1. A sound reproducing apparatus in which audio data input through input channels is generated as a virtual source by a Head Related Transfer Function (HRTF) and a sound signal resulting from the generated virtual source is output through a speaker, comprising:
an actual listening environment feature function database where an actual listening space feature function is stored for correcting the virtual source in response to a feature of an actual listening space provided at the time of listening;
an actual listening space feature correcting unit reading out the actual listening space feature function stored in the actual listening environment feature function database, and correcting the virtual source based on the reading result; and
a band pass filter disposed between the actual listening environment feature function database and the actual listening space feature correcting unit,
wherein the actual listening space feature function comprises a first reflected sound function portion and a late reflected sound function portion,
the band pass filter extracts the first reflected sound function portion from the actual listening space feature function output from the actual listening environment feature function database and outputs only the first reflected sound function portion to the actual listening space feature correcting unit, and
the actual listening space correcting unit corrects the virtual sources based on the first reflected sound function portion extracted by the band pass filter.
2. The sound reproducing apparatus as recited in claim 1, further comprising:
a speaker feature correcting unit reading out a speaker feature function stored in the actual listening environment feature function database and correcting the virtual source based on the reading result,
wherein the speaker feature function for correcting the virtual source in response to the speaker feature provided at the time of listening is further stored in the actual listening environment feature function database.
3. The sound reproducing apparatus as recited in claim 1, further comprising:
a virtual listening space parameter storing unit storing a virtual listening space parameter set to allow the sound signal resulting from the virtual source to be output to an expected optimal listening space; and
a virtual listening space correcting unit reading out the virtual listening space parameter stored in the virtual listening space parameter storing unit, and correcting the virtual source based on the reading result.
4. The sound reproducing apparatus as recited in claim 3, wherein the virtual listening space correcting unit performs correction only on a portion of the virtual source corresponding to audio data input from a front channel among the input channels.
5. The sound reproducing apparatus as recited in claim 3, wherein the virtual listening space correcting unit performs correction only on a portion of the virtual source corresponding to audio data input from a rear channel among the input channels.
6. The sound reproducing apparatus as recited in claim 1, wherein the actual listening environment feature function is measured at a predetermined external input device.
7. A sound reproducing apparatus in which audio data input through input channels are generated as virtual sources by a Head Related Transfer Function (HRTF) and a sound signal resulting from the generated virtual sources is output through a speaker, comprising:
an actual listening environment feature function database where a speaker feature function measured at a listening position of a listener is stored for correcting the virtual sources in response to a feature of a speaker provided at the time of listening;
a speaker feature correcting unit reading out the speaker feature function stored in the actual listening environment feature function database, and correcting the virtual sources based on the reading result; and
a low pass filter disposed between the actual listening environment feature function database and the speaker feature correcting unit,
wherein an actual listening space feature function stored in the actual listening environment feature function database comprises a direct sound function portion and a reflected sound function portion,
the low pass filter receives the actual listening environment feature function from the actual listening environment feature function database, extracts the direct sound function portion from the actual listening space feature function and outputs only the direct sound function portion as the speaker feature function to the speaker feature correcting unit, and
the speaker feature correcting unit corrects the virtual sources based on the direct sound function portion extracted by the low pass filter.
8. The sound reproducing apparatus as recited in claim 7, further comprising:
a virtual listening space parameter storing unit storing a virtual listening space parameter set to allow the sound signal resulting from the virtual source to be output to an expected optimal listening space; and
a virtual listening space correcting unit reading out the virtual listening space parameter stored in the virtual listening space parameter storing unit, and correcting the virtual sources based on the reading result.
9. The sound reproducing apparatus as recited in claim 7, wherein the virtual listening space correcting unit performs correction only on the virtual sources corresponding to audio data input from a front channel among the input channels.
10. The sound reproducing apparatus as recited in claim 7, wherein the virtual listening space correcting unit performs correction only on the virtual sources corresponding to audio data input from a rear channel among the input channels.
