WO2003034594A1 - Data signal amplifier with automatically controllable dynamic signal range - Google Patents

Data signal amplifier with automatically controllable dynamic signal range Download PDF

Info

Publication number
WO2003034594A1
WO2003034594A1 PCT/US2002/024958 US0224958W WO03034594A1 WO 2003034594 A1 WO2003034594 A1 WO 2003034594A1 US 0224958 W US0224958 W US 0224958W WO 03034594 A1 WO03034594 A1 WO 03034594A1
Authority
WO
WIPO (PCT)
Prior art keywords
data signal
signal
output
signals
data signals
Prior art date
Application number
PCT/US2002/024958
Other languages
French (fr)
Inventor
Edward Seppi
Edward Shapiro
George Zentai
Richard Colbeth
Original Assignee
Varian Medical Systems, Inc.
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
Application filed by Varian Medical Systems, Inc. filed Critical Varian Medical Systems, Inc.
Priority to AT02768440T priority Critical patent/ATE484102T1/en
Priority to DE60237908T priority patent/DE60237908D1/en
Priority to JP2003537200A priority patent/JP4612303B2/en
Priority to EP02768440A priority patent/EP1436898B1/en
Publication of WO2003034594A1 publication Critical patent/WO2003034594A1/en

Links

Classifications

    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03MCODING; DECODING; CODE CONVERSION IN GENERAL
    • H03M1/00Analogue/digital conversion; Digital/analogue conversion
    • H03M1/12Analogue/digital converters
    • H03M1/124Sampling or signal conditioning arrangements specially adapted for A/D converters
    • H03M1/129Means for adapting the input signal to the range the converter can handle, e.g. limiting, pre-scaling ; Out-of-range indication
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03MCODING; DECODING; CODE CONVERSION IN GENERAL
    • H03M1/00Analogue/digital conversion; Digital/analogue conversion
    • H03M1/12Analogue/digital converters
    • H03M1/18Automatic control for modifying the range of signals the converter can handle, e.g. gain ranging
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/70Circuitry for compensating brightness variation in the scene
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/70Circuitry for compensating brightness variation in the scene
    • H04N23/76Circuitry for compensating brightness variation in the scene by influencing the image signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N25/00Circuitry of solid-state image sensors [SSIS]; Control thereof
    • H04N25/30Circuitry of solid-state image sensors [SSIS]; Control thereof for transforming X-rays into image signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N25/00Circuitry of solid-state image sensors [SSIS]; Control thereof
    • H04N25/70SSIS architectures; Circuits associated therewith
    • H04N25/76Addressed sensors, e.g. MOS or CMOS sensors
    • H04N25/78Readout circuits for addressed sensors, e.g. output amplifiers or A/D converters
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N5/00Details of television systems
    • H04N5/30Transforming light or analogous information into electric information
    • H04N5/32Transforming X-rays

