Claims
- 1. An error signal detection apparatus for an optical recording/reproducing system comprising a light source emitting a light beam and an objective lens focusing the light beam to form a light spot on a recording medium, the apparatus comprising:
a photodetecting unit dividing at least a part of the light beam passed through the objective lens after being reflected/diffracted from an information stream of the recording medium into light beam portions, and detecting the light beam portions; and a signal processor detecting phase differences between detection signals from the light beam portions to detect a defocus error signal.
- 2. The error signal detection apparatus of claim 1, wherein
the photodetecting unit divides the light beam into first, second, third, and fourth light beam portions and detects therefrom first, second, fourth, and third detection signals, respectively, where the first, second, third, and fourth light beam portions are arranged counterclockwise or clockwise, in order, in a 2×2 matrix, and where a row and a column of the matrix are parallel to directions corresponding to radial and tangential directions of the recording medium, respectively, and the signal processor detects and outputs the defocus error signal as a sum of a phase difference between the first and second detection signals from the first and second light beam portions located in one and the same column of the matrix, and a phase difference between the third and fourth detection signals from the fourth and third light beam portions located in another column of the matrix.
- 3. The error signal detection apparatus of claim 2, wherein the light beam is divided into a first outer portion, an intermediate portion, and a second outer portion in a direction corresponding to the radial direction of the recording medium, the photodetecting unit divides the intermediate portion of the light beam and detects therefrom first, second, third, and fourth light beam portions.
- 4. The error signal detection apparatus of claim 19, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 2×4 matrix, each light beam receiving section performing photoelectrical conversion.
- 5. The error signal detection apparatus of claim 2, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 2×4 matrix, each light beam receiving section performing photoelectrical conversion.
- 6. The error signal detection apparatus of claim 2, wherein the photodetecting unit divides the light beam and detects therefrom first, second, third, and fourth light beam portions.
- 7. The error signal detection apparatus of claim 6, wherein the photodetecting unit comprises a photodetector having first, second, third, and fourth light receiving sections to receive the first, second, third, and fourth light beam portions, respectively.
- 8. The error signal detection apparatus of claim 2, wherein the error signal detection apparatus detects a defocus component of the defocus error signal in the recording medium detected by the signal processor, at a predetermined level or less where no defocus occurs.
- 9. The error signal detection apparatus of claim 2, wherein the signal processor comprises a phase comparator and, a channel clock interval of an information signal recorded on the recording medium is T and an average time interval of the first, second, third, and fourth detection signals input to the phase comparator of the signal processor is Δt, in a state where no defocus occurs in the recording medium, and where Δt/T comprises a defocus error signal value of 0.5-1.0 with respect to a range of a depth of focus of the light beam.
- 10. The error signal detection apparatus of claim 2, wherein the signal processor comprises:
a first phase comparator comparing a phase of the first detection signal with a phase of the second detection signal, and outputting a first phase comparison signal when the phase of the first detection signal leads the phase of the second detection signal, and a second phase comparison signal when the phase of the second detection signal leads the phase of the first detection signal; a second phase comparator comparing a phase of the third detection signal with a phase of the fourth detection signal, and outputting a third phase comparison signal when the phase of the third detection signal leads the phase of the fourth detection signal, and a fourth phase comparison signal when the phase of the fourth detection signal leads the phase of the third detection signal, and a matrix circuit receiving the first, second, third, and fourth phase comparison signals, and outputting a differential signal between the sum of the first and third phase comparison signals, and the sum of the second and fourth phase comparison signals.
- 11. The error signal detection apparatus of claim 2, wherein, when the light beam is divided into a first outer portion, an intermediate portion, and a second outer portion in a direction corresponding to the radial direction of the recording medium, the photodetecting unit divides the first and second outer portions of the light beam and detects therefrom first, second, third, and fourth light beam portions.
- 12. The error signal detection apparatus of claim 11, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 2×4 matrix, each light beam receiving section performing photoelectrical conversion.
- 13. The error signal detection apparatus of claim 1, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 2×4 matrix, each light beam receiving section performing photoelectrical conversion.
- 14. The error signal detection apparatus of claim 1, wherein the photodetecting unit
divides the light beam into a first outer portion, an intermediate portion, and a second outer portion in a direction corresponding to a tangential direction of the recording medium, and divides the first and second outer portions and detects therefrom first, second, third, and fourth outer light beam portions in the direction corresponding to the tangential direction of the recording medium, and arranged counterclockwise or clockwise in order, and/or divides the intermediate portion and detects therefrom first, second, third, and fourth inner light beam portions in directions corresponding to a radial direction and the tangential direction of the recording medium, where the first, second, third, and fourth outer light beam portions are arranged counterclockwise or clockwise, in order, and the signal processor detects the defocus error signal as a sum of a phase difference between a first detection signal from the first outer light beam portion and/or the second inner light beam portion and a second detection signal from the second outer light beam portion and/or the first inner light beam portion, and a phase difference between a third detection signal from the third inner light beam portion and/or the fourth outer light beam portion and a fourth detection signal from the third outer light beam portion and/or the fourth inner light beam portion.
