WO2019201445A1 - Bandes non autorisées - Google Patents

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Publication number
WO2019201445A1
WO2019201445A1 PCT/EP2018/060081 EP2018060081W WO2019201445A1 WO 2019201445 A1 WO2019201445 A1 WO 2019201445A1 EP 2018060081 W EP2018060081 W EP 2018060081W WO 2019201445 A1 WO2019201445 A1 WO 2019201445A1
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WIPO (PCT)
Prior art keywords
user device
network element
parameters
causing
information
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Ceased
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PCT/EP2018/060081
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English (en)
Inventor
Hans Thomas Hoehne
Jari Pekka MUSTAJÄRVI
Janne Petteri Tervonen
Mika Ilkka Tapani Kasslin
Olli Petteri Alanen
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Nokia Solutions and Networks Oy
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Nokia Solutions and Networks Oy
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Priority to PCT/EP2018/060081 priority Critical patent/WO2019201445A1/fr
Publication of WO2019201445A1 publication Critical patent/WO2019201445A1/fr
Anticipated expiration legal-status Critical
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Classifications

    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W74/00—Wireless channel access
    • H04W74/08—Non-scheduled access, e.g. ALOHA
    • H04W74/0808—Non-scheduled access, e.g. ALOHA using carrier sensing, e.g. carrier sense multiple access [CSMA]
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/14—Spectrum sharing arrangements between different networks

Definitions

  • BACKGROUND BACKGROUND
  • Wireless communication systems are under constant development. The need for faster communication and huge increase of the data amount create chal lenges for the wireless communications systems.
  • One way to tackle the challenges is to make use of unlicensed spectrum. By its nature, the unlicensed spectrum is shared among numerous technologies that co-exist with each other, without nec essarily knowing their co-existence.
  • An aspect provides a user device comprising: two or more transceivers for providing different radio access to one or more unlicensed bands; at least one processor; and at least one memory including computer program code; the at least one memory and computer program code configured to, with the at least one pro cessor, cause the user device at least to perform: monitoring at least states of the two or more transceivers; causing sending at least one of the states to a network element providing services on at least one of the one or more unlicensed bands; and using, in response to receiving from the network element information on one or more parameters for the at least one of the one or more unlicensed bands, the one or more parameters.
  • the at least one memory and computer program code configured to, with the at least one processor, further cause the user device at least to perform the causing sending in response to at least one of the following: detect ing, by the user device, a change in a state of a transceiver; associating, by the user device, to the network element; and receiving, by the user device, from the network element a request for the states.
  • the at least one memory and computer program code configured to, with the at least one processor, further cause the user device at least to perform the causing sending in response to at least one of the following: main- taining in the memory as configuration information different parameter sets; re DCving the information on the one or more parameters as an indication of a param eter set to be used; and using the parameter set indicated.
  • An aspect provides a network element comprising: at least one proces sor; and at least one memory including computer program code; the at least one memory and computer program code configured to, with the at least one processor, cause the network element at least to perform: determining, based on at least state information on co-existing radios on an unlicensed band received from one or more user devices, one or more channel parameters for the unlicensed band; and causing informing the one or more user devices on the one or more channel parameters.
  • the at least one memory and computer program code con figured to, with the at least one processor, further cause the network element at least to perform causing sending request for the state information to the one or more user devices.
  • the at least one memory and computer program code configured to, with the at least one processor, further cause the network element at least to perform the informing by broadcasting either an indication of a param eter set to be used or the one or more parameters.
  • An aspect provides a method comprising: monitoring, by a user device, at least states of two or more transceivers of the user devices, said transceivers providing different radio access to one or more unlicensed bands; causing sending from the user device at least one of the states to a network element providing ser vices on at least one of the one or more unlicensed bands; receiving, by the user device, from the network element, information on one or more parameters for the at least one of the one or more unlicensed bands; and using the one or more pa rameters.
  • the method further comprises; detecting, by the user device, a change in a state of a transceiver; and causing the sending in response to the detecting.
