COLOR SENSOR AND COLOR SENSING DEVICE USING THE SAME
20230288259 · 2023-09-14
Inventors
Cpc classification
International classification
Abstract
A color sensing device including a color sensor and a processing unit is provided. The color sensor is provided with at least three photosensitive areas and used for generating at least three photosensitive signals. The processing unit is connected to the color sensor and used for processing the at least three photosensitive signals to correspondingly generate at least three color signal tuples CIE(X,Y,Z). Two of the at least three color signal tuples CIE(X,Y,Z) share one of the photosensitive signals.
Claims
1. A color sensing device, comprising: a color sensor provided with at least three photosensitive areas and used for generating at least three photosensitive signals; and a processing unit connected to the color sensor and used for processing the at least three photosensitive signals to correspondingly generate at least three color signal tuples CIE(X,Y,Z); wherein two of the color signal tuples CIE(X,Y,Z) share one of the at least three photosensitive signals.
2. The color sensing device according to claim 1, further comprising a control unit connected to the color sensor, wherein the processing unit processes the at least three photosensitive signals to generate at least four channel signals; the control unit processes the at least four channel signals to generate the at least three color signal tuples CIE(X,Y,Z).
3. The color sensing device according to claim 1, wherein the at least three photosensitive areas are covered with corresponding filters to implement modulation of CIE spectral response.
4. The color sensing device according to claim 1, wherein the at least three photosensitive areas comprise: a first photosensitive area covered by a first filter used for providing a first photosensitive signal, corresponding to a red light spectral function of stimulus value X2 on the CIE color space; a second photosensitive area covered by a second filter used for providing a second photosensitive signal, corresponding to a green light spectral function of stimulus value Y on the CIE color space; a third photosensitive area covered by a third filter used for providing a third photosensitive signal, corresponding to a blue light spectral function of stimulus value Z on the CIE color space; and the blue light spectral function of stimulus value Z of the third filter is modulated by a required response rate k through post processing to generate a new spectral function X1′=kZ corresponding to a blue light spectral function of stimulus value X1.
5. The color sensing device according to claim 1, wherein the at least three photosensitive areas comprise: a first photosensitive area covered by a first filter used for providing a first photosensitive signal, corresponding to a red light spectral function of stimulus value X2 on the CIE color space; a second photosensitive area covered by a second filter used for providing a second photosensitive signal, corresponding to a green light spectral function of stimulus value Y on the CIE color space; a third photosensitive area covered by a third filter used for providing a third photosensitive signal, corresponding to a blue light spectral function of stimulus value X1 on the CIE color space; and the blue light spectral function of stimulus value X1 of the third filter is modulated by a required response rate n through post processing to generate a new spectral function Z′=nX1 corresponding to a blue light spectral function of stimulus value Z.
6. The color sensing device according to claim 1, wherein the at least three photosensitive areas comprise: a first photosensitive area covered by a first filter used for providing a first photosensitive signal, corresponding to a red light spectral function of stimulus value X2 on the CIE color space; a second photosensitive area covered by a second filter used for providing a second photosensitive signal, corresponding to a green light spectral function of stimulus value Y on the CIE color space; a third photosensitive area covered by a third filter used for providing a third photosensitive signal, corresponding to a blue light spectral function of stimulus value (X1+Z)/2 on the CIE color space; and the blue light spectral function of stimulus value (X1+Z)/2 of the third filter is modulated by required response rates k and n through post processing to generate two new spectral functions X1′=k(X1+Z)/2 and Z′=n(X1+Z)/2 corresponding to a blue light spectral function of stimulus value X1 and a blue light spectral function of stimulus value Z respectively.
7. The color sensing device according to claim 1, wherein the at least three photosensitive areas comprise five filters correspondingly disposed on five of the photosensitive areas, wherein three of the filters are used for generating three spectral functions of three stimulus values on the CIE color space, and the other two filters are used for generating auxiliary spectral functions, a spectral function of stimulus value X1 and a spectral function of stimulus value Z of the three spectral functions share a same filter.