Definitions

  • the present invention relates to analog amplifiers for preamplifying low- level signals, and in particular, to analog preamplifier circuits having controllable dynamic signal ranges for amplifying charge-biased signals.
  • High dynamic signal range is a key parameter for many types of circuits. This is particularly true in the area of flat panel X-ray imaging systems. As is well known in the art, such systems use a detector cassette containing a scintillation layer that absorbs and converts impinging X-ray photons to visible light photons for detection by photosensitive elements that are also within the detector array. As is further well known, such a detector array contains a two dimensional array of microscopic squares referred to as picture elements, or "pixels". Each pixel includes an addressable photosensitive element, such as a photodiode and switching transistor combination. From such circuitry individual pixel data signals, generally in the form of charge-based signals, are provided for amplification and further processing. Further discussion of this type of imaging system can be found in commonly assigned U.S. Patent No. 5,970,115, entitled “Multiple Mode Digital X-Ray Imaging System", the disclosure of which is incorporated herein by reference.
  • ADC analog-to-digital conversion circuit
  • a dynamically controllable dynamic signal range is provided in the preamplifier stage of a data signal processing circuit that includes a downstream analog-to-digital signal converter.
  • the gain of the preamplifier stage is dynamically adjusted, thereby extending the effective, or usable, dynamic range of the preamplifier stage.
  • Data signal amplification and processing circuitry with a dynamically controllable dynamic signal range in accordance with one embodiment of the presently claimed invention includes input and output terminals, amplification and processing circuitry, and control circuitry.
  • the input terminal is for conveying an input data signal having a data signal charge associated therewith.
  • the output terminal is for conveying an output data signal corresponding to the input data signal.
  • the amplification and processing circuitry coupled between the input and output terminals and including preamplification circuitry with a variable feedback capacitance associated therewith, receives a gain control signal and the input data signal and generates the output data signal, wherein a ratio of the output and input data signals is a function of the data signal charge and feedback capacitance and is responsive to the gain control signal.
  • the control circuitry coupled between the output terminal and the amplification and processing circuitry, monitors the output data signal and controls the variable feedback capacitance via the gain control signal, wherein the variable feedback capacitance is changed when the output data signal transcends a predetermined signal threshold.
  • An X-ray imaging system in accordance with one embodiment of the presently claimed invention includes an X-ray imaging device, amplification and processing circuitry, and control circuitry.
  • the X-ray imaging device provides a plurality of pixel data signals having respective data signal charges associated therewith.
  • the amplification and processing circuitry coupled to the X-ray imaging device and including preamplification circuitry with a plurality of variable feedback capacitances associated therewith, receives one or more gain control signals and the plurality of pixel data signals and generates a plurality of output data signals corresponding respectively to the plurality of pixel data signals, wherein respective ratios of respective ones of the pluralities of output and pixel data signals are functions of corresponding respective ones of the data signal charges and feedback capacitances and are responsive to respective ones of the one or more gain control signals.
  • the control circuitry coupled to the amplification and processing circuitry, monitors the plurality of output data signals and controls the plurality of variable feedback capacitances via the one or more gain control signals, wherein respective ones of the plurality of variable feedback capacitances are selectively changed when one or more of the plurality of output data signals transcend one or more predetermined signal thresholds.
  • Figure 1 is a functional block diagram of an X-ray imaging system using a data signal amplifier with dynamically controllable dynamic signal range in accordance with one embodiment of the present invention.
  • Figure 2 is a functional block diagram of the preamplifier stage of Figure 1.
  • Figure 3 is a functional block diagram of the controller stage of the circuit of Figure 1.
  • Figure 3 A is a graph of the hysteresis effect provided by the comparator circuit of Figure 3.
  • Figure 4 is a schematic diagram of an exemplary implementation of the variable feedback capacitance depicted in the circuit of Figure 2.
  • an X-ray imaging system using a data signal amplifier with dynamically controllable dynamic signal range in accordance with one embodiment of the present invention includes an X-ray imager device 10 and a plurality of data signal amplification and processing stages 12 (12a, 12b, ..., 12n), interconnected substantially as shown.