11. A sound reproducing apparatus in which audio data input through input channels are generated as virtual sources by a Head Related Transfer Function (HRTF) and a sound signal resulting from the generated virtual sources is output through a speaker, comprising:
a virtual listening space parameter storing unit storing a virtual listening space parameter set to allow the sound signal resulted from the virtual sources to be output to an expected optimal listening space;
a virtual listening space correcting unit reading out the virtual listening space parameter stored in the virtual listening space parameter storing unit, and correcting the virtual sources based on the reading result; and
a band pass filter disposed between the virtual listening space parameter storing unit and the virtual listening space correcting unit,
wherein the virtual listening space parameter comprises a first reflected sound function portion and a late reflected sound function portion,
the band pass filter extracts the first reflected sound function portion from the virtual listening space parameter output from the virtual listening space parameter storing unit and outputs only the first reflected sound function portion to the virtual listening space correcting unit, and
the virtual listening space correcting unit corrects the virtual sources based on the first reflected sound function portion extracted by the band pass filter.
12. The sound reproducing apparatus as recited in claim 11, wherein the virtual listening space correcting unit performs correction only on the virtual sources corresponding to audio data input from a front channel among the input channels.
13. The sound reproducing apparatus as recited in claim 11, wherein the virtual listening space correcting unit performs correction only on the virtual sources corresponding to audio data input from a rear channel among the input channels.
14. A sound reproducing method in which audio data input through input channels are generated as virtual sources by a Head Related Transfer Function (HRTF) and a sound signal resulting from the generated virtual sources is output through a speaker, comprising:
(a) correcting the virtual sources based on an actual listening space feature function for correcting the virtual sources in response to a feature of an actual listening space provided at the time of listening,
wherein the actual listening space feature function comprises a first reflected sound function portion and a late reflected sound function portion, and
the (a) correcting the virtual sources is performed based only on the first reflected sound function portion of the first reflected sound function portion and the late reflected sound function portion.
15. The sound reproducing method as recited in claim 14, further comprising:
(b) correcting the virtual sources based on a speaker feature function for correcting the virtual sources in response to a feature of an actual listening space provided at the time of listening.
16. The sound reproducing method as recited in claim 14, further comprising:
(c) correcting the virtual sources based on a virtual listening space parameter set to allow the sound signal resulted from the virtual source to be output to an expected optimal listening space.
17. The sound reproducing method as recited in claim 16, wherein the (c) correcting the virtual sources is performed only on the virtual sources corresponding to audio data input from a front channel among the input channels.
18. The sound reproducing method as recited in claim 16, wherein the (c) correcting the virtual sources is performed only on the virtual sources corresponding to audio data input from a rear channel among the input channels.
19. A sound reproducing method in which audio data input through input channels are generated as virtual sources by a Head Related Transfer Function (HRTF) and a sound signal resulting from the generated virtual sources is output through a speaker, comprising:
(A) correcting the virtual sources based on a speaker feature function measured at a listening position of a listener for correcting the virtual sources in response to a feature of a speaker provided at the time of listening,
wherein an actual listening space feature function stored in the actual listening environment feature function database comprises a direct sound function portion and a reflected sound function portion, and
the (A) correcting the virtual sources is performed based only on the direct sound function portion of the direct sound function portion and the reflected sound function portion.
20. The sound reproducing method as recited in claim 19, further comprising:
(B) correcting the virtual sources based on a virtual listening space parameter set to allow the sound signal resulted from the virtual sources to be output to an expected optimal listening space.
21. The sound reproducing method as recited in claim 20, wherein the (B) correcting the virtual source is performed only on the virtual sources corresponding to audio data input from a front channel among the input channels.
22. The sound reproducing method as recited in claim 20, wherein the (B) correcting the virtual source is performed only on the virtual sources corresponding to audio data input from a rear channel among the input channels.
