Electroluminescent display and method of driving the same
US-2016217729-A1 · Jul 28, 2016 · US
US2018295306A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2018295306-A1 |
| Application number | US-201715480521-A |
| Country | US |
| Kind code | A1 |
| Filing date | Apr 6, 2017 |
| Priority date | Apr 6, 2017 |
| Publication date | Oct 11, 2018 |
| Grant date | — |
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Image sensors may include an array of image sensor pixels. A subset of the array, sometimes referred to as a region of interest (“ROI”), can be read out using vertical readout lines and diagonal readout lines. The diagonal readout lines enable multiple adjacent or nonadjacent rows in the ROI to be simultaneously read out. Configured and operated in this way, frame rate gains can be achieved by reducing the ROI size in both the Y direction and the X direction.
Opening claim text (preview).
What is claimed is: 1 . An image sensor comprising: an array of image sensor pixels; data converters that receive signals from the array of image sensor pixels; a plurality of vertical readout lines coupling the array of image sensor pixels to the data converters; and a plurality of diagonal readout lines coupling the array of image sensor pixels to the data converters. 2 . The image sensor of claim 1 , wherein the data converters comprise analog-to-digital converters. 3 . The image sensor of claim 1 , wherein the array of image sensor pixels are arranged in rows and columns, and each image sensor pixel in a given one of the columns is coupled to a corresponding common vertical readout line in the plurality of vertical readout lines. 4 . The image sensor of claim 3 , wherein each image sensor pixel in the given one of the columns is coupled to a different respective diagonal readout line in the plurality of diagonal readout lines. 5 . The image sensor of claim 1 , wherein a subset of the array comprises a region of interest (ROI), and the array is configured to simultaneously transfer signals from at least two adjacent rows in the ROI to the data converters. 6 . The image sensor of claim 1 , wherein a subset of the array comprises a region of interest (ROI), and the array is configured to simultaneously transfer signals from at least two nonadjacent rows in the ROI to the data converters. 7 . The image sensor of claim 1 , wherein a subset of the array comprises a region of interest (ROI), and the array is configured to simultaneously transfer signals from at least four rows in the ROI to the data converters. 8 . The image sensor of claim 1 , wherein an image sensor pixel in the array is coupled to at least one of the plurality of vertical readout lines and is also coupled to at least one of the plurality of diagonal readout lines. 9 . The image sensor of claim 8 , wherein the image sensor pixel comprises: a source follower transistor; a first select transistor that is coupled between the source follower transistor and the at least one of the plurality of vertical readout lines; and a second select transistor that is coupled between the first select transistor and the at least one of the plurality of vertical readout lines. 10 . The image sensor of claim 9 , wherein the image sensor pixel further comprises: a third select transistor coupled between the first select transistor and the at least one of the plurality of diagonal readout lines. 11 . The image sensor of claim 10 , wherein the image sensor pixel further comprises: fourth and fifth select transistors coupled in series between the at least one of the plurality of diagonal readout lines and the at least one of the plurality of vertical readout lines. 12 . A method of operating an image sensor, the method comprising: using an array of pixels in the image sensor to capture an image, wherein the array of pixels are arranged in rows and columns; simultaneously reading signals out from at least two different rows in the array; and receiving the signals from the at least two different rows in the array at a plurality of data converters. 13 . The method of claim 12 , further comprising: routing the signals from one of the at least two different rows to the plurality of data converters via vertical readout lines; and routing the signals from another one of the at least two different rows to the plurality of data converters via diagonal readout lines. 14 . The method of claim 12 , wherein simultaneously reading signals out from at least two different rows in the array comprise simultaneously reading signals out from at least two adjacent rows in the array. 15 . The method of claim 12 , wherein simultaneously reading signals out from at least two different rows in the array comprise simultaneously reading signals out from at least two nonadjacent rows in the array. 16 . The method of claim 12 , wherein simultaneously reading signals out from at least two different rows in the array comprise simultaneously reading signals out from at least four different rows in the array. 17 . An electronic device comprising: a camera module with an image sensor, the image sensor comprising: an array of pixels; data converters that receive signals from the array of pixels; diagonal readout lines that route the signals from the array of pixels to the data converters. 18 . The electronic device of claim 17 , wherein the array of pixels is configured to simultaneously transfer signals from at least two rows in the array to the data converters. 19 . The electronic device of claim 17 , the image sensor further comprising: vertical column readout lines that route the signals from the array of pixels to the data converters, wherein the vertical column readout lines and the diagonal readout lines are neither parallel nor perpendicular to each other. 20 . The electronic device of claim 19 , wherein a pixel in the array of pixels comprises: a source follower transistor; a first select transistor coupled between the source follower transistor and at least one of the vertical column readout lines, the first select transistor is controlled by a first global vertical select signal; a second select transistor coupled between the first select transistor and the at least one of the vertical column readout lines, the second select transistor is controlled by a first horizontal select signal; a third select transistor coupled between the first select transistor and at least one of the diagonal readout lines, the third select transistor is controlled by a second horizontal select signal; a fourth select transistor coupled between the at least one of the diagonal readout lines and the at least one of the vertical column readout lines, the fourth select transistor is controlled by a second global vertical select signal; and a fifth select transistor coupled between the fourth select transistor and the at least one of the vertical column readout lines, the fifth select transistor is controlled by a third horizontal select signal.
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