  • the method further comprises associating, by the user de vice, to the network element; and causing the sending in response to the associat ing.
  • the method further comprises: receiving, by the user device, from the network element a request for the states; and causing the sending in response to the receiving the request.
  • the method further comprises: maintaining, by the user device, in a memory different parameter sets as configuration information; receiving, by the user device, the information on the one or more parameters as an indication of a parameter set to be used; and using, by the user device, the param eter set indicated.
  • Still another aspect provides a method comprising: receiving, by an net work element, from one or more user devices, state information on co-existing ra dios on an unlicensed band; determining, by the network element, based on at least received state information, one or more channel parameters for the unlicensed band; and causing, by the network element, informing the one or more user devices on the one or more channel parameters.
  • the method further comprises causing, by the network el ement, sending request for the state information to the one or more user devices.
  • the method further comprises performing the informing by broadcasting either an indication of a parameter set to be used or the one or more parameters.
  • An aspect provides a non-transitory computer readable medium com prising program instructions for causing an apparatus to perform at least the fol lowing: monitoring at least states of two or more transceivers of the apparatus; causing sending at least one of the states to a network element providing services on at least one of the one or more unlicensed bands; and using, in response to re DCving from the network element information on one or more parameters for the at least one of the one or more unlicensed bands, the one or more parameters.
  • Another aspect provides a computer program comprising instructions for causing an apparatus to perform at least the following: monitoring at least states of two or more transceivers of the apparatus; causing sending at least one of the states to a network element providing services on at least one of the one or more unlicensed bands; and using, in response to receiving from the network ele ment information on one or more parameters for the at least one of the one or more unlicensed bands, the one or more parameters.
  • Still another aspect provides a non-transitory computer readable me dium comprising program instructions for causing an apparatus to perform at least the following: determining, based on at least state information on co-existing ra dios on an unlicensed band received from one or more user devices, one or more channel parameters for the unlicensed band; and causing informing the one or more user devices on the one or more channel parameters.
  • An aspect provides a computer program comprising instructions for causing an apparatus to perform at least the following: determining, based on at least state information on co-existing radios on an unlicensed band received from one or more user devices, one or more channel parameters for the unlicensed band; and causing informing the one or more user devices on the one or more channel parameters.
  • An aspect provides a signal with embedded data comprising at least one or more values to indicate transceivers that provide in a user device different radio access to one or more unlicensed bands and tranceivers' current state.
  • Another aspect provides a signal with embedded data comprising at least one or more values to indicate one or more channel parameters for an unli censed band to user devices with transceivers providing different radio access to the unlicensed band.
  • the one or more values are within action frames.
  • FIGS. 1 and 2 illustrate exemplified wireless communication systems
  • FIGS 8 and 9 are schematic block diagrams.
  • Embodiments and examples described herein may be implemented in any communications system comprising wireless connection(s].
  • LTE Advanced, LTE-A long term evolution advanced
  • NR, 5G new radio
  • the embodiments may also be applied to other kinds of communications networks having suitable means by ad justing parameters and procedures appropriately.
  • UMTS universal mobile telecommunications system
  • UTRAN radio access network
  • LTE long term evolution
  • WiMAX wireless local area network
  • PCS personal communica tions services
  • WCDMA wideband code division multiple access
  • UWB ultra-wideband
  • sensor networks sensor networks
  • MANETs mobile ad-hoc networks
  • IMS Internet Protocol multimedia subsystems
  • Figure 1 depicts examples of simplified system architectures only show ing some elements and functional entities, all being logical units, whose implemen tation may differ from what is shown.
  • the connections shown in Figure 1 are logical connections; the actual physical connections may be different. It is apparent to a person skilled in the art that the system typically comprises also other functions and structures than those shown in Figure 1.
  • Figure 1 shows a part of an exemplifying radio access network.
  • Figure 1 shows user devices 101 and 101' configured to be in a wireless connection on one or more communication channels in a cell with an access node (such as (e/g]NodeB] 102 providing the cell.
