1460908725-abe6cb80-3b6d-4348-b47c-9f30f197af6f

1. A laser apparatus comprising:
first and second seed lasers each emitting an output beam differing in at least one beam characteristic, wherein the first and second seed lasers are (i) both fiber lasers, (ii) operated in a complementary fashion, and (iii) modulated in accordance with a substantially random frequency;
a coupler for combining the output beams of the seed lasers into a combined beam, the combined beam having a substantially constant power as a function of time;
a first isolator, disposed between the first seed laser and the coupler, positioned to receive the output beam of the first seed laser;
a second isolator, different from the first isolator, disposed between the second seed laser and the coupler, positioned to receive the output beam of the second seed laser;
at least one amplifier for increasing a power of the combined beam, thereby forming an amplified beam;
a resonant phase modulator disposed between the coupler and the at least one amplifier, the resonant phase modulator broadening an optical spectrum of the combined beam prior to amplification thereof;
a third isolator, different from the first and second isolators, disposed between the coupler and the at least one amplifier, positioned to receive the combined beam; and
a separator for separating the amplified beam into first and second final output beams based on the at least one beam characteristic, the second final output beam being absorbed by the separator or discarded after separation,
wherein (i) the first and second seed lasers, the coupler, the at least one amplifier, the separator, the resonant phase modulator, and the first, second, and third isolators are all fiber-coupled, and (ii) a line width of the at least one amplifier is less than a line width of the combined beam, whereby Brilliouin scattering is suppressed in the at least one amplifier due at least in part to the spectral broadening by the resonant phase modulator.
2. The laser apparatus of claim 1, wherein the at least one beam characteristic is wavelength or polarization or both wavelength and polarization.
3. The laser apparatus of claim 1, wherein the at least one amplifier comprises a plurality of fiber amplifiers, the apparatus further comprising an inter-stage isolator disposed between two of the fiber amplifiers.
4. The laser apparatus of claim 1, wherein the second final output beam is directed into a beam dump.
5. The laser apparatus of claim 1, wherein the second final output beam is absorbed by the separator.
6. The laser apparatus of claim 1, wherein the separator comprises at least one of a dichroic minor, a polarization division demultiplexer, or a wavelength division demultiplexer.
7. The laser apparatus of claim 1, wherein the first and second seed lasers emit at wavelengths that differ from each other by an amount ranging from approximately 9 nm to approximately 100 nm.
8. The laser apparatus of claim 1, further comprising an isolator and a collimator disposed between the at least one amplifier and the separator.
9. The laser apparatus of claim 1, further comprising, associated with each seed laser, a modulator that modulates the output beam of the seed laser.
10. The laser apparatus of claim 9, wherein the modulator comprises an acousto-optic modulator or an electro-optic modulator.
11. The laser apparatus of claim 1, further comprising a harmonic generator associated with the separator and positioned to receive the amplified beam and multiply a frequency thereof prior to output of the first final output beam, wherein a frequency of the first final output beam is larger than a frequency of the amplified beam by at least a factor of two.
12. A method of operating a laser apparatus comprising (i) first and second seed lasers each emitting an output beam differing in at least one beam characteristic, wherein the first and second seed lasers are (a) both fiber lasers, (b) operated in a complementary fashion, and (c) modulated in accordance with a substantially random frequency, (ii) a coupler for combining the output beams of the seed lasers into a combined beam, the combined beam having a substantially constant power as a function of time, (iii) a first isolator, disposed between the first seed laser and the coupler, positioned to receive the output beam of the first seed laser, (iv) a second isolator, different from the first isolator, disposed between the second seed laser and the coupler, positioned to receive the output beam of the second seed laser, (v) at least one amplifier for increasing a power of the combined beam, thereby forming an amplified beam, (vi) a resonant phase modulator disposed between the coupler and the at least one amplifier, the resonant phase modulator broadening an optical spectrum of the combined beam prior to amplification thereof, (vii) a third isolator, different from the first and second isolators, disposed between the coupler and the at least one amplifier, positioned to receive the combined beam, and (viii) a separator for separating the amplified beam into first and second final output beams based on the at least one beam characteristic, the second final output beam being absorbed by the separator or discarded after separation, wherein (i) the first and second seed lasers, the coupler, the at least one amplifier, the separator, the resonant phase modulator, and the first, second, and third isolators are all fiber-coupled, and (ii) a line width of the at least one amplifier is less than a line width of the combined beam, whereby Brilliouin scattering is suppressed in the at least one amplifier due at least in part to the spectral broadening by the resonant phase modulator, the method comprising:
operating the first and second seed lasers in a complementary fashion, such that each seed laser emits its output beam only when the other does not;
combining the output beams of the seed lasers into the combined beam;
amplifying the combined beam so as to suppress Brilliouin scattering; and
separating the combined beam into the two final output beams differing in the at least one beam characteristic.
13. The method of claim 12, wherein the at least one beam characteristic is wavelength or polarization or both wavelength and polarization.
14. The method of claim 12, wherein the combined beam is amplified with the at least one amplifier.
15. The method of claim 12, further comprising discarding one of the two final output beams.
16. The method of claim 12, further comprising directing one of the two final output beams to a printing cylinder of a plateless lithographic printing system to create an image thereon.
17. The method of claim 12, wherein the seed lasers have different rise times, and operating the seed lasers comprises staggering electrical signals thereto, such that the combined beam has substantially constant power as a function of time.
18. The method of claim 12, wherein separating the combined beam comprises directing the combined beam into the separator, the separator comprising a wavelength separator.
19. The method of claim 18, wherein the wavelength separator comprises at least one of a dichroic mirror, a polarization division demultiplexer, or a wavelength division demultiplexer.
20. The method of claim 12, wherein the seed lasers are modulated at a random frequency corresponding to an incoming data stream.
21. A method of printing comprising:
providing a hydrophilic, ink-receptive lithographic surface having a printing area;
applying a polar liquid to the printing area for adsorption thereon;
producing a laser output with an apparatus comprising:
first and second seed lasers each emitting an output beam differing in at least one beam characteristic, wherein the first and second seed lasers are (i) both fiber lasers, (ii) operated in a complementary fashion, and (iii) modulated in accordance with a substantially random frequency,
a coupler for combining the output beams of the seed lasers into a combined beam, the combined beam having a substantially constant power as a function of time,
a first isolator, disposed between the first seed laser and the coupler, positioned to receive the output beam of the first seed laser,
a second isolator, different from the first isolator, disposed between the second seed laser and the coupler, positioned to receive the output beam of the second seed laser,
at least one amplifier for increasing a power of the combined beam, thereby forming an amplified beam,
a resonant phase modulator disposed between the coupler and the at least one amplifier, the resonant phase modulator broadening an optical spectrum of the combined beam prior to amplification thereof,
a third isolator, different from the first and second isolators, disposed between the coupler and the at least one amplifier, positioned to receive the combined beam, and
a separator for separating the amplified beam into first and second final output beams based on the at least one beam characteristic, the second final output beam being absorbed by the separator or discarded after separation,
wherein (i) the first and second seed lasers, the coupler, the at least one amplifier, the separator, the resonant phase modulator, and the first, second, and third isolators are all fiber-coupled, and (ii) a line width of the at least one amplifier is less than a line width of the combined beam, whereby Brilliouin scattering is suppressed in the at least one amplifier due at least in part to the spectral broadening by the resonant phase modulator;

