CN101843015A - Method and apparatus for communicating in multiple modes - Google Patents

Method and apparatus for communicating in multiple modes Download PDF

Info

Publication number
CN101843015A
CN101843015A CN200780101294A CN200780101294A CN101843015A CN 101843015 A CN101843015 A CN 101843015A CN 200780101294 A CN200780101294 A CN 200780101294A CN 200780101294 A CN200780101294 A CN 200780101294A CN 101843015 A CN101843015 A CN 101843015A
Authority
CN
China
Prior art keywords
time slot
tdf
frame
data
frame structure
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN200780101294A
Other languages
Chinese (zh)
Other versions
CN101843015B (en
Inventor
于劲飞
张志刚
张俊彪
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Thomson Licensing SAS
Original Assignee
Thomson Licensing SAS
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Thomson Licensing SAS filed Critical Thomson Licensing SAS
Publication of CN101843015A publication Critical patent/CN101843015A/en
Application granted granted Critical
Publication of CN101843015B publication Critical patent/CN101843015B/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2854Wide area networks, e.g. public data networks
    • H04L12/2856Access arrangements, e.g. Internet access
    • H04L12/2858Access network architectures
    • H04L12/2859Point-to-point connection between the data network and the subscribers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2854Wide area networks, e.g. public data networks
    • H04L12/2856Access arrangements, e.g. Internet access
    • H04L12/2869Operational details of access network equipments
    • H04L12/287Remote access server, e.g. BRAS
    • H04L12/2874Processing of data for distribution to the subscribers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2801Broadband local area networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/02Hybrid access
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/04Scheduled access
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/04Scheduled access
    • H04W74/06Scheduled access using polling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • H04W88/06Terminal devices adapted for operation in multiple networks or having at least two operational modes, e.g. multi-mode terminals

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Time-Division Multiplex Systems (AREA)

Abstract

An implementation provides sporadic uplink traffic transmission in a data over fixed line environment. A polling time slot can be added to the TDF superframe and can enable an access point to poll stations to determine whether an uplink channel for supporting sporadic user controlling messages (e.g., video on demand) over a cable access network. Such an implementation may eliminate the need for the TDF stations (STAs) to register with and request an uplink channel to the access point for receiving the sporadic user controlling messages. In an implementation, a frame structure (2100) is used for communication. The frame structure supports at least two communication modes. The communication modes include a time division mode in which a slot in the frame structure is reserved for a device and a polling mode in which a polling slot in the frame structure is used by multiple devices for data communication.