  • the X-ray imager device 10 provides multiple pixel data signals 11 (11a, l ib, ..., 1 In), each of which is received by one of the data signal amplification and processing stages 12.
  • each of the pixel data signals 11 has associated therewith a data signal charge Qdata, which is the electrical charge corresponding to the pixel data and being provided at the input to the data signal amplification and processing stage 12 (discussed in more detail below).
  • Qdata is the electrical charge corresponding to the pixel data and being provided at the input to the data signal amplification and processing stage 12 (discussed in more detail below).
  • the pixel data signal 11 is received and amplified by the preamplifier stage 14.
  • This preamplifier stage 14 has a feedback capacitance Cfb associated with it (discussed in more detail below).
  • Such feedback capacitance Cfb operates in conjunction with the data signal charge Qdata to establish the gain of the preamplifier stage 14.
  • this feedback capacitance Cfb is variable and is controlled by a gain control signal 21a provided by the controller stage 20.
  • the output 15a of the preamplifier stage 14 is processed by a sample and hold stage 16 which samples this signal 15a and holds it for the requisite time to allow a downstream analog-to-digital converter (ADC) 18 to convert such held signal to a digital equivalent signal 19.
  • ADC analog-to-digital converter
  • the controller stage 20 monitors one or more output signals from the preamplifier stage 14 and sample and hold stage 16. Such signals can include, among others, the output 15a from the preamplifier stage 14, the output 15c from the sample and hold stage 16, and an interim signal 15b generated within the sample and hold stage 16.
  • the monitored signal is the signal 15a generated by the preamplifier stage 14.
  • any of the other signals 15b, 15c may be monitored as well for purposes of this invention, since it is only necessary that the monitored signal bear some known relationship or correspondence to the original pixel data signal 11 in accordance with the gain of the preamplifier stage 14.
  • the controller 20 also generates a correction indication signal 21b to alert a downstream processing stage (not shown) that the digital equivalent data signal 19 is being provided in accordance with a new gain factor as determined by the data signal charge Qdata and the newly adjusted feedback capacitance Cfb.
  • one embodiment 14a of the preamplifier stage 14 includes a differential amplifier 30 and a variable feedback capacitance stage 32, interconnected as shown.
  • the incoming pixel data signal 11 is compared by the differential amplifier 30 to a reference signal Vrefa.
  • the pixel data signal 11 is amplified by this amplifier 30 to produce the output signal 15a while rejecting common mode signal components that may appear in the pixel data 11 and reference Vrefa signals.
  • the feedback capacitance Cfb is, as discussed above, adjusted as necessary by the gain control signal 21a from the controller stage 20.
  • one embodiment 20a of the controller stage 20 includes a comparator circuit 40 which compares the monitored signal 15 to one or more external reference signals Vrefb, Vrefc, which may be adjusted for providing hysteresis as desired.
  • Vrefb external reference signals
  • Vrefc external reference signals
  • an additional reference signal Vrefc can be used so that the gain control signal 21a is adjusted only when the monitored signal 15 crosses the first reference signal Vrefb in one direction and crosses the second reference signal Vrefc in another direction. This hysteresis effect is depicted in the graph of Figure 3 A.
  • Capacitor Cl serves as the primary, or baseline, capacitance so as to provide a baseline gain value in conjunction with the data line capacitance Cdata, as discussed above.
  • One or more additional capacitances C2, C3 can be included so as to provide a range of additional capacitance values. For example, if capacitor C2 is switched in to be included in parallel with capacitor Cl, then the net feedback capacitance Cfb is the sum of capacitances Cl and C2. Similarly, if capacitance C3 were used instead of capacitance C2, then the net feedback capacitance is the sum of capacitances Cl and C3.
  • Capacitors C2 and C3 are selectively switched in or out of the circuit using solid-state switches SI and S2, respectively.
  • Such switches SI, S2 are controlled by the gain control signal 21a in accordance with well-known techniques.
  • Such switches SI, S2 are generally designed as pass transistors or transmission gates (dual pass transistors connected in parallel) in accordance with well-known circuit design techniques.
  • the baseline capacitor Cl as one which is fabricated in accordance with well-known techniques to be a variable capacitance (e.g., varactor) controlled by an additional gain control signal 21c.
  • a reset switch SO is also provided, controlled by a reset signal 21r, so as to reset this circuit by discharging all capacitances at the appropriate time.

