given this expense, the present invention allows for the use of less expensive HDMI cables where the capacitance exceeds 70OpF.
  • the active pull-up circuit in the present invention meets all I2C protocol risetimes for the "standard mode" speed of 100kHz which HDMI uses for a cable having a capacitance of approximately 400OpF. While this allows for cheaper cable, it also allow for longer cables (i.e. on the order of 100 feet (31 m) rather than50 ft (15m)
  • the rise/fall times that the present invention meets are rise time of 1000ns and fall time of 300ns.
  • the present invention implements a 1-to-l effect on the rise time through the active pull-up as described herein.
  • the fall time is controlled by the external field effect transistor LV ASIC while the "OUP' node signal is 5V- 1.5V and then the present invention assists with pull-down when the "OUT" node signal is going from 1.5 V-OV.
  • This circuit 100 has two overall functions. One overall function is to accelerate the LOW->HIGH transition on the "OUT" node for high capacitance loads. The other is to keep the "IN” node at a first signal mode "LOW” level while the "OUT" node is at a second signal mode "LOW” level, where second signal mode is different from the first signal mode.
  • an external resistor REXT is defined by the HDMI specification to provide first overall function, but unfortunately the value of REXT is too “large” to pull up the "OUT" node in the specified time for high capacitive loads.
  • the REXT cannot be made smaller because the external field effect transistor LV ASIC (which also provide a buffer function) that is controlling the bus is only rated to sink X mA continuously, which is the current that will flow through Rext when "OUT" is at GND.
  • the HDMI specification mandates that REXT have a MlN value of 1.5kohms and MAX value of 2kohms.
  • a preferred embodiment of the present invention is described herein in the context of a 100kHz signal that is described by the HDMI specification. How the present invention operates when the 100kHz Signal is in the high state, and then in the low state, will be next described.
  • the active pull-up/logic translation circuit 100 is comprised of a signal mode transition circuit that is labeled "Impedance Control," a pull-up circuit that is comprised of the comparator and associated components, and a pull-down circuit illustrated at pull-down transistor Nl .
  • the CBUS has an "IN” node and an "OUT" node, which bus has disposed thereon the pass transistor N2.
  • the Impedance Control circuit in conjunction with RINT as described hereinafter, operates to keep the "IN” node at a first signal mode "LOW” level while the "OUT" node is at a second signal mode "LOW” level.
  • IQOkHz Signal is "HIGH”.
  • the field effect transistor LV ASIC has control of the entire bus CBUS (including both "IN” and “OUT” nodes that are disposed on the active pull-up/logic translation circuit 100).
  • the field effect transistor LV ASIC pulls both sides of the bus “LOW,” which is typically less than 0.4V.
  • the Impedance Control block lets the LV Supply control the gate of transistor N2 and the comparator leaves the switch SW to RACC in the "OFF” position.
  • the gate of transistor Nl is "HIGH” the field effect transistor LV ASIC dominates the bus and causes pulling of the "IN” node to be “LOW,” as well as the "OUT” node.
  • IQOkHz Signal is "LOW".
  • the field effect transistor LV ASIC releases the bus CBUS so that the internal resistor RINT now pulls up the "IN” node, but the gate of transistor Nl is still “HIGH” so the "IN” node remains below 0.8V.
  • the external resistor REXT pulls up the "OUT” node.
  • the "Impedance Control” circuit turns “OFF” N2, isolating both sides of the bus.
  • Figs. 2A and 2B illustrate signal waveforms related to the active pull- up/logic translation circuit according to the present invention, as compared to a standard circuit using a resistor REXT. As illustrated, Fig. 2B advantageously illustrates that the rise time to the high state output signal is much quicker than a conventional circuit.
  • Fig.3 illustrates a block diagram of a circuit that provides functionality as described by the invention described herein as well as slew rate control described by U.S. Patent Appln filed today with the title "BIDIRECTIONAL BUFFER WITH SLEW RATE CONTROL AND METHOD OF BIDIRECTIONALLY TRANSMITTING SIGNALS WITH SLEW RATE CONTROL” and bearing the attorney reference 010549- 0317731, the contents of which are expressly incorporated by reference herein, and to which priority is also claimed.
  • the functions of the various blocks illustrated are fully described in this application and in the other application.