Description

The method and the device that communicate with various modes
Technical field
The disclosure usually is devoted to the various aspects of communication system.
Background technology
Exist and to be used for communication system that the user is connected with information.Such system can use coaxial cable and wireless network.Existing systems shows various limitation.
Summary of the invention
According to total aspect, frame structure is used for communication.This frame structure is supported two kinds of communication patterns at least.This communication pattern comprises: the time merotype, wherein be the time slot (slot) in the equipment retention frame structure; And poll pattern, wherein use poll (polling) time slot in the frame structure to carry out data communication by a plurality of equipment.
According to another total aspect, make up the signal of carrying data according to the form of the communication of supporting various modes.This signal comprises the first that is built into the time slot that is used for the time-division communication pattern.This first is included as one or more time slot of each equipment reservation and the data of carrying each equipment.Described signal comprises the second portion that is built into the polling time slot that is used for the polling communication pattern, in described polling communication pattern, does not have equipment to keep polling time slot.Second portion is at least one equipment carrying data in polling time slot.
The details of one or more embodiments is proposed in following accompanying drawing and description.Even described, also should know and to dispose or to embody described embodiment in every way in a specific mode.For example, embodiment can be carried out as method, perhaps it is presented as to be configured to and carry out one group of apparatus operating, perhaps it is presented as that storage is used to carry out the equipment of one group of instruction of operating.Consider following detailed description together with accompanying drawing and claim, it is obvious that others and feature will become.
Description of drawings
Fig. 1 illustrates the exemplary TDF access network framework of simplification.
Fig. 2 is shown in 802.11 media access control sublayer in the OSI Reference Model.
Fig. 3 is shown in the embodiment of the TDF transmission entity in the OSI Reference Model.
Fig. 4 illustrates the embodiment of communication pattern inlet routine.
Fig. 5 illustrates the embodiment of TDF super frame structure.
Fig. 6 illustrates the embodiment of registration (registration) routine.
Fig. 7 illustrates the embodiment of cancellation (unregistration) routine.
Fig. 8 illustrates the embodiment of survival (alive) notification routines.
Fig. 9 comprises the system diagram of the embodiment of having described the TDF network.
Figure 10 comprises the block diagram according to the embodiment of the AP of Fig. 9 and modulator-demodulator.
Figure 11 comprises the flow chart of the embodiment of uplink transmission process.
Figure 12 is included in the figure of the embodiment of mapping one to one between Ethernet grouping and the WLAN grouping.
Figure 13 is included in the figure that carries out the embodiment of conversion between a plurality of Ethernet groupings and the single WLAN grouping.
Figure 14 comprises the figure of the stream of packets in the conversion of describing Figure 13.
Figure 15 comprises the figure according to the embodiment of the EIW head of Figure 14.
Figure 16 comprises that up link receives the flow chart of the embodiment of handling.
Figure 17 comprises the figure of the embodiment of describing the decapsulation grouping.
Figure 18 comprises the figure that describes according to the embodiment of the PADM of Figure 10.
Figure 19 comprises that down link transmits the flow chart of the embodiment of handling.
Figure 20 comprises that down link receives the flow chart of the embodiment of handling.
Figure 21 diagram has the embodiment that poll and time-division medium insert both TDF super frame structures.
Figure 22 diagram has the embodiment of the TDF super frame structure of blending agent access mechanism.
Figure 23 illustrates block diagram in the TDF network and SP and the station in the TDF network.
Figure 24 illustrates the embodiment of poll notification routines.
Figure 25 illustrates the flow chart of poll routine.
Figure 26 diagram has the embodiment of the TDF super frame structure of blending agent access mechanism.
Figure 27 diagram is from based on the mode switch of the contention flow chart of the processing of merotype then.
Figure 28 diagram from the time-division mode switch to flow chart based on the processing of the pattern of contention.
Figure 29 is the block diagram of TDF (ADoC) STA.
Figure 30 is the block diagram according to the TDF with dual mode device (ADoC) STA of embodiment.
Figure 31 is the block diagram of the hardware embodiment of TDF (ADoC) STA dual mode device.
Figure 32 is the block diagram of another hardware embodiment of TDF (ADoC) STA dual mode device.
Figure 33 is the block diagram that the dual mode device of present principles is embodied as the modulator-demodulator of Figure 10.
Figure 34 illustrates another embodiment of TDF super frame structure.
Embodiment
At least the discussion of Fig. 1-8 has been presented and comprised one or more novelties and various embodiments creationary aspect or feature.In these embodiments at least one provides a kind of characteristic feature of using wireless system to transmit the system of data on cable.Particularly, at least one embodiment is used time division multiplexing on coaxial cable.Such system for example allows cable television operators that TV signal is provided in the part of frequency spectrum and provide Additional Services on another part of frequency spectrum.These Additional Services for example can comprise that the internet inserts, and it comprises the access that is used to search for the internet and watches the access of the webpage on the internet and be used for the service (such as, for example, video request program) on the receiving internet.
At least the discussion of Fig. 9-20 has been presented additional embodiment, and at least one novelty by describing encapsulation in these additional embodiments expanded discussion with creationary use to Fig. 1-8.A specific embodiment comprises the modulator-demodulator that receives the Ethernet grouping from a plurality of main frames.Each main frame may be attempted to communicate by letter with different websites by router.Modulator-demodulator becomes these packet encapsulation according to the format structure (format structure) that is used for wireless transmission or agreement and formatted single grouping.Yet, on coaxial cable, send grouping after encapsulation and receive for router.In one embodiment, router sends to these groupings the different website that each main frame is attempted to communicate with it then.
Compare with the system that only encapsulates a grouping at every turn, the encapsulation that above-mentioned embodiment is used provides the increase of throughput.Thus, the expense (overhead) of distribution (spread out) wireless format structure in a plurality of Ethernet groupings.This routine use with encapsulation is opposite, and it for example allows to provide supplementary features by another communication layers, perhaps guarantees downward compatibility (backward compatibility) by keeping traditional (legacy) frame structure in the data after encapsulation.In addition, depend on system design, the encapsulation of above-mentioned embodiment also allows will be from the data encapsulation of multiple source together, and the data encapsulation that will go to different end users (for example, different websites, perhaps different main frames) together.
At least the discussion to Figure 21-34 presents other embodiment.In these embodiments some be devoted to the frame structure that is associated with poll with based on the access of contention and with poll and the novelty and the creationary aspect that are associated based on the access of contention.Other embodiments are devoted to double mode configuration.
This application provides the description of Fig. 1-8 now.Note, the various piece of the description of Fig. 1-8 is used title.Theme that should not be interpreted as disclosing of this part is restricted to this title for the title of certain portions perhaps should not be interpreted as disclosing of other parts is restricted to theme except the theme of this title yet.Title is exemplary, and is intended to as general the assisting to the reader.Title is not intended to retrain flow process of the present disclosure or limits application of the present disclosure or generality.
Total description
Use situation
In order to provide data, services by existing coaxial cable TV system (CATV), at least one embodiment has been disposed the access point (AP) and the station (STA) of deferring to time-division function (TDF) agreement in the cable access network.AP is connected via the splitter that is in hierarchical tree (splitter) with STA.In this way, the user is in and can inserts remote I P core network via the cable access network.As illustrated in figure 1, illustrate detailed network topology.
As can be seen from Fig. 1, in this typical access network infrastructure, there is the AP that defers to the TDF agreement, this AP has an Ethernet interface that is connected with IP core network and a coaxial cable interface that is connected with the cable access network.At the other end of cable access network, there is the STA that defers to the TDF agreement, that is, terminal, described STA is connected with the cable access network via coaxial cable interface and is connected with the LAN of family (local area network (LAN)) via Ethernet interface.
According at least one embodiment, according to 802.11 series of canonical, TDF AP and STA implementation agreement stack discretely in logical link control sublayer, media access control sublayer and physical layer.Yet in media access control sublayer, TDF AP and STA utilize the TDF frame to transmit entity and replace 802.11 frames transmission entity.Like this, the media access control sublayer that is used for TDF AP and STA transmits entity by 802.11 frame encapsulation/decapsulation entities and TDF frame to be formed, and is used to defer to 802.11 AP and the media access control sublayer of STA is made up of 802.11 frame encapsulation/decapsulation entities and 802.11 frames transmission entity.For integrated AP and STA, the TDF frame transmits entity and 802.11 frames and transmits entity and can simultaneously and deposit, with provide 802.11 and the TDF function the two.Can realize two kinds of switchings between the pattern by manual or dynamic-configuration.
Basic skills
The main thought of TDF agreement is in coaxial cable medium rather than transmits the IEEE802.11 frame aloft.The purpose of utilizing IEEE 802.11 mechanism is to utilize the hardware and software embodiment of the maturation of 802.11 protocol stacks.
The principal character of TDF is the medium connection control method that is used to transmit IEEE 802.11 Frames of its uniqueness.That is, it does not utilize conventional IEEE 802.11DCF (distributed coordination function) or PCF (point coordination function) mechanism to exchange the mac frame that comprises MSDU (MAC service data unit) and MMPDU (Medium Access Control (MAC) Management Protocol Data Unit).But it uses the time-division cut-in method to transmit mac frame.TDF has defined the cut-in method that the frame that is arranged in media access control sublayer transmits the detailed embodiment of entity like this.
For purpose relatively, as shown in Figure 2, our IEEE802.11MAC sublayer agreement in this diagram OSI Reference Model.And in Fig. 3 the definite position of TDF agreement in the diagram OSI Reference Model.
Communication pattern inlet routine
Current, proposed to defer to as described below two kinds of communication patterns at the station of TDF.A kind of pattern is IEEE 802.11 operator schemes of standard, and it observes frame structure and the transfer mechanism that defines in IEEE 802.11 series standards; Another kind of pattern is the TDF operator scheme, will the details of relevant this TDF operator scheme be discussed in the paragraph below.In Fig. 4, indicated and when TDF STA starts, determined to enter the strategy of which operator scheme.In case TDF STA receives synchronization frame from AP, then make TDF STA can enter the TDF pattern, if do not receive synchronization frame default in overtime, then TDF STA remains unchanged or transfers IEEE 802.11 patterns to.
The TDF protocol function is described
Cut-in method
Physical layer in the TDF station can have the ability of a plurality of data transfer rate, and it allows to carry out the embodiment that dynamic rate switches under the purpose of improving performance and plant maintenance.Current, TDF can support three types data rate in the station: 54Mbps, 18Mbps and 6Mbps.Mainly under the 54Mbps data rate, provide data, services.When for the station, support the 54Mbps data to transmit when having some problem, can temporarily switch to the 18Mbps data rate.6Mbps data rate operator scheme is to design for the purpose of network operation with the station debugging.
Can be before the TDF station enters the TDF Communications routines configuration data speed statically, and keep equivalent data rates in during whole communication process.On the other hand, the TDF station can also support the dynamic data rate of viability to switch.The criterion that data rate switches can be based on channel signal quality and other factors.
The basic cut-in method of TDF agreement is that time-division multiplex inserts (TDMA), and it is by being that different time slots allows a plurality of users to share this channel with same channel distribution.TDF STA one after the other transmits uplink traffic one by one fast, and each TDF STA uses they self time slot in TDF super frame, that assigned by TDFAP.For downlink traffic, the STA shared channel, and by the destination-address information in Frame or the management frames and their address are compared to select with them be the Frame or the management frames of target.Fig. 5 illustrate exist m compete simultaneously the up link conveyer can STA the time be used for the TDF super frame structure of typical TDF super frame and the example of time slot allocation.
As shown in Figure 5, there is the time slot of tdfTotalTimeSlotNumber fixed number in each TDF super frame, and it is made up of following: one is used for the synchronization slot to TDF STA tranmitting data register synchronizing information from TDF AP; Contention (contention) time slot that is used to send the register requirement that uplink time slot is distributed; TDF STA by registration sends data and the employed tdfUplinkTimeSlotNumber of some a management frames uplink time slot to TDF AP one by one; And transmit data and the employed tdfDownlinkTimeSlotNumber of a registration response management frame downlink time slots to modulator-demodulator by TDFAP.Except synchronization slot, all other time slots that are named as public time slot have the identical duration that length equals tdfCommonTimeSlotDuration.The value of definition tdfCommonTimeSlotDuration for the peak data rate pattern, transmits at least one maximum IEEE 802.11 PLCP (Physical layer convergence protocol) protocol Data Unit (PPDU) to allow in a standard time slot.The duration tdfSyncTimeSlotDuration of synchronization slot is shorter than the duration of public time slot, and this is because be shorter than 802.11 Frames from TDF AP to the clock synchronization frame that TDF STA transmits in synchronization slot.
As a result, can calculate the duration of a TDF super frame that is defined as tdfSuperframeDuration by following formula:
tdfSuperframeDuration=tdfSyncTimeSlotDuration+tdfCommonTimeSlotDuration*(tdfTotalTimeSlotNumber-1)
Relation between tdfTotalTimeSlotNumber, tdfUplinkTimeSlotNumber and the tdfDownlinkTimeSlotNumber satisfies following equation:
tdfTotalTimeSlotNumber=tdfUplinkTimeSlotNumber+tdfDownlinkTimeSlotNumber+2
In addition, the number of the uplink time slot that distributes for TDF STA in the TDF super frame can be changed into tdfUplinkTimeSlotThreshold from 1.Correspondingly, available downlink time slots can be changed into (tdfTotalTimeSlotNumber-2-tdfMaximumUplinkTimeSlotNumber) from (tdfTotalTimeSlotNumber-2) in the TDF super frame.At every turn when one of existence requires the TDF STA of uplink time slot, TDF AP will draw (deduce) one or more time slots from available downlink time slots, and give TDF STA with these time slot allocation then, as long as the uplink time slot number is no more than tdfMaximumUplinkTimeSlotNumber after this.In different embodiments, the value of tdfMaximumUplinkTimeSlotNumber has variation.But must careful selection so that exist a downlink time slots to use at least, so that guarantee the QoS of data, services for the TDF STA that is associated.In addition, can merge and to be used for all time slots in succession that same direction transmits, that use by same TDF STA or AP sending mac frame continuously, thereby avoid the waste of locating at these time slot edges (edge) that causes by unnecessary conversion and assurance (guarding).
In current embodiment, tdfCommonTimeSlotDuration is about 300us, it transmits at least one maximum 802.11PPDU for TDF STA in a public time slot of 54M pattern be enough, and there are 62 time slots altogether in each TDF super frame.In these time slots, in this way, there are 20 uplink time slots and 40 downlink time slots.When having 20 STA, can guarantee that each TDF STA can use the downlink data rate of uplink data rate and the shared 30Mbps (40 continuous time slot) of 680kbps; When having 30 STA, can guarantee that each TDF STA can use the downlink data rate of uplink data rate and the shared 22.5Mbps (30 continuous time slot) of 680kbps.TdfMaximumUplinkTimeSlotTimeNumber is 30.At last, be about 18.6ms as the value of the tdfSuperframeDuration of duration altogether of 61 public time slots and 1 synchronization slot, and, it can be defined as different values for different purposes.For example, if only there is 1 TDFSTA, can guarantee that then it has the downlink data rate of 4 time slots with the uplink data rate of realizing about 18Mbps and the 18Mbps (4 continuous time slot) of self.In this way, the value as the tdfSuperframeDuration of duration altogether of 9 data time slots and 1 synchronization slot is about 4ms.
The form of frame
In 802.11 standards, there are three main frame types.Use Frame with from another station swap data of standing.Depend on network and some different types of Frames can occur.Use control frame together with Frame come together execution area cleaning (area clear) operation, channel obtains with carrier detect safeguards the function of (carrier-sensing maintenance) and to the affirmative acknowledgement of the data that received.Control frame and Frame are worked together with from another station delivering data reliably of standing.More specifically, a key character of data frames exchange is to have acknowledgement mechanism, and correspondingly exist be used for each down link unicast frame reply (ACK) frame so that reduce because the possibility of the loss of data that insecure wireless channel causes.At last, management frames is carried out monitoring function: the use and management frame is to add and to leave wireless network and move related (association) from an access point to another access point.
Yet, in the TDF system,, therefore, do not have exploration (probe) claim frame to classics and the demand of probe response frame because TDF STA waits for from the synchronization frame of TDF AP passively to find target TDF AP.In addition, in coaxial cable rather than aloft therefore switching frame, needn't define the node problems that RTS and CTS frame come cut-back region and prevent to hide, and needn't define the reliability that the ACK frame is guaranteed the delivering data frame.
Therefore, in the TDF agreement, we only use some useful 802.11MSDU and MMPDU type for the data that transmit by the coaxial cable situation.For example, we utilize the data subtypes in the data frame type, and it is used to encapsulate than the data on upper strata and will be sent to another station from a station than the data on upper strata.In addition, in order to tackle the needs of clock synchronization in the TDF system, we have defined the management frames-synchronization frame of new kind; And for realizing the function of uplink time slot request, distribution and release, we define the management frames of other four kinds, that is, and and register requirement, registration response, de-registration request and survival notice.
Generally, we have defined four kinds of new subtypes in the management frame in the TDF agreement.Following form definition the type that in the TDF agreement, increases and effective combination of subtype.Form 1 shows the effective type and the subtype that are used for the TDF frame that increases in the TDF agreement.
Form 1
Type specification Subtype specification
Management Synchronously
Management Register requirement
Management The registration response
Management De-registration request
Management The survival notice
TDF inserts routine
TDF AP finds and the clock synchronization routine
The TDF agreement depends on the distribution (distribution) of timing information to all nodes to a great extent.At first, TDF STA intercepts synchronization frame to determine whether to exist available TDF AP.In case TDF STA enters the TDF Communications routines, then use the adaptive local timer of synchronization frame, TDF STA will determine whether taking turns to it based on this this locality timer and send uplink frame.At any time, TDF AP is a main frame and TDF STA is a slave in Synchronization routines.Further, if TDF STA does not also receive any synchronization frame from the AP that is associated in the predetermined threshold value period (it is defined as tdfSynchronizationCycle), then it will think that this AP has withdrawed from service, and it will stop the TDF communication process and begin to seek any TDF AP by intercepting synchronization frame once more then.
In the TDF system, should be with all STA of being associated with same TDF AP synchronously to common clock.TDF AP should periodically transmit and be known as synchronous special frames with the modulator-demodulator in synchronous its local network, describedly is known as the clock information that synchronous special frames comprises TDF AP.Each TDF STA should safeguard local timing synchronization function (TSF) timer, and is synchronous with the TDF AP that is associated to guarantee it.After receiving synchronization frame, TDF STA should accept the timing information in the frame all the time.If the TSF timer of reception TDFSTA is different from the timestamp in the synchronization frame that is received, then receives TDF STA its local timer should be set according to the value of the timestamp that is received.Further, it can increase this locality processing that little biasing is undertaken by transceiver with explanation (account for) to the timing value that is received.
TDF AP should be to transmit at each TDF super frame time quantum and generates a synchronization frame and send this synchronization frame in the Sync of each TDF super frame time slot.
The registration routine
Whole registration routine has been described to Fig. 6 n-lustrative.In case TDF STA has obtained the timer synchronizing information from synchronization frame, then it will learn when begin time slot 0.If TDF STA and any TDF AP are unconnected, then it will be attempted to the specific TDF AP registration that sends synchronization frame by send registration request frame to TDF AP during contention slots, and described contention slots is second time slot in the TDF super frame.Should design the duration of the contention slots that equals tdfCommonTimeSlotDuration and the structure of registration request frame modestly, to allow in a contention slots, to send tdfMaximumUplinkTimeSlotNumber registration request frame at least.Based on this design, contention slots is divided into the sub-slots of tdfMaximumUplinkTimeSlotNumber equal length.
As long as TDF STA finds target TDF AP, then it will select a sub-slots to send registration request frame to TDF AP in contention slots according to following method:
A. at every turn when TDF STA is assigned with uplink time slot, it is defined as uplink time slot number tdfAllocatedUplinkTimeSlot, that distributed (number) with storage, its indicate this time slot in whole uplink time slot pond (pool) the position and its scope from 1 to tdfMaximumUplinkTimeSlotNumber.
B. when TDF STA required uplink time slot at every turn, TDF AP should distribute identical uplink time slot to identical TDF STA with trying one's best.
C. when which sub-slots decision selected send registration request frame, if there is the tdfAllocatedUplinkTimeSlot value of storage, then TDF STA bundle timeslot number was set to identical with tdfAllocatedUplinkTimeSlot; If there is no such value, then TDF STA will select a sub-slots randomly in tdfMaximumUplinkTimeSlotNumber available sub-slots.TDF STA will send registration request frame to TDF AP in the sub-slots of selecting at random.
The purpose of this operation is to reduce the chance that starts and attempt simultaneously conflict when same TDFAP registers at many STA simultaneously.
In registration request frame, TDF STA will be listed in all data rates and carrying some useful information such as the carrier wave/noise ratio of the signal that is received of its support at that time.It can utilize the different data rate of being supported to send some registration request frame in succession from the highest data rate.After sending frame, TDF STA will intercept the registration response frame from TDF AP.