  • the physical link from a user device to a (e/g]NodeB is called uplink or reverse link and the physical link from the (e/g]NodeB to the user device is called downlink or forward link.
  • (e/g]NodeBs or their functionalities may be implemented by using any node, host, server or access point etc. entity suitable for such a usage.
  • a communications system 100 typically comprises more than one (e/g]NodeB in which case the (e/g]NodeBs may also be configured to communicate with one another over links, wired or wireless, designed for the purpose. These links may be used for signalling purposes.
  • the (e/g]NodeB is a computing device configured to control the radio resources of communication system it is coupled to.
  • the NodeB may also be referred to as a base station, an access point (AP], an access node or any other type of interfacing device including a relay station capable of operating in a wireless environment.
  • the (e/g]NodeB includes or is coupled to transceivers.
  • a connection is provided to an antenna unit that establishes bi-directional radio links to user devices.
  • the an tenna unit may comprise a plurality of antennas or antenna elements.
  • the (e/g]NodeB is further connected to core network 105 (CN or next generation core NGC].
  • core network 105 CN or next generation core NGC.
  • the counterpart on the CN side can be a serving gateway (S-GW, routing and forwarding user data packets], packet data network gateway (P-GW], for providing connectivity of user devices (UEs] to external packet data networks, or mobile management entity (MME], etc.
  • S-GW serving gateway
  • P-GW packet data network gateway
  • MME mobile management entity
  • the user device also called UE, user equipment, user terminal, terminal device, etc.
  • UE user equipment
  • user terminal terminal device
  • any feature described herein with a user device may be implemented with a corresponding apparatus, such as a relay node.
  • a relay node is a layer 3 relay (self-backhauling relay] towards the base station.
  • the user device typically refers to a portable computing device that in cludes wireless mobile communication devices operating with or without a sub scriber identification module (SIM], including, but not limited to, the following types of devices: a mobile station (mobile phone], smartphone, personal digital as sistant (PDA], handset, device using a wireless modem (alarm or measurement de vice, etc.], laptop and/or touch screen computer, tablet, game console, notebook, and multimedia device.
  • SIM sub scriber identification module
  • a user device may also be a device having capability to operate in Internet of Things (IoT] network which is a scenario in which objects are provided with the ability to transfer data over a network with out requiring human-to-human or human-to-computer interaction.
  • IoT Internet of Things
  • the user de vice may also utilise cloud.
  • a user device may comprise a small portable device with radio parts (such as a watch, earphones or eyeglasses] and the computation is carried out in the cloud.
  • the user device (or in some em bodiments a layer 3 relay node] is configured to perform one or more of user equip ment functionalities.
  • the user device may also be called a subscriber unit, mobile station, remote terminal, access terminal, user terminal or user equipment (UE ⁇ just to mention but a few names or apparatuses.
  • CPS cyber physical system
  • ICT devices sensors, actuators, processors micro controllers, etc. ⁇ embedded in physical objects at different locations.
  • Mobile cyber physical systems in which the physical system in question has inherent mobility, are a subcategory of cyber-physical systems. Examples of mobile physical systems include mobile robotics and electronics transported by humans or animals.
  • apparatuses have been depicted as single en tities, different units, processors and/or memory units (not all shown in Figure 1 ⁇ may be implemented.
  • 5G enables using multiple input - multiple output (MIMO ⁇ antennas, many more base stations or nodes or corresponding network devices than the LTE (a so-called small cell concept ⁇ , including macro sites operating in co-operation with smaller stations and employing a variety of radio technologies depending on service needs, use cases and/or spectrum available.
  • MIMO ⁇ multiple input - multiple output
  • 5G mobile communications supports a wide range of use cases and related applications including video stream ing, augmented reality, different ways of data sharing and various forms of machine type applications (such as (massive ⁇ machine-type communications (mMTC ⁇ , in cluding vehicular safety, different sensors and real-time control.