Landscapes

  • Engineering & Computer Science (AREA)
  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Theoretical Computer Science (AREA)
  • Apparatus For Radiation Diagnosis (AREA)
  • Transforming Light Signals Into Electric Signals (AREA)
  • Measurement Of Radiation (AREA)
  • Analogue/Digital Conversion (AREA)
  • Amplifiers (AREA)
  • Tone Control, Compression And Expansion, Limiting Amplitude (AREA)

Abstract

A preamplifier stage (14) with dynamically controllable signal gain in a data signal processing circuit that includes a downstream analog-to-digital signal converter (18). The level of the data signal subsequent to its preamplification is monitored and the gain of the preamplifier stage (14) is dynamically adjusted in response to such data signal transcending one or more predetermined thresholds. Hence, the effective dynamic range of the preamplifier stage (14) is extended, thereby also effectively extending the dynamic range of the overall system beyond that to which it would have otherwise been limited by the dynamic range of the analog-to-digital signal converter (18). In accordance with a preferred embodiment of the invention, such a preamplifier (14) is used in an X-ray imaging system such as that using flat panel solid state imaging devices.

Description

DATA SIGNAL AMPLIFIER WITH AUTOMATICALLY CONTROLLABLE DYNAMIC SIGNAL RANGE
BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates to analog amplifiers for preamplifying low- level signals, and in particular, to analog preamplifier circuits having controllable dynamic signal ranges for amplifying charge-biased signals.
2. Description of the Related Art
High dynamic signal range is a key parameter for many types of circuits. This is particularly true in the area of flat panel X-ray imaging systems. As is well known in the art, such systems use a detector cassette containing a scintillation layer that absorbs and converts impinging X-ray photons to visible light photons for detection by photosensitive elements that are also within the detector array. As is further well known, such a detector array contains a two dimensional array of microscopic squares referred to as picture elements, or "pixels". Each pixel includes an addressable photosensitive element, such as a photodiode and switching transistor combination. From such circuitry individual pixel data signals, generally in the form of charge-based signals, are provided for amplification and further processing. Further discussion of this type of imaging system can be found in commonly assigned U.S. Patent No. 5,970,115, entitled "Multiple Mode Digital X-Ray Imaging System", the disclosure of which is incorporated herein by reference.
As part of the processing of such data signals, following preamphfication and some form of a sample and hold operation, such signals are converted to digital signals using an analog-to-digital conversion circuit (ADC). Generally it is this ADC circuitry that sets, or limits, the maximum dynamic range of the system, typically at 14 bits. Such a maximum dynamic range, however, in the field of flat panel X-ray imaging systems has been an impediment to the commercial success of such systems. Accordingly, it would be desirable to have a technique whereby the maximum dynamic range can be extended and thus, be more independent from the maximum range of the ADC circuitry.
SUMMARY OF THE INVENTION
In accordance with the presently claimed invention, a dynamically controllable dynamic signal range is provided in the preamplifier stage of a data signal processing circuit that includes a downstream analog-to-digital signal converter. By monitoring the level of the data signal subsequent to its preamplification, the gain of the preamplifier stage is dynamically adjusted, thereby extending the effective, or usable, dynamic range of the preamplifier stage. This provides the further advantage of effectively extending the dynamic range of the overall system beyond that to which it would have otherwise been limited by the dynamic range of the analog-to-digital signal converter. One particularly advantageous application for this invention is in an X-ray imaging system such as that using flat panel solid state imaging devices.
Data signal amplification and processing circuitry with a dynamically controllable dynamic signal range in accordance with one embodiment of the presently claimed invention includes input and output terminals, amplification and processing circuitry, and control circuitry. The input terminal is for conveying an input data signal having a data signal charge associated therewith. The output terminal is for conveying an output data signal corresponding to the input data signal. The amplification and processing circuitry, coupled between the input and output terminals and including preamplification circuitry with a variable feedback capacitance associated therewith, receives a gain control signal and the input data signal and generates the output data signal, wherein a ratio of the output and input data signals is a function of the data signal charge and feedback capacitance and is responsive to the gain control signal. The control circuitry, coupled between the output terminal and the amplification and processing circuitry, monitors the output data signal and controls the variable feedback capacitance via the gain control signal, wherein the variable feedback capacitance is changed when the output data signal transcends a predetermined signal threshold.
An X-ray imaging system in accordance with one embodiment of the presently claimed invention includes an X-ray imaging device, amplification and processing circuitry, and control circuitry. The X-ray imaging device provides a plurality of pixel data signals having respective data signal charges associated therewith. The amplification and processing circuitry, coupled to the X-ray imaging device and including preamplification circuitry with a plurality of variable feedback capacitances associated therewith, receives one or more gain control signals and the plurality of pixel data signals and generates a plurality of output data signals corresponding respectively to the plurality of pixel data signals, wherein respective ratios of respective ones of the pluralities of output and pixel data signals are functions of corresponding respective ones of the data signal charges and feedback capacitances and are responsive to respective ones of the one or more gain control signals. The control circuitry, coupled to the amplification and processing circuitry, monitors the plurality of output data signals and controls the plurality of variable feedback capacitances via the one or more gain control signals, wherein respective ones of the plurality of variable feedback capacitances are selectively changed when one or more of the plurality of output data signals transcend one or more predetermined signal thresholds.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 is a functional block diagram of an X-ray imaging system using a data signal amplifier with dynamically controllable dynamic signal range in accordance with one embodiment of the present invention.
Figure 2 is a functional block diagram of the preamplifier stage of Figure 1.
Figure 3 is a functional block diagram of the controller stage of the circuit of Figure 1. Figure 3 A is a graph of the hysteresis effect provided by the comparator circuit of Figure 3.
Figure 4 is a schematic diagram of an exemplary implementation of the variable feedback capacitance depicted in the circuit of Figure 2.
DETAILED DESCRIPTION OF THE INVENTION