exposing the liquid-bearing printing area to the laser output in an imagewise fashion, the laser output substantially removing the adsorbed liquid without damaging the printing surface;
applying ink to the printing area, the ink adhering to the surface only where the polar liquid has been removed by the laser output; and
transferring the ink to a recording medium.
22. The method of claim 21, wherein the imagewise laser output is applied at a frequency exceeding approximately 50 MHz and has a power ranging from approximately 10 W to approximately 100 W.
23. The method of claim 21, wherein the at least one beam characteristic is wavelength or polarization or both wavelength and polarization.
24. A method of printing comprising:
providing a hydrophilic, ink-receptive lithographic surface having a printing area;
applying ink to the printing area for adsorption thereon;
producing a laser output with an apparatus comprising:
first and second seed lasers each emitting an output beam differing in at least one beam characteristic, wherein the first and second seed lasers are (i) both fiber lasers, (ii) operated in a complementary fashion, and (iii) modulated in accordance with a substantially random frequency,
a coupler for combining the output beams of the seed lasers into a combined beam, the combined beam having a substantially constant power as a function of time,
a first isolator, disposed between the first seed laser and the coupler, positioned to receive the output beam of the first seed laser,
a second isolator, different from the first isolator, disposed between the second seed laser and the coupler, positioned to receive the output beam of the second seed laser,
at least one amplifier for increasing a power of the combined beam, thereby forming an amplified beam,
a resonant phase modulator disposed between the coupler and the at least one amplifier, the resonant phase modulator broadening an optical spectrum of the combined beam prior to amplification thereof,
a third isolator, different from the first and second isolators, disposed between the coupler and the at least one amplifier, positioned to receive the combined beam, and
a separator for separating the amplified beam into first and second final output beams based on the at least one beam characteristic, the second final output beam being absorbed by the separator or discarded after separation,
wherein (i) the first and second seed lasers, the coupler, the at least one amplifier, the separator, the resonant phase modulator, and the first, second, and third isolators are all fiber-coupled, and (ii) a line width of the at least one amplifier is less than a line width of the combined beam, whereby Brilliouin scattering is suppressed in the at least one amplifier due at least in part to the spectral broadening by the resonant phase modulator;

