IP Library Patent Application 15384077
Patent Application
App. No. 15/384,077

CAMERA STOP CALIBRATOR

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Quick Facts
Patent No.
US None
App. No.
15/384,077
Abstract

A stop-weighted light reference includes an LED light source and a pulse-generator structured to drive the light source at pre-defined levels. The pre-defeined levels relate to one another on a loge scale. The light reference may be used to characterize a non-calibrated camera. A look-up-table (LUT) of output values may be stored in a stand-alone device or in a test and measurement device, such as a waveform monitor. The LUT may correlate a range of input values to a set of output values that are calibrated to be on a loge scale. In operation, a camera output may be used as an index to the LUT to cause the calibrated output to be generated.

Claims (34)

1 . A stop-weighted light reference, comprising:

a Light Emitting Diode (LED) light source;

a selector device configured to be operated by a user to cause a predefined amount of light to be output by the LED; and

a pulse-generator having a predefined number of pre-set modes, and each mode having a pulse width different than any other mode, the pulse-width generator structured to accept a user-selected value from the selector device and to provide to the LED light source a light driving output in one of the pre-set modes that corresponds to the user selected value.

2 . The stop-weighted light reference according to claim 1 in which the pulse-width of a particular pre-set mode is approximately one-half the pulse width of another of the pre-set modes.

3 . The stop-weighted light reference according to claim 1 in which one of the pre-set modes of the pulse-generator includes a full-width pulse.

4 . The stop-weighted light reference according to claim 3 in which other modes of the pulse generator include a one-half width pulse, a one-quarter width pulse, and a one-eighth width pulse.

5 . The stop-weighted light reference according to claim 1 in which the selector device is structured to automatically cause the pulse-generator to sequentially step through the number of pre-set modes.

6 . The stop-weighted light reference according to claim 1 in which the pulse-generator is structured to drive each mode with constant electrical current, and in which each of the pre-set modes has a different pulse width.

7 . The stop-weighted light reference according to claim 1 in which the pulse-generator includes at least 10 pre-set modes.

8 . The stop-weighted light reference according to claim 1 in which an individual one of the pre-set modes is repeated multiple times at a particular frequency.

9 . The stop-weighted light reference according to claim 8 in which the frequency is selected based on a light integration rate of a camera.

10 . A camera calibration system for a camera having an Optical-Electrical Transfer Function, the calibration system comprising:

a three-dimensional structure including an LED light located within an interior of the structure, and including a hole through which the camera may view the LED light; and

a pulse-generator having a predefined number of pre-set modes, and each mode having a pulse width different than other modes, the pulse-width generator structured to provide to the LED light a light driving output in one of the pre-set modes that corresponds to the user selected value.

11 . The camera calibration system according to claim 10 , further comprising:

a selector device configured to be operated by a user to cause a predefined amount of light to be output by the LED, and in which the pulse-width generator is structured to accept a user-selected value from the selector device and to provide to the LED light source the light driving output.

12 . The camera calibration system according to claim 10 in which the pulse-width of a particular pre-set mode is exactly one-half the pulse width of another of the pre-set modes.

13 . The camera calibration system according to claim 10 in which one of the pre-set modes of the pulse-generator includes a full-width pulse.

14 . The camera calibration system according to claim 13 in which other modes of the pulse generator include a one-half width pulse, a one-quarter width pulse, and a one-eighth width pulse.

15 . A method of calibrating a camera output, the method comprising:

measuring a plurality of uncalibrated electrical outputs of the camera that respectively correspond to a plurality of known amounts of light;

storing the plurality of uncalibrated electrical outputs of the camera; and

from the plurality of uncalibrated electrical outputs of the camera, creating a correlation table that respectively correlates the plurality of uncalibrated electrical outputs of the camera to pre-selected calibrated outputs, the pre-selected calibrated outputs being related to one another on a loge scale.

16 . The method of calibrating a camera output according to claim 15 , in which creating a correlation table comprises:

determining how many number of independent calibrated outputs will be in the correlation table; and

for every of the number of independent calibrated outputs, associating a range of uncalibrated electrical output levels.

17 . The method of calibrating a camera output according to claim 16 , further comprising storing the range of uncalibrated electrical output levels and their associated independent calibrated output in a Look-Up-Table.

18 . A test and measurement apparatus, comprising:

an input structured to accept a camera output for a camera that has an uncalibrated Optical-Electrical Transfer Function;

a first converter structured to accept the camera output and generate a numerical equivalent thereof;

a second converter structured to accept one of the numerical equivalents from the first converter and to generate an output that is one of a plurality of calibrated outputs.

19 . The test and measurement apparatus according to claim 18 , in which the plurality of calibrated outputs comprises a set of values related to one another by a loge function.

20 . The test and measurement apparatus according to claim 18 , in which the camera output is generated by pointing the camera at one of a known plurality of light values.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Oct 16, 2020
From: SILICON VALLEY BANK
To: PROJECT GIANTS, LLC
Reel/Frame 054090/0934 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2019
From: TEKTRONIX, INC.
To: PROJECT GIANTS, LLC
Reel/Frame 049870/0073 →
PATENT SECURITY AGREEMENT Recorded Jul 22, 2019
From: PROJECT GIANTS, LLC
To: SILICON VALLEY BANK
Reel/Frame 049819/0702 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2016
From: BAKER, DANIEL G.
To: TEKTRONIX, INC.
Reel/Frame 040675/0281 →