- 15. The error signal detection apparatus of claim 14, wherein the first, second, third, and fourth outer light beam portions form a 2×2 matrix, wherein a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium, and the first and fourth outer light beam portions are in different columns; and
the signal processor receives the first, second, third, and fourth outer light beam portions and processes therefrom the first, second, fourth, and third detection signals.
- 16. The error signal detection apparatus of claim 15, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 4×2 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium.
- 17. The error signal detection apparatus of claim 15, wherein the signal processor comprises:
a first phase comparator comparing a phase of the first detection signal with a phase of the second detection signal, and outputting a first phase comparison signal when the phase of the first detection signal leads the phase of the second detection signal, and a second phase comparison signal when the phase of the second detection signal leads the phase of the first detection signal; a second phase comparator comparing a phase of the third detection signal with a phase of the fourth detection signal, and outputting a third phase comparison signal when the phase of the third detection signal leads the phase of the fourth detection signal, and a fourth phase comparison signal when the phase of the fourth detection signal leads the phase of the third detection signal, and a matrix circuit receiving the first, second, third, and fourth phase comparison signals, and outputting a differential signal between the sum of the first and third phase comparison signals, and the sum of the second and fourth phase comparison signals.
- 18. The error signal detection apparatus of claim 14, wherein the first, second, third, and fourth inner light beam portions form a 2×2 matrix, wherein a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium, and the first and fourth inner light beam portions are in different columns; and
the signal processor receives the first, second, third, and fourth inner light beam portions and processes therefrom the first, second, fourth, and third detection signals.
- 19. The error signal detection apparatus of claim 18, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 4×2 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium.
- 20. The error signal detection apparatus of claim 14, wherein the photodetecting unit divides the first and second outer portions of the light beam and detects therefrom the first, second, third, and fourth outer light beam portions arranged counterclockwise or clockwise, in order, parallel to a direction corresponding to the tangential direction of the recording medium, and divides the intermediate portion and detects therefrom the first, second, third, and fourth inner light beam portions arranged counterclockwise or clockwise, in order, parallel to directions corresponding to the radial and tangential directions of the recording medium, wherein the first, second, third, and fourth outer and inner portions are arranged in a 4×2 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium, and the first and second outer portions are located in different columns, and
the signal processor outputs the sum of the phase difference between the first detection signal, which is a sum of the detection signals from the first outer light beam portion and the second inner light beam portion, and the second detection signal, which is a sum of the detection signals from the second outer light beam portion and the first inner light beam portion, and the phase difference between the third detection signal, which is a sum of detection signals from the third inner light beam portion and the fourth outer light beam portion, and the fourth detection signal, which is a sum of the detection signals from the third outer light beam portion and the fourth inner light beam portion.
- 21. The error signal detection apparatus of claim 20, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 4×2 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium.
- 22. The error signal detection apparatus of claim 20, wherein the signal processor comprises:
a first phase comparator comparing a phase of the first detection signal with a phase of the second detection signal, and outputting a first phase comparison signal when the phase of the first detection signal leads the phase of the second detection signal, and a second phase comparison signal when the phase of the second detection signal leads the phase of the first detection signal; a second phase comparator comparing a phase of the third detection signal with a phase of the fourth detection signal, and outputting a third phase comparison signal when the phase of the third detection signal leads the phase of the fourth detection signal, and a fourth phase comparison signal when the phase of the fourth detection signal leads the phase of the third detection signal, and a matrix circuit receiving the first, second, third, and fourth phase comparison signals, and outputting a differential signal between the sum of the first and third phase comparison signals, and the sum of the second and fourth phase comparison signals.
- 23. The error signal detection apparatus of claim 14, wherein the signal processor comprises a phase comparator and, a channel clock interval of an information signal recorded on the recording medium is T and an average time interval of the first, second, third, and fourth detection signals input to the phase comparator of the signal processor is Δt, in a state where no defocus occurs in the recording medium, and where Δt/T comprises a defocus error signal value of 0.5-1.0 with respect to a range of a depth of focus of the light beam.
- 24. The error signal detection apparatus of claim 14, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 4×2 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium.
