Solid-state image pickup apparatus, signal processing method for a solid-state image pickup apparatus, and electronic apparatus
US-9215390-B2 · Dec 15, 2015 · US
US2021029313A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2021029313-A1 |
| Application number | US-201916661083-A |
| Country | US |
| Kind code | A1 |
| Filing date | Oct 23, 2019 |
| Priority date | Jul 24, 2019 |
| Publication date | Jan 28, 2021 |
| Grant date | — |
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An image sensor may include an array of image pixels. Control circuitry coupled to the array of pixels may be configured to operate the image pixels in an overflow mode of operation, in which each pixel generates an overflow image signal and a complete image signal from a single exposure time period. The overflow image signals and the complete image signals from the pixels may be used to generate a high dynamic range image. While the floating diffusion region in each pixel is not in use, control circuitry may control that pixel to generate a reference signal at the floating diffusion region indicative of pixel-specific dark signal noise. Processing circuitry may mitigate for dark signal non-uniformity across the pixels by correcting the complete image signals using the reference signal to remove dark signal noise in the complete image signals.
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What is claimed is: 1 . An imaging system, comprising: an array of image pixels, wherein an image pixel in the array of image pixels includes a photosensitive element, a charge storage region, and a transfer transistor interposed between the photosensitive element and the charge storage region; control circuitry coupled to the array of image pixels and operable to control the image pixel to generate an image signal in an overflow mode of operation and to control the image pixel to generate a reference signal at the charge storage region; and processing circuitry operable to correct for a dark signal noise in the image signal based on the reference signal. 2 . The imaging system defined in claim 1 , wherein the control circuitry is operable to control the image pixel to generate an additional image signal in the overflow mode of operation, and the image signal and the additional image signal are generated based on a single integration time period. 3 . The imaging system defined in claim 2 , wherein the control circuitry is operable to control readout circuitry to perform readout operations for the additional image signal prior to readout operations for the image signal. 4 . The imaging system defined in claim 3 , wherein the processing circuitry is operable to generate a high dynamic range image based on the additional image signal and the image signal. 5 . The imaging system defined in claim 3 , wherein the processing circuitry is operable to correct for the dark signal noise based on a comparison of the additional image signal with a threshold level. 6 . The imaging system defined in claim 1 , wherein the image signal is generated during a first time period, the reference signal is generated during a second time period, and wherein the processing circuitry is operable to correct for the dark signal noise based on a ratio between a duration of the first time period and a duration of the second time period. 7 . The imaging system defined in claim 6 , wherein the processing circuitry is operable to correct for the dark signal noise by multiplying the reference signal by the ratio and subtracting the ratio-multiplied reference signal from the image signal. 8 . The imaging system defined in claim 1 , wherein the reference signal is generated before the image signal is generated, and the reference signal is stored at a frame buffer. 9 . The imaging system defined in claim 1 , wherein the reference signal is generated after the image signal is generated, the imaging system further comprising: readout circuitry coupled to the array of image pixels and operable to perform readout operations for the image signal and for a reset level signal after readout operations for the image signal. 10 . The imaging system defined in claim 9 , wherein the readout circuitry is operable to perform readout operations for the reference signal, and the readout operations for the reset level signal and the reference signal form a correlated double sampling readout. 11 . The imaging system defined in claim 10 , wherein the readout circuitry is operable to perform readout operations for an additional reset level signal and an additional image signal before the readout operations for the image signal, and wherein the additional image signal and the image signal are generated based on a single integration time period. 12 . The imaging system defined in claim 1 , wherein the charge storage region comprises a floating diffusion region. 13 . The imaging system defined in claim 12 , wherein the control circuitry is operable to control the image pixel to generate the reference signal by: resetting the floating diffusion region to a reset voltage level; and isolating the floating diffusion region for a time period, during which the reference signal is generated. 14 . A method of generating image signals having reduced dark current noise using an image pixel, the method comprising: with a transistor and a photosensitive element coupled to a first terminal of the transistor, generating first and second image signals in an overflow mode of operation based on a first integration time period; at a floating diffusion region coupled to a second terminal of the transistor, generating a reference signal for correcting a dark current noise; and at the photosensitive element, generating a third image signal in a linear mode of operation based on a second integration time period. 15 . The method defined in claim 14 , wherein generating the reference signal comprises generating the reference signal while generating the third image signal. 16 . The method defined in claim 15 , wherein the first image signal is an overflow image signal, the second image signal is a complete image signal, and the overflow image signal and the complete image signal are used to construct a high dynamic range image. 17 . The method defined in claim 16 , further comprising: modifying the complete image signal based on the reference signal to correct for a noise component in the complete image signal. 18 . A method of generating image signals having reduced dark current noise using an image pixel, the method comprising: resetting a charge storage region to a reference voltage at a first time; after resetting the charge storage region, prevent charge from a photosensitive region from overflowing to the charge storage region; at a second time, performing readout operations on a reference signal generated at the charge storage region, wherein the reference signal is generated between the first time and the second time and is indicative of a pixel-specific dark signal noise; and after performing the readout operations, generating an image signal in an overflow mode of operation. 19 . The method defined in claim 18 , further comprising: subtracting a modified version of the reference signal from the image signal to compensate for the pixel-specific dark signal noise. 20 . The method defined in claim 19 , wherein performing readout operations on the reference signal comprises storing the reference signal at a frame buffer.
Control of the dynamic range · CPC title
by using reference sources · CPC title
by controlling the amount of charge storable in the pixel, e.g. modification of the charge conversion ratio of the floating node capacitance · CPC title
comprising storage means other than floating diffusion · CPC title
Readout circuits for addressed sensors, e.g. output amplifiers or A/D converters · CPC title
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