exposing the ink-bearing printing area to the laser output in an imagewise fashion, the laser output fixing the adsorbed ink on the printing surface;
applying a polar liquid to the printing area, the polar liquid removing ink that has not received laser exposure; and
transferring the remaining ink to a recording medium.
25. The method of claim 24, wherein the imagewise laser output is applied at a frequency exceeding approximately 50 MHz and has a power ranging from approximately 10 W to approximately 100 W.
26. The method of claim 24, wherein the at least one beam characteristic is wavelength or polarization or both wavelength and polarization.
27. A printing apparatus comprising:
a hydrophilic, ink-receptive lithographic surface having a printing area;
means for applying a polar liquid to the printing area for adsorption thereon;
means for exposing the liquid-bearing printing area to a laser output in an imagewise fashion, whereby the laser output substantially removes the adsorbed liquid without damaging the printing surface;
means for applying ink to the printing area such that the ink adheres to the surface only where the polar liquid has been removed by the laser; and
means facilitating transfer of the ink to a recording medium,
wherein the exposing means comprises:
first and second seed lasers each emitting an output beam differing in at least one beam characteristic, wherein the first and second seed lasers are (i) both fiber lasers, (ii) operated in a complementary fashion, and (iii) modulated in accordance with a substantially random frequency;
a coupler for combining the output beams of the seed lasers into a combined beam, the combined beam having a substantially constant power as a function of time;
a first isolator, disposed between the first seed laser and the coupler, positioned to receive the output beam of the first seed laser;
a second isolator, different from the first isolator, disposed between the second seed laser and the coupler, positioned to receive the output beam of the second seed laser;
at least one amplifier for increasing a power of the combined beam, thereby forming an amplified beam;
a resonant phase modulator disposed between the coupler and the at least one amplifier, the resonant phase modulator broadening an optical spectrum of the combined beam prior to amplification thereof;
a third isolator, different from the first and second isolators, disposed between the coupler and the at least one amplifier, positioned to receive the combined beam; and
a separator for separating the amplified beam into first and second final output beams based on the at least one beam characteristic, the second final output beam being absorbed by the separator or discarded after separation,
wherein (i) the first and second seed lasers, the coupler, the at least one amplifier, the separator, the resonant phase modulator, and the first, second, and third isolators are all fiber-coupled, and (ii) a line width of the at least one amplifier is less than a line width of the combined beam, whereby Brilliouin scattering is suppressed in the at least one amplifier due at least in part to the spectral broadening by the resonant phase modulator.
28. The printing apparatus of claim 27, wherein the at least one beam characteristic is wavelength or polarization or both wavelength and polarization.
29. A printing apparatus comprising:
a hydrophilic, ink-receptive lithographic surface having a printing area;
means for applying ink to the printing area for adsorption thereon;
means for exposing the ink-bearing printing area to a laser output in an imagewise fashion, whereby the laser output fixes the adsorbed ink on the printing surface;
means for applying a polar liquid to the printing area to remove ink that has not received laser exposure; and
means facilitating transfer of the remaining ink to a recording medium,
wherein the exposing means comprises:
first and second seed lasers each emitting an output beam differing in at least one beam characteristic, wherein the first and second seed lasers are (i) both fiber lasers, (ii) operated in a complementary fashion, and (iii) modulated in accordance with a substantially random frequency;
a coupler for combining the output beams of the seed lasers into a combined beam, the combined beam having a substantially constant power as a function of time;
a first isolator, disposed between the first seed laser and the coupler, positioned to receive the output beam of the first seed laser;
a second isolator, different from the first isolator, disposed between the second seed laser and the coupler, positioned to receive the output beam of the second seed laser;
at least one amplifier for increasing a power of the combined beam, thereby forming an amplified beam;
a resonant phase modulator disposed between the coupler and the at least one amplifier, the resonant phase modulator broadening an optical spectrum of the combined beam prior to amplification thereof;
a third isolator, different from the first and second isolators, disposed between the coupler and the at least one amplifier, positioned to receive the combined beam; and
a separator for separating the amplified beam into first and second final output beams based on the at least one beam characteristic, the second final output beam being absorbed by the separator or discarded after separation,
wherein (i) the first and second seed lasers, the coupler, the at least one amplifier, the separator, the resonant phase modulator, and the first, second, and third isolators are all fiber-coupled, and (ii) a line width of the at least one amplifier is less than a line width of the combined beam, whereby Brilliouin scattering is suppressed in the at least one amplifier due at least in part to the spectral broadening by the resonant phase modulator.
30. The printing apparatus of claim 29, wherein the at least one beam characteristic is wavelength or polarization or both wavelength and polarization.
31. The laser apparatus of claim 1, wherein the first, second, and third isolators are all polarization-dependent.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

