US9271269B2 - Method and system for assigning slot reservations to subscriber radios in a telecommunications system - Google Patents
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- US9271269B2 US9271269B2 US13/631,576 US201213631576A US9271269B2 US 9271269 B2 US9271269 B2 US 9271269B2 US 201213631576 A US201213631576 A US 201213631576A US 9271269 B2 US9271269 B2 US 9271269B2
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- H04W72/0406—
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/24—Radio transmission systems, i.e. using radiation field for communication between two or more posts
- H04B7/26—Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile
- H04B7/2643—Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile using time-division multiple access [TDMA]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/08—Non-scheduled access, e.g. ALOHA
Definitions
- the present disclosure relates generally to telecommunications systems and more particularly to a method of assigning transmission slot reservations to subscriber radios in a telecommunications system.
- Time division multiple access (TDMA) communications systems and associated methods are commonly utilized for two-way radio communications between a base station and subscriber radios. These systems and methods utilize multiple superframes of data divided into a plurality of inbound slots for subscriber radios to transmit data to the base station. The inbound slots may further be differentiated into multiple logical channels.
- TDMA Time division multiple access
- FIG. 1 is a block diagram of a communication system 100 in accordance with some embodiments.
- FIG. 2 is a graphical representation of inbound and outbound slot sequences of a plurality of superframes in accordance with some embodiments.
- FIG. 3 is a graphical representation of an inbound reservation scheduling slot in accordance with some embodiments.
- FIG. 4 is a chart showing the inbound transmission slots associated with the reservation scheduling slots of one superframe in accordance with some embodiments.
- FIG. 5 is a graphical representation of a reservation request response in accordance with some embodiments.
- a method of assigning slot reservations to subscriber radios in a time division multiple access (TDMA) communications system is described herein. Transmission of data in the system is arranged into a series of superframes.
- the method includes providing an inbound signaling protocol transported in a plurality of inbound transmission slots.
- the method also includes providing an outbound signaling protocol.
- the outbound signaling protocol includes an inbound reservation scheduling message, which includes a plurality of subscriber access code fields. Each subscriber access code field corresponds to at least one of the plurality of inbound transmission slots.
- Each subscriber access code field is also able to store a subscriber access code associated with a subscriber radio.
- the method further includes transmitting the inbound reservation scheduling message within an inbound reservation scheduling slot.
- the inbound reservation scheduling message includes a subscriber access code in at least one of the subscriber access code fields.
- the subscriber radio associated with the subscriber access code may transmit data during the at least one of the inbound transmission slots corresponding to the subscriber access code field in which the subscriber access code is stored.
- a method of operating a time division multiple access (TDMA) communications system is also described herein.
- the system includes a base station and at least one subscriber radio. Encoded data is mapped to a protocol, i.e., a message format, and the protocol is mapped to a plurality of TDMA time slots. The TDMA time slots are then arranged into a series of superframes.
- the method includes receiving data in accordance with an inbound signaling protocol transported in a plurality of inbound transmission slots.
- the method further includes transmitting data in accordance with an outbound signaling protocol.
- the outbound signaling protocol includes an inbound reservation scheduling message, wherein the inbound reservation scheduling message includes a plurality of subscriber access code fields.
- Each subscriber access code field corresponds to at least one of the plurality of inbound transmission slots.
- Each subscriber access code field is able to store a subscriber access code associated with a subscriber radio.
- the method further includes transmitting the inbound reservation scheduling message within an inbound reservation scheduling slot.
- the inbound reservation scheduling message includes a subscriber access code in at least one of the subscriber access code fields.
- the subscriber radio associated with the subscriber access code may transmit data during the at least one of the inbound transmission slots corresponding to the subscriber access code field in which the subscriber access code is stored.
- the TDMA communications system is also described herein. Transmission of data in the system is arranged into a series of superframes.
- the system includes a controller capable of receiving an inbound signaling protocol transported in a plurality of inbound transmission slots.
- the controller is also capable of providing an outbound signaling protocol having an inbound reservation scheduling message.
- the inbound reservation scheduling message includes a plurality of subscriber access code fields. Each subscriber access code field corresponds to at least one of the plurality of inbound transmission slots. Each subscriber access code field is able to store a subscriber access code associated with a subscriber radio.