After TDF STA receives registration request frame, based on following method, TDF AP will return different types of registration response frame to TDF STA in downlink time slots:
If the uplink time slot that has A. distributed equals tdfMaximumUplinkTimeSlotNumber, then TDF AP will put into the uplinkTimeSlotUnavailable designator in frame main body.
If B. TDF AP is not supported in listed any data rate among the supportedDataratesSet in the register requirement management frames, then TDF AP will put into the unsupportedDatarates designator in frame main body.
If the public data rate that C. exists the uplink time slot can be used for distributing and TDF AP and TDF STA all can support, then AP will distribute a uplink time slot and select suitable public data rate according to some information such as carrier wave/noise ratio in the registration request frame of STA, and send registration response frame to TDF STA then.In frame main body, the relevant uplink time slot that is distributed and the information of selected data rate will be comprised.
After the registration routine of success, TDF STA and TDF AP will reach an agreement to using which uplink time slot and data rate.
Segmentation (fragmentation)/separate segmentation routine
In the TDF agreement, the time slot duration that MSDU is transmitted is fixed as tdfCommonTimeSlotDuration.In some data rate,, can not in single time slot, transmit when the length of MSDU during greater than threshold value.So, when being used for data frame length that up link transmits in being defined as tdfFragmentationThreshold and depending on different pieces of information speed and during the threshold value that changes, with before transmitting it, should carry out segmentation to it at this Frame of scheduling.For all segmentations except last segmentation, the length of fragmented frame should be the eight bit byte (Octets) (tdfFragmentationThreshold eight bit byte) of equal number, and last segmentation can be less.After segmentation, the frame after the segmentation should be put into and wait to send out (outgoing) formation, to be sent to TDF AP.Can transmit the tdfFragmentationThreshold that moves this segmentation routine in the entity or in TDF frame transmission entity, dynamically arrange at the TDF frame and in than the upper strata, move this segmentation routine by use.
At TDF AP end, each segmentation that is received comprises permission re-assemblies (reassemble) whole frame from the composition segmentation of frame information.The head of each segmentation comprises TDF AP and re-assemblies the employed following information of frame:
A. frame type (Frame type)
B. the address (Address of the sender) of the transmit leg that 2 (Address 2) field obtains from the address
C. destination-address (Destination address)
D.Sequence Control (sequence control) field: this field allows TDF AP to check that all enter segmentation and all belong to the sequence that same MSDU and described segmentation should be reassembled into.Serial number in the SequenceControl field keeps identical to all segmentations of MSDU, and the segment number in the Sequence Control field is to each segment increasing.
E.More Fragments (more segmentations) designator: indicating this to TDF AP is not the last segmentation of Frame.Have only last or unique (sole) segmentation of MSDU to be set to zero by this bit.Other segmentation of all of MSDU should be set to one by this bit.
TDF AP should come reconstruct MSDU by the sequential combination segmentation according to the segment number son field of Sequence Control field.Be not set to zero segmentation if also receive More Fragments bit, then TDF AP will know that frame is also imperfect.TDF AP one receives More Fragments bit and is set to zero segmentation, and it is just known for this frame and may not receive more segmentation.
TDF AP should be each frame that is receiving and safeguards the reception timer.Also have the tdfMaxReceiveLifetime attribute, it specifies the maximum time amount that a frame is allowed that receives.When receiving first segmentation of MSDU, start and receive timer.If the received frame timer surpasses tdfMaxReceiveLifetime, then TDF AP abandons the segmentation of all receptions of this MSDU.If after the tdfMaxReceiveLifetime that surpasses (directed) MDSU that is managed, receive the additional segmentation of this MSDU, then should abandon these segmentations.
Up link transmits routine
After TDF AP receives registration response frame, TDF STA with the analysis frame main body to check whether it has been given uplink time slot.If be not given uplink time slot, it will stop to apply for uplink time slot for a moment and subsequently.If be given uplink time slot, it will use the data rate of indicating in registration response frame to begin to transmit uplink traffic during the time slot of being assigned.
When the beginning up link transmits during the time slot of being assigned, if exist at least one to wait to send out a frame in the outgoing queue of TDF STA, then TDF STA will send first frame in its outgoing queue to TDFAP.After this, TDF STA will check whether the length of second uplink frame and assessment may send second uplink frame in the residue duration of the time slot of being assigned.If can not, then it will send second uplink frame in will stopping up link transmission routine and waiting for during next TDF super frame in the time slot of assigning.If of course, then it will send second frame to destination TDF AP immediately.Send routine and will continue operation in this way, finish or do not have any uplink frame that will transmit up to the time slot of being assigned.
Down link transmits routine
In whole TDF Communications routines, total downlink time slots number may dynamically change owing to the STA number that is associated that changes.When TDF AP prepares to the STA transmit frame that is associated, it with the time remaining in the remaining downlink time slots be used to use (agreed) data rate of being decided through consultation to transmit the required duration of specific descending chain circuit frame to compare.Based on this result, it will determine whether should transmit this frame with specific data rate during this TDF super frame then.In addition, TDFAP does not need any descending chain circuit frame is carried out segmentation.
When not being when sending the time of uplink traffic for the STA that is associated, it is the possible descending chain circuit frame of target that STA will always intercept channel so that find with it.
Nullify routine
As shown in Figure 7, if the TDF Communications routines is withdrawed from TDF STA decision, it thereon during the line link time slot the introversive TDF AP that is associated send the de-registration request frame so that notice TDF AP is released to the uplink time slot resource that its distributes.After receiving the de-registration request frame, TDF AP will make the uplink time slot vacant (free) of being assigned for this TDF STA and put it into vacant time slot pond for using in the future.
The survival notification routines
Referring now to Fig. 8, in order to discharge resource as quickly as possible when TDF STA collapses suddenly or closes, TDF STA must send the survival notification frame to TDF AP by intercycle ground during line link time slot period thereon and report its viability.If do not have any survival notice in the period in the predetermined threshold value that is named as tdfAliveNotificationCycle, the TDF AP that then is associated will think that TDF STA has withdrawed from service, and be released to the uplink time slot that this TDF STA distributes then, just as receiving the de-registration request frame from this TDF STA.
In order to ensure the TDF with many rate capacities STA's and deposit and interoperability, this normalized definition one group of rule all should following of all stations:
A. should transmit synchronization frame with the minimum speed limit in the set of TDF basic rate, make these synchronization frames to be understood by all STA.
B. should on the data rate of selecting by login mechanism of being supported, send all frames with destination unicast address.Unicast frame will not transmitted with the unsupported speed of receiving station in the station.
C. should transmit all frames with the flank speed in the set of TDF basic rate with destination multicast address.
It below is the description of Fig. 9-20.At least Fig. 9-20 has described the embodiment of one or more systems that for example can be used for Fig. 1-8 description.Certainly, the feature of the embodiment of Fig. 9-20 and aspect can be used for other system.
As mentioned above, the TDF agreement can be replaced conventional 802.11DCF (distributed coordination function) or PCF (point coordination function) mechanism.Such system can utilize WLAN (802.11) network of widespread deployment and may become the more and more advantage of ripe and cheap WLAN chipset.This system provides the solution of cost-effective for the two-way communication of catv network by transmit the WLAN signal in cable system, even if in the environment aloft rather than transmit in cable system/receive and created the WLAN agreement.In this system, the basic cut-in method of TDF agreement is TDMA, and it is by being that different time-gap allows a plurality of users to share this same channel with same channel distribution.The time slot at this TDF station self that each TDF uses at the station in TDF super frame, assigned by TDF AP (access point) one after the other transmits uplink traffic one by one fast.For downlink traffic, these station shared channels (for example, as shown in the TDF of Fig. 5 super frame), and by the destination-address information in these frames and their address are compared to select with them be the frame of target.
With reference to Fig. 9, show typical TDF network 900.Network 900 provide from subscriber household 910 with 920 to the internet being connected of (perhaps other resource or network) 930. Subscriber household 910 and 920 is communicated with access point (AP) 940 by cable system 950.AP 940 can be positioned at the contiguous place of family 910 for example and 920, perhaps is positioned in the apratment building thing that comprises family (apartment in this case) 910 and 920.For example, can have AP 940 by cable operator.AP 940 further is coupled to router 960 by ethernet network 970.Router 960 also is coupled to internet 930.
As should be understood that, term " coupling " refer to direct connection (not having intermediary's assembly or unit) be connected indirectly (one or more intermediaries assembly and/or unit) both.Such connection can be for example wired or wireless, and permanent or temporary transient.
Subscriber household 910 and 920 can have various configuration, and each family can differently be configured.Yet, as shown in the network 900, subscriber household 910 and 920 each comprise station (being known as modulator-demodulator) 912 and 922 respectively.Modulator-demodulator 912,922 is coupled to first main frame (main frame 1), 914,924 and second main frame (main frame 2) 916,926 by Ethernet 918,928 respectively.Each main frame 914,916,924 and 926 for example can be computer or other treatment facility or communication equipment.
Exist network 900 can allow a plurality of main frames (for example, 914,916,924 and 926) to be connected to the whole bag of tricks of router 960.Four kinds of embodiments below are discussed,, are only considered modulator-demodulator 912 and main frame 914 and 916 for simply.
In first method, modulator-demodulator 912 serves as another router.IP address by main frame 914 and 916 identifies main frame 914 and 916, and modulator-demodulator 912 will be routed to router 960 from the IP grouping of main frame 914 and 916.This method 1 typically needs modulator-demodulator 912 operation router softwares, and this needs the extra memory and the disposal ability of increase.
In second method, modulator-demodulator 912 serves as bridger (bridge).Modulator-demodulator 912 and AP 940 use wireless distribution system (WDS) mechanism of standard to come transfer layer 2 to divide into groups to router 960. Main frame 914 and 916 is identified by its medium access control (MAC) address.The part that this method 2 is 802.11 standards and can serve a plurality of main frames simultaneously.Yet not every AP and modulator-demodulator are all supported WDS, and those support AP and the modulator-demodulator of WDS often only to possess limited support.For example, for some AP and modulator-demodulator, you can not insert (WPA) with the Wi-Fi protection and use with WDS, and this may introduce safety issue.
In third party's method, modulator-demodulator 912 uses MAC camouflage (masquerade) source MAC (source is one of main frame 914 and 916) of Ethernet grouping to be changed into the MAC Address of himself.Therefore from the angle of router 960, router 960 is only seen modulator-demodulator 912.Utilize this method, modulator-demodulator 912 once only can be served a main frame.
In other method, the encapsulation that describes in further detail below modulator-demodulator 912 uses.In the above method each has merits and demerits, and these merits and demerits may depend on embodiment and change.Yet, method for packing provides specific advantage, these specific advantages are this method for packing usually by not needing modulator-demodulator operation router software to allow modulator-demodulator simpler, and it does not typically introduce safety issue, and can once serve a plurality of main frames.
In addition, this method for packing transmits each grouping by using single WLAN grouping from main frame, has avoided the big expense that is associated with first three methods.Thereby first three methods causes being used for the expense of the WLAN grouping of each grouping of shifting from main frame, and has reduced throughput accordingly.In the TDF environment, typically increased the weight of this poor efficiency.In the TDF environment, the duration of time slot is fixed, and time slot is designed to only allow to transmit a WLAN grouping in a time slot.Thereby, in each time slot, only can transmit a host packet.
Correspondingly, this method for packing provides one or more in the various advantages usually.For example, such advantage comprises: the fail safe of simpler router design and operation, increase, serve a plurality of main frames, and the efficient and the throughput that increase.
In a word, at least one embodiment of this method for packing comprises that with a plurality of Ethernet packet encapsulation be a WLAN grouping.This WLAN grouping will be the same big with the maximum length that the TDF time slot is allowed.AP (for example, another modulator-demodulator) is descapsulated into the WLAN grouping each Ethernet grouping and they is sent to router.For the communication on the opposite direction, modulator-demodulator sends to (a plurality of) main frame with decapsulation WLAN grouping and with each Ethernet grouping.
With reference to Figure 10, legend 1000 comprises a plurality of modulator-demodulators (wherein two are illustrated clearly) and AP.This legend comprises modulator-demodulator #1 1010, modulator-demodulator #N 1020 and AP 1030, and each in the modulator- demodulator 1010 and 1020 is coupled to AP 1030 by cable system 1040.Another embodiment is used the cable system that separates for each modulator-demodulator.
Modulator- demodulator 1010 and 1020 and AP 1030 comprise the functional unit of same names, although some outside difference and assembly itself of connecting is for modulator-demodulator and the different function of AP execution.Thereby, provide public unit to come as modulator-demodulator and AP.Yet, should know to be modulator-demodulator and the different unit of AP design that this different unit is only carried out those required functions of modulator-demodulator or AP respectively.
Modulator-demodulator 1010 comprises: local application layer 1011, tcp/ip layer 1012 afterwards, bridger 1014 afterwards.Bridger 1014 is coupled to Ethernet interface 1015, packet aggregation/disaggregation module (PADM) 1016 and WLAN interface 1017.PADM 1016 also is coupled to WLAN interface 1017.Ethernet interface 1015 is coupled to ethernet network 1052, and ethernet network 1052 is coupled to first main frame (main frame 1), 1054 and second main frame (main frame 2) 1056.
Modulator-demodulator 1020 is similar to modulator-demodulator 1010.Yet modulator-demodulator 1020 is coupled to ethernet network 1062, and ethernet network 1062 is coupled to first main frame (main frame 1), 1064 and second main frame (main frame 2) 1066.Be shown the assembly of modulator-demodulator 1020 identical with the assembly of modulator-demodulator 1010.Yet, should be clear, setting up modulator- demodulator 1010 and 1020 and in modulator- demodulator 1010 and 1020 whens operation, for example various configuration parameters are with difference.
AP 1030 comprises: local application layer 1071, tcp/ip layer 1072 afterwards, bridger 1074 afterwards.Bridger 1074 is coupled to Ethernet interface 1077, PADM 1076 and WLAN interface 1075.PADM 1076 also is coupled to WLAN interface 1075.Ethernet interface 1077 is coupled to ethernet network 1082, and ethernet network 1082 is coupled to router one 090 then.WLAN interface 1017 and 1075 is coupled by cable system 1040 with communicating with one another.
Router one 090 further is coupled to internet 1095.Thereby, between main frame 1054,1056,1064,1066 and internet 1095, exist to connect.
Various local application layers (1011,1071) are to be used for the index bed that moves local application and connect with other layer of framework.Various tcp/ip layers (1012,1072) are the index beds that is used for moving TCP/IP and the service (comprise with other layer of framework and connecting) that is provided by such layer is provided typically.Various Ethernet interfaces (1015,1077) are the standard cells that is used to be attached to ethernet network or connects from ethernet network. Such interface 1015,1077 transmits and receives the Ethernet grouping and operates according to Ethernet protocol.
Various WLAN interfaces (1017,1075) are the unit that is used to be attached to wlan network or connects from wlan network. Such interface 1017,1075 transmits and receives the WLAN grouping and according to the WLAN protocol operation.Yet, in legend 1000, WLAN interface 1017,1075 actual cable system 1040 rather than the use radio communications of being coupled to.
Can implement Ethernet and WLAN interface 1015,1017,1075 and 1077 with for example hardware such as the insertion card that is used for computer (plug-in card).Can also most of implement this interface with software, this software is the functional programs of coming executive's interface such as the instruction that use is implemented by treatment facility.Such interface will generally include and (for example be used to receive actual signal, connector) and (for example be used to cushion the signal that received, transmission/reception buffer) part, and typically comprise the part (for example, signal processing chip is whole or a part of) that is used for processing signals.
Various bridgers (1014,1074) are the unit of transmitting grouping between Ethernet interface and WLAN interface.Can implement bridger with software or hardware, perhaps bridger can only be a logic entity.Comprise treatment facility (such as integrated circuit) or go up one group of instruction of operation at treatment facility (such as the processor of operation bridger software) for the embodiment of the standard of bridger.
PADM 1016 and 1076 carries out various functions, comprises the packet encapsulation and the decapsulation that are described further below.Can make up with software for example, hardware, firmware or certain and implement PADM 1016 and 1076.The software implementation scheme comprises for example instruction of a group such as the program of moving on treatment facility.The hardware embodiment comprises for example special chip such as application-specific integrated circuit (ASIC).
With reference to Figure 11, handle 1100 and described processing from main frame to modulator-demodulator that shift grouping from.Further transmit this grouping and receive for AP from modulator-demodulator, and for being delivered to router at last also then to the final destination.This processing 1100 is also called uplink transmission process.
Handle 1100 and comprise that use for example is connected to AP (1110) in the previous processing of describing of the application with modulator-demodulator.Such processing can comprise for example comprising to be verified and operation associated standard WLAN agreement.
Then, handle 1100 and comprise: one or more main frames send one or more groupings (1120) to modulator-demodulator, and modulator-demodulator receives (a plurality of) groupings (1130) that sent.Attention: send grouping and receive for router, this router will (a plurality of) delivery of packets final (a plurality of) destination extremely.In the embodiment of Figure 10, the grouping that modulator-demodulator 1010 is sent by the one or more middle reception of ethernet network 1052 from main frame 1054 and 1056 through Ethernet interface 1015.
Modulator-demodulator is determined will send (a plurality of) groupings (1140) by the WLAN interface then.Modulator-demodulator is made this by identification through WLAN interface couple in router (as opposite, by discerning through another interface couple in router (not shown)) and is determined (1140).In the embodiment of Figure 10, modulator-demodulator 1010 sends (a plurality of) grouping that is received to bridger 1014, and bridger 1014 is made these definite (1140).
Then, modulator-demodulator is a plurality of groupings (1150) that the router encapsulation comprises one or more groupings that receive.Encapsulation (1150) can comprise from a plurality of main frames, for example main frame from the embodiment of Figure 10 1054 and 1056 groupings that receive.In addition, encapsulation can be included in (a plurality of) grouping that receives in the operation 1130 and the grouping that receives and be stored in previously in the formation.
In the embodiment that a plurality of groupings is not encapsulated, this embodiment can use bridger that the Ethernet packet map is divided into groups to each WLAN by separately each Ethernet grouping being encapsulated.This encapsulation for example can comprise data division and the interpolation additional WLAN head of whole Ethernet groupings as the WLAN grouping.
In addition, the embodiment that a plurality of groupings is not encapsulated does not even need each Ethernet grouping is encapsulated.And such embodiment for example can be by utilizing the WLAN head to replace the Ethernet head and by adding one or more added field alternatively each Ethernet grouping being transformed to each WLAN grouping.
For example, with reference to Figure 12, show the conversion 1200 that receives the Ethernet grouping 1210 that comprises Ethernet head 1220 and data division 1230.Conversion 1200 produces the WLAN grouping 1240 that comprises WLAN head 1250, data division 1230 and Frame Check Sequence (FCS) 1260.
Yet implementation and operation 1150 comprises that with a plurality of Ethernet packet encapsulation be single WLAN grouping.In Figure 13, illustrate an embodiment of operation 1150.
With reference to Figure 13, conversion 1300 receives a plurality of Ethernet groupings that comprise Ethernet grouping 1310,1312 and 1314, and produces single WLAN grouping 1318.In the Ethernet grouping 1310,1312 and 1314 each comprises Ethernet head 1320,1322 and 1324 respectively, and comprises data division 1326,1328 and 1329 respectively.
Ethernet grouping 1310,1312 and 1314 can be derived from same main frame, perhaps different main frames.In addition, although be to encapsulate Ethernet grouping 1310,1312 and 1314 for being sent to router, Ethernet grouping 1310,1312 can be different with 1314 final destination.For example, each in the Ethernet grouping 1310,1312 and 1314 can be gone to the communicate by letter with it different internet site of (perhaps attempting to communicate by letter) of one or more main frames.
Conversion 1300 is shown as including two intermediary operations.Yet other embodiment is not carried out any intermediary operation, and also has other embodiment to carry out more intermediary operation.
First intermediary operation is transformed to the Ethernet grouping Ethernet grouping of expansion.Ethernet grouping 1310,1312 and 1314 is transformed to the Ethernet grouping 1330,1332 and 1334 of expansion respectively.In conversion 1300, all Ethernet grouping 1310,1312 and 1314 is included as the data division 1336,1338 and 1340 of the Ethernet grouping 1330,1332 and 1334 of expansion respectively.The Ethernet grouping 1330,1332 and 1334 of expansion also comprises optional head 1342,1343 and 1344 respectively, and optional tail tag (tail) 1346,1347 and 1348. Head 1342,1343 and 1344 and tail tag 1346,1347 and 1348 can comprise various message segment, no matter whether typical these message segments are for head/tail tag, such as, for example, packet numbers (packets numbers), reply and retransfer information, source and/or destination-address and error checking information.
Second intermediary operation comprises that the Ethernet grouping with expansion is transformed to single " Ethernet among the WLAN " (Ethernet-in-WLAN (EIW)) grouping 1350.EIW grouping 1350 comprises each the data division in the Ethernet grouping of expansion.Show two kinds of possible conversion.Solid arrow 1370 illustrates first kind of possible conversion and dotted arrow 1375 illustrates second kind of possible conversion.