8. A color sensor used for converting a spectral function into color coordinates on the CIE color space, wherein the color sensor comprises: a semiconductor chip provided with a plurality of photosensitive areas; and three filters correspondingly disposed on three of the photosensitive areas and used for defining three spectral functions of three stimulus values on the CIE color space, wherein the spectral functions of stimulus values X1 and Z on the CIE color space share one of the filters.
9. The color sensor according to claim 8, wherein the three photosensitive areas and the three filters comprise: a first photosensitive area covered by a first filter is used for providing a first photosensitive signal, corresponding to a red light spectral function of stimulus value X2 on the CIE color space; a second photosensitive area covered by a second filter is used for providing a second photosensitive signal, corresponding to a green light spectral function of stimulus value Y on the CIE color space; a third photosensitive area covered by a third filter is used for providing a third photosensitive signal, corresponding to a blue light spectral function of stimulus value Z on the CIE color space; and the blue light spectral function of stimulus value Z of the third filter is modulated by a required response rate k through post processing to generate a new spectral function X1′=kZ corresponding to a blue light spectral function of stimulus value X1.
10. The color sensor according to claim 8, wherein the three photosensitive areas and the three filters comprise: a first photosensitive area covered by a first filter is used for providing a first photosensitive signal, corresponding to a red light spectral function of stimulus value X2 on the CIE color space; a second photosensitive area covered by a second filter is used for providing a second photosensitive signal, corresponding to a green light spectral function of stimulus value Y on the CIE color space; a third photosensitive area covered by a third filter is used for providing a third photosensitive signal, corresponding to a blue light spectral function of stimulus value X1 on the CIE color space; and the blue light spectral function of stimulus value X1 of the third filter is modulated by a required response rate n through post processing to generate a new spectral function Z′=nX1 corresponding to a blue light spectral function of stimulus value Z.
11. The color sensor according to claim 8, wherein the three photosensitive areas and the three filters comprise: a first photosensitive area covered by a first filter is used for providing a first photosensitive signal, corresponding to a red light spectral function of stimulus value X2 on the CIE color space; a second photosensitive area covered by a second filter is used for providing a second photosensitive signal, corresponding to a green light spectral function of stimulus value Y on the CIE color space; a third photosensitive area covered by a third filter is used for providing a third photosensitive signal, corresponding to a blue light spectral function of stimulus value (X1+Z)/2 on the CIE color space; and the blue light spectral function of stimulus value (X1+Z)/2 of the third filter is modulated by required response rates k and n through post processing to generate two new spectral functions X1′=k(X1+Z)/2 and Z′=n(X1+Z)/2 corresponding to a blue light spectral function of stimulus value X1 and a blue light spectral function of stimulus value Z respectively.
12. The color sensor according to claim 8, wherein five filters correspondingly disposed on five of the photosensitive areas, wherein the three of the filters are used for generating three spectral functions of three stimulus values on the CIE color space, and the other two filters are used for generating auxiliary spectral functions, a spectral function of stimulus value X1 and a spectral function of stimulus value Z of the three spectral functions share a same filter.
13. A color sensing device, comprising: a color sensor implemented on a chip and used for generating at least three photosensitive signals, which indicate a color of incident light of the color sensor; a processing unit implemented on the chip, connected to the color sensor, and used for processing the at least three photosensitive signals to generate four channel signals; a control unit connected to the processing unit and used for receiving and processing the four channel signals to generate three sets of color signal tuples CIE(X,Y,Z); and an interface connected to the processing unit, wherein the interface comprises an interface terminal.
14. The color sensing device according to claim 13, wherein the color sensor comprises a first photodiode configured to generate a first photosensitive signal; a second photodiode configured to generate a second photosensitive signal; and a third photodiode configured to generate a third photosensitive signal.
15. The color sensing device according to claim 14, wherein the processing unit is configured to process the first, the second and the third photosensitive signals to generate four channel signals within the RGB waveband; two of the four channel signals within a blue light waveband share one of the photosensitive signals.