- 25. The error signal detection apparatus of claim 14, wherein the signal processor comprises:
a first phase comparator comparing a phase of the first detection signal with a phase of the second detection signal, and outputting a first phase comparison signal when the phase of the first detection signal leads the phase of the second detection signal, and a second phase comparison signal when the phase of the second detection signal leads the phase of the first detection signal; a second phase comparator comparing a phase of the third detection signal with a phase of the fourth detection signal, and outputting a third phase comparison signal when the phase of the third detection signal leads the phase of the fourth detection signal, and a fourth phase comparison signal when the phase of the fourth detection signal leads the phase of the third detection signal, and a matrix circuit receiving the first, second, third, and fourth phase comparison signals, and outputting a differential signal between the sum of the first and third phase comparison signals, and the sum of the second and fourth phase comparison signals.
- 26. The error signal detection apparatus of claim 14, wherein the signal processor detects a phase difference between a fifth detection signal which is a sum of the first and third detection signals, and a sixth detection signal which is a sum of the second and fourth detection signals.
- 27. The error signal detection apparatus of claim 1, wherein
the photodetecting unit divides the light beam into first, second, third, and fourth light beam portions in a direction corresponding to a tangential direction of the recording medium, and detects and outputs first, second, fourth, and third detection signals from the first, second, third, and fourth light beam portions, and the signal processor detects and outputs the defocus error signal as a sum of a phase difference between the first and second detection signals and a phase difference between the third and fourth detection signals.
- 28. The error signal detection apparatus of claim 27, wherein the error signal detection apparatus detects a defocus component of the defocus error signal in the recording medium detected by the signal processor, at a predetermined level or less where no defocus occurs.
- 29. The error signal detection apparatus of claim 27, wherein the signal processor comprises a phase comparator and, a channel clock interval of an information signal recorded on the recording medium is T and an average time interval of the first, second, third, and fourth detection signals input to the phase comparator of the signal processor is Δt, in a state where no defocus occurs in the recording medium, and where Δt/T comprises a defocus error signal value of 0.5-1.0 with respect to a range of a depth of focus of the light beam.
- 30. The error signal detection apparatus of claim 27, wherein the photodetecting unit comprises a photodetector having eight light beam receiving sections in a 4×2 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium.
- 31. The error signal detection apparatus of claim 27, wherein the signal processor comprises:
a first phase comparator comparing a phase of the first detection signal with a phase of the second detection signal, and outputting a first phase comparison signal when the phase of the first detection signal leads the phase of the second detection signal, and a second phase comparison signal when the phase of the second detection signal leads the phase of the first detection signal; a second phase comparator comparing a phase of the third detection signal with a phase of the fourth detection signal, and outputting a third phase comparison signal when the phase of the third detection signal leads the phase of the fourth detection signal, and a fourth phase comparison signal when the phase of the fourth detection signal leads the phase of the third detection signal, and a matrix circuit receiving the first, second, third, and fourth phase comparison signals, and outputting a differential signal between the sum of the first and third phase comparison signals, and the sum of the second and fourth phase comparison signals.
- 32. The error signal detection apparatus of claim 1, wherein the error signal detection apparatus detects a defocus component of the defocus error signal in the recording medium detected by the signal processor, at a predetermined level or less where no defocus occurs.
- 33. The error signal detection apparatus of claim 1, wherein the signal processor comprises a phase comparator and, a channel clock interval of an information signal recorded on the recording medium is T and an average time interval of the first, second, third, and fourth detection signals input to the phase comparator of the signal processor is Δt, in a state where no defocus occurs in the recording medium, and where Δt/T comprises a defocus error signal value of 0.5-1.0 with respect to a range of a depth of focus of the light beam.
- 34. The error signal detection apparatus of claim 1, wherein the photodetector unit comprises a photodetector having sixteen light beam receiving sections in a 4×4 matrix, where a row and a column of the matrix are parallel to directions corresponding to the radial and tangential directions of the recording medium.
- 35. The error signal detection apparatus of claim 1, wherein the signal processor comprises:
a first phase comparator comparing a phase of the first detection signal with a phase of the second detection signal, and outputting a first phase comparison signal when the phase of the first detection signal leads the phase of the second detection signal, and a second phase comparison signal when the phase of the second detection signal leads the phase of the first detection signal; a second phase comparator comparing a phase of the third detection signal with a phase of the fourth detection signal, and outputting a third phase comparison signal when the phase of the third detection signal leads the phase of the fourth detection signal, and a fourth phase comparison signal when the phase of the fourth detection signal leads the phase of the third detection signal, and a matrix circuit receiving the first, second, third, and fourth phase comparison signals, and outputting a differential signal between the sum of the first and third phase comparison signals, and the sum of the second and fourth phase comparison signals.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2000-68501 |
Nov 2000 |
KR |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of application Ser. No. 09/986,454, filed Nov. 8, 2001, allowed.
[0002] This application is based upon and claims the priority of Korean Application No. 2000-68501, filed Nov. 1, 2000, and U.S. patent application Ser. No. 09/986,454, filed Nov. 8, 2001, the contents being incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09986454 |
Nov 2001 |
US |
Child |
10839353 |
May 2004 |
US |