Shown in the solid arrow in the conversion 1,300 1370, data division 1352,1353 and 1354 corresponds respectively to the Ethernet grouping 1330,1332 and 1334 of the expansion that is comprised.EIW grouping 1350 further comprises optional head 1356 (also being known as the EIW head) and optional tail tag 1358, any information of describing for head/tail tag before it for example can comprise.
If do not have head or tail tag to be inserted into the Ethernet grouping of expansion, then the data division (for example, data division 1336) of the Ethernet of expansion grouping becomes the data division (for example, data division 1352) of EIW grouping.In addition, even head or tail tag are inserted into the Ethernet grouping of expansion, embodiment also may abandon/ignore head or tail tag when forming the EIW grouping.Under any situation in these cases, the data division of the Ethernet of expansion grouping has identical data with the data division of EIW grouping.
Shown in the dotted arrow in the conversion 1,300 1375, data division 1352,1353 and 1354 needn't correspond respectively to the Ethernet grouping 1330,1332 and 1334 of expansion.That is to say that the data division of EIW grouping needn't comprise the Ethernet grouping of whole expansions.As dotted arrow 1375 indications, the Ethernet grouping of expansion can be divided into the data division of two EIW groupings.
More specifically, dotted arrow 1375 illustrated embodiments show: (1) puts into the data division 1352 of EIW grouping 1350 with the second portion of the Ethernet grouping 1330 of expansion, (2) data division 1353 of EIW grouping 1350 is put in the Ethernet that will all expand grouping 1332, and (3) put into the data division 1354 of EIW grouping 1350 with the first of the Ethernet grouping 1334 of expansion.Thereby, under a kind of situation about EIW grouping 1350, (1) first data division 1352 comprises the Ethernet grouping of the expansion of part, and (2) last data division 1354 comprises the Ethernet grouping of the expansion of part, and (3) intermediate data part (1353 and clearly do not illustrated any other data division) Ethernet of comprising complete expansion divides into groups simultaneously.Although it is not shown, but should be clear, in the data division of the EIW grouping before the first of the Ethernet grouping 1330 of expansion can being placed on, and (2) can be placed on the second portion of the Ethernet grouping 1334 of expansion in the data division of EIW grouping subsequently.
In the terminal stage of conversion 1300, EIW grouping 1350 is included as the data division 1360 in the WLAN grouping 1318.WLAN grouping 1318 also comprises WLAN MAC head 1362 and FCS1364.
As should be clearly, not every embodiment be all used all optional head and tail tags, even does not also use all (or any) optionally intermediary operation (also being known as the stage).For example, other embodiment only copies the part of the Ethernet grouping of expansion to the EIW grouping, so that with more initial data (for example, data division 1326,1328 and 1329) the fixedly time slot of duration of packing into.As should be clearly, based on design object and restriction, for each embodiment, to using which head and tail tag and comprising determining and to change of how many intermediary operations.
With reference to Figure 14, Figure 140 0 shows the embodiment how PADM encapsulates the Ethernet grouping.PADM safeguards and enters (ingress) formation that each Ethernet that enters grouping is placed on this and enters in the formation.PADM is string 1420 with Ethernet packet concatenation (concatenate), and adds EIW head 1430 and WLAN head 1440.Depend on the information that in head 1430 and 1440, comprises, can make up these heads 1430 and 1440 or after cascade Ethernet grouping, make up these heads 1430 and 1440 in advance.For example, at least one embodiment will represent that the numeral (number) of the number (number) of Ethernet grouping in the string 1420 is included in the EIW head 1430.Suppose that the Ethernet grouping can have length variable, after the Ethernet grouping had been assembled as string 1420, typically, this numeral was only available.As should clearly defining the needs that head 1430 and 1440 adapts to particular.
With reference to Figure 15, show the form 1500 of an embodiment of EIW head.Form 1500 comprises and is used for serial number and replys the field 1510 of number, total grouping number 1520 and a series of packet descriptor that this series of packets descriptor all comprises a descriptor for each Ethernet grouping of encapsulation in the WLAN grouping.Correspondingly, indicated as the ellipsis of Figure 15, predicted the packet descriptor of variable number. Show packet descriptor 1530 and 1540, each in the packet descriptor 1530 and 1540 comprises grouping sign (being respectively 1550 and 1555) and block length (being respectively 1560 and 1565).
Serial number (1510) provides the sequence identifier of the data of encapsulation, and it allows the recipient that the reception that transmits is replied.Reply number replying the data that receive before is provided.Total grouping number is the number of the Ethernet grouping of encapsulation in the WLAN grouping.
Whether the Ethernet grouping that grouping sign (1550,1555) indication is associated is complete grouping.Suppose that time slot has fixed duration, then all Ethernet grouping may not pack the WLAN grouping into given.Correspondingly, in specific embodiment, be desirably in any given WLAN grouping first and last Ethernet grouping typically will be incomplete.The length of the Ethernet grouping that block length (1560,1565) indication is specific.
Continue to handle 1100, in the embodiment of Figure 10, for example can come executable operations 1150 by the PADM 1016 of modulator-demodulator 1010.Other embodiment can be in bridger for example, Ethernet interface, WLAN interface, the combination of another intermediate module, assembly on the bridger or assembly except PADM executable operations 1150.As should be clearly, can make up (a plurality of) assembly of implementing to be used for executable operations 1150 with for example software (such as the program of instruction), hardware (such as IC), firmware (such as the firmware that in processing apparatus, embeds) or its.
In addition, PADM can be positioned at modulator-demodulator diverse location (such as, for example, on the bridger or between Ethernet interface and the bridger), be positioned at one of each interface or bridger, and/or be distributed in a plurality of inter-modules.
Handle 1100 and comprise that further modulator-demodulator sends grouping after encapsulation (1160) by cable to AP.The grouping that is sent is intended to receive for router.Cable can comprise, for example, and coaxial cable, fiber optic cables or other wired transmission medium.
In specific embodiment, when the uplink time slot of modulator-demodulator arrives, modulator-demodulator will be collected grouping and they will be put into a big WLAN grouping from enter formation.This WLAN grouping is not more than the largest packet that time slot allows.On the contrary, when time slot arrived, if the WLAN grouping is big inadequately to fill the fixedly duration of time slot, then an embodiment still sent this (less) WLAN grouping, and another embodiment sends empty (NULL) data.
With reference to Figure 16, handle 1600 and described to be used to receive the processing that grouping after encapsulation, decapsulation grouping and delivery group become grouping.This processing 1600 also is known as up link and receives processing.
Handle 1600 and comprise that AP passes through the WLAN interface and receives grouping after encapsulation (1620) from modulator-demodulator.In the embodiment of Figure 10, AP 1030 receives grouping after encapsulation from modulator-demodulator 1010.Receive this grouping by cable system 1040 (such as coax network) at WLAN interface 1075 places.
AP carries out decapsulation to extract the composition grouping (1630) that constitutes grouping after encapsulation to the grouping that is received.In the embodiment of Figure 10, WLAN interface 1075 sends (after the encapsulation) grouping that is received to PADM 1076.PADM 1076 carries out decapsulation and provides the grouping of composition Ethernet to bridger 1074.Carry out decapsulation by checking for example total grouping number 1520 and the grouping sign of each packet descriptor (for example, packet descriptor 1530) (for example, the grouping sign 1550) and block length (for example, block length 1560).By checking such data, PADM 1076 can determine to form in the grouping each where begin and finish.
Particularly, PADM 1076 checks that each forms grouping is complete Ethernet grouping to guarantee that this composition divides into groups.If it is imperfect to form the Ethernet grouping, then PADM 1076 keeps this incomplete grouping and waits for up to the remainder that receives this Ethernet grouping (general in grouping after encapsulation subsequently).When receiving the remainder of Ethernet grouping, the Ethernet grouping that PADM 1076 assemblings are complete and with complete Ethernet packet forward to bridger 1074.
With reference to Figure 17, in Figure 170 0, described above embodiment for the operation 1630 of the grouping after encapsulation 1710 that is received.For simplicity, suppose that the grouping after encapsulation 1710 that is received is identical with the grouping of describing with reference to Figure 14 that is transmitted.However, it should be understood that the variation that may occur in practice between grouping that is transmitted and the grouping that is received.The grouping 1710 that is received comprises WLAN head 1440, EIW head 1430 and the string 1420 of forming the Ethernet grouping.
When PADM 1076 handles the grouping 1710 that is received, be complete if form the Ethernet grouping, then should divide into groups (for example, grouping 1720) offers bridger 1074.If it is imperfect to form the Ethernet grouping, then this incomplete packet memory (it needn't be arranged in PADM1076) in waiting list 1730 is arrived up to the remainder of this grouping.Figure 170 0 illustrates incomplete grouping 1740 and is stored in the waiting list 1730.For example, if (span) two WLAN groupings are crossed in the Ethernet grouping, this may occur.When packet integrity, this grouping is sent to bridger 1074.Notice that the WLAN grouping for example can comprise, the Ethernet grouping of a complete Ethernet grouping and a part.
With reference to Figure 18, handle 1130 for further describing decapsulation, described to provide the PADM 1750 of the embodiment of PADM 1016 or 1076.PADM 1750 comprises wrapper 1760 and decapsulator 1770.Wrapper 1760 and decapsulator 1770 are coupled to bridger and WLAN interface communicatedly.Provided the assembly of PADM 1750, more specifically, PADM 1750 can be known as packet encapsulation/decapsulation module.
In operation, as mentioned above, wrapper 1760 is accepted Ethernet grouping and the grouping of encapsulation Ethernet from bridger.Data after the encapsulation are provided for the WLAN interface then.
In operation, the data after decapsulator 1770 encapsulates from the reception of WLAN interface.As mentioned above, decapsulator 1770 is carried out decapsulation with the data that received, and provides data after the decapsulation to bridger.
Very clear, other embodiment is possible and is foreseeable.For example, another embodiment has made up wrapper and decapsulator.And another embodiment is used the Virtual Ethernet feature of Linux.
Notice that other embodiment of AP or modulator-demodulator directly sends grouping after encapsulation to bridger from the WLAN interface.Bridger determines that this grouping is packed and this grouping is sent to PADM.
Continue to handle 1600, AP determines and will be sent to router (1640) with forming grouping.Can should operate (1640) and carry out at the difference place that handles 1600 with other many operations.In the embodiment of Figure 10, bridger 1074 is determined grouping to be sent to router one 090.
AP sends to router by Ethernet interface then and forms grouping (1650).In the embodiment of Figure 10, bridger 1074 sends to Ethernet interface 1077 forms grouping, and Ethernet interface 1077 sends described grouping by ethernet network 1082 to router one 090.
Router receives (1060) and handles (1070) described grouping.Processing for example can comprise that the further destination to the website of communicating by letter with it such as main frame or attempting to communicate by letter with it sends the part of grouping or grouping.In addition, in grouping after encapsulation comprised embodiment from the grouping of the Ethernet of a plurality of main frames, router can send bottom (underlying) information to a plurality of websites.
With reference to Figure 19, processing 1800 has described to be used for receiving from router the processing of the grouping of AP.Encapsulating packets, and from AP transmission grouping after encapsulation.The grouping after encapsulation that is transmitted is intended to receive for modulator-demodulator, forms grouping and is intended to carry out last sending from modulator-demodulator to one or more main frames.This processing 1800 also is known as down link and transmits processing.
Handling 1800 comprises: router receives the one or more groupings (1820) that are intended to go to one or more main frames, and router sends (a plurality of) groupings (1830) that received to AP.Router can be from for example just attempting to receive grouping with one or more websites of one or more main-machine communications.In the embodiment of Figure 10, router one 090 is 1095 reception groupings from the internet.Router one 090 sends the grouping that is received by ethernet network 1082 to the Ethernet interface 1077 of AP 1030 then.
AP determines the grouping that at least one received to be sent to modulator-demodulator (1840) by the WLAN interface.In the embodiment of Figure 10, Ethernet interface 1077 routes to bridger 1074 with the grouping (it is the Ethernet grouping) that is received.Bridger 1074 is determined and will grouping be sent to for example modulator-demodulator 1010 by WLAN interface 1075.
AP will be sent to a plurality of groupings modulator-demodulator, that comprise one or more groupings that receive and encapsulate (1850).Notice that a plurality of groupings all receive from router, but can be that (for example, different website) receives from one or more different sources at the router place.In addition, encapsulation can be included in (a plurality of) grouping of receiving in the operation 1820 and previous that receive and be stored in grouping in the formation.
About operating 1850, in the embodiment of Figure 10, bridger 1074 is given PADM 1076 with (a plurality of) packet forward that is received.PADM 1076 ranks other grouping that (a plurality of) that received grouping is intended to go to modulator-demodulator 1010 with (for example), and the WLAN that is formed for after the encapsulation of the downlink time slots that modulator-demodulator 1010 can use divides into groups.PADM 1076 keeps independent formation to each modulator-demodulator (also being known as the station), comprises first formation that is used for modulator-demodulator 1010 and second formation that is used for modulator-demodulator 1020.As when describing PADM1016, having described encapsulation before in conjunction with Figure 11-15.
AP connects to modulator-demodulator transmission grouping after encapsulation by cable, is intended to carry out last sending (1860) to one or more main frames.In the embodiment of Figure 10, PADM 1076 is that in modulator- demodulator 1010 and 1020 each is prepared WLAN grouping in (round-bin) mode of circulation.PADM 1076 divides into groups to be inserted in the downlink time slots corresponding in the TDF super frame structure to the ready WLAN of WLAN interface 1075 supplies then.WLAN interface 1075 uses TDF super frame structure to transmit the WLAN grouping after encapsulation to modulator- demodulator 1010 and 1020 then.
With reference to Figure 20, handle 1900 and described to be used to receive grouping after encapsulation, decapsulation grouping, and delivery group becomes the processing of grouping.This processing 1900 also is known as down link and receives processing.
Handling 1900 comprises: modulator-demodulator receives grouping after encapsulation (1920) by the WLAN interface from AP.In the embodiment of Figure 10, modulator-demodulator 1010 receives grouping after encapsulation by cable system 1040 (such as coax network) at WLAN interface 1017 places.
Then, modulator-demodulator carries out decapsulation to the grouping that is received, to extract the composition grouping (1930) that constitutes grouping after encapsulation.In the embodiment of Figure 10, PADM 1016 carries out the decapsulation of WLAN grouping and provides the grouping of composition Ethernet to bridger 1014.For example, can such as before in the discussion of Figure 16-18 at PADM 1076 description ground carry out decapsulation.
Modulator-demodulator is determined and will will be formed the main frame recipient (1940) that grouping is sent to one or more expections.Can should operate (1940) at the difference place that handles 1900 carries out with many operations.For example, operation 1940 can be carried out with operation 1930 or 1950.In the embodiment of Figure 10, bridger 1014 is determined grouping to be sent to (a plurality of) main frame.
Modulator-demodulator sends to (a plurality of) main frame by Ethernet interface and forms grouping (1950) then.In the embodiment of Figure 10, bridger 1014 sends to Ethernet interface 1015 forms grouping, and Ethernet interface 1015 is by the one or more transmission groupings of ethernet network 1052 in main frame 11054 and main frame 21056.
These one or more main frames receive (1960) and handle (1970) grouping.Processing can comprise that for example, personal computer is stored the multimedia file that receives by the internet, and perhaps PDA(Personal Digital Assistant) shows that electronic information (also receiving by the internet) supplies the user to watch with mutual.
Figure 21-34 is described now.Yet the description of the embodiment that Figure 21-34 is represented is not limited to following discussion.
For the hardware and software embodiment of the maturation of utilizing 802.11 protocol stacks, proposed to utilize WLAN (WLAN (wireless local area network)) chipset of revising to utilize WLAN in coaxial cable medium, to transmit the design of 802.11 frames with different frequency bands.Correspondingly, create 802.11DCF (distributed coordination function) or PCF (point coordination function) mechanism that TDF (time-division function) agreement is replaced the routine in MAC (medium access control) layer for such application situation.As mentioned above, this TDF agreement is based on TDMA (time-division multiplex access), and TDMA is by being different time slots allows a plurality of users to share this channel with same channel distribution.Among the TDF STA (station) each is used in the TDF super frame of being assigned by TDF AP (access point) they self time slot, one after the other transmits uplink traffic one by one fast.For downlink traffic, the STA shared channel, and be the frame of target by the destination-address information in the frame and their interested addresses are relatively selected with them.Fig. 5 illustrate when exist m (=tdfUplinkTimeSlotNumber) individual STA compete simultaneously the up link conveyer can the time, to the time slot allocation of typical TDF super frame.
As about shown in Figure 5 and describe, there is the time slot of tdfTotalTimeSlotNumber fixed number in each TDF super frame, and it is made up of following: one (1) is used for the Sync time slot to TDF STA tranmitting data register synchronizing information from TDF AP; One (1) is used to send the contention slots of the register requirement that uplink time slot is distributed; TDF STA by registration sends data and the employed tdfUplinkTimeSlotNumber of some a management frames uplink time slot to TDF AP one by one; And transmit data and the employed tdfDownlinkTimeSlotNumber of some a management frames downlink time slots to STA by TDF AP.Except the Sync time slot, all other time slots that are named as public time slot have the identical duration that length equals tdfCommonTimeSlotDuration.
The value of the duration of definition tdfCommonTimeSlotDuration is to allow: for the peak data rate pattern, transmit at least one maximum 802.11PLCP (Physical layer convergence protocol) protocol Data Unit (PPDU) in a standard time slot.The duration tdfSyncTimeSlotDuration of Sync time slot is shorter than the duration of public time slot, and this is because be shorter than 802.11 Frames from TDF AP to the clock synchronization frame that TDF STA transmits in this time slot.
As a result, can calculate the duration of a TDF super frame that is defined as tdfSuperframeDuration by following formula:
tdfSuperframeDuration=tdfSyncTimeSlotDuration+tdfCommonTimeSlotDuration*(tdfTotalTimeSlotNumber-1)
Relation between tdfTotalTimeSlotNumber, tdfUplinkTimeSlotNumber and the tdfDownlinkTimeSlotNumber satisfies following equation:
tdfTotalTimeSlotNumber=tdfUplinkTimeSlotNumber
+tdfDownlinkTimeSlotNumber+2
The frequency band that uses the utilization of WLAN chipset to reduce with the practical application situation that data are provided by the CATV access network transmit in, typically have two kinds of application.A kind of application is to utilize this solution to provide the internet to insert, and making must be to the assurance time slot of subscriber's distribution for constant data rate and QoS (service quality).Other application are to use this solution to transmit the uplink traffic of fragmentary (sporadic) the user's control messages in VoD (video request program) application such as digital television service from subscriber's side direction head end (head-end).
Utilize MAC layer mechanism set forth above, at first obtain uplink time slot, in each super frame, transmit such control messages then in institute's distributed time slot to the STA of AP registration.Yet, because the traffic carrying capacity of such application is very little, STA needs the very little part of time slot to be used for the data transmission, and what is more, even during the super frame of the plurality of continuous such application, TDF STA that is used to support to have fragmentary traffic carrying capacity, quite might not have the traffic carrying capacity that will transmit.Thus, it will be appreciated by those skilled in the art that under some situation, in the TDF agreement, utilize previous that create and known pure time-division medium access method to support that the application of this second type may be quite waste.
According to other known embodiments, during uplink time slot, have the fragmentary uplink traffic that will transmit and will use DCF mechanism to send uplink traffic the TDFSTA that does not distribute to TDF AP to TDF AP registration uplink time slot based on contention.
Yet, because the intrinsic feature of DCF mechanism if a TDF STA always is to use less contention window to obtain the conveyer meeting, may it will have the bigger chance that inserts the channel that is used for the uplink traffic transmission than other STA.And correspondingly,, between the TDF STA of those uses, can not realize the distribution of fair conveyer meeting based on the medium access method of contention for uplink traffic.
In order to support data, services and fragmentary user's control messages on the cable access network, the disclosure has proposed two types TDF at least.First kind is used poll and time-division medium to insert both, and second kind is used mixed mechanism to obtain uplink channel.Can be contemplated to such as the use poll with based on distortion and further combination the mixed mechanism of contention, and be considered a part of this disclosure.
With reference to Figure 21, for to having the high data rate service that QoS supports and having fragmentary data business volume and other of stand-by period (latency) tolerance limit (tolerance) attribute are served the two and provided support, show the TDF of state-of-the-art (state-of-the-art), it comprise be used for poll that uplink channel inserts and time-division medium access mechanism the two.
Poll and time-division medium insert the TDF super frame that the two TDF uses in the TDF of previous enforcement routine the time slot that has that is proposed adds a time slot (for example, polling time slot).
As shown in Figure 21, there is the time slot of tdfTotalTimeSlotNumber fixed number in each TDF super frame, and the detailed enumerate function of every type the time slot that wherein comprises is as follows:
Figure GPA00001115335500261
(a 1) Sync time slot.This Sync time slot refers to synchronization slot, is used to from TDF AP to TDF STA tranmitting data register synchronizing information.
Figure GPA00001115335500262
(a 1) Reg. time slot.TDF STA uses this Reg. time slot (that is discovery timeslot) to send register requirement to TDF AP.In the registration request frame body, TDF STA notice AP its be used for the up link conveyer can the operator scheme of obtaining: poll pattern or the time merotype.
Figure GPA00001115335500271
(a 1) polling time slot.During this time slot, have the fragmentary uplink traffic that will transmit and do not have the specific PCF (point coordination function) of detailed description below the TDF STA that TDF AP registration uplink time slot distributes will use machine-processed to TDF AP transmission uplink traffic.
Downlink time slots.These time slots comprise TDF AP and send data and the employed tdfDownlinkTimeSlotNumber of some a management frames downlink time slots to TDF STA.