16. The color sensing device according to claim 14, wherein the color sensor is covered by an infrared light blocking filter; and the first, the second and the third photodiodes are respectively covered by red light, green light and blue light filters.
17. The color sensing device according to claim 13, wherein five filters correspondingly disposed on five of the photosensitive areas, wherein three of the filters are used for generating three spectral functions of three stimulus values on the CIE color space, and the other two filters are used for generating auxiliary spectral functions, a spectral function of stimulus value X1 and a spectral function of stimulus value Z of the three spectral functions share a same filter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0018] Detailed descriptions of the structure and operation principles of the present invention are disclosed below with accompanying drawings.
First Embodiment
[0019]
[0020] The color sensor 101 is implemented on a chip 110 provided with an optical element array, and is configured to generate at least three channel signals, which indicate the color of each incident light of the color sensor 101. The color sensor 101 of the present invention includes a first photodiode D1 configured to generate the first photosensitive signal, a second photodiode D2 configured to generate a second photosensitive signal, and a third photodiode D3 configured to generate a third photosensitive signal. The color sensor 101 correspondingly includes at least three analog-to-digital converters (ADC, A/D, or A-to-D) used for receiving and converting the first, the second and the third photosensitive signals respectively. Besides, the color sensor 101 is further provided with a supply terminal VDD, a ground terminal GND and an interface terminal (including serial data line SDA and serial clock line SCL). The control unit 120 is configured to process the first, the second and the third channel signals CH1-CH3 to generate the color signal tuples CIE(X,Y,Z). The first, the second and the third photodiodes D1-D3 are respectively covered by the first, the second and the third filters f1-f3 (see
[0021]
[0022] As indicated in
[0023] That is, in the present embodiment, as long as three filters f1-f3 can respectively generate the spectral functions of three stimulus values X2, Y, and Z on the CIE color space and the spectral function X1′=kZ (that is, the fourth channel signal) of stimulus value X1 on the CIE color space is generated through post processing or algorithm, there is no need to form an extra filter on another photosensitive area 112. The color coordinates on the CIE color space (x,y) are expressed below:
The value of color coordinate x=(stimulus value X1′+stimulus value X2)/(stimulus value X1′+stimulus value X2+stimulus value Y+stimulus value Z);
The value of color coordinate y=stimulus value Y/(stimulus value X1′+stimulus value X2+stimulus value Y+stimulus value Z).
[0024] Since the three filters f1-f3 of the present embodiment are respectively formed on different photosensitive areas 112, in the coating process, the wavelength, the bandwidth and the response rate of crests of the waveband in two channels are respectively controlled; meanwhile, the control between batches is made easier. Thus, the interpretation accuracy of conventional color sensor regarding the color temperature of an object can be improved.
Second Embodiment
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[0026] As indicated in
[0027] That is, in the present embodiment, as long as the three filters f1, f2, and f3′ respectively generate spectral functions of three stimulus values X2, Y, and X1 on the CIE color space and the spectral function Z′=nX1 (that is, the fourth channel signal) of stimulus value Z on the CIE color space is generated through post processing or algorithm, there is no need to form an extra filter on another photosensitive area 112. The color coordinates on the CIE color space (x,y) are expressed below:
The value of color coordinate x=(stimulus value X1+stimulus value X2)/(stimulus value X1+stimulus value X2+stimulus value Y+stimulus value Z′);
The value of color coordinate y=stimulus value Y/(stimulus value X1+stimulus value X2+stimulus value Y+stimulus value Z′).
[0028] Since the three filters f1, f2, and f3′ of the present embodiment are respectively formed on different photosensitive areas 112, in the coating process, the wavelength, the bandwidth and the response rate of crests of the waveband in two channels are respectively controlled; meanwhile, the control between batches is made easier. Thus, the interpretation accuracy of conventional color sensor regarding the color temperature of an object can be improved.