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  • Engineering & Computer Science (AREA)
  • Computer Hardware Design (AREA)
  • Physics & Mathematics (AREA)
  • Computing Systems (AREA)
  • General Engineering & Computer Science (AREA)
  • Mathematical Physics (AREA)
  • Logic Circuits (AREA)

Abstract

Described is an integrated circuit that causes an input signal having one signal mode with a high state, a low state and a transition state to be dynamically level shifted to another signal mode with a respective high and low state, while minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.

Description

APPARATUS AND METHOD THAT PROVIDES ACTIVE PULL-UP AND LOGIC TRANSLATION FROM ONE SIGNAL MODE TO ANOTHER SIGNAL MODE
FIELD OF THE INVENTION
[0001] The present invention provides an apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode, and, more particularly from a CMOS signal mode to an I2C signal mode.
BACKGROUND OF THE INVENTION
[0002] Circuits that provide level shifting from one signal mode to another signal mode are known. Circuits that provide an active pull-up function or an active pulldown function on an input signal are also known. An example of the latter type of circuit is the Linear TechnologyLTC1694,which provides active pull-up using a multiple discreet components.
[0003] Providing these functions together, however, has not been needed, and such is particularly true with respect to applications where these functions operate on the same signal on the same bus. It has been found, however, that providing these functions together on a single bus has advantages, and that there are even further advantages to providing such functions on a single integrated circuit chip that is designed and fabricated using conventional techniques.
SUMMARY OF THE INVENTION
[0004] The present invention provides for both logic translation and dynamic level shifting of a signal that is transmitted on a single bus.
[0005] In one embodiment there is an integrated circuit that causes an input signal having one signal mode with a high state, a low state and a transition state to be dynamically level shifted to another signal mode with a respective high and low state, while minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.
[0006] In a particular embodiment, the one signal mode is a CMOS mode and the another signal mode is an I2C mode, and the input signal is a 10OkHz signal.
[0007] There is also described a method of operating upon an input signal that is transmitted along a single bus to result in an output signal. The method includes the steps of translating the input signal from one signal mode with a high state, a low state and a transition state to an output signal having another signal mode with a respective high and low state; and minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] These and other aspects and features of the present invention will become apparent to those of ordinary skill in the art upon review of the following description of specific embodiments of the invention in conjunction with the accompanying figures, wherein:
[0009] Fig. 1 illustrates a block diagram of the active pull-up/logic translation circuit according to the present invention;
[00010] Figs. 2A and 2B illustrate signal waveforms related to the active pull- up/logic translation circuit according to the present invention; and
[00011] Fig. 3 illustrates a block diagram of a circuit that provides functionality as described by the invention described herein as well as slew rate control described by an invention that is incorporated by reference herein.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[00012] Figure 1 illustrates the active pull-up/logic translation circuit 100 according to the present invention. It is preferably integrated onto a single chip, and can have functions other than those described by the present invention disposed therein. In this preferred embodiment the invention is described with reference to the HDMI specification and the CMOS to I2C translation that is in many instances required thereby. While so described,.,the present invention is not limited by this embodiment.
[00013] The invention comes, however, from recognition of certain requirements of the HDMI specification. In particular, the HDMI spec states that the bus capacitance cannot exceed 80OpF which is broken down as follows: -5OpF from a source (i.e. DVD player) -5OpF from a sink (i.e. TV) -70OpF from a HDMI cable
[00014] HDMI cables that meet the cable specification rating are typically very expensive due to their having such a low capacitance. Given this expense, the present invention allows for the use of less expensive HDMI cables where the capacitance exceeds 70OpF. The active pull-up circuit in the present invention, as described hereinafter, meets all I2C protocol risetimes for the "standard mode" speed of 100kHz which HDMI uses for a cable having a capacitance of approximately 400OpF. While this allows for cheaper cable, it also allow for longer cables (i.e. on the order of 100 feet (31 m) rather than50 ft (15m)
[00015] Further, the rise/fall times that the present invention meets are rise time of 1000ns and fall time of 300ns. The present invention, as described herein, implements a 1-to-l effect on the rise time through the active pull-up as described herein. The fall time is controlled by the external field effect transistor LV ASIC while the "OUP' node signal is 5V- 1.5V and then the present invention assists with pull-down when the "OUT" node signal is going from 1.5 V-OV.