  • mMTC ⁇ massive ⁇ machine-type communications
  • 5G is expected to have multiple radio interfaces, namely below 6GHz, cmWave and mmWave, and also being integradable with existing legacy radio access technologies, such as the LTE. Integration with the LTE may be implemented, at least in the early phase, as a system, where macro coverage is provided by the LTE and 5G radio interface access comes from small cells by aggregation to the LTE. In other words, 5G is planned to support both inter-RAT operability (such as LTE-5G ⁇ and inter-RI operability (in ter-radio interface operability, such as below 6GHz - cmWave, below 6GHz - cmWave - mmWave ⁇ .
  • inter-RAT operability such as LTE-5G ⁇
  • inter-RI operability in ter-radio interface operability, such as below 6GHz - cmWave, below 6GHz - cmWave - mmWave ⁇ .
  • One of the concepts considered to be used in 5G networks is network slicing in which multiple independent
  • the current architecture in LTE networks is fully distributed in the ra dio and fully centralized in the core network.
  • the low latency applications and ser vices in 5G require to bring the content close to the radio which leads to local break out and multi-access edge computing (MEC].
  • MEC multi-access edge computing
  • 5G enables analytics and knowledge generation to occur at the source of the data. This approach requires leveraging resources that may not be continuously connected to a network such as laptops, smartphones, tablets and sensors.
  • MEC provides a distributed computing environ ment for application and service hosting. It also has the ability to store and process content in close proximity to cellular subscribers for faster response time.
  • Edge computing covers a wide range of technologies such as wireless sensor networks, mobile data acquisition, mobile signature analysis, cooperative distributed peer- to-peer ad hoc networking and processing also classifiable as local cloud/fog com puting and grid/mesh computing, dew computing, mobile edge computing, cloud let, distributed data storage and retrieval, autonomic self-healing networks, remote cloud services, augmented and virtual reality, data caching, Internet of Things (massive connectivity and/or latency critical], critical communications (autono mous vehicles, traffic safety, real-time analytics, time-critical control, healthcare applications].
  • technologies such as wireless sensor networks, mobile data acquisition, mobile signature analysis, cooperative distributed peer- to-peer ad hoc networking and processing also classifiable as local cloud/fog com puting and grid/mesh computing, dew computing, mobile edge computing, cloud let, distributed data storage and retrieval, autonomic self-healing networks, remote cloud services, augmented and virtual reality, data caching, Internet of Things (massive connectivity and/or
  • the communication system is also able to communicate with other net works, such as a public switched telephone network or the Internet 106, or utilise services provided by them.
  • the communication network may also be able to sup port the usage of cloud services, for example at least part of core network opera tions may be carried out as a cloud service (this is depicted in Figure 1 by "cloud” 107].
  • the communication system may also comprise a central control entity, or a like, providing facilities for networks of different operators to cooperate for exam ple in spectrum sharing.
  • Edge cloud may be brought into radio access network (RAN] by utilizing network function virtualization (NVF] and software defined networking (SDN].
  • Us ing edge cloud may mean access node operations to be carried out, at least partly, in a server, host or node operationally coupled to a remote radio head or base sta tion comprising radio parts. It is also possible that node operations will be distrib uted among a plurality of servers, nodes or hosts.
  • Application of cloudRAN archi tecture enables RAN real time functions being carried out at the RAN side (in a dis tributed unit, DU 102] and non-real time functions being carried out in a central ized manner (in a centralized unit, CU 104].
  • 5G may also utilize satellite communication to enhance or complement the coverage of 5G service, for example by providing backhauling.
  • Possible use cases are providing service continuity for machine-to-machine (M2M] or Internet of Things (IoT] devices or for passengers on board of vehicles, or ensuring service availability for critical communications, and future railway/maritime/aeronautical communications.
  • Satellite communication may utilise geostationary earth orbit (GEO] satellite systems, but also low earth orbit (LEO] satellite systems, in partic ular mega-constellations (systems in which hundreds of (nano]satellites are de ployed ⁇ .
