1461165506-3dd657d2-353a-4266-aab2-d78320ffa15f

1-26. (canceled)
27. A mobile station comprising:
one or more antennas; and
a transceiver coupled to the one or more antennas, and configured to receive signals on a plurality of carriers, wherein the transceiver is further configured to:
read resource allocation information and a carrier identifier from the first carrier, wherein the carrier identifier indicates a second of the carriers, wherein the resource allocation information indicates resources allocated for the mobile station in a particular resource partition of the second carrier;
recover transmitted data from the particular resource partition of the second carrier using the resource allocation information.
28. The mobile station of claim 27, wherein the transceiver is further configured to:
read resource partitioning information for the second carrier, wherein the resource partitioning information defines a plurality of partitions of the second carrier, wherein the plurality of partitions includes the particular resource partition.
29. The mobile station of claim 27, wherein each of the carriers includes synchronization channels.
30. The mobile station of claim 27, wherein the transceiver is further configured to:
for one or more the carriers, measure channel quality information (CQI) of the carrier, and transmit the CQI to the base station.
31. The mobile station of claim 27, wherein the transceiver is further configured to:
measure channel quality information (CQI) of the second carrier; and
transmit the CQI on the second carrier to the base station.
32. The mobile station of claim 27, wherein the transceiver is configured to transmit a first channel quality information on the first carrier and transmit a second channel quality information on the second carrier, wherein the first channel quality information is quality information for the first carrier, wherein the second channel quality information is quality information for the second carrier.
33. The mobile station of claim 27, wherein the transceiver is further configured to:
send ACKNACK feedback to the base station on the second carrier, wherein said ACKNACK feedback indicates positive or negative acknowledgement of receipt of the transmitted data from said resources of the particular resource partition.
34. The mobile station of claim 27, wherein the transceiver is further configured to:
monitor only one of the carriers when the mobile station is in an idle mode.
35. The mobile station of claim 27, wherein the transceiver is configured to:
for a retransmission of data:
read a second carrier identifier from the first carrier, wherein the second carrier identifier identifies a given one of the plurality of carriers; and
read the one or more HARQ retransmissions of the transmitted data from the given carrier.
36. The mobile station of claim 27, wherein said reading the resource allocation information and the carrier identifier includes reading the resource allocation information and the carrier identifier from a unicast message on the first carrier.
37. The mobile station of claim 27, wherein the first carrier carries system-wide static physical-layer control information, wherein the second carrier does not carry system-wide static physical-layer control information.
38. A method for operating a mobile station, wherein the mobile station is configured to receive signals on a plurality of carriers, the method comprising:
reading, by the mobile station, resource allocation information and a carrier identifier from the first carrier, wherein the carrier identifier indicates a second of the carriers, wherein the resource allocation information indicates resources allocated for the mobile station in a particular resource partition of the second carrier;
recovering, by the mobile station, transmitted data from the particular resource partition of the second carrier using the resource allocation information.
39. The method of claim 38, further comprising:
reading resource partitioning information for the second carrier, wherein the resource partitioning information defines a plurality of partitions of the second carrier, wherein the plurality of partitions includes the particular resource partition.
40. The method of claim 38, wherein each of the carriers includes synchronization channels.
41. The method of claim 38, further comprising:
for one or more the carriers, measure channel quality information (CQI) of the carrier, and transmit the CQI to the base station.
42. The method of claim 38, further comprising:
measuring channel quality information (CQI) of the second carrier; and
transmitting the CQI on the second carrier to the base station.
43. A non-transitory memory medium for operating a mobile station that is configured to receive signals on a plurality of carriers, wherein the memory medium stores program instructions, wherein the program instructions, when executed by a processor, cause the processor to implement:
reading, by the mobile station, resource allocation information and a carrier identifier from the first carrier, wherein the carrier identifier indicates a second of the carriers, wherein the resource allocation information indicates resources allocated for the mobile station in a particular resource partition of the second carrier;
recovering, by the mobile station, transmitted data from the particular resource partition of the second carrier using the resource allocation information.
44. The memory medium of claim 43, wherein the program instructions, when executed by the processor, cause the processor to further implement:
reading resource partitioning information for the second carrier, wherein the resource partitioning information defines a plurality of partitions of the second carrier, wherein the plurality of partitions includes the particular resource partition.
45. The memory medium of claim 43, wherein each of the carriers includes synchronization channels.
46. The memory medium of claim 43, wherein the program instructions, when executed by the processor, cause the processor to further implement:
for one or more the carriers, measure channel quality information (CQI) of the carrier, and transmit the CQI to the base station.