It should be noted that although the following discussion is in the context of an X-ray imaging system, a data signal amplifier with dynamically controllable signal gain in accordance with the presently claimed invention can be used advantageously in virtually any system requiring a way to extend the overall dynamic range of such system and to do so in a dynamic manner.
Referring to Figure 1, an X-ray imaging system using a data signal amplifier with dynamically controllable dynamic signal range in accordance with one embodiment of the present invention includes an X-ray imager device 10 and a plurality of data signal amplification and processing stages 12 (12a, 12b, ..., 12n), interconnected substantially as shown. As is well known in the art (e.g., see U.S. Patent No. 5,970,115), the X-ray imager device 10 provides multiple pixel data signals 11 (11a, l ib, ..., 1 In), each of which is received by one of the data signal amplification and processing stages 12. As is also well known in the art, each of the pixel data signals 11 has associated therewith a data signal charge Qdata, which is the electrical charge corresponding to the pixel data and being provided at the input to the data signal amplification and processing stage 12 (discussed in more detail below).
The pixel data signal 11 is received and amplified by the preamplifier stage 14. This preamplifier stage 14 has a feedback capacitance Cfb associated with it (discussed in more detail below). Such feedback capacitance Cfb operates in conjunction with the data signal charge Qdata to establish the gain of the preamplifier stage 14. In other words, in accordance with well-known principals, the signal gain of the preamplifier stage 14 is a function of the data signal charge Qdata and feedback capacitance Cfb (Gain = Vdata/Qdata = 1/Cfb, where Vdata is the output signal 15a voltage of the preamplifier stage 14). Also, as discussed in more detail below, in accordance with the present invention, this feedback capacitance Cfb is variable and is controlled by a gain control signal 21a provided by the controller stage 20.
The output 15a of the preamplifier stage 14 is processed by a sample and hold stage 16 which samples this signal 15a and holds it for the requisite time to allow a downstream analog-to-digital converter (ADC) 18 to convert such held signal to a digital equivalent signal 19.
The controller stage 20 monitors one or more output signals from the preamplifier stage 14 and sample and hold stage 16. Such signals can include, among others, the output 15a from the preamplifier stage 14, the output 15c from the sample and hold stage 16, and an interim signal 15b generated within the sample and hold stage 16. In a preferred embodiment of the present invention, the monitored signal is the signal 15a generated by the preamplifier stage 14. However, any of the other signals 15b, 15c may be monitored as well for purposes of this invention, since it is only necessary that the monitored signal bear some known relationship or correspondence to the original pixel data signal 11 in accordance with the gain of the preamplifier stage 14.
The controller 20 monitors this signal 15 so as to determine when such signal 15 transcends one or more predetermined signal thresholds (discussed in more detail below). When such a threshold crossing occurs, the controller 20, by way of the gain control signal 21a, adjusts the value of the feedback capacitance Cfb within the preamplifier stage 14. Accordingly, when the monitored signal 15 indicates that the feedback capacitance Cfb is approaching saturation, the controller 20 can adjust the gain control signal 21a to selectively increase the value of the feedback capacitance Cfb and thereby decrease the gain (= Vdata/Qdata = 1/Cfb) while increasing the dynamic range (i.e., the maximum possible output signal voltage without device or circuit saturation). When this occurs, the controller 20 also generates a correction indication signal 21b to alert a downstream processing stage (not shown) that the digital equivalent data signal 19 is being provided in accordance with a new gain factor as determined by the data signal charge Qdata and the newly adjusted feedback capacitance Cfb.
Referring to Figure 2, one embodiment 14a of the preamplifier stage 14 includes a differential amplifier 30 and a variable feedback capacitance stage 32, interconnected as shown. The incoming pixel data signal 11 is compared by the differential amplifier 30 to a reference signal Vrefa. The pixel data signal 11 is amplified by this amplifier 30 to produce the output signal 15a while rejecting common mode signal components that may appear in the pixel data 11 and reference Vrefa signals. The feedback capacitance Cfb is, as discussed above, adjusted as necessary by the gain control signal 21a from the controller stage 20.
Referring to Figure 3, one embodiment 20a of the controller stage 20 includes a comparator circuit 40 which compares the monitored signal 15 to one or more external reference signals Vrefb, Vrefc, which may be adjusted for providing hysteresis as desired. As should be well understood, if no hysteresis is desired or needed, only one reference signal Vrefb may be required. Accordingly, as the monitored signal 15 crosses, or transcends, this reference signal Vrefb in either direction, the resulting gain control signal 21a will have one of two signal states. However, if hysteresis is required or desired, an additional reference signal Vrefc can be used so that the gain control signal 21a is adjusted only when the monitored signal 15 crosses the first reference signal Vrefb in one direction and crosses the second reference signal Vrefc in another direction. This hysteresis effect is depicted in the graph of Figure 3 A.
Referring to Figure 4, one embodiment 32a of the feedback capacitance stage 32 in the circuit of Figure 2 can be implemented substantially as shown. Capacitor Cl serves as the primary, or baseline, capacitance so as to provide a baseline gain value in conjunction with the data line capacitance Cdata, as discussed above. One or more additional capacitances C2, C3 can be included so as to provide a range of additional capacitance values. For example, if capacitor C2 is switched in to be included in parallel with capacitor Cl, then the net feedback capacitance Cfb is the sum of capacitances Cl and C2. Similarly, if capacitance C3 were used instead of capacitance C2, then the net feedback capacitance is the sum of capacitances Cl and C3.
Capacitors C2 and C3 are selectively switched in or out of the circuit using solid-state switches SI and S2, respectively. Such switches SI, S2 are controlled by the gain control signal 21a in accordance with well-known techniques. Further, such switches SI, S2 are generally designed as pass transistors or transmission gates (dual pass transistors connected in parallel) in accordance with well-known circuit design techniques.
Additionally, it is possible to implement the baseline capacitor Cl as one which is fabricated in accordance with well-known techniques to be a variable capacitance (e.g., varactor) controlled by an additional gain control signal 21c. Generally, a reset switch SO is also provided, controlled by a reset signal 21r, so as to reset this circuit by discharging all capacitances at the appropriate time.
Various other modifications and alterations in the structure and method of operation of this invention will be apparent to those skilled in the art without departing from the scope and spirit of the invention. Although the invention has been described in connection with specific preferred embodiments, it should be understood that the invention as claimed should not be unduly limited to such specific embodiments. It is intended that the following claims define the scope of the present invention and that structures and methods within the scope of these claims and their equivalents be covered thereby.