- the system also includes a transmitter in communication with the controller for transmitting inbound reservation scheduling messages within an inbound reservation scheduling slot.
- the inbound reservation scheduling message includes a subscriber access code in at least one of the subscriber access code fields.
- the subscriber radio associated with the subscriber access code may transmit data during the at least one of the inbound transmission slots corresponding to the subscriber access code field in which the subscriber access code is stored.
- FIG. 1 is a block diagram of the system 100 according to one embodiment.
- the system 100 includes at least one base station 102 and at least one subscriber radio 104 .
- the system is shown with a single base station 102 and a plurality of subscriber radios 104 .
- the system 100 may include any number of base stations 102 and subscriber radios 104 , as readily appreciated by those skilled in the art.
- the system 100 of the illustrated embodiment uses a frequency domain duplex (“FDD”) configuration, i.e., the system 100 utilizes at least one inbound frequency and at least one outbound frequency. More specifically, the system 100 of the illustrated embodiment utilizes a FDD control channel, a plurality of FDD voice channels, and a plurality of FDD data channels. That is, the system 100 utilizes two frequencies for the control channel, two frequencies for each voice channel, and two frequencies for each data channel. Of course, any number of control channels, voice channels, and/or data channels may be utilized.
- the data channel of the illustrated embodiment is referred to as an enhanced data capacity (“EDC”) channel.
- EDC enhanced data capacity
- digital encoding for “data” may be utilized on each control channel, voice channel, and/or data channel.
- the control channel, the voice channels, and the data channels are synchronized to a common clock (not shown).
- the base station 102 of the illustrated embodiment is full-duplex, i.e., the base station may transmit on one frequency and receive on another frequency simultaneously.
- the subscriber radios 104 of the illustrated embodiment are half-duplex, i.e., the subscriber radios 104 cannot transmit and receive at the same time.
- the duplexing of the base station 102 and/or subscriber radios 104 may be different.
- the base station 102 includes a transmitter 106 and a receiver 108 .
- the transmitter 106 and receiver 108 may be combined together as a transceiver (not shown) as is well appreciated by those skilled in the art.
- the transmitter 106 is capable of transmitting at least one radio frequency (RF) signal 110 and the receiver 108 is capable of receiving at least one RF signal 112 .
- each subscriber radio 104 also includes a transmitter (not shown) and a receiver (not shown), which may be combined as a transceiver.
- the transmitter and receiver of the subscriber radios 104 are also capable of transmitting and receiving RF signals 112 , 110 .
- Digital data may be encoded on the RF signals 110 , 112 .
- data is encoded using TDMA techniques well known to those skilled in the art.
- other techniques may be used to encode the data, as appreciated by those skilled in the art. These techniques include, but are certainly not limited to, frequency division multiple access (FDMA) techniques and code division multiple access (CDMA) techniques.
- the base station 102 also includes at least one antenna (not numbered) electrically connected to the transmitter 106 and/or the receiver 108 for transmitting and/or receiving RF signals 110 , 112 .
- the subscriber radios 104 also include at least one antenna (not numbered) electrically connected to the transmitter and/or receiver for transmitting and/or receiving RF signals 110 , 112 .
- the transmitter 106 and receiver 108 are in communication with the controller 114 .
- the controller 114 may provide the data to be transmitted via the RF signal 110 to the transmitter 106 .
- the controller 114 may receive the data received via the RF signal 112 from the receiver 108 .
- the controller 114 may include one or more microprocessors (not shown) or other computing devices capable of executing instructions and/or storing data as is appreciated by those skilled in the art.
- the controller 114 of the illustrated embodiment is capable of executing the steps of the methods described herein.
- the controller 114 may be implemented as part of the base station 102 or may be remote from the base station 102 .
- the controller 114 may be in communication with multiple transmitters 106 and/or receivers 108 of multiple base stations 102 .
- each subscriber unit 104 may tune its receiver to receive an RF signal being transmitted by the base station 102 on the control channel.
- This RF signal encodes information including, but not limited to, the frequencies of the voice and EDC channels, which voice and EDC channels are in use, and/or which voice and EDC channels are available. Based on this information, the subscriber unit 104 may then tune its transmitter and/or receiver to other voice or EDC channels (i.e., frequencies). Of course, each subscriber unit 104 may return to tune its receiver to the control channel at various times to check for announcements or group calls relevant to the subscriber unit 104 .