  • GEO geostationary earth orbit
  • LEO low earth orbit
  • Each satellite 103 in the mega-constellation may cover several satellite- enabled network entities that create on-ground cells.
  • the on-ground cells may be created through an on-ground relay node 102 or by a gNB located on-ground or in a satellite.
  • the depicted system is only an example of a part of a radio access system and in practice, the system may comprise a plurality of (e/g ⁇ NodeBs, the user device may have an access to a plu rality of radio cells and the system may comprise also other apparatuses, such as physical layer relay nodes or other network elements, etc. At least one of the (e/g ⁇ NodeBs or may be a Home(e/g ⁇ nodeB. Additionally, in a geographical area of a radio communication system a plurality of different kinds of radio cells as well as a plurality of radio cells may be provided.
  • Radio cells may be macro cells (or um brella cells] which are large cells, usually having a diameter of up to tens of kilome ters, or smaller cells such as micro-, femto- or picocells.
  • the (e/g]NodeBs of Figure 1 may provide any kind of these cells.
  • a cellular radio system may be implemented as a multilayer network including several kinds of cells. Typically, in multilayer net works, one access node provides one kind of a cell or cells, and thus a plurality of (e/g]NodeBs are required to provide such a network structure.
  • a network which is able to use “plug-and-play” includes, in addition to Home (e/g]NodeBs (H(e/g]nodeBs], a home node B gate- way, or HNB-GW (not shown in Figure 1 ⁇ .
  • HNB-GW HNB Gateway
  • a HNB Gateway (HNB-GW] which is typ ically installed within an operator's network may aggregate traffic from a large number of HNBs back to a core network.
  • Base stations called below access nodes, may sup port one or more radio access technologies configured to operate on the unli censed, licensed and/or shared frequency bands, and user devices may be config ured to support multiple radio access technologies, on the unlicensed, licensed, and/or on shared frequency bands.
  • radio access technologies using the unlicensed band include IEEE 802.11 (Wi-Fi], IEEE 802.15, IEEE 802.16, Long- Term Evolution Unlicensed (LTE-U], Licensed Assisted Access (LAA], LTE-Wi-Fi Aggregation (LWA], New Radio Licensed Assisted Access (NR-LAA], other unli censed variants standardized as a part of 5G technology, MulteFire.
  • Many of the user devices can send and receive data on multiple radio access technologies, such as cellular, Long Term Evolution (LTE], IEEE 802.11 (Wi-Fi], IEEE 802.15.1 (Blue tooth®], and other radio access technologies.
  • Some radio access technologies op erate also on licensed frequency bands. Further, some radio access technologies may operate on several unlicensed frequency band.
  • IEEE 802.11 op erates on 2.4 GHz, 5 GHz, and 60 GHz unlicensed frequency bands.
  • An example of a shared frequency band is citizens Broadband Radio Ser vice (CBRS] that operates on 3.5 GHz band, using the same radio interface as LTE in the licensed spectrum or in the unlicensed 5 GHz band.
  • CBRS citizens Broadband Radio Ser vice
  • FIG 2 illustrates a simplified example of a wireless system 200 hav ing co-existing wireless networks operating on unlicensed bands.
  • Wireless net works operating on unlicensed frequency bands have typically overlapping cover age areas in an uncontrolled manner. This arises from the fact that entities that establish the networks, e.g. business, communal, or private entities, are not man dated to negotiate about the spectrum utilization. For example, in a shopping cen tre various shops may each provide a wireless network for customers. Access nodes (or equally access points, APs] 220, 220', 220” of different managers (private or public] are illustrated in Figure 2.
  • APs access points
  • the different access nodes sup porting different radio access technologies or the same radio access technology with different bands, or in different networks may occupy radio resources, e.g. time-frequency resources that overlap and reduce capacity of one or more of the access nodes.
  • radio resources e.g. time-frequency resources that overlap and reduce capacity of one or more of the access nodes.