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 system for multimodal medical treatment comprising:
a first delivery system for delivering a primary medical treatment to a patient; and
a second delivery system integrated with the first delivery system, the second delivery system including:
a memory having an audio file, a video file or an audiovisual file of an adjunctive medical treatment, and
an output delivery device operatively connected to the memory for delivering the adjunctive medical treatment to the patient.
2. The system of claim 1, wherein the first delivery system comprises a medication containing device.
3. The system of claim 2, wherein the medication containing device is a patch.
4. The system of claim 2, wherein the medication containing device is an inhaler.
5. The system of claim 1, wherein the output delivery device is a screen, earphones, a speaker, or a holographic projection.
6. The system of claim 1, wherein the output delivery device executes the audio file, the video file or the audiovisual file.
7. A method for multimodal medical treatment optimization comprising:
providing a patient with the multimodal medical treatment optimization system of claim 1;
delivering the primary medical treatment via the first delivery system;
delivering the adjunctive medical treatment via the second delivery system; and
adjusting at least one of the primary medical treatment and the adjunctive medical treatment as a result of the patient’s physiological or psychological response to at least one of the primary medical treatment and the adjunctive medical treatment.
8. A system for multimodal medical treatment comprising:
a first delivery system for delivering a primary medical treatment to a patient; and
a second delivery system integrated with the first delivery system, the second delivery system including an adjunctive medical treatment comprising at least one of light therapy, aromatherapy and magnetic therapy.
9. The system of claim 6, wherein the first delivery system comprises a medication containing device.
10. The system of claim 6, wherein the second delivery system comprises an aerosol dispensing device attached to the first delivery system.
11. The system of claim 6, wherein the second delivery system comprises a light illuminating device attached to the first delivery system.
12. The system of claim 6, wherein the second delivery system comprises a magnet attached to the first delivery system.
13. A multimodal medical treatment system comprising:
a medication containing device for housing a primary medical treatment; and
an audiovisual module having stored audio, video or audiovisual files of an adjunctive medical treatment, and
wherein when the medication containing device is activated, playback of the audio, video or audiovisual files begins.
14. The system of claim 13, wherein the audiovisual module includes an output delivery device.
15. The system of claim 14, wherein the output delivery device is a screen, earphones, a speaker, a USB port or a holographic projection.
16. The system of claim 15, wherein the screen is an LED or LCD screen.
17. The system of claim 15, wherein the screen is extendable and retractable.
18. A multimodal medical treatment system comprising:
a medication containing device for housing a primary medical treatment, wherein the medication containing device includes an integral breathing rate controlling tool.
19. The system of claim 18, wherein the tool comprises a timepiece
20. The system of claim 18, wherein the tool comprises an adjustable dial.

1461165495-d5e87d6d-77d1-4be1-88b4-f5234f29397c

1. A non-transitory computer-readable information storage media having stored thereon instructions, that if executed by a processor, cause to be performed a method for allocating shared memory in a transceiver comprising:
transmitting or receiving, by the transceiver, a message during initialization specifying a maximum number of bytes of memory that are available to be allocated to an interleaver;
determining, at the transceiver, an amount of memory required by the interleaver to interleave a first plurality of Reed Solomon (RS) coded data bytes within a shared memory;
allocating, in the transceiver, a first number of bytes of the shared memory to the interleaver to interleave the first plurality of Reed Solomon (RS) coded data bytes for transmission at a first data rate, wherein the allocated memory for the interleaver does not exceed the maximum number of bytes specified in the message;
allocating, in the transceiver, a second number of bytes of the shared memory to a deinterleaver to deinterleave a second plurality of RS coded data bytes received at a second data rate; and
interleaving the first plurality of RS coded data bytes within the shared memory allocated to the interleaver and deinterleaving the second plurality of RS coded data bytes within the shared memory allocated to the deinterleaver, wherein the shared memory allocated to the interleaver is used at the same time as the shared memory allocated to the deinterleaver.
2. The media of claim 1, wherein the determining is based on an impulse noise protection requirement.
3. The media of claim 1, wherein the determining is based on a latency requirement.
4. The media of claim 1, wherein the determining is based on a bit error rate requirement.
5. A non-transitory computer-readable information storage media having stored thereon instructions, that if executed by a processor, cause to be performed a method for allocating shared memory in a transceiver comprising:
transmitting or receiving, by the transceiver, a message during initialization specifying a maximum number of bytes of memory that are available to be allocated to a deinterleaver;
determining, at the transceiver, an amount of memory required by the deinterleaver to deinterleave a first plurality of Reed Solomon (RS) coded data bytes within a shared memory;
allocating, in the transceiver, a first number of bytes of the shared memory to the deinterleaver to deinterleave a first plurality of Reed Solomon (RS) coded data bytes for transmission at a first data rate, wherein the allocated memory for the deinterleaver does not exceed the maximum number of bytes specified in the message;
allocating, in the transceiver, a second number of bytes of the shared memory to an interleaver to interleave a second plurality of RS coded data bytes received at a second data rate; and
deinterleaving the first plurality of RS coded data bytes within the shared memory allocated to the deinterleaver and interleaving the second plurality of RS coded data bytes within the shred memory allocated to the interleaver, wherein the shared memory allocated to the deinterleaver is used at the same time as the shared memory allocated to the interleaver.
6. The media of claim 5, wherein the determining is based on an impulse noise protection requirement.
7. The media of claim 5, wherein the determining is based on a latency requirement.
8. The media of claim 5, wherein the determining is based on a bit error rate requirement.