- Protocols, methods, and operation of the at least one EDC channel of the illustrated embodiment is described in greater detail below. However, those skilled in the art appreciate that these teachings may be applied to other channels and or different systems not specifically described herein.
- FIG. 2 shows a first superframe 200 A, a second superframe 200 B, and a third superframe 200 C.
- FIG. 2 shows a first superframe 200 A, a second superframe 200 B, and a third superframe 200 C.
- the three superframes 200 A, 200 B, 200 C are for exemplary purposes only.
- the method may be implemented using the embodiment of the system 100 described herein. However, the method as set forth above and in the claims may be implemented using other systems and embodiments than those specifically recited herein.
- the method includes providing an inbound signaling protocol (not numbered).
- the inbound signaling protocol of the illustrated embodiment is transported within inbound random access slots (not shown) and inbound reserved access slots 201 , as shown in FIG. 2 .
- a subscriber radio 104 may transmit during an inbound random access slot.
- the assigning of one or more of the inbound reserved access slots 201 to a subscriber radio 104 is achieved by that subscriber radio 104 making a request in one of the inbound random access slots, as described in greater detail below.
- slot refers generally to a time period dedicated to a specific burst transmission of energy which signals a message, address, protocol, data, voice, media, etc.
- slot may ubiquitously refer to that actual specific transmission of energy which signals a message, address, protocol, data, voice, media, etc. which occurs within that specific time period.
- the inbound reserved access slots 201 are referred to hereafter as simply the inbound transmission slots 201 .
- the inbound transmission slots 201 of the EDC channels may accommodate data, voice, or simultaneous voice and data.
- each inbound transmission slot 202 - 213 there are twelve inbound transmission slots 202 - 213 in each superframe numbered consecutively from a first inbound transmission slot 202 to a twelfth inbound transmission slot 213 .
- Each inbound transmission slot 202 - 213 defines a time period at which subscriber radios 104 may transmit to the base station 102 .
- the inbound signaling protocol may be referred to as an inbound media access control (“MAC”) layer protocol.
- the inbound transmission slots 202 - 213 may be labeled in the figures and herein with a suffix matching the suffix of the superframe.
- the inbound transmission slots 202 - 213 of the first superframe 200 A are labeled from 202 A- 213 A in FIG. 2 .
- the inbound transmission slots 201 which transport the inbound signaling protocol may be associated with either a first logical channel 220 or a second logical channel 221 .
- some of the inbound transmission slots 202 - 213 are associated with the first logical channel 220 and some are associated with the second logical channel 221 .
- inbound transmission slots 203 , 205 , 207 , 209 , 211 , 212 are associated with the first logical channel 220 and inbound transmission slots 202 , 204 , 206 , 208 , 210 , 213 are associated with the second logical channel 221 .
- the logical channels 220 , 221 may be differentiated by the type of data that the corresponding inbound transmission slots 202 - 213 carry.
- the first logical channel 220 may carry voice data while the second logical channel 221 may carry other data.
- the method also includes providing an outbound signaling protocol (not numbered).
- the outbound signaling protocol may be referred to as an outbound MAC layer protocol.
- the outbound signaling protocol of the illustrated embodiment is transported in outbound transmission slots 214 as shown in FIG. 2 .
- the outbound transmission slots 214 which transport the outbound signaling protocol may also be associated with either the first logical channel 220 or the second logical channel 221 .
- the outbound transmission slots 214 include at least one inbound reservation scheduling slot 216 , 218 .
- each superframe 200 A, 200 B, 200 C includes a first inbound reservation scheduling slot 216 A, 216 B, 216 C and a second inbound reservation scheduling slot 218 A, 218 B, 218 C.
- each first inbound reservation scheduling slot 216 carries an inbound reservation schedule for the first logical channel 220 of part the current superframe and part of the next superframe.
- each second inbound reservation scheduling slot 218 carries an inbound reservation schedule for the second logical channel 221 of part of the current superframe and part of the next superframe.
- the first inbound reservation scheduling slot 216 A carries the reservation schedule for the first logical channel 220 of part of the first superframe 200 A and part of the second superframe 200 B.