Figure GPA00001115335500273
The time-division uplink time slot.The TDF STA that these time slots comprise by registration sends data and the employed tdfUplinkTimeSlotNumber of some a management frames uplink time slot to the TDF AP with high data rate and QoS support one by one.
Based on the demand of concrete practical application, in most of the cases, the duration of synchronization slot, discovery timeslot, polling time slot, downlink time slots and time-division uplink time slot differs from one another.Yet each uplink time slot that is known as in tdfUplinkTimeSlotNumber the time-division time slot of public time slot has the identical duration that length equals tdfCommonTimeSlotDuration.
As a result, can calculate the duration of a TDF super frame that is defined as tdfSuperframeDuration by following formula:
tdfSuperframeDuration=tdfSyncTimeSlotDuration
+tdfRegTimeSlotDuration
+tdfPollingTimeSlotDuration
+tdfCommonTimeSlotDuration
*(tdfTotalTimeSlotNumber-3)
Relation between tdfTotalTimeSlotNumber, tdfUplinkTimeSlotNumber and the tdfDownlinkTimeSlotNumber satisfies following equation:
tdfTotalTimeSlotNumber=tdfUplinkTimeSlotNumber
+tdfDownlinkTimeSlotNumber+3
The PCF routine that strengthens in during the polling time slot
For having the STA among the two this TDF of poll and time-division medium access mechanism, various embodiments comprise two kinds of operator schemes: a kind of is poll pattern; Merotype when another kind is.
The basic medium access method that STA operates in poll pattern to carry out the uplink traffic transmission is PCF.Yet,, this classical PCF mechanism has been carried out some improvement owing to the particular surroundings that transmits at the enterprising line data of fixing circuit.
Basic access
PCF mechanism in the polling time slot provides the frame that avoids contention transmission.With reference to Figure 23, PC (some telegon) 2302 resides among the TDF AP 2300.The form that the poll pattern that having identified Capability (ability) information field of Beacon (beacon) frame that sends from AP is provided by AP 2300 is supported.The TDF STA 2304 that need insert based on the medium of poll should be in response to the poll that avoids contention (CF-poll) that receives from AP 2300, but therefore is called as the CF-poll.When by PC 2302 polls, but the STA of CF poll should only transmit a MPDU (Medium Access Control (MAC) Protocol Data Unit), and this MPDU should be sent to AP and need not reply this MPDU by AP.AP is the poll STA in the polling list of this AP not never.
The frame that is sent during polling time slot by AP or STA should use suitable frame type based on following service regeulations:
But 1.AP should only send the CF-poll to the STA of CF-poll.In this frame, AP does not send data to the recipient who is addressed, and the recipient who is addressed is the next STA that sends in being allowed to during this polling time slot; And
2. but can send data and empty frame by the STA of any CF-poll.
AP polling time slot begin locate to obtain to the control of medium and attempt retentive control in whole polling time slot.Do not need as in the PCF of classics agreement, transmitting beginning and the end that Beacon and CF-End come signaling (signal) polling time slot respectively by AP.
When having clauses and subclauses (entry) in polling list, AP should send CF-Poll at least one STA during each polling time slot.During each polling time slot, AP should be from first to last in regular turn the subclass of the STA in polling list send poll.
With reference to Figure 24 and Figure 25, each polling time slot Once you begin, then AP should transmit (2506) CF-Poll frame by a STA in polling list.If there are not clauses and subclauses (2502) in polling list, then AP should transmit downlink traffic (2504) immediately during this polling time slot, up to the end of downlink time slots.
But transmit the back at AP and receive data or empty frame (2508) afterwards from the STA of specific CF-poll, perhaps do not obtain in the predefined period after AP transmits after the response to CF-Poll from specific STA, then AP should recover to control and can next clauses and subclauses in polling list transmit its next CF-Poll frame, unless before deserving during the polling time slot in the remaining time not enough.If arrived the last clauses and subclauses in the polling list this moment, then first clauses and subclauses that will attempt from polling list next time of AP begin, to STA transmission CF-Poll frame.If remaining deficiency of time transmits the Frame that comprises minimum length MPDU to allow polled STA in current polling time slot, then AP will not send CF-Poll frame (2510).Alternately, polling time slot in during next super frame just begin the place, next clauses and subclauses or the first entry in this polling list (if polled STA is the last clauses and subclauses in tabulating) that AP will begin among the polled STA in polling list send the CF-Poll frame.
With reference to Figure 24, but the STA that is in all the CF polls in the poll pattern that is associated with this AP should not transmit any uplink traffic, unless it during this polling time slot in by this AP poll.But the STA that is in the CF poll in the poll pattern should be always in response to the CF-Poll that points to its MAC Address and receive error-free.After receiving this CF-Poll, this STA should transmit a Frame immediately.If STA does not have frame to send when polled, then this response should be the sky frame.But the STA that had insufficient time to the polled CF-poll of the Frame that sends its queuing before the end of polling time slot should respond by transmitting empty frame.
The maintenance of polling list
AP should safeguard " polling list ", to be used for select being fit to (eligible) but the STA of the poll of the STA of reception CF-Poll and pressure CF poll during polling time slot in.Be used to transmit the employed CF-Poll type of Frame that is sent to the STA of CF poll by AP but can use this polling list to control.
In case AP receives the wherein registration request frame of this STA use polling mechanism requirement access channel from STA, and AP determines when this STA authorizes such transfer mechanism based on the strategy that is provided with in this AP, AP should add clauses and subclauses to the end of polling list, and these clauses and subclauses comprise MAC Address and the data rate of this STA.On the other hand, in case AP from STA receive wherein this STA use polling mechanism indication it not during the cancellation frame of access channel, AP should delete the clauses and subclauses of the correspondence of this STA in polling list.If STA expectation from the time merotype when changing into poll pattern, then STA should nullify merotype when withdrawing from by sending to AP, and sends the register requirement with poll pattern indication then and notify AP.
With reference to Figure 22, for flexibility that provides by DCF and the fairness that is provided by PCF are provided, a kind of medium access mechanism that is used for the mixing of uplink traffic has also been described, the medium access mechanism of this mixing will utilize DCF and PCF to STA, and the two obtains conveyer meeting to fragmentary traffic carrying capacity, and the dedicated time slot that is used for STA transmits the high data rate traffic amount.Diagram is to the detailed time slot allocation of the TDF super frame of this enhancing in Figure 22.
As directed, there be tdfTotalTimeSlotNumber fixing time slot in each TDF super frame, and the following detailed function of listing every type the time slot that wherein comprises:
Figure GPA00001115335500301
(a 1) Sync time slot.This Sync time slot refers to synchronization slot, is used to from TDF AP to TDF STA tranmitting data register synchronizing information.
One (1) is based on the uplink time slot of contention.During this time slot, TDF STA can send register requirement to TDF AP.In the registration request frame body, TDF STA will to AP notify its be used for the up link conveyer can the operator scheme of obtaining: poll pattern, based on the pattern of contention or the time merotype.Simultaneously, has the fragmentary uplink traffic that will send and the TDF STA that do not distribute to TDF AP registration uplink time slot will use specific DCF mechanism to TDF AP transmission uplink traffic.
Figure GPA00001115335500303
(a 1) polling time slot.During this time slot, have the fragmentary uplink traffic that will transmit and will use previously described specific PCF mechanism to send uplink traffic the TDF STA that does not distribute to TDF AP to TDF AP registration uplink time slot.Generally speaking, TDF STA can be by being provided with the operator scheme (that is, DCF or PCF) of notifying it to TDF AP of corresponding sign in the association request frame that TDF AP sends by TDF STA.
Figure GPA00001115335500304
Downlink time slots.These time slots comprise TDF AP and send data and the employed tdfDownlinkTimeSlotNumber of some a management frames downlink time slots to TDF STA.
Figure GPA00001115335500305
The time-division uplink time slot.The TDF STA that these time slots comprise by registration sends data and the employed tdfUplinkTimeSlotNumber of some a management frames uplink time slot to the TDF AP with high data rate and QoS support one by one.
Based on the demand of practical application, in most of the cases, the duration of synchronization slot, the time slot based on contention, polling time slot, downlink time slots and time-division uplink time slot differs from one another.
As a result, can calculate the duration of a TDF super frame that is defined as tdfSuperframeDuration by following formula:
tdfSuperframeDuration=tdfSyncTimeSlotDuration
+tdfContentionTimeSlotDuration
+tdfPollingTimeSlotDuration
+tdfCommonTimeSlotDuration
*(tdfTotalTimeSlotNumber-3)
TdfTotalTimeSlotNumber, tdfUplinkTimeSlotNumber and
Relation between the tdfDownlinkTimeSlotNumber satisfies following equation:
tdfTotalTimeSlotNumber=tdfUplinkTimeSlotNumber
+tdfDownlinkTimeSlotNumber+3
In order to support data, services and fragmentary user's control messages on the cable access network, present principles proposes to use the medium based on contention to insert and the time-division medium inserts both and is used to obtain uplink channel.
For to having the high data rate service that QoS supports and having fragmentary data business volume and other of stand-by period tolerance limit attribute are served the two and provided support, proposed to comprise be used for that uplink channel inserts based on the two the TDF of state-of-the-art of the medium access mechanism of contention and time-division medium access mechanism.Following detailed description has the functional descriptions of this TDF agreement of blending agent cut-in method.
Cut-in method
The TDF that medium inserts and the time-division medium inserts that has based on contention of present principles adds a time slot (for example, discovery timeslot) to previous disclosed TDF routine.The detailed time slot allocation of the TDF super frame of this enhancing of diagram in Figure 26.
As shown in Figure 26, there is the time slot of tdfTotalTimeSlotNumber fixed number in each TDF super frame, and the detailed function of every type the time slot that wherein comprises can be listed below:
-one (1) Sync time slot.This Sync time slot refers to synchronization slot, is used to from TDF AP to TDF STA tranmitting data register synchronizing information.
-one (1) Reg time slot.Contention slots in the super frame structure of describing among this Reg time slot (that is, discovery timeslot) and Fig. 5 is (comparable) quite, and TDF STA uses this Reg time slot to send the register requirement that is used for the uplink time slot distribution to TDF AP.
-one (1) is based on the uplink time slot of contention.During this time slot, have fragmentary uplink traffic that will send and the specific DCF mechanism of below the TDF STA that TDF AP registration uplink time slot distributes will use, not describing in detail to TDF AP transmission uplink traffic.
-time-division uplink time slot.The TDF STA that these time slots comprise by registration sends data and the employed tdfUplinkTimeSlotNumber of some a management frames uplink time slot to the TDF AP with high data rate and QoS support one by one.
-downlink time slots.These time slots comprise TDF AP and send data and the employed tdfDownlinkTimeSlotNumber of some a management frames downlink time slots to TDF STA.
In one embodiment, can and be combined as a mixed time slot with the Reg time slot and improve systematic function based on the uplink time slot of contention.This improvement is because the following fact: two time slots all use compensation (backoff) method based on contention to carry out channel and insert and in most of the cases may have seldom a traffic carrying capacity during the Reg time slot.In addition, for the priority higher than the transmission of Frame is given in the transmission of giving registration request frame, can be respectively define the CWmin of the contention window of registration request frame and CWmax less than the CWmin and the CWmax of the contention window of Frame.
Person of skill in the art will appreciate that: in 802.11 standards, use " contention window ", and what minimum time slots (mini-slot) " contention window " expression STA will wait for before attempting inserting wireless medium, 9 microseconds typically, and STA will determine whether this medium can be used for transmitting data then.By means of example, by 0 and CWmin between select offset value (backoffnumber) at random to come initially to determine accurate contention window number.Each compensation period stops (expire), and indicating channel is still busy, STA will with the mode that increases 0 and [CWmin, CWmax] in number between select another compensation period randomly, to the last selected 0 and CWmax between the compensation period.
By respectively the CWmin of the contention window of registration request frame and CWmax being defined forr a short time than the CWmin and the CWmax of the contention window of Frame, promptly, (CWmin of registration)<(CWmin of Frame) and (CWmax of registration)<(CWmax of Frame), the transmission of having guaranteed registration request frame has higher priority than the transmission of Frame.As explained below, this higher priority be since in during less contention window fewer purpose compensate the period and can use.
Based on the demand during the practical application, in most of the cases, the duration of synchronization slot, discovery timeslot, the uplink time slot based on contention, time-division uplink time slot and downlink time slots differs from one another.Yet each uplink time slot that is known as in tdfUplinkTimeSlotNumber the time-division time slot of public time slot has the identical duration that its length equals tdfCommonTimeSlotDuration.
As a result, can calculate the duration of a TDF super frame that is defined as tdfSuperframeDuration by following formula:
tdfSuperframeDuration=tdfSyncTimeSlotDuration
+tdfRegTimeSlotDuration
+tdfContentionTimeSlotDuration
+tdfCommonTimeSlotDuration
*(tdfTotalTimeSlotNumber-3)
TdfTotalTimeSlotNumber, tdfUplinkTimeSlotNumber and
Relation between the tdfDownlinkTimeSlotNumber satisfies following equation:
tdfTotalTimeSlotNumber=tdfUplinkTimeSlotNumber
+tdfDownlinkTimeSlotNumber+3
In addition, the number of the uplink time slot that is distributed of TDF STA can be changed into tdfMaximumUplinkTimeSlotNumber from 0 in the TDF super frame.Correspondingly, the available duration of the downlink time slots in the TDF super frame can be changed into (tdfCommonTimeSlotDuration* (tdfTotalTimeSlotNumber-3-tdfMaximumUplinkTimeSlotNumber)) from (tdfCommonTimeSlotDuration* (tdfTotalTimeSlotNumber-3)).At every turn when having TDF STA of request uplink time slot, TDFAP will draw one or more public time slots from available downlink time slots, and give this TDF STA with these time slot allocation then, as long as the number of uplink time slot will be no more than tdfMaximumUplinkTimeSlotNumber after this.
In addition; although the duration of downlink time slots equals (tdfCommonTimeSlotDuration*tdfDownLinkTimeSlotNumber); but be not to have guard time between the border of these public time slots, this be because these downlink time slots be continuous and from one independently AP send traffic carrying capacity.In this way, in this agreement, can greatly improve efficient and the channel utilization that down link transmits.
DCF routine based on the enhancing of the uplink time slot of contention
For having based on for the STA among the two the TDF of the medium access mechanism of contention and time-division medium access mechanism, some embodiments have two kinds of operator schemes: a kind of pattern that is based on contention; Merotype when another kind is.
STA operates the basic medium access method that carries out the uplink traffic transmission in based on the pattern of contention be the DCF that defines in 802.11 standards, and this 802.11 standard allows automatic medium to share by using CSMA/CA (having the carrier sense multichannel that avoids conflict inserts) and the make-up time at random of following after busy medium situation.Yet, because the particular surroundings that the data on fixing circuit transmit has been carried out some improvement to the DCF mechanism of this classics.
The routine of random back-off
The TDF STA of the transmission of expectation initialization frame should call busy/idle condition that (invoke) carrier sense mechanism (physical carrier sensing in most of the cases) is determined medium.If medium is busy, then STA should postpone up to determining that this medium is not interrupted ground in the time period of definition idle.After the free time of this medium, STA should be to generating the compensation period at random additional retardation time before transmitting then, unless the compensation timer has comprised nonzero value, in this case, the selection that does not need to select random number and do not carry out random number.This processing makes the conflict between the contention-free period between a plurality of STA that postpone till similar events as (event) minimize.
Backoff?Time=Random()*aSlotTime
Wherein, the pseudorandom integer that the even distribution of Random ()=on at interval [0, CW] is extracted, wherein CW is the integer in the scope of value of the value of aCWmin and aCWmax, aCWmin<=CW<=aCWmax.
The set of CW value should be the aCWmin value that starts from application-specific, and the integer power with 2 subtracts 1 and increases in regular turn, and continues upwards and comprise the aCWmax value of application-specific.More specifically, most of applied environments for this agreement, the maximum number based on the STA in the pattern of contention as tdfMaximumContentionStationNumber is known in advance, and can notify TDF STA by configuration manually and/or from the management frames of TDF AP broadcasting, make the aCWmax value can be set to the multiple of tdfMaximumContentionStationNumber or tdfMaximumContentionStationNumber.Thus, when with aCWmax numerical value wherein by the situation of blind setting relatively the time, STA can insert physical medium after the short relatively make-up time.
By reducing the size of the contention window of registering frame, the number of available compensation period will be less than the number of the compensation period that can be used for Frame, and this causes registering frame and has higher priority.
Reply routine
For the time TDF STA that operates in the merotype, in during the uplink time slot of distributing for this specific STA separately, exchange in cable environment rather than aloft is derived from the frame of STA, thereby transmits these frames in the mode that avoids contention with extraordinary signal quality.As a result, the reliability of sending that (ACK) frame is guaranteed mac frame is replied in unnecessary definition.
Yet, for the TDF STA that in pattern, operates based on contention, because the difference between cable environment and wireless channel, the carrier sense mechanism of physics is worked on fixing circuit and is not fine, makes the station problem of hiding will cause being in the many conflicts between the different TDF STA in the contention mode.As the mode of reply the type fault, present principles has proposed to use sure (positive) acknowledgement mechanism.
Correspondingly, there be replying of (deploy) can be used for disposing two types:
1. as long as TDF AP receives the uplink frame that is derived from the TDF STA that is in the contention mode and just carries out sure replying from this AP immediately, the result, if do not receive ACK, then TDF STA dispatches and retransfers.
2. piece ACK mechanism, it is by replying with some that to assemble be the efficient of improving channel in the frame.
Have two types piece Ack mechanism: immediately with postpone.
TDF AP send piece Ack immediately immediately, and piece Ack immediately is suitable for the traffic carrying capacity of high bandwidth and low latency after receiving from the some uplink frame that are in the TDF STA in the contention mode.
Receive in response to some successes, specific based on the time slot of contention during in from the uplink frame of TDF STA transmission, by TDF AP with the super frame identical based on the uplink time slot of contention in the piece Ack that just begins to locate transmission lag of downlink time slots.This is suitable for the application of medium stand-by period of tolerance, and will be used in the most applications that has based on this TDF agreement of the medium access control of contention and time-division medium access control.Piece ACK frame can be to being in the unicast frame of a specific TDF STA in the contention mode, so that successfully receive uplink frame from it to this TDF STA notice, and piece ACK frame also can be broadcast frame or multicast frame, so that a large amount of TDF STA notices in being in contention mode successfully receive uplink frame from these STA.
The mode transitions routine
In case TDF STA starts (for example, when initialization), it enters the pattern based on contention acquiescently.Then, depend on its application demand, configuration and/or with service provider's service level agreement, it can have merotype enter after inserting the registration response of permitting the time sending the registration frame to TDF AP and receive.
In Figure 27, illustrate from based on the pattern of contention to the time merotype conversion.As directed, when the pattern 2710 that is in based on contention, the determining of merotype (2712) when whether needing to enter.When answering "Yes", carry out follow-up about after TDF AP sends register requirement, whether received definite (2714) of sure response at TDF STA.If received sure response, merotype when 2716 enter then.To cause negate that then system remains on the pattern 2710 based on contention if determine 2712 or 2714.
Opposite with embodiment shown in Figure 27, TDF STA can be in its operating period from the time merotype enter pattern based on contention.In Figure 28, illustrate this design.As directed, when being in the merotype 2802 time, carry out about whether needing to enter determine (2804) based on the pattern of contention.If "Yes" then sends de-registration request (2806), and enter pattern 2808 based on contention.Under not needing to enter (2804), when system remains in the merotype 2802 based on the situation of the pattern of contention.
Attention: similarly handle the embodiment that can be applicable to poll.For example, when needed, embodiment can poll pattern and the time switch between the merotype.
Aforesaid, for being provided, bi-directional data to one's profit transmits solution on the existing coaxial cable access network, proposed to utilize commercialization (commodity) the WiFi chipset of maturation to carry out the method that frame is sent with foreign frequency change-over circuit.Adopt the system of this method to be known as ADoC (the asymmetric data transmission on the coaxial cable) system, wherein in the cable access network, must dispose the ADoC access point (AP) and the station (STA) of deferring to TDF (time-division function) agreement.As used herein, term " ADoC system " and " TDF system " can exchange.AP is connected (referring to Fig. 1) with STA via the splitter that is in hierarchical tree.In this way, the user is in and can inserts remote I P core network via the cable access network.Fig. 1 illustrates detailed network topology.
In this typical infrastructure access network framework, have ADoC (TDF) access point (AP) of deferring to the TDF agreement, this ADoC access point has an Ethernet interface (AP is connected with IP core network by it) and a coaxial cable interface (AP is connected with the cable access network by it).The other end at access network, there is ADoC (TDF) STA that defers to the TDF agreement, it is connected with the cable access network via coaxial cable interface and via wave point (for example, WLAN (WLAN (wireless local area network)) interface) or wireline interface (for example, Ethernet interface) be connected with dwelling house LAN (local area network (LAN)).
With reference to Figure 29, the embodiment of the present invention that are used for the hardware embodiment of ADoC STA 2900 are integrated into binding (colligate) STA with two equipment (ADoC equipment 2903 and wlan device 2904).ADoC equipment 2903 will be connected with coaxial cable interface 2906 with the bidirectional data communication in the support cable system, and wlan device 2904 will be connected with antenna 2908 to support the bidirectional data communication in the wlan network.If desired, STA 2900 will exchange (swap) Frame between ADoC equipment 2903 and wlan device 2904, so that make the PC in the wlan network to enter the Internet via ADoC STA.