  • active information sharing on the spectrum usage one may, for example, implement different type of network etiquettes to facilitate band and channel sharing.
  • An access node may be configured to support information sharing.
  • an access node 220 sending and receiving information via one or more radios 221 may comprise a co-existence management unit 222 and one or more memories 223 storing at least temporarily co-existence related information.
  • the access node 220 pro vides a wireless local area network (WLAN], and therefore the radio 221 is a WLAN radio, the co-existence management unit 222 is called a clear channel assessment (CCA] manager and that the co-existence related information in the memory 223 is presence related information, without limiting the solution to such an example.
  • WLAN wireless local area network
  • CCA clear channel assessment
  • each access node 220', 220 may also be configured correspondingly, or one or both of them may be legacy access node not configured to support information sharing.
  • each access node which is configured to support information sharing, comprises a co-existence management unit (CCA manager] 222
  • CCA manager co-existence management unit
  • some, or all, access nodes, which are configured to support in formation sharing may be configured to use a common co-existence management unit.
  • the common co-existence management unit may be a cloud-based unit.
  • the user devices 210 (only one depicted in Figure 2], or some of them, that are configured to support different radio access technologies, or different bands, including one or more unlicensed bands, may be configured to support the information sharing.
  • the user device 210 comprising two or more different transceivers 211, 211' for different types of radio access technologies, comprises an unlicensed band unit 212 and in its memory 213 at least temporary information on at least states of the different types, and one or more parameters to be used for the unlicensed band.
  • the unlicensed band unit 212 comprises, as sub-units, a device radio manager (DRM] unit 212-1, and an enhanced WLAN station module unit (e-STA-m] 212-2, without limiting the solution to such an example.
  • DRM device radio manager
  • e-STA-m enhanced WLAN station module unit
  • herein term “radio” is used as a synonym to "a transceiver for a radio access technology” and term “user device” is used for the sake of clarity in the same meaning as station or non-AP STA is used in IEEE 802.11, i.e. as a device that is not operating as an access node.
  • the device radio manager unit 212-1 will be aware of at least transceiver types availa ble in the user device for unlicensed bands, and in a general level aware of their usage, for example whether a transceiver type is idle or active, i.e. its state, and informs the enhanced WLAN station module unit on presence of transceiver types and/or their states and/or state changes.
  • the device radio manager unit 212-1 may be aware of transmission/reception schedules. However, that is not necessary for the information sharing.
  • the enhanced WLAN station module unit is the unit re sponsible for information exchange with the access node.
  • the de vice radio manager unit gathers information on transceiver usage, or at least states, and informs the enhanced WLAN station module units, that in turn informs the ac cess node, via WLAN transceiver in the user device.
  • the device radio manager unit may be implemented in several different ways, for example, using function calls or using status registers that are readable and writable by different modules, like the enhances WLAN station module unit.
  • Figures 3 and 4 illustrate different functionality relating to information sharing in a user device, or more precisely different functionality of the unlicensed band unit.
  • states of the different transceiver types i.e. different radios
  • sending at least information on one or more states of one or more radios is caused in block 302.
  • the sending may be caused in response to detecting a change in the state information, and/or at certain intervals and/or in response to receiving from the access node a request for the state information.
  • information sent in block 302 may convey to the access node following information: "this user device has a new radio (NR] which went from idle to active”.
  • the indicated parameters are used in block 402 as long as new parameters are received (block 401). or otherwise indicated/configured (not shown in Figures).
  • Figure 5 illustrates an example of how to implement the information sharing in an access node. More precisely, it illustrates an example of functionali ties of the co-existence management unit.
  • state information i.e. information on at least one or more states of one or more radios
  • the information is used in block 502 to determine one or more pa rameters that are to be used, and informing user devices on the one or more pa rameters is caused in block 503.
  • the way the parameters are determined bears no significance, and therefore there is no need to describe the actual determining in detail.