- the second inbound reservation scheduling slot 218 A carries the reservation schedule for the second logical channel 221 of part the first superframe 200 A and part of the second superframe 200 B.
- each first inbound reservation scheduling slot 216 carries a reservation schedule for the first logical channel 220 of the current superframe and each second inbound reservation scheduling slot 218 carries a reservation schedule for the second logical channel 221 of the current superframe.
- the first inbound reservation scheduling slot 216 A and the second inbound reservation scheduling slot 218 A carry the reservation schedule for the first logical channel 220 and the second logical channel 221 , respectively, of the first superframe 200 A
- an inbound reservation schedule is signaled using an inbound reservation scheduling message 318 transported in an inbound reservation scheduling slot 216 , 218 .
- Each inbound reservation scheduling message 318 includes a plurality of subscriber access code fields 300 , 301 , 302 , 303 , 304 , 305 .
- Each subscriber access code field 300 - 305 is able to store a subscriber access code (not shown) associated with a subscriber radio 104 .
- a subscriber access code is a temporary address used to identify each subscriber radio 104 .
- the subscriber access codes fields 300 - 305 in the illustrated embodiment are each 10-bits in length to accommodate subscriber access codes up to 10 bits.
- the subscriber access code is assigned by the base station 102 in response to a request from the subscriber radio 104 in one of the inbound random access slots.
- the request for the subscriber radio 104 may utilize a full 24-bit, 32-bit, or larger subscriber address.
- the smaller (e.g., 10-bit) subscriber access code is utilized to conserve message bits during the life of the reservation.
- the base station 102 maps the full subscriber address to the assigned subscriber access code such that each subscriber radio 104 identifies which subscriber access code has been assigned to it.
- This mapping of full subscriber address to subscriber access code serves as an acknowledgement that the subscriber's reservation request on the random access channel was received by the base station 102 .
- each inbound reservation scheduling message 318 includes a first subscriber access code field 300 , a second subscriber access code field 301 , a third subscriber access code field 302 , a fourth subscriber access code field 303 , a fifth subscriber access code field 304 , and a sixth subscriber access code field 305 .
- Each subscriber access code field 300 - 305 corresponds to at least one of the plurality of inbound transmission slots 202 - 213 .
- At least one of the subscriber access code fields 300 - 305 corresponds to one of the inbound transmission slots 202 - 213 in the current superframe.
- At least one of the subscriber access code fields 300 - 305 corresponds to one of the inbound transmission slots 202 - 213 in the next superframe.
- at least one of the subscriber access code fields 300 - 305 corresponds to one of the inbound transmission slots 202 B, 203 B, 204 B in the second superframe 200 B.
- the inbound reservation scheduling message 318 is transported in the inbound reservation scheduling slot 216 B, 218 B in the second superframe 200 B, at least one of the subscriber access code fields 300 - 305 corresponds to one of the inbound transmission slots 202 C, 203 C, 204 C in the third superframe 200 C.
- FIG. 4 shows a table detailing the inbound transmission slots 203 - 213 associated with the subscriber access code fields 300 - 305 of the inbound reservation scheduling message 318 for the illustrated embodiment.
- the left column lists the various subscriber access code fields 300 - 305 .
- the middle column represents the inbound transmission slots 205 A, 207 A, 209 A, 211 A, 212 A, 203 B that are assigned when a subscriber access code appears in the various subscriber access code fields 300 - 305 of the inbound reservation scheduling message 318 transported in the first inbound reservation scheduling slot 216 A.
- the inbound transmission slots 205 A, 207 A, 209 A, 211 A, 212 A, 203 B of the middle column are associated with the first logical channel 220 .
- the right column represents the inbound transmission slots 206 A, 208 A, 210 A, 213 A, 202 B, 204 B that are assigned when a subscriber access code appears in the various subscriber access code fields 300 - 305 of the inbound reservation scheduling message 318 transported in the second inbound reservation scheduling slot 218 A.
- the inbound transmission slots 206 A, 208 A, 210 A, 213 A, 202 B, 204 B of the right column are associated with the second logical channel 221 .
- the subscriber radio 104 associated with that subscriber access code may transmit during the eighth inbound transmission slot 209 A during the first superframe 200 A, i.e., the current superframe.