We claim:

1. A method of processing a bus transaction, comprising:
retrieving an address from the bus transaction,
referring the address to a queued list of pending transactions,
receiving a match indicator signal from the queue, and
if the match indicator signal indicates a match, blocking a snoop probe for the bus transaction.
2. The method of claim 1, further comprising emitting the snoop probe when the matching pending transaction is globally observed.
3. The method of claim 1, further comprising receiving a queue entry identifier in association with the match indicator signal.
4. The method of claim 3, further comprising:
receiving snoop results of the matching pending transaction identified by the queue entry identifier, and
emitting the snoop probe when the snoop results of the matching pending transaction is received.
5. A method of processing a bus transaction comprising:
retrieving an address from the bus transaction,
forwarding the address to a queue of pending transactions,
receiving a match indication signal and a request type signal from the queue,
based on the match indication signal and the request type signal, blocking a snoop probe for the bus transaction.
6. The method of claim 5, wherein the blocking occurs when the match indication signal indicates a match with a pending transaction.
7. The method of claim 5, wherein the blocking step does not occur when the match indication signal indicates a match with a pending transaction and the request type signal indicates that the matching pending transaction is a write transaction.
8. The method of claim 5, wherein the blocking step does not occur when the match indication signal indicates a match with a pending transaction and the request type signal indicates that the matching pending transaction is an uncacheable read of data.
9. The method of claim 5, further comprising emitting the snoop probe when the matching pending transaction is globally observed.
10. The method of claim 5, further comprising receiving a queue entry identifier in association with the match indicator signal.
11. The method of claim 10, further comprising:
receiving snoop results of the matching pending transaction identified by the queue entry identifier, and
emitting the snoop probe when the snoop results of the matching pending transaction is received.
12. A bus sequencing unit of an agent, comprising:
an external transaction queue to process external transactions of the agent, the external transaction queue coupled to an agent bus output and populated by a plurality of transition queue entries, and
a snoop queue to process cache coherency operations of the agent, the snoop queue coupled to the agent bus output and populated by a plurality of snoop queue entries, the number of snoop queue entries being independent of the number of transaction queue entries.
13. The bus sequencing unit of claim 12, wherein the agent bus output is an external bus controller.
14. The bus sequencing unit of claim 12, wherein the transaction queue entries include an address field and match detection logic coupled to the address field and to an externally applied address input.
15. The bus sequencing unit of claim 12, wherein the snoop queue entries include an address field.
16. The bus sequencing unit of claim 12, wherein the snoop queue includes decoding logic.
17. A method of processing a bus transaction, comprising:
at a snoop queue:
buffering the bus transaction, retrieving an address from the bus transaction,
forwarding the address to an external traction queue,

at an external transaction queue:
determining whether the address matches an address of a pending transaction,
returning a match indicator signal to the snoop queue representing whether the
address matches an address of a pending transaction, and

at the snoop queue, blocking a snoop probe if the match indicator signal indicates a match.
18. The method of claim 17, wherein the blocking occurs when the match indication signal indicates a match with a pending transaction.
19. The method of claim 17, wherein the blocking step does not occur when the match indication signal indicates a match with a pending transaction and the request type signal indicates that the matching pending transaction is a write transaction.
20. The method of claim 17, wherein the blocking step does not occur when the match indication signal indicates a match with a pending transaction and the request type signal indicates that the matching pending transaction is an uncacheable read of data.
21. The method of claim 17, further comprising emitting the snoop probe when the matching pending transaction is globally observed.
22. The method of claim 17, further comprising receiving a queue entry identifier in association with the match indicator signal.
23. The method of claim 22, further comprising:
receiving snoop results of the matching pending transaction identified by the queue entry identifier, and
emitting the snoop probe when the snoop results of the matching pending transaction is received.