Third Embodiment
[0029]
[0030] As indicated in
[0031] That is, in the present embodiment, as long as the three filters f1, f2, and f3″ respectively generate spectral functions of three stimulus values X2, Y, (X1+Z)/2 on the CIE color space, and the spectral functions X1′=k(X1+Z)/2 and Z′=n(X1+Z)/2 (that is, the third channel signal and the fourth channel signal) of stimulus values X1 and Z on the CIE color space can be generated through post processing or algorithm, there is no need to form an extra filter on another photosensitive area 112. The color coordinates on the CIE color space (x,y) are expressed below:
The value of color coordinate x=(stimulus value X1′+stimulus value X2)/(stimulus value X1′+stimulus value X2+stimulus value Y+stimulus value Z′);
The value of color coordinate y=stimulus value Y/(stimulus value X1′+stimulus value X2+stimulus value Y+stimulus value Z′).
[0032] Since the three filters f1, f2, and f3″ of the present embodiment are respectively formed on different photosensitive areas 112, in the coating process, the wavelength, bandwidth and the response rate of crests of the waveband in two channels are respectively controlled; meanwhile, the control between batches is made easier. Thus, the interpretation accuracy of conventional color sensor regarding the color temperature of an object can be improved.
[0033] Refer to
TABLE-US-00001 TABLE 1 Stimulus value Stimulus value Stimulus value Z Y X2 Amplitude 27.3 50.1 56.5 percentage T % Crest 446 560 600 wavelength (nm) Initial 424 510 557 wavelength of full width at half maximum Final wavelength 477 610 635 of full width at half maximum FWHM (nm) 53 100 78
Fourth Embodiment
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[0035] As indicated in
[0036] That is, in the present embodiment, as long as the three filters f1-f3 respectively generate spectral functions of three stimulus values X2, Y, and Z on the CIE color space and the spectral function X1′=kZ (that is, the fourth channel signal) of stimulus value X1 on the CIE color space can be generated through post processing or algorithm, there is no need to form an extra filter on another photosensitive area 112, the formula and manufacturing process of filter coating can be simplified. Meanwhile, two auxiliary spectral functions (exemplarily but not restrictively, the central wavelengths are 500 nm and 650 nm) are added, and the interpretation accuracy of the color sensor 104 regarding the color temperature of an object can be improved.
[0037] Since three filters f1, f2, and f3 of the present embodiment are respectively formed on different photosensitive areas 112, in the coating process, the wavelength, the bandwidth and the response rate of crests of the waveband in two channels are respectively controlled; meanwhile, the control between batches is made easier. Thus, the interpretation accuracy of conventional color sensor regarding the color temperature of an object can be improved.
[0038] The color sensor according to above embodiments of the present invention simplifies the formula of optical coating and the color temperature correction process of the sensor and completes the interpretation of the color coordinates and the color temperature on the CIE color space, so to increase the interpretation accuracy of the color sensor. In the first embodiment, three photosensitive areas are used for generating three spectral functions of three stimulus values X2, Y, and Z on the CIE color space, wherein the spectral function of stimulus value X1 and the spectral function of stimulus value Z share the same filter. In the second embodiment, three photosensitive areas are used for generating three spectral functions of three stimulus values X1, X2, Y on the CIE color space, wherein the spectral function of stimulus value X1 and the spectral function of stimulus value Z share the same filter. In the third embodiment, three photosensitive areas are used for generating the spectral functions of three stimulus values (X1+Z)/2, X2, Y on the CIE color space, wherein the spectral function of stimulus value X1 and the spectral function of stimulus value Z share the same filter of the spectral function of stimulus value (X1+Z)/2. In the fourth embodiment, three photosensitive areas are used for generating three spectral functions of three stimulus values X2, Y, and Z on the CIE color space, and the remaining two photosensitive areas are used for generating auxiliary spectral functions, wherein the spectral function of stimulus value X1 and the spectral function of stimulus value Z share the same filter.
[0039] While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. Based on the technical features embodiments of the present invention, a person ordinarily skilled in the art will be able to make various modifications and similar arrangements and procedures without breaching the spirit and scope of protection of the invention. Therefore, the scope of protection of the present invention should be accorded with what is defined in the appended claims.