- the subscriber radio 104 associated with that subscriber access code may transmit during the third inbound transmission slot 204 B of the second superframe 200 B, i.e., the next superframe.
- Each inbound reservation scheduling message 318 may also include an adjacent slot bit 306 - 311 associated with each subscriber access code field 300 - 305 .
- a first adjacent slot bit 306 is associated with the first subscriber access code field 300
- a second adjacent slot bit 307 is associated with the second subscriber access code field 301
- a third adjacent slot bit 308 is associated with the third subscriber access code field 302
- a fourth adjacent slot bit 309 is associated with the fourth subscriber access code field 303
- a fifth adjacent slot bit 310 is associated with the fifth subscriber access code field 304
- a sixth adjacent slot bit 311 is associated with the sixth subscriber access code field 305 .
- the adjacent slot bit indicates whether the subscriber radio 104 may also transmit data during the inbound transmission slot 202 - 213 immediately adjacent to the inbound transmission slot 202 - 213 corresponding with the subscriber access code field 300 - 305 .
- the adjacent inbound transmission slot 202 - 213 may be immediately preceding or following the inbound transmission slot 202 - 213 corresponding with the subscriber access code field 300 - 305 , dependent on whether the inbound transmission slot 202 - 213 is scheduled in the first or second inbound reservation scheduling slot 216 , 218 .
- a subscriber access code of a subscriber radio 104 when a subscriber access code of a subscriber radio 104 is stored in the first subscriber access code field 300 and the first adjacent slot bit 306 is set, then that subscriber radio 104 may transmit during the fourth inbound transmission slot 205 and the fifth inbound transmission slot 206 when the inbound reservation scheduling message 318 is transported in the first inbound reservation scheduling slot 216 .
- a subscriber access code of a subscriber radio 104 is stored in the first subscriber access code field 300 and the first adjacent slot bit 306 is set, then that subscriber radio 104 may transmit during the fourth inbound transmission slot 205 and the fifth inbound transmission slot 206 when the inbound reservation scheduling message 318 is transported in the second inbound reservation scheduling slot 218 .
- the prior examples are illustrative of only when the subscriber access code is stored in the first subscriber access code field 300 . It follows that when other subscriber access code fields 301 - 305 are utilized in concert with the other associated adjacent slot bits 307 - 311 , the adjacent inbound transmission slots utilized will differ from those described in the previous examples. As such, the subscriber radio 104 , of the previous example, may transmit during the third inbound transmission slot 204 and the fourth inbound transmission slot 205 or the fifth inbound transmission slot 206 and the sixth inbound transmission slot 207 depending on whether the inbound reservation scheduling message 318 is transported in the first or second inbound reservation scheduling slot 216 , 218 .
- the adjacent slot bit may indicate whether the subscriber radio 104 may also transmit data during multiple inbound transmission slots 202 - 213 immediately adjacent to the inbound transmission slot 202 - 213 corresponding with the subscriber access code field 300 - 305 .
- the adjacent slot bit 306 when a subscriber access code of a subscriber radio 104 is stored in the first subscriber access code field 300 and the first adjacent slot bit 306 is set, then that subscriber radio 104 may transmit during the third, fourth and fifth inbound transmission slots 204 - 206 when the inbound reservation scheduling message 318 is transported in the first inbound reservation scheduling slot 216 .
- a subscriber access code of a subscriber radio 104 when a subscriber access code of a subscriber radio 104 is stored in the first subscriber access code field 300 and the first adjacent slot bit 306 is set, then that subscriber radio 104 may transmit during the fourth, fifth and sixth inbound transmission slots 205 - 207 when the inbound reservation scheduling message 318 is transported in the second inbound reservation scheduling slot 218 .
- the adjacent slot bit may indicate whether the subscriber radio 104 may also transmit data during one or more inbound transmission slots 202 - 213 that are not immediately adjacent to the inbound transmission slot 202 - 213 corresponding with the subscriber access code field 300 - 305 .
- the disclosed system 100 and methods allow for multiple inbound transmission slot 202 - 213 assignments without repeating the subscriber access code over multiple subscriber access code fields 300 - 305 .
- Each inbound reservation scheduling message 318 may further include number of superframes fields 312 - 317 .