[00016] This circuit 100 has two overall functions. One overall function is to accelerate the LOW->HIGH transition on the "OUT" node for high capacitance loads. The other is to keep the "IN" node at a first signal mode "LOW" level while the "OUT" node is at a second signal mode "LOW" level, where second signal mode is different from the first signal mode.
[00017] With respect to the overall function of accelerating signal transition, an external resistor REXT is defined by the HDMI specification to provide first overall function, but unfortunately the value of REXT is too "large" to pull up the "OUT" node in the specified time for high capacitive loads. The REXT cannot be made smaller because the external field effect transistor LV ASIC (which also provide a buffer function) that is controlling the bus is only rated to sink X mA continuously, which is the current that will flow through Rext when "OUT" is at GND. Given this, the HDMI specification mandates that REXT have a MlN value of 1.5kohms and MAX value of 2kohms.
[00018] With respect to the second overall function of maintaining signal mode levels maintained, in particular for the HDMI embodiment this function can be described as keeping the "IN" node at a CMOS "LOW" level while the "OUT" node is an I2C "LOW" level. (I2C "LOW=O-J.5V & CMOS "L OW"=0-0.8V)
[00019] A preferred embodiment of the present invention is described herein in the context of a 100kHz signal that is described by the HDMI specification. How the present invention operates when the 100kHz Signal is in the high state, and then in the low state, will be next described.
[00020] The active pull-up/logic translation circuit 100 is comprised of a signal mode transition circuit that is labeled "Impedance Control," a pull-up circuit that is comprised of the comparator and associated components, and a pull-down circuit illustrated at pull-down transistor Nl . The CBUS has an "IN" node and an "OUT" node, which bus has disposed thereon the pass transistor N2.
[00021] The Impedance Control circuit, in conjunction with RINT as described hereinafter, operates to keep the "IN" node at a first signal mode "LOW" level while the "OUT" node is at a second signal mode "LOW" level.
[00022] IQOkHz Signal is "HIGH". When the 10OkHz signal transitions to "HIGH" the field effect transistor LV ASIC has control of the entire bus CBUS (including both "IN" and "OUT" nodes that are disposed on the active pull-up/logic translation circuit 100). The field effect transistor LV ASIC pulls both sides of the bus "LOW," which is typically less than 0.4V. During this state the Impedance Control block lets the LV Supply control the gate of transistor N2 and the comparator leaves the switch SW to RACC in the "OFF" position. Although the gate of transistor Nl is "HIGH" the field effect transistor LV ASIC dominates the bus and causes pulling of the "IN" node to be "LOW," as well as the "OUT" node.
[00023] IQOkHz Signal is "LOW". When the 10OkHz signal transitions to "LOW", the field effect transistor LV ASIC releases the bus CBUS so that the internal resistor RINT now pulls up the "IN" node, but the gate of transistor Nl is still "HIGH" so the "IN" node remains below 0.8V. At the same time, the external resistor REXT pulls up the "OUT" node. Also during this same time the "Impedance Control" circuit turns "OFF" N2, isolating both sides of the bus. Then, as soon as the "OUT" node reaches 1.5 V or 0.3 VCC, the gate of transistor Nl goes "LOW" releasing the "IN" node to go "HIGH" via internal resistor RINT and the "Impedance Control" circuit returns control of transistor N2 to the LV Supply. Additionally, the comparator turns ON the switch to RACC and the "OUT" rises quickly.
[00024] Figs. 2A and 2B illustrate signal waveforms related to the active pull- up/logic translation circuit according to the present invention, as compared to a standard circuit using a resistor REXT. As illustrated, Fig. 2B advantageously illustrates that the rise time to the high state output signal is much quicker than a conventional circuit.
[00025] Fig.3 illustrates a block diagram of a circuit that provides functionality as described by the invention described herein as well as slew rate control described by U.S. Patent Appln filed today with the title "BIDIRECTIONAL BUFFER WITH SLEW RATE CONTROL AND METHOD OF BIDIRECTIONALLY TRANSMITTING SIGNALS WITH SLEW RATE CONTROL" and bearing the attorney reference 010549- 0317731, the contents of which are expressly incorporated by reference herein, and to which priority is also claimed. The functions of the various blocks illustrated are fully described in this application and in the other application.
[00026] Although the present invention has been particularly described with reference to embodiments thereof, it should be readily apparent to those of ordinary skill in the art that various changes, modifications and substitutes are intended within the form and details thereof, without departing from the spirit and scope of the invention. Accordingly, it will be appreciated that in numerous instances some features of the invention will be employed without a corresponding use of other features. Further, those skilled in the art will understand that variations can be made in the number and arrangement of components illustrated in the above figures. It is intended that the scope of the appended claims include such changes and modifications.