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 block copolymer (M) suitable for toughening a thermoset resin (R), said block copolymer (M) having one or more segments of a thermoplastic aromatic polymer (A) chemically linked to one or more segments of a low Tg polymer (B) wherein:
(i) the low Tg polymer (B) exhibits a Tg in the range of from about \u2212130\xb0 C. to about +40\xb0 C.;
(ii) the one or more segments of aromatic polymer (A) is soluble in uncured thermoset resin precursor(s) (P) of said thermoset resin (R),
(iii) the one or more segments of low Tg polymer (B) is insoluble in the uncured thermoset resin precursor(s) (P),
(iv) the aromatic polymer (A) is a polyarylsulphone comprising ether-linked repeating units, the units being selected from:
\u2014ArSO2Arn\u2014

and optionally from:
\u2014Ara\u2014
wherein:
Ar is phenylene;
n=1 to 2 and can be fractional;
a=1 to 3 and can be fractional and when a exceeds 1, said phenylene groups are linked linearly through a single chemical bond or a divalent group other than \u2014SO2\u2014, or are fused together,
provided that the repeating unit \u2014ArSO2Arn\u2014 is always present in the polyarylsulphone in such a proportion that on average at least two of said \u2014ArSO2Arn\u2014 units are in sequence in each polymer chain present,
and wherein the polyarylsulphone has one or more reactive pendant or end group(s),

(v) the low Tg polymer (B) is selected from saturated aliphatic polyesters derived from at least divalent linear, branched or cyclic aliphatic alcohols having from 2 to 60 carbon atoms, and at least divalent linear, branched or cyclic aliphatic carboxylic acids having from 3 to 60 carbon atoms, with the proviso that at least one of the alcohol or the acid components has at least 4 carbon atoms.
2. A block copolymer according to claim 1 wherein the aromatic polymer (A) has a Tg of at least 160\xb0 C.
3. A block copolymer according to claim 1, wherein at least one of the aliphatic alcohol component and the aliphatic acid component has from 20 to 60 carbon atoms.
4. A block copolymer according to claim 1, wherein the diacids are selected from dimer fatty acids having from 12 to 48 carbon atoms; andor the alcohols are selected from dihydric alcohols having from 2 to 6 carbon atoms.
5. A block copolymer according to claim 1, wherein the one or more reactive pendant or end group(s) of the polyarylsulphone isare amino group(s), and polymer (B) is functionalised with hydroxyl or amino groups.
6. A block copolymer according to claim 1, wherein the block copolymer (M) comprises:
(i) the aromatic polymer (A) in a mass fraction w(A) of from 5% to 99%, and correspondingly,
(ii) the low Tg polymer (B) in a mass fraction w(B) of from 95% to 1%,
wherein w(A) and w(B) are calculated as
w(A)=m(A)m(M)
w(B)=m(B)m(M)
wherein
m(A) is the mass of the aromatic polymer A;
m(B) is the mass of the low Tg polymer B; and
m(M) is the mass of the block copolymer M.
7. A block copolymer according to claim 6, wherein w(A)>w(B), and in one embodiment wherein w(A) is from 60 to 80% and w(B) is from 40 to 20%.
8. A block copolymer according to claim 1, wherein the number average molar mass Mn of the block copolymer is in the range of from 3,000 to 150,000 gmol.
9. A block copolymer according to claim 1, wherein the number average molar mass Mn of the aromatic polymer (A) is in the range from 2,000 to 60,000, and the number average molar mass Mn of the of the low Tg polymer (B) is in the range of from 1,000 to 30,000 gmol.
10. A curable polymer composition comprising the block copolymer (M) of claim 1, one or more uncured thermoset resin precursors (P), and a curing agent therefor.
11. The composition of claim 10, wherein the one or more precursors (P) are selected from one or more epoxy resin precursors.
12. The composition of claim 11, wherein the epoxy resin precursors are selected from:
(i) glycidyl ethers of bisphenol A, bisphenol F, dihydroxydiphenyl sulphone, dihydroxybenzophenone, and dihydroxy diphenyl;
(ii) epoxy resins based on Novolacs; and
(iii) glycidyl functional reaction products of m- or p-aminophenol, m- or p-phenylene diamine, 2,4-, 2,6- or 3,4-toluylene diamine, 3,3\u2032- or 4,4\u2032-diaminodiphenyl methane, and blends thereof.
13. The composition of claim 10, wherein the amount of block copolymer (M) is such that the mass fraction w(M) is from 0.5% to 40%, wherein:
w(M)=m(M)m,

where m(M) is the mass of the block copolymer present in a toughened thermoset resin composition having the mass m.
14. A composite material comprising the curable polymer composition of claim 10 and reinforcing fibres.