- Each number of superframes field 312 - 317 is associated with one of the subscriber access code fields 300 - 305 .
- a first number of superframes field 312 is associated with the first subscriber access code field 300
- a second number of superframes field 313 is associated with the second subscriber access code field 301
- a third number of superframes field 314 is associated with the third subscriber access code field 302
- a fourth number of superframes field 315 is associated with the fourth subscriber access code field 303
- a fifth number of superframes field 316 is associated with the fifth subscriber access code field 304
- a sixth number of superframes field 317 is associated with the sixth subscriber access code field 305 .
- Each number of superframes field 312 - 317 indicates a number of superframes for which the inbound transmission slot may be utilized by the subscriber radio 104 associated with the subscriber access code field 300 - 305 .
- the subscriber radio 104 may transmit during the eighth inbound slots 209 A, 209 B, 209 C of the first, second, and third superframes 300 A, 300 B, 300 C.
- the system 100 and method may assign multiple inbound transmission slots 202 - 213 in one data burst from the base station.
- the subscriber radio 104 may utilize the assigned inbound transmission slot 202 - 213 , even if future assignments from the base station are missed by the subscriber radio 104 .
- each number of superframes field 312 - 317 has a length of three bits. As such, up to eight consecutive superframes may be authorized for the subscriber radio 104 to transmit during the associated inbound slot 202 - 213 . Of course, in other embodiments, the length of the number of superframes fields 312 - 317 may be longer or shorter.
- a subscriber radio 104 may transmit during an inbound random access slot to begin the process of reserving inbound reserved access slots 201 .
- the base station 102 then transmits at least one reservation request response 501 , as shown in FIG. 5 .
- the reservation request response 501 of the illustrated embodiment includes a subscriber access code, the full 24-bit subscriber address, and a reservation delay value 502 .
- the reservation delay value 502 indicates an amount of time that will pass before the slot assignment is sent. Specifically, in the illustrated embodiment, the reservation delay value 502 provides a number of super frames (or number of slots) that will occur before the slot assignment is sent.
- the reservation delay value 502 is utilized to allow the base station 102 to take into account other subscriber radios 104 requests.
- the subscriber radio 104 may refresh data or perform other “housekeeping” duties. As an example of a “housekeeping” duty, the subscriber radio 104 may return to the outbound control channel to listen if there is an announcement of a group call relevant to the given subscriber radio 104 . If there is a group voice call relevant to the given subscriber radio 104 , the subscriber radio 104 may tune to the specified voice channel to receive the voice call.
- the subscriber radio 104 may stay tuned to the outbound control channel or outbound voice channel and know when to leave the control channel or voice channel to arrive within microseconds of the precise time to transmit on its inbound reservation slot 202 - 213 on the EDC channel.
- the subscriber radio 102 may return to the control channel or make another random access request.
- a includes . . . a”, “contains . . . a” does not, without more constraints, preclude the existence of additional identical elements in the process, method, article, or apparatus that comprises, has, includes, contains the element.
- the terms “a” and “an” are defined as one or more unless explicitly stated otherwise herein.
- the terms “substantially”, “essentially”, “approximately”, “about” or any other version thereof, are defined as being close to as understood by one of ordinary skill in the art, and in one non-limiting embodiment the term is defined to be within 10%, in another embodiment within 5%, in another embodiment within 1% and in another embodiment within 0.5%.
- the term “coupled” as used herein is defined as connected, although not necessarily directly and not necessarily mechanically.
- a device or structure that is “configured” in a certain way is configured in at least that way, but may also be configured in ways that are not listed.
- processors such as microprocessors, digital signal processors, customized processors and field programmable gate arrays (FPGAs) and unique stored program instructions (including both software and firmware) that control the one or more processors to implement, in conjunction with certain non-processor circuits, some, most, or all of the functions of the method and/or apparatus described herein.
- processors or “processing devices” such as microprocessors, digital signal processors, customized processors and field programmable gate arrays (FPGAs) and unique stored program instructions (including both software and firmware) that control the one or more processors to implement, in conjunction with certain non-processor circuits, some, most, or all of the functions of the method and/or apparatus described herein.