Claims

WHAT IS CLAIMED IS:
1. An apparatus including data signal amplification and processing circuitry with a dynamically controllable dynamic signal range, comprising: an input terminal for conveying an input data signal having a data signal charge associated therewith; an output terminal for conveying an output data signal corresponding to said input data signal; amplification and processing circuitry, coupled between said input and output terminals and including preamplification circuitry with a variable feedback capacitance associated therewith, that receives a gain control signal and said input data signal and generates said output data signal, wherein a ratio of said output and input data signals is a function of said data signal charge and feedback capacitance and is responsive to said gain control signal; and control circuitry, coupled between said output terminal and said amplification and processing circuitry, that monitors said output data signal and controls said variable feedback capacitance via said gain control signal, wherein said variable feedback capacitance is changed when said output data signal transcends a predetermined signal threshold.
2. The apparatus of claim 1, wherein said amplification and processing circuitry comprises a differential amplifier having input and output terminals with said variable feedback capacitance coupled between said amplifier input and output terminals.
3. The apparatus of claim 2, wherein said amplification and processing circuitry further comprises sample-and-hold circuitry, coupled to said differential amplifier, that samples said output data signal.
4. The apparatus of claim 1, wherein said variable feedback capacitance comprises a plurality of switched capacitor circuits coupled in parallel.
5. The apparatus of claim 1, wherein said variable feedback capacitance comprises a variable capacitor coupled in parallel with one or more switched capacitor circuits.
6. The apparatus of claim 1, wherein said control circuitry comprises a comparator circuit that compares said output data signal to a reference signal.
7. The apparatus of claim 1, further comprising analog-to-digital conversion circuitry, coupled to said output terminal, that converts said output data signal to a digital data signal.
8. An apparatus including data signal amplification and processing circuitry with a dynamically controllable dynamic signal range, comprising: input means for conveying an input data signal having a data signal charge associated therewith; output means for conveying an output data signal corresponding to said input data signal; amplifier and processor means, including preamplifier means with a variable feedback capacitance associated therewith, for receiving a gain control signal and said input data signal and generating said output data signal, wherein a ratio of said output and input data signals is a function of said data signal charge and feedback capacitance and is responsive to said gain control signal; and controller means for monitoring said output data signal and controlling said variable feedback capacitance via said gain control signal, wherein said variable feedback capacitance is changed when said output data signal transcends a predetermined signal threshold.
9. An apparatus including an X-ray imaging system, comprising: an X-ray imaging device that provides a plurality of pixel data signals having respective data signal charges associated therewith; amplification and processing circuitry, coupled to said X-ray imaging device and including preamplification circuitry with a plurality of variable feedback capacitances associated therewith, that receives one or more gain control signals and said plurality of pixel data signals and generates a plurality of output data signals corresponding respectively to said plurality of pixel data signals, wherein respective ratios of respective ones of said pluralities of output and pixel data signals are functions of corresponding respective ones of said data signal charges and feedback capacitances and are responsive to respective ones of said one or more gain control signals; and control circuitry, coupled to said amplification and processing circuitry, that monitors said plurality of output data signals and controls said plurality of variable feedback capacitances via said one or more gain control signals, wherein respective ones of said plurality of variable feedback capacitances are selectively changed when one or more of said plurality of output data signals transcend one or more predetermined signal thresholds.
10. The apparatus of claim 9, wherein said amplification and processing circuitry comprises a plurality of differential amplifiers having respective input and output terminals with respective ones of said plurality of variable feedback capacitances coupled between said respective amplifier input and output terminals.
11. The apparatus of claim 10, wherein said amplification and processing circuitry further comprises sample-and-hold circuitry, coupled to said plurality of differential amplifiers, that samples said plurality of output data signals.
12. The apparatus of claim 9, wherein each one of said plurality of variable feedback capacitances comprises a plurality of switched capacitor circuits coupled in parallel.
13. The apparatus of claim 9, wherein each one of said plurality of variable feedback capacitances comprises a variable capacitor coupled in parallel with one or more switched capacitor circuits.
14. The apparatus of claim 9, wherein said control circuitry comprises a plurality of comparator circuits that compare respective ones of said plurality of output data signals to one or more respective reference signals.
15. The apparatus of claim 9, further comprising analog-to-digital conversion circuitry, coupled to said amplification and processing circuitry, that converts said plurality of output data signals to a plurality of digital data signals.
16. An apparatus including an X-ray imaging system, comprising:
X-ray imaging means for providing a plurality of pixel data signals having respective data signal charges associated therewith; amplifier and processor means, including preamplifier means with a plurality of variable feedback capacitances associated therewith, for receiving one or more gain control signals and said plurality of pixel data signals and generating a plurality of output data signals corresponding respectively to said plurality of pixel data signals, wherein respective ratios of respective ones of said pluralities of output and pixel data signals are functions of corresponding respective ones of said data signal charges and feedback capacitances and are responsive to respective ones of said one or more gain control signals; and controller means for monitoring said plurality of output data signals and controlling said plurality of variable feedback capacitances via said one or more gain control signals, wherein respective ones of said plurality of variable feedback capacitances are selectively changed when one or more of said plurality of output data signals transcend one or more predetermined signal thresholds.
PCT/US2002/024958 2001-10-16 2002-08-08 Data signal amplifier with automatically controllable dynamic signal range WO2003034594A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
AT02768440T ATE484102T1 (en) 2001-10-16 2002-08-08 DATA SIGNAL AMPLIFIER WITH AUTOMATICALLY CONTROLLED DYNAMIC SIGNAL SCOPE
DE60237908T DE60237908D1 (en) 2001-10-16 2002-08-08 DATA SIGNAL AMPLIFIER WITH AUTOMATICALLY CONTROLLABLE DYNAMIC SIGNALING
JP2003537200A JP4612303B2 (en) 2001-10-16 2002-08-08 Data signal amplifier with automatically controllable dynamic signal range
EP02768440A EP1436898B1 (en) 2001-10-16 2002-08-08 Data signal amplifier with automatically controllable dynamic signal range

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US09/978,727 US6486808B1 (en) 2001-10-16 2001-10-16 Data signal amplifier with automatically controllable dynamic signal range
US09/978,727 2001-10-16