The STA framework that presents among Figure 29 need be used for two separate equipment of channel coder/decoder and data processing and come to provide the internet access function to the personal computer of the WLAN of family.Present principles provides to be utilized one independently dual mode device and the solution that can periodically switch between ADoC pattern and WLAN pattern provides identical access function to local network.
The double mode ADoC equipment of present principles can support ADoC pattern and WLAN pattern the two and can periodically between these two kinds of patterns, switch.In the ADoC pattern, this dual mode device is operating as ADoC STA; And in the WLAN pattern, it is operating as WLANAP.
The solution of the single dual mode device by using present principles, rather than two equipment in the solution of the classics shown in Figure 29 embed the ADoC STA that this double mode ADoC equipment is arranged internet access function to local network can be provided.As a result, compare, can reduce almost half of original cost having the manufacturing cost that internet via the cable access network inserts the ADoCSTA that supports with the solution of the classics of two equipment shown in Figure 29.
For the dual mode device 2902 of realizing present principles, revised the ADoC equipment 2903 of standard and on the basis of the wlan device of maturation, carried out evolution (evolve).It is mainly different aspect two with wlan device 2904: 1) aspect the physical implementation, its RF is in ADoC frequency band (approximately 1GHz) rather than standard 802.11 frequency bands (approximately 2.4GHz) operation; And 2) at MAC (medium access control) layer, it does not utilize conventional 801.11DCF (distributed coordination function) or PCF (point coordination function) mechanism to exchange mac frame.But it uses the TDF agreement based on the time division multi access (tdma) method to transmit mac frame.
As shown in Figure 30, with double mode ADoC equipment 2902 be connected with coaxial cable interface 2906 with the cable access of internet interlock, and simultaneously, is connected with the bidirectional data communication in the support wlan network with antenna 2908.If desired, ADoC STA 2900 will exchange the Frame that receives from this double mode ADoC equipment 2902 during these two kinds of patterns.
The hardware structure of double mode ADoC equipment
A hardware embodiment according at the double mode ADoC equipment 2902 shown in Figure 31 provides switch (switch) 3102, and this switch is the circuit that is configured to switching between WLAN RF circuit 3104 and ADoC RF circuit 3106.Can control switch 3102 by MAC layer software.This embodiment need be revised the WLAN chipset and add switch 3102 to amended chipset.
According in another hardware embodiment shown in Figure 32, can be in the position that aspect the adjacency of the MAC baseband portion 3100 of equipment, changes switch 3102.In this embodiment, transducer 3108 has reduced the frequency band (as the output of WLAN RF 3104 and be approximately 2.4GHz) of WLAN to ADoC frequency spectrum (be approximately 1GHz and can arrive long relatively distance in coaxial cable).Notice that MAC baseband portion 3100 can be to be characterized as to be configured to the communication equipment that makes that subscriber equipment can be communicated by letter with double mode ADoC equipment 2902.
Opposite with the embodiment of Figure 31, the embodiment of Figure 32 is outside existing WLAN chipset, and similarly, does not need to revise the WLAN chipset.
The MAC layer routine of double mode ADoC equipment
In double mode ADoC equipment 2902, basic cut-in method is the TDF agreement, and its mac-layer protocol with ADoC equipment 2903 is identical.
As shown in figure 34, there be tdfTotalTimeSlotNumber fixing time slot in each TDF super frame, and it is made up of following: one is used for the Sync time slot to ADoC STA tranmitting data register synchronizing information from ADoC AP; A contention slots that is used to send the register requirement that uplink time slot is distributed; ADoC STA by registration sends data and the employed tdfUplinkTimeSlotNumber of some a management frames uplink time slot to ADoC AP one by one; And transmit data and the employed tdfDownlinkTimeSlotNumber of some a management frames downlink time slots to STA by ADoC AP.
Utilize this TDF agreement, the double mode ADoC equipment 2902 that is in the STA pattern will just be (active) that activates during Sync time slot, contention slots, the uplink time slot (for example, time slot k) that is distributed and downlink time slots.Remaining time slot promptly, from time slot 2 to time slot k; And from time slot k to time slot m}, the double mode ADoC equipment that is in the STA pattern will be non-activation in the ADoC interface section, and the result, if exist available be controlled to will operation RF change into the switch of WLAN frequency band from the ADoC frequency band, then can switch to the WLANAP pattern.
Detailed MAC layer routine in double mode ADoC equipment is as follows:
1. in case ADoC STA is activated and has successfully been distributed and is used for the uplink time slot (for example, time slot k) that uplink traffic transmits, then whether dual mode device will calculate k>(m+2)/2.If k 〉=(m+2)/2, then mean by T [time slot 2, time slot k)The duration of indication [time slot 2, time slot k) equal by T at least (time slot k, time slot m]The duration of indication (time slot k, time slot m].As a result, double mode ADoC equipment will be chosen in [time slot 2, time slot k) operate in the WLAN pattern in during the period; On the other hand, if k<(m+2)/2, then mean T [time slot 2, time slot k)Be shorter than T (time slot k, time slot m]Therefore, double mode ADoC equipment will be chosen in (time slot k, time slot m] operate in the WLAN pattern in during the period.
Note, determine the period [time slot 2, time slot k) whether greater than the period (time slot k, time slot m] produced criterion (k-2)>(m-k), this has produced criterion k>(m+2)/2 then.In addition, in described embodiment, select the WLAN pattern to be used for the long period.Yet other embodiments, perhaps repeatedly change between pattern in super frame in the WLAN pattern in short period manipulate.
2. determine at [time slot 2 at double mode ADoC equipment, under the situation when operating in the WLAN pattern in time slot k) during the period, for other time slots in the TDF super frame, double mode ADoC equipment will operate in the ADoC pattern and move in the mode of the ADoC TDF agreement of establishing criteria as ADoC STA.Like this, when double mode ADoC equipment enters time slot 2 under the ADoC pattern, it will dispose RF switch 3102 frequency of operation being changed into the WLAN frequency spectrum, and serve as WLAN AP.Then, the WLAN routine that this double mode STA can establishing criteria is communicated by letter with WLANSTA in the dwelling house wlan network.
Along with the time continuation and near time slot k, and do not have residue to be used for the time of at least one WLAN frame exchange before the beginning of time slot k, then dual mode device 2902 sends CTS (clear to send) signals with all STA in dwelling house WLAN.Duration field in the CTS frame will equal the duration of the time slot 2 of time slot k in next super frame from this super frame.When receiving CTS message, all STA will upgrade their NAV and restriction access WLAN medium in by the duration of CTS message report.In this way, dual mode device will make that all STA keep mourning in silence by pretend to exist another entity to keep this WLAN medium in the period of the time slot 2 of the time slot k from this super frame in next super frame in this duration.After this, this equipment will be controlled switch and will operate frequency spectrum and change back the ADoC frequency band and operate according to the TDF routine.
Enter in the time slot 2 in next super frame when having arrived dual mode device 2902, equipment 2902 will repeat identical mode switch routine and the STA among the dwelling house WLAN also will bring into use this available infrastructure WLAN to communicate by letter once more, and this is because the duration of mourning in silence of being indicated by CTS stops simultaneously.
On the contrary, for double mode ADoC equipment decision wherein (time slot k, time slot m] situation when operating in the WLAN pattern in during the period, for other time slots in the TDF super frame, double mode ADoC equipment will operate in the ADoC pattern as STA.When double mode ADoC equipment 2902 enters time slot (k+1) under the ADoC pattern, it will dispose switch 3102 frequency of operation being changed into the WLAN frequency spectrum, and serve as AP.In case when passing through time slot (m-1) along with the time continuation, dual mode device attempts sending cts signal in will be during time slot m, and wherein the duration field equals the duration that begins the time slot (k+1) in next super frame of the downlink time slots from this super frame.After this, dual mode device 2902 will be controlled switch 2002 will operate frequency spectrum and change to the ADoC frequency band and to operate according to ADoC TDF routine.Thus, as previously described, when dual mode device enters time slot (k+1) in next super frame, it will carry out identical mode switch routine once more.
According to an embodiment, the dual mode device 2902 of the embodiment of present principles is integrated in the modulator-demodulator among Figure 10 (for example, 1010,1020 or the like).Figure 33 shows the example of this embodiment.Equally, just operating or during the WLAN communication of positive operative norm (, when operating in the suitable time period), this equipment allows user PC to be connected to the internet when dual mode device 2902.In this embodiment, the pc user will be by asking IP address (for example to the modulator-demodulator transmission to the request of IP address through the WLAN interface on wireless medium, webpage), and 2) modulator-demodulator via the ADoC interface on cable system to ADoC AP, then to router, to the Internet relay should the request.
In this embodiment, dual mode device 2902 comprises ADoC interface or equipment 1018 rather than Ethernet interface.
When the dual mode device of modulator-demodulator operates in WLAN (promptly, wireless mode) time, this filling apparatus is as WLAN AP, and personal computer serves as the WLAN station, and wherein dual mode device receives request via the Radio Link between modulator-demodulator and the personal computer from personal computer.Dual mode device is relayed to bridger with the request that is received, bridger determines based on the destination-address information in the IP of this request grouping whether dual mode device need send this request via the ADoC interface in this dual mode device on cable, whether perhaps definite dual mode device needs this request is sent to other PC in the home network.Then, bridger sends it back request (back down) dual mode device.
In order to be used to set up outside connection requests, dual mode device keeps this request to enter the ADoC pattern (promptly up to dual mode device, ray mode is arranged), dual mode device serves as the ADoC station and sends out this request to ADoC AP via the ADoC interface on cable network at this moment.
In order to be used for setting up the inside connection requests with other PC of home network, dual mode device keeps this request to enter the WLAN pattern (promptly up to dual mode device, wireless mode), it serves as WLANAP and sends out this request to destination PC via the WLAN interface on wireless medium at this moment.
As the dual mode device ADoC AP that is associated or other PC in the local network when receiving any response from cable system, will carry out reverse process.
As from foregoing data clearly, in some embodiment at least, can use (for example) public circuit or software to carry out a large amount of processing that are associated with WLAN pattern and ADoC pattern.For example, can carry out from the reception of the data of two kinds of patterns with unpack (depacketize) and between two kinds of patterns, change by public unit.Need the various application of this conversion to comprise potentially: the modulator-demodulator that (1) receives WLAN pattern input (such as the request that the internet is inserted) and uses the ADoC pattern that this input is sent from computer, and (2) receive the internet data of being asked and use the WLAN pattern these data to be sent to the modulator-demodulator of computer in the ADoC pattern.These situations will typically relate to the conversion between different agreement.
The various embodiments use communication units of dual mode device enable the communication in one or more patterns.Communication unit can comprise, for example, double mode ADoC equipment 2902, perhaps its part, for example, MAC base band 3100, WLAN RF 3104, and ADoC RF 3106.
Notice that modulator-demodulator not only can comprise aforesaid dual mode device, and can comprise and make it possible to pass the interface that other networks (except WLAN and ADoC) communicate.Other networks like this can comprise for example ethernet network.Correspondingly, modulator-demodulator can comprise dual mode device 2902 and the Ethernet interface 1015 that for example makes it possible to pass WLAN and ADoC network service.
Various embodiments (for example) are with a kind of form or another form visit data.Term " visit " is used to the term of broad sense, for example comprises obtaining, retrieve, receive, handle (manipulate) or processing in some way.Correspondingly, (for example) is description to the broad sense of possible embodiment to the description of visit data.
The feature and the aspect of described embodiment can be applied to various application.Application comprises that for example, as mentioned above, by using the communication framework (Ethernet-over-cable communication framework) of transmission ethernet signal on cable, the individual uses main process equipment and the Internet traffic in their family.Yet feature described here and aspect can adapt to other application, and correspondingly, and other application is possible with foreseeable.For example, the user can be positioned at outside their family, such as, for example be located in the public place or in their work place.Correspondingly, can use agreement and communication media except Ethernet and cable.For example, (and using the agreement that is associated) transmits and receive data in the following manner, and described mode has fiber optic cables, USB (USB) cable, small computer system interface (SCSI) cable, telephone wire, digital subscriber line/ring (DSL) circuit, satellite to connect, sight line (line-of-sight) connects and honeycomb connects.
Can implement embodiment described here with for example method or processing, device or software program.Even (for example, discussing as just method) only is discussed, also can implement the feature of the embodiment discussed with other form (for example, device or program) in the context of the embodiment of single form.Can come device for carrying out said with for example suitable hardware, software and firmware.Can implement described method in for example with lower device, all processors that for example is often referred in this way for treatment facility of this device for example comprise computer, microprocessor, integrated circuit or programmable logic device.Treatment facility also comprises communication equipment, such as, for example, computer, cell phone, portable/personal digital assistant (" PDA ") and the convenient miscellaneous equipment that between the end user, carries out information communication.
The embodiment of various processing described here and feature can obtain embodying in various equipment or application (particularly, for example, transmitting and receive equipment or the application that is associated with data).The example of equipment comprises video encoder, Video Decoder, Video Codec, the webserver, set-top box, laptop computer, personal computer and other communication equipment.As should be clearly, described equipment can be move and even be installed in the moving vehicle.
In addition, can implement described method by the instruction of carrying out by processor, and such instruction can be stored on the processor-readable medium, such as, for example integrated circuit, software carrier or other memory device (such as, for example hard disk, compact disk, random access memory (" RAM ") or read-only memory (" ROM ")).Described instruction can be formed on the application program of tangible embodiment on the processor-readable medium.As should be clearly, processor can comprise the processor readable medium with the instruction that for example is used to carry out processing.
About memory device, notice that the various device that runs through described embodiment typically comprises one or more memory devices.For example, although clearly the indication, modulator- demodulator 1010 and 1020 and AP 1030 (and various other elements) typically comprise one or more memory cell that are used to store data.Storage can be for example electronics, magnetic or optics.
As according to foregoing disclose with obvious, embodiment can also produce formatted signal with the carrying information that for example can be stored or transmit.Described information can comprise, for example is used for the instruction of manner of execution or the data that produced by one of described embodiment.Such signal can be formatted as electromagnetic wave for example (for example, using the radio frequency part of frequency spectrum) or be formatted as baseband signal.Stream modulated carrier that described format can comprise encoded data stream for example, carry out packetizing (packetize) and utilize packetizing according in the various frame structures any data flow after to coding.The information of signaling bearer can be analog or digital information for example.As is known, can transmit signal by various wired or Radio Link.
Claims (according to the modification of the 19th of treaty)
1. method comprises:
Use frame structure (2100) to communicate, described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein keep time slot in the described frame structure for equipment; And poll pattern, wherein use the polling time slot in the described frame structure to carry out data communication by a plurality of equipment.
2. the method for claim 1, wherein said frame structure is supported the third communication pattern, described the third communication pattern is the pattern based on contention of wherein using the contention slots in the described frame structure to carry out data communication by a plurality of equipment.
3. the method for claim 1, wherein said frame structure is the part of time-division function (TDF) communication system.
4. the method for claim 1, wherein:
The use of described frame structure is carried out by the TDF access point, and
Use described frame structure to be included in the time slot of described frame structure and receive data from the TDF station.
5. the method for claim 1 further comprises:
The polling list that keeps the station of wanting polled;
Determine in polling time slot, whether to remain time enough be used for the station poll is responded; And
If determine the residue time enough, then poll is transmitted at the station in described polling list.
6. method according to claim 5 further comprises the Frame that receives from the station that has been transmitted poll in response to the poll that is transmitted.
7. method according to claim 5, further comprise: in polling time slot, do not remain the Frame that time enough comes this station dispatcher queue of confession if (1) has been transmitted Frame or (2) that will not transmit at the station of poll, then receive empty frame in response to the poll that is transmitted from this station.
8. method according to claim 1 further comprises:
Receive first data from first equipment in polling time slot, described first equipment has used poll pattern to send data in polling time slot; And
Receive second data in the time slot that is the reservation of second equipment, merotype sent data when described second equipment had used in the time slot that keeps,
Wherein in identical frame, receive described first data and described second data.
9. method according to claim 1, wherein:
The use of described frame structure is carried out by the TDF station, and
Use frame structure to be included in the time slot of described frame structure and send data to the TDF access point.
10. method according to claim 1 further comprises:
Determine to use which kind of pattern to come to communicate at the place, station with access point; And
Use determined pattern to send data to described access point.
11. method according to claim 1 further comprises:
In polling time slot, receive poll from access point; And
The poll that transmits in response to receiving sends Frame to described access point.
12. method according to claim 1 further comprises:
In polling time slot, receive poll from access point; And
Do not send Frame if (1) do not exist the Frame that will send or (2) not to remain time enough in polling time slot, the poll that then transmits in response to receiving sends empty frame to described access point.
13. method according to claim 1 further comprises:
In polling time slot, receive poll from access point; And
In response to the poll that is received, transmitting medium access control (MAC) protocol Data Unit (MPDU).
14. method according to claim 1 further comprises: use point coordination function (PCF) the mechanism slave station during polling time slot that sends mac frame to send data.
15. a device comprises:
Communication unit (1010; 1030), be configured to use frame structure to communicate, described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein keep time slot in the described frame structure for equipment; And poll pattern, wherein use the polling time slot in the described frame structure to carry out data communication by a plurality of equipment.
16. device according to claim 15 further comprises:
Memory cell (1010; 1030), be used to store data.
17. device according to claim 15, wherein:
Described device is the part at TDF station, and
Described communication unit is configured to: by during the poll pattern in polling time slot, send data from TDF station to the TDF access point and use described frame structure.
18. device as claimed in claim 17, wherein said communication unit is configured to: (1) when determining in merotype or the poll pattern which used by the TDF station; And (2) then identify the PCF communication mechanism and be used for sending data during polling time slot if poll pattern is used.
19. device according to claim 17, wherein said communication unit are configured to notify TDF the communication pattern that is using at the station to the TDF access point.
20. device according to claim 15, wherein:
Described device is the part of TDF access point, and
Described communication unit is configured to: by in polling time slot, receive data at TDF access point place from the TDF station and use described frame structure.
21. device according to claim 20, wherein:
Described TDF access point comprises the some telegon that is configured to send at least one TDF station the poll that avoids contention during polling time slot; And
Described polling time slot is a part that is supported in the time slot of the employed TDF super frame of data business volume on the cable system.
22. a device comprises:
The parts (1010 that use frame structure to communicate; 1030), described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein be the time slot in the equipment retention frame structure; And poll pattern, wherein use the polling time slot in the frame structure to carry out data communication by a plurality of equipment.
23. device according to claim 22 further comprises:
Be used to store the parts (1010 of data; 1030).
24. device (1010 that comprises processor readable medium; 1030), described processor readable medium comprises thereon the instruction of using frame structure to communicate of being used to of storage, and described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein be the time slot in the equipment retention frame structure; And poll pattern, wherein use the polling time slot in the frame structure to carry out data communication by a plurality of equipment.
25. a signal that is used to carry data that makes up according to the form of supporting plurality of communication schemes, described signal comprises:
First is built into the time slot (2120) that is used for the time-division communication pattern, and described first is included as one or more time slots of each equipment reservation and the data of carrying described each equipment; And
Second portion is built into the polling time slot (2110) that is used for the polling communication pattern, does not have equipment to keep polling time slot in described polling communication pattern, and described second portion is at least one equipment carrying data in polling time slot.
26. signal according to claim 25, wherein said signal indication digital information.
27. signal according to claim 25, wherein said signal is an electromagnetic wave.
Illustrate or state (according to the modification of the 19th of treaty)
Explanation
Below appended content be content according to the 19th modification of PCT treaty
International office is received relevant claims modification of sending on 08 14th, 2008.
Replace original claim the 1-25 item with new claim the 1-27 item