23. A sound reproducing method in which audio data input through input channels are generated as virtual sources by a Head Related Transfer Function (HRTF) and a sound signal resulting from the generated virtual sources is output through a speaker, comprising:
correcting the virtual sources based on a virtual listening space parameter set to allow the sound signal resulted from the virtual sources to be output to an expected optimal listening space,
wherein the virtual listening space parameter comprises a first reflected sound function portion and a late reflected sound function portion, and
the (a) correcting the virtual sources is performed based only on the first reflected sound function portion of the first reflected sound function portion and the late reflected sound function portion.
24. The sound reproducing method as recited in claim 23, wherein correcting the virtual sources is performed only on the virtual sources corresponding to audio data input from a front channel among the input channels.
25. The sound reproducing method as recited in claim 23, wherein correcting the virtual source is performed only on the virtual sources corresponding to audio data input from a rear channel among the input channels.
26. The sound reproducing apparatus as recited in claim 11, wherein the virtual listening space parameter comprises at least one of an atmospheric absorption degree, a reflectivity and a size of a virtual listening space which represents an idealistic listening space.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A computer system, comprising:
a baseboard having a first side and a second side; wherein the first side and the second side define a first key opening;
a first key pad located on the first side, wherein the first key pad is grounded;
a second key pad located on the second side, wherein the second key pad is aligned with the first key pad via the first key opening, wherein the second key pad is coupled to a first voltage source, and wherein the second key pad is electrically isolated from the first key pad;
a mezzanine card interface coupled to the baseboard; and
a keying mechanism coupled to interface with the baseboard through the first key opening, wherein coupling the keying mechanism to the baseboard shorts the second key pad to the first key pad and initiates a first key signal, and wherein the first key signal operates to permit a first operating voltage to power the mezzanine card interface.
2. The computer system of claim 1, further comprising:
the first side and the second side defining a second key opening;
a third key pad located on the first side, wherein the third key pad is grounded;
a fourth key pad located on the second side, wherein the fourth key pad is aligned with the third key pad via the second key opening, wherein the fourth key pad is coupled to a second voltage source, and wherein the fourth key pad is electrically isolated from the third key pad; and
the keying mechanism coupled to interface wit the baseboard through the second key opening, wherein coupling the keying mechanism to the baseboard shorts the third key pad to the fourth key pad and initiates a second key signal, and wherein ,the second key signal operates to permit a second operating voltage to power the mezzanine card interface.
3. The computer system of claim 1, wherein the baseboard is one of a VMEbus board, AdvancedTCA board, APS board and CompactPCI board.
4. The computer system of claim 1, wherein the mezzanine card interface is a common mezzanine card interface.
5. The computer system of claim 1, wherein the mezzanine card interface is a PCI mezzanine card interface.
6. A baseboard, comprising:
the baseboard having a first side and a second side; wherein the first side and the second side define a first key opening;
a first key pad located on the first side; wherein the first key pad is grounded;
a second key pad located on the second side, wherein the second key pad is aligned with the first key pad via the first key opening, wherein the second key pad is coupled to a first voltage source, and wherein the second key pad is electrically isolated from the first key pad;
a mezzanine card interface coupled to the baseboard; and
a keying mechanism coupled to interface with the baseboard through the first key opening, wherein coupling the keying mechanism to the baseboard shorts the second key pad to the first key pad and initiates a first key signal, and wherein the first key signal operates to permit a first operating voltage to power the mezzanine card interface.
7. The baseboard of claim 6, further comprising:
the first side and the second side defining a second key opening;
a third key pad located on the first side, wherein the third key pad is grounded;
a fourth key pad located on the second side, wherein the fourth key pad is aligned with the third key pad via the second key opening, wherein the fourth key pad is coupled to a second voltage source, and wherein the fourth key pad is electrically isolated from the third key pad; and
the keying mechanism coupled to interface with the baseboard through the second key opening, wherein coupling the keying mechanism to the baseboard shorts the third key pad to the fourth key pad and initiates a second key signal, and wherein the second key signal operates to permit a second operating voltage to power the mezzanine card interface.