Publications (1)

Publication Number Publication Date
WO2003034594A1 true WO2003034594A1 (en) 2003-04-24

Family

ID=25526338

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2002/024958 WO2003034594A1 (en) 2001-10-16 2002-08-08 Data signal amplifier with automatically controllable dynamic signal range

Country Status (7)

Country Link
US (1) US6486808B1 (en)
EP (1) EP1436898B1 (en)
JP (1) JP4612303B2 (en)
CN (1) CN100391105C (en)
AT (1) ATE484102T1 (en)
DE (1) DE60237908D1 (en)
WO (1) WO2003034594A1 (en)

Families Citing this family (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6868138B2 (en) * 2002-05-29 2005-03-15 The Regents Of The University Of Michigan Method, processor and computed tomography (CT) machine for generating images utilizing high and low sensitivity data collected from a flat panel detector having an extended dynamic range
US7356115B2 (en) 2002-12-04 2008-04-08 Varian Medical Systems Technology, Inc. Radiation scanning units including a movable platform
US7945021B2 (en) 2002-12-18 2011-05-17 Varian Medical Systems, Inc. Multi-mode cone beam CT radiotherapy simulator and treatment machine with a flat panel imager
US6901135B2 (en) * 2003-08-28 2005-05-31 Bio-Imaging Research, Inc. System for extending the dynamic gain of an X-ray detector
US7589326B2 (en) 2003-10-15 2009-09-15 Varian Medical Systems Technologies, Inc. Systems and methods for image acquisition
US7002408B2 (en) * 2003-10-15 2006-02-21 Varian Medical Systems Technologies, Inc. Data signal amplifier and processor with multiple signal gains for increased dynamic signal range
US7095028B2 (en) * 2003-10-15 2006-08-22 Varian Medical Systems Multi-slice flat panel computed tomography
US7443435B2 (en) * 2004-07-07 2008-10-28 Altasens, Inc. Column amplifier with automatic gain selection for CMOS image sensors
US7605854B2 (en) * 2004-08-11 2009-10-20 Broadcom Corporation Operational amplifier for an active pixel sensor
US7145188B2 (en) * 2004-08-19 2006-12-05 Broadcom Corporation Apparatus and method of image processing to avoid image saturation
US7231014B2 (en) 2005-02-14 2007-06-12 Varian Medical Systems Technologies, Inc. Multiple mode flat panel X-ray imaging system
KR100756426B1 (en) 2005-06-16 2007-09-07 한국과학기술원 Mdac circuit with gain error correction and sample/hold circuit
JP4773768B2 (en) * 2005-08-16 2011-09-14 キヤノン株式会社 Radiation imaging apparatus, control method therefor, and radiation imaging system
KR20080111504A (en) 2006-03-27 2008-12-23 쉘 인터내셔날 리써취 마트샤피지 비.브이. Amplifier and method of amplifying an input signal
AU2008272905B2 (en) * 2007-07-03 2011-05-19 Shell Internationale Research Maatschappij B.V. System and method for measuring a time-varying magnetic field and method for production of a hydrocarbon fluid
RU2509321C2 (en) * 2008-06-26 2014-03-10 Трикселль Wide dynamic range x-ray detector with improved signal to noise ratio
US8040270B2 (en) * 2009-02-26 2011-10-18 General Electric Company Low-noise data acquisition system for medical imaging
US9559639B2 (en) * 2009-08-19 2017-01-31 Qualcomm Incorporated Protection circuit for power amplifier
US9083889B2 (en) * 2010-02-28 2015-07-14 Himax Imaging, Inc. Signal processing circuit capable of selectively adjusting gain factor of sample-and-hold circuit and signal processing method thereof
US8472583B2 (en) 2010-09-29 2013-06-25 Varian Medical Systems, Inc. Radiation scanning of objects for contraband
CN102821254B (en) * 2011-06-08 2015-05-20 北京中科美伦医疗股份有限公司 Pre-amplifying processing circuit of charge coupled device (CCD) image signals obtained under X-rays
US20130256542A1 (en) * 2012-03-28 2013-10-03 Luxen Technologies, Inc. Programmable readout integrated circuit for an ionizing radiation sensor
US9128195B2 (en) * 2012-03-28 2015-09-08 Luxen Technologies, Inc. Increasing dynamic range for x-ray image sensor
EP2693739A1 (en) * 2012-08-01 2014-02-05 Agilent Technologies, Inc. Electronic variable gain for x-ray detector
JP6442154B2 (en) * 2014-04-23 2018-12-19 浜松ホトニクス株式会社 Image acquisition apparatus and image acquisition method
JP5874109B2 (en) * 2014-07-23 2016-03-02 株式会社リガク X-ray detection signal processing apparatus and X-ray analysis apparatus using the same
EP3151545A1 (en) 2015-10-01 2017-04-05 Paul Scherrer Institut Method for extending the dynamic range of a pixel detector system using automatic gain switching
KR101823532B1 (en) * 2016-01-26 2018-01-30 삼성전자주식회사 X-ray detector system and operating method thereof
CN115604596B (en) * 2022-10-09 2024-03-15 成都微光集电科技有限公司 Image sensor reading system, reading method and image sensor