Claims (25)

1. method comprises:
Use frame structure (2100) to communicate, described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein keep time slot in the described frame structure for equipment; And poll pattern, wherein use the polling time slot in the described frame structure to carry out data communication by a plurality of equipment.
2. the method for claim 1, wherein said frame structure is supported the third communication pattern, described the third communication pattern is the pattern based on contention of wherein using the contention slots in the described frame structure to carry out data communication by a plurality of equipment.
3. the method for claim 1, wherein said frame structure is the part of time-division function (TDF) communication system.
4. the method for claim 1, wherein:
The use of described frame structure is carried out by the TDF access point, and
Use described frame structure to be included in the time slot of described frame structure and receive data from the TDF station.
5. the method for claim 1 further comprises:
The polling list that keeps the station of wanting polled;
Determine in polling time slot, whether to remain time enough be used for the station poll is responded; And
If determine the residue time enough, then poll is transmitted at the station in described polling list.
6. method according to claim 5 further comprises the Frame that receives from the station that has been transmitted poll in response to the poll that is transmitted.
7. method according to claim 5, further comprise: in polling time slot, do not remain the Frame that time enough comes this station dispatcher queue of confession if (1) has been transmitted Frame or (2) that will not transmit at the station of poll, then receive empty frame in response to the poll that is transmitted from this station.
8. method according to claim 1 further comprises:
Receive first data from first equipment in polling time slot, described first equipment has used poll pattern to send data in polling time slot; And
Receive second data in the time slot that is the reservation of second equipment, merotype sent data when described second equipment had used in the time slot that keeps,
Wherein in identical frame, receive described first data and described second data.
9. method according to claim 1, wherein:
The use of described frame structure is carried out by the TDF station, and
Use frame structure to be included in the time slot of described frame structure and send data to the TDF access point.
10. method according to claim 1 further comprises:
Determine to use which kind of pattern to come to communicate at the place, station with access point; And
Use determined pattern to send data to described access point.
11. method according to claim 1 further comprises:
In polling time slot, receive poll from access point; And
The poll that transmits in response to receiving sends Frame to described access point.
12. method according to claim 1 further comprises:
In polling time slot, receive poll from access point; And
Do not send Frame if (1) do not exist the Frame that will send or (2) not to remain time enough in polling time slot, the poll that then transmits in response to receiving sends empty frame to described access point.
13. method according to claim 1 further comprises:
In polling time slot, receive poll from access point; And
In response to the poll that is received, transmitting medium access control (MAC) protocol Data Unit (MPDU).
14. method according to claim 1 further comprises: use point coordination function (PCF) the mechanism slave station during polling time slot that sends mac frame to send data.
15. a device comprises:
Communication unit (1010; 1030), be configured to use frame structure to communicate, described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein keep time slot in the described frame structure for equipment; And poll pattern, wherein use the polling time slot in the described frame structure to carry out data communication by a plurality of equipment; And
Memory cell (1010; 1030), be used to store data.
16. device according to claim 15, wherein:
Described device is the part at TDF station, and
Described communication unit is configured to: by during the poll pattern in polling time slot, send data from TDF station to the TDF access point and use described frame structure.
17. device as claimed in claim 16, wherein said communication unit is configured to: (1) when determining in merotype or the poll pattern which used by the TDF station; And (2) then identify the PCF communication mechanism and be used for sending data during polling time slot if poll pattern is used.
18. device according to claim 16, wherein said communication unit are configured to notify TDF the communication pattern that is using at the station to the TDF access point.
19. device according to claim 15, wherein:
Described device is the part of TDF access point, and
Described communication unit is configured to: by in polling time slot, receive data at TDF access point place from the TDF station and use described frame structure.
20. device according to claim 19, wherein:
Described TDF access point comprises the some telegon that is configured to send at least one TDF station the poll that avoids contention during polling time slot; And
Described polling time slot is a part that is supported in the time slot of the employed TDF super frame of data business volume on the cable system.
21. a device comprises:
The parts (1010 that use frame structure to communicate; 1030), described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein be the time slot in the equipment retention frame structure; And poll pattern, wherein use the polling time slot in the frame structure to carry out data communication by a plurality of equipment; And
Be used to store the parts (1010 of data; 1030).
22. device (1010 that comprises processor readable medium; 1030), described processor readable medium comprises thereon the instruction of using frame structure to communicate of being used to of storage, and described frame structure is supported two kinds of communication patterns at least, and described communication pattern comprises: the time merotype, wherein be the time slot in the equipment retention frame structure; And poll pattern, wherein use the polling time slot in the frame structure to carry out data communication by a plurality of equipment.
23. a signal that is used to carry data that makes up according to the form of supporting plurality of communication schemes, described signal comprises:
First is built into the time slot (2120) that is used for the time-division communication pattern, and described first is included as one or more time slots of each equipment reservation and the data of carrying described each equipment; And
Second portion is built into the polling time slot (2110) that is used for the polling communication pattern, does not have equipment to keep polling time slot in described polling communication pattern, and described second portion is at least one equipment carrying data in polling time slot.
24. signal according to claim 23, wherein said signal indication digital information.
25. signal according to claim 23, wherein said signal is an electromagnetic wave.
CN200780101294.5A 2007-08-31 2007-08-31 Method and apparatus for communicating in multiple modes Expired - Fee Related CN101843015B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2007/002613 WO2009026745A1 (en) 2007-08-31 2007-08-31 Method and apparatus for communicating in multiple modes