8. The baseboard of claim 6, wherein the baseboard is one of a VMEbus board, AdvancedTCA board, APS board and CompactPCI board.
9. The baseboard of claim 6, wherein the mezzanine card interface is a common mezzanine card interface.
10. The baseboard of claim 6, wherein the mezzanine card interface is a PCI mezzanine card interface.
11. A method of selecting an operating voltage, comprising:
providing a baseboard having a first side and a second side, wherein the first side and the second side define a first key opening and a second key opening, wherein the first key opening corresponds to a first operating voltage, and wherein the second key opening corresponds to a second operating voltage;
if a keying mechanism is coupled to the baseboard through the first key opening, a first key signal operating to permit the first operating voltage to power a mezzanine card interface; and
if the keying mechanism is coupled to the baseboard through the second key opening, a second key signal operating to permit the second operating voltage to power the mezzanine card interface.
12. The method of claim 11, further comprising:
providing a first key pad located on the first side, wherein the first key pad is grounded;
providing a second key pad located on the second side, wherein the second key pad is aligned with the first key pad via the first key opening, wherein the second key pad is coupled to a first voltage source, and wherein the second key pad is electrically isolated from the first key pad; and
shorting the second key pad to the first key pad to initiate the first key signal.
13. The method of claim 11, further comprising:
providing a third key pad located on the first side, wherein the third key pad is grounded;
providing a fourth key pad located on the second side, wherein the fourth key pad is aligned with the third key pad via the second key opening, wherein the fourth key pad is coupled to a second voltage source, and wherein the fourth key pad is electrically isolated from the third key pad; and
shorting the third key pad to the fourth key pad to initiate the second key signal.
14. The method of claim 11, wherein the baseboard is one of a VMEbus board, AdvancedTCA board, APS board and CompactPCI board.
15. The method of claim 11, wherein the mezzanine card interface is a common mezzanine card interface.
16. The method of claim 11, wherein the mezzanine card interface is a PCI mezzanine card interface.
17. A method-of configuring a baseboard to power a mezzanine card interface, comprising:
the baseboard having a first side and a second side, wherein the first side and the second side define a first key opening and a second key opening, wherein the first key opening corresponds to a first operating voltage, and wherein the second key opening corresponds to a second operating voltage;
if a keying mechanism is coupled to the baseboard through the first key opening, a first key signal operating to permit the first operating voltage to power the mezzanine card interface; and
if the keying mechanism is coupled to the baseboard through the second key opening, a second key signal operating to permit the second operating voltage to power the mezzanine card interface.
18. The method of claim 17, further comprising:
providing a first key pad located on the first side, wherein the first key pad is grounded;
providing a second key pad located on the second side, wherein the second key pad is aligned with the first key pad via the first key opening, wherein the second key pad is coupled to a first voltage source, and wherein the second key pad is electrically isolated from the first key pad; and
shorting the second key pad to the first key pad to initiate the first key signal.
19. The method of claim 17, further comprising:
providing a third key pad located on the first side, wherein the third key pad is grounded;
providing a fourth key pad located on the second side, wherein the fourth key pad is aligned with the third key pad via the second key opening, wherein the fourth key pad is coupled to a second voltage source, and wherein the fourth key pad is electrically isolated from the third key pad; and
shorting the third key pad to the fourth key pad to initiate the second key signal.
20. The method of claim 17, wherein the baseboard is one of a VMEbus board, AdvancedTCA board, APS board and CompactPCI board.
21. The method of claim 17, wherein the mezzanine card interface is a common mezzanine card interface.
22. The method of claim 17, wherein the mezzanine card interface is a PCI mezzanine card interface.