Claims

What is claimed is:
1. A circuit connected between a supply voltage and ground that operates upon an input signal to generate an output signal comprising: an input node; an output node; a signal path disposed between the input node and the output node, whereby the input node, the output node and the signal path are part of a common bus; a pass transistor disposed within the signal path; an impedance control circuit coupled to the input node and which controls the pass transistor; a comparator that compares a voltage on the output node to a reference voltage, and produces a comparator output signal on a comparator output line; a pull-down transistor coupled between the input node and the ground, and being controlled by the comparator output signal on the comparator output line; a switch coupled to the supply voltage, and controlled by the comparator signal; and wherein: the pass transistor, and the impedance control circuit together operate to cause the input signal having one signal mode with a high and a low state on the input node to be level shifted to the output signal having another signal mode with a respective high and low state on the output node; and the comparator, the pull-down transistor and the switch together operate to cause dynamic pull-up and pull-down of the level shifted output signal.
2. The circuit according to claim 1 wherein the input node, the output node, the signal path, the pass transistor, the comparator the pull-down transistor and the switch are formed on a single integrated circuit.
3. The circuit according to claim 2 wherein the one signal mode is a CMOS mode and the another signal mode is an I2C mode.
4. The circuit according to claim 3 wherein the input signal is a 10OkHz signal.
5. A circuit connected between a supply voltage and ground comprising: an input node; an output node; and means for causing an input signal having one signal mode with a high state, a low state and a transition state to be dynamically level shifted to another signal mode with a respective high and low state, while minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.
6. The circuit according to claim 5 wherein the input node, the output node, and the means for causing are formed on a single integrated circuit.
7. The circuit according to claim 6 wherein the one signal mode is a CMOS mode and the another signal mode is an I2C mode.
8. The circuit according to claim 7 wherein the input signal is a 10OkHz signal.
9. A method of operating upon an input signal that is transmitted along a single bus to result in an output signal comprising the steps of: translating the input signal from one signal mode with a high state, a low state and a transition state to an output signal having another signal mode with a respective high and low state; and minimizing a duration of the transition state of the output signal, wherein the one signal mode and the another signal mode have respectively different high and low state levels.
EP07795654.8A 2006-06-15 2007-05-31 Apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode Withdrawn EP2039006A4 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US11/424,533 US7446565B2 (en) 2006-06-15 2006-06-15 Apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode
US11/424,535 US7321241B1 (en) 2006-06-15 2006-06-15 Bidirectional buffer with slew rate control and method of bidirectionally transmitting signals with slew rate control
PCT/US2007/013034 WO2007145864A2 (en) 2006-06-15 2007-05-31 Apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode

Publications (2)

Publication Number Publication Date
EP2039006A2 true EP2039006A2 (en) 2009-03-25
EP2039006A4 EP2039006A4 (en) 2013-10-09

Family

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Family Applications (1)

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EP07795654.8A Withdrawn EP2039006A4 (en) 2006-06-15 2007-05-31 Apparatus and method that provides active pull-up and logic translation from one signal mode to another signal mode

Country Status (3)

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EP (1) EP2039006A4 (en)
TW (1) TWI346457B (en)
WO (1) WO2007145864A2 (en)

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6597197B1 (en) * 1999-08-27 2003-07-22 Intel Corporation I2C repeater with voltage translation
US6781415B2 (en) * 2001-11-27 2004-08-24 Fairchild Semiconductor Corporation Active voltage level bus switch (or pass gate) translator
JP3746273B2 (en) * 2003-02-12 2006-02-15 株式会社東芝 Signal level conversion circuit
US7098693B2 (en) * 2004-08-31 2006-08-29 International Business Machines Corporation Bi-directional voltage translator

Also Published As

Publication number Publication date
TWI346457B (en) 2011-08-01
WO2007145864A2 (en) 2007-12-21
TW200830715A (en) 2008-07-16
WO2007145864A3 (en) 2008-04-17
EP2039006A4 (en) 2013-10-09
WO2007145864B1 (en) 2008-06-19

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