Publications (2)

Publication Number Publication Date
CN101843015A true CN101843015A (en) 2010-09-22
CN101843015B CN101843015B (en) 2017-05-17

Family

ID=40386646

Family Applications (1)

Application Number Title Priority Date Filing Date
CN200780101294.5A Expired - Fee Related CN101843015B (en) 2007-08-31 2007-08-31 Method and apparatus for communicating in multiple modes

Country Status (2)

Country Link
CN (1) CN101843015B (en)
WO (1) WO2009026745A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2024000119A1 (en) * 2022-06-27 2024-01-04 西门子股份公司 Wlan communication method, client, computing device, and storage medium

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114257262B (en) * 2020-09-25 2023-09-15 意法半导体股份有限公司 Communication method, corresponding system and equipment

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0712161B2 (en) * 1986-11-28 1995-02-08 日本電気株式会社 Multi-directional multiplex communication system
US6973067B1 (en) * 1998-11-24 2005-12-06 Telefonaktiebolaget L M Ericsson (Publ) Multi-media protocol for slot-based communication systems
US20020093929A1 (en) * 2001-01-18 2002-07-18 Koninklijke Philips Electronics N.V. System and method for sharing bandwidth between co-located 802.11a/e and HIPERLAN/2 systems
JP4176402B2 (en) * 2002-04-17 2008-11-05 シャープ株式会社 Communication management method, communication management program, recording medium recording communication management program, and communication station

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2024000119A1 (en) * 2022-06-27 2024-01-04 西门子股份公司 Wlan communication method, client, computing device, and storage medium

Also Published As

Publication number Publication date
WO2009026745A1 (en) 2009-03-05
CN101843015B (en) 2017-05-17

Similar Documents

Publication Publication Date Title
CN101843070B (en) Method and apparatus for communicating over multiple networks
KR101611377B1 (en) A method to improve channel utilization in a time division multiple access based protocol
CN102210118B (en) A method of data rate adaptation for multicast communication
US20090161687A1 (en) Medium Access Control Method for Data Transmission Through CATV Access Network
CN102801591B (en) Real-time data transmission method based on local area network
CN103457883A (en) DOCSIS upstream burst efficiency maximization and support for jumbo frames
EP2178230A1 (en) Performance improvement of dual mode devices for data over cable applications
CN101874382B (en) Bi-directional amplifier for data over coax application
CN101843015A (en) Method and apparatus for communicating in multiple modes
CN101828347B (en) Method and apparatus for communicating in multiple modes
CN101743732A (en) Data transmission and encapsulation
CN1642050B (en) Methods and apparatus for managing a shared transmission medium based on a TDMA/TDD scheme
EP2175590A1 (en) Method and apparatus for communicating over multiple networks
TWI379568B (en) Method and apparatus for communicating in multiple modes
US20040085992A1 (en) Shared-medium contention algorithm exhibiting fairness
TWI394417B (en) Method and apparatus for communicating in multiple modes
CN1138353C (en) Communication method for unbalanced transmission network
TW200926708A (en) Method and apparatus for communicating over multiple networks
Martin et al. Analysis of a multiple service MAC layer for two-way two-layer LMDS networks
CN111669830A (en) WLAN communication method and device

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant
CF01 Termination of patent right due to non-payment of annual fee
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20170517

Termination date: 20190831