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4899115A (en) * 1988-11-18 1990-02-06 Cb Labs, Inc. System for controlling the dynamic range of electric musical instruments

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3439228B2 (en) * 1992-10-29 2003-08-25 アルパイン株式会社 Noise canceling device
US5469115A (en) * 1994-04-28 1995-11-21 Qualcomm Incorporated Method and apparatus for automatic gain control in a digital receiver
JPH07336169A (en) * 1994-06-03 1995-12-22 Youzan:Kk Amplifier circuit
US5801571A (en) 1996-11-29 1998-09-01 Varian Associates, Inc. Current mode analog signal multiplexor
US5970115A (en) 1996-11-29 1999-10-19 Varian Medical Systems, Inc. Multiple mode digital X-ray imaging system
US6084461A (en) 1996-11-29 2000-07-04 Varian Medical Systems, Inc. Charge sensitive amplifier with high common mode signal rejection
US5872470A (en) 1996-11-29 1999-02-16 Varian Associates, Inc. Pipelined sample and hold circuit with correlated double sampling
JP4463428B2 (en) * 1999-01-29 2010-05-19 浜松ホトニクス株式会社 Photodetector
US6310567B1 (en) * 1999-09-07 2001-10-30 Linear Technology Corporation Programmable configuration, level and output voltage range circuits and methods for signal processors

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4899115A (en) * 1988-11-18 1990-02-06 Cb Labs, Inc. System for controlling the dynamic range of electric musical instruments

Also Published As

Publication number Publication date
US6486808B1 (en) 2002-11-26
JP2005507189A (en) 2005-03-10
CN1554149A (en) 2004-12-08
ATE484102T1 (en) 2010-10-15
JP4612303B2 (en) 2011-01-12
EP1436898A1 (en) 2004-07-14
EP1436898B1 (en) 2010-10-06
DE60237908D1 (en) 2010-11-18
CN100391105C (en) 2008-05-28
EP1436898A4 (en) 2005-04-20

Similar Documents

Publication Publication Date Title
US6486808B1 (en) Data signal amplifier with automatically controllable dynamic signal range
US7183531B2 (en) Amplification with feedback capacitance for photodetector signals
JP4523599B2 (en) Data signal amplifier and processor having multiple signal gains for increasing the dynamic range of the signal
US20070262238A1 (en) Photo detecting apparatus
US7742091B2 (en) Flexy-power amplifier: a new amplifier with built-in power management
US7463282B2 (en) Solid-state image pickup device and clamp control method therefor
US6339363B1 (en) Low FPN high gain capacitive transimpedance amplifier for use with capacitive sensors
JPH01123511A (en) Amplifier
JP2009538074A (en) Image sensor circuit
US7492399B1 (en) High dynamic range dual mode charge transimpedance amplifier/source follower per detector input circuit
EP1408315A1 (en) Photosensor
CN105222900B (en) Infrared focal plane array reading circuit
TWI769936B (en) Column amplifier capacitor switch circuit to adjust analog gain
US10897592B1 (en) Combined programmable gain amplifier and comparator for low power and low area readout in image sensor
JP4869868B2 (en) Amplifier
KR101801821B1 (en) Gain-linearized open loop pre-amplifier combined with 4-T pixel
US10291186B2 (en) Amplifier for contorlling output range and multi-stage amplification device using the same
WO2023197163A1 (en) Comparator and method of comparing voltages
US20210400215A1 (en) Imaging systems with improved circuitry to provide boosted control signals
US5514985A (en) Virtual amplifier
US10687004B1 (en) Low noise passive pixel readout circuit
JP2009021920A (en) Solid-state imaging device and camera
US6327389B1 (en) Image pixel bridge
JP2003158683A (en) Solid-state image pickup device and solid-state imaging system employing the same

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BY BZ CA CH CN CO CR CU CZ DE DM DZ EC EE ES FI GB GD GE GH HR HU ID IL IN JP KE KG KP KR KZ LK LR LS LT LU LV MA MD MG MK MW MX MZ NO NZ PL PT RO RU SD SG SI SK SL TJ TM TR TT TZ UA UG VN YU ZA

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): GH GM KE LS MW MZ SD SL SZ UG ZM ZW AM AZ BY KG KZ RU TJ TM AT BE BG CH CY CZ DK EE ES FI FR GB GR IE IT LU MC PT SE SK TR BF BJ CF CG CI GA GN GQ GW ML MR NE SN TD TG

121 Ep: the epo has been informed by wipo that ep was designated in this application
WWE Wipo information: entry into national phase

Ref document number: 2002768440

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 2003537200

Country of ref document: JP

WWE Wipo information: entry into national phase

Ref document number: 20028176561

Country of ref document: CN

WWP Wipo information: published in national office

Ref document number: 2002768440

Country of ref document: EP