- FPGAs field programmable gate arrays
- unique stored program instructions including both software and firmware
- an embodiment can be implemented as a computer-readable storage medium having computer readable code stored thereon for programming a computer (e.g., comprising a processor) to perform a method as described and claimed herein.
- Examples of such computer-readable storage mediums include, but are not limited to, a hard disk, a CD-ROM, an optical storage device, a magnetic storage device, a ROM (Read Only Memory), a PROM (Programmable Read Only Memory), an EPROM (Erasable Programmable Read Only Memory), an EEPROM (Electrically Erasable Programmable Read Only Memory) and a Flash memory.
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Citations (11)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6633558B1 (en) | 1998-06-13 | 2003-10-14 | Samsung Electronics Co., Ltd. | Device and method for controlling channel access by access slot reserving in a mobile communication system |
US6963549B1 (en) | 2000-01-26 | 2005-11-08 | Ntt Multimedia Communications Laboratories, Inc. | Technique for reserving bandwidth for communications over a wireless system |
US7006477B1 (en) | 1999-12-10 | 2006-02-28 | Lucent Technologies Inc. | Method for interleaving of half rate channels suitable for half duplex operation and statistical multiplexing |
US20070153727A1 (en) * | 2005-12-30 | 2007-07-05 | Mcbeath Sean M | In-band multi-user scheduling information transmission for group services |
US20080240146A1 (en) * | 2007-03-27 | 2008-10-02 | Harkirat Singh | System and method for wireless communication of uncompressed video having data transmission on a secondary low rate channel |
US7486693B2 (en) | 2001-12-14 | 2009-02-03 | General Electric Company | Time slot protocol |
US7912081B2 (en) | 2005-04-22 | 2011-03-22 | Olympus Corporation | Defragmentation of communication channel allocations |
US7936774B2 (en) | 2004-01-08 | 2011-05-03 | Wisair Ltd. | Method and devices for multicasting information over a network that applied a distributed media access control scheme |
US8054811B2 (en) | 1997-05-05 | 2011-11-08 | Nokia Corporation | Method for scheduling packet data transmission |
US8107880B2 (en) | 2007-03-27 | 2012-01-31 | Nokia Corporation | Multiradio management through shared time allocation |
US20120099568A1 (en) * | 2010-10-20 | 2012-04-26 | QUANCOMM, Incorporated | Facilitating distributed channel access for transmissions in a wireless communication environment |
-
2012
- 2012-09-28 US US13/631,576 patent/US9271269B2/en active Active
Patent Citations (11)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US8054811B2 (en) | 1997-05-05 | 2011-11-08 | Nokia Corporation | Method for scheduling packet data transmission |
US6633558B1 (en) | 1998-06-13 | 2003-10-14 | Samsung Electronics Co., Ltd. | Device and method for controlling channel access by access slot reserving in a mobile communication system |
US7006477B1 (en) | 1999-12-10 | 2006-02-28 | Lucent Technologies Inc. | Method for interleaving of half rate channels suitable for half duplex operation and statistical multiplexing |
US6963549B1 (en) | 2000-01-26 | 2005-11-08 | Ntt Multimedia Communications Laboratories, Inc. | Technique for reserving bandwidth for communications over a wireless system |
US7486693B2 (en) | 2001-12-14 | 2009-02-03 | General Electric Company | Time slot protocol |
US7936774B2 (en) | 2004-01-08 | 2011-05-03 | Wisair Ltd. | Method and devices for multicasting information over a network that applied a distributed media access control scheme |
US7912081B2 (en) | 2005-04-22 | 2011-03-22 | Olympus Corporation | Defragmentation of communication channel allocations |
US20070153727A1 (en) * | 2005-12-30 | 2007-07-05 | Mcbeath Sean M | In-band multi-user scheduling information transmission for group services |
US20080240146A1 (en) * | 2007-03-27 | 2008-10-02 | Harkirat Singh | System and method for wireless communication of uncompressed video having data transmission on a secondary low rate channel |
US8107880B2 (en) | 2007-03-27 | 2012-01-31 | Nokia Corporation | Multiradio management through shared time allocation |
US20120099568A1 (en) * | 2010-10-20 | 2012-04-26 | QUANCOMM, Incorporated | Facilitating distributed channel access for transmissions in a wireless communication environment |
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