  • information sent in block 503 may indicate to the user de vices to use for all transceiver types the same energy detection threshold.
  • a uniform parameterization to determine when a channel is free enable fair use of the unlicensed medium.
  • the energy detection thresh old is used herein only as an example of parameters for a concept, which can be called a channel sharing etiquette.
  • Such parameters relate to how devices, which operate on the same channel or on the same band, operate in terms of chan nel/band sharing. For example, signal level based etiquette, applied in 5 GHz unli censed band, for example, may be applied herein.
  • Another example includes having one or more parameters that indicate limits in a frequency domain, such as giving a bandwidth limit to the user devices.
  • Still a further example includes one or more parameters relating to an allowable channel operation time, i.e. time one is allowed to operate in the channel.
  • a duty cycle parameter could have a value between 0 and 1, the value indicating the relative use of the channel by the device.
  • Other examples include parameters] indicating an upper limit for contiguous transmission and/or a minimum time between two consecutive transmissions.
  • Fig ures 6 and 7 illustrate different information exchange scenarios, assuming that WLAN is used in information sharing, without limiting the examples to such a so lution. Further, it should be appreciated that even though one user device UE is illustrated in the examples, the user device is actually illustrating several user de vices served by the access node.
  • the user device UE triggers in point 6-1 sending state information to the access node (i.e., the access point, AP], and the information is sent in message 6-2.
  • the access node i.e., the access point, AP
  • an action frame sent in message 6-2 may be as follows:
  • the information is sent when the user device UE associates to the access node AP, or for some other reason issues a query to one of the access nodes APs.
  • message 6-2 may be an association request message, a probe request message, or a general advertisement service (GAS] based message including radio measurement report, for example.
  • GAS general advertisement service
  • the access node AP i.e. the clear channel assessment manager, gathers radio measurement reports received from user devices and determines, in point 6-3, the CCA parameter set to be used. For example, the access node AP may deter mine not to set a presence flag, if the user device has reported a radio that is not using the same resources as the access node. For example, the report may indicate that the radio uses different channels and/or time schedules. It should be appreci ated that there are multiple different ways how to convey the information, and fur ther that a variety of information may be communicated. However, at the simplest the report indicates or comprises the CCA parameter set.
  • the user device is (actually user devices are] informed on the set when the user device UE receives message 6-4 sent by the access node AP.
  • message 6-4 may be a beacon message (i.e. broad cast message] that comprises an information element conveying information on the CCA parameter set.
  • the message 6-4 may be a unicast message like a probe response or an association response message that comprises an infor mation element conveying information on the CCA parameter set.
  • the user device UE uses (point 6-5] the CCA parameter set communicated in the message.
  • the CCA parameter set may comprise the energy detection thresh old, for example.]
  • the user device has been preconfigured to con tain different CCA parameter sets, or the access node has sent prior the information exchange of Figure 6 one or more configuration messages to the user device UE, thereby configuring the user device with the different CCA parameter sets.
  • the parameter sets with associated index values maybe communicated over the air in beacon messages, and the parameter value set that the access node AP wants to be used is indicated with another parameter that is also communicated over the air, for example in a beacon message, a probe response, or an association response message.
  • the information element in message 6-4 may be a bit indicating which one of the CCA parameter sets to use.
  • the same approach may be used if, in future, possible parameter value sets have been specified in a specification, for example in IEEE 802.11 specification, and thereby also implemented in the user devices, with an associated set index, or cor responding information.
  • the information element in message 6-4 contains the CCA parameter set that is to be used.
  • message 6-4 may be used to indicate vari ous information relating to co-existence.
  • the access node AP may use message 6-4 to indicate, in addition to the CCA parameter set, also whether there are other radio technologies used (present] in the environment, for example by a flag (a kind of presence flag].
  • a flag a kind of presence flag.
  • such a flag, or any corre sponding piece of information may be used, for example by different values of the flag, to indicate (directly determine] one or more actions to be performed by the user device and/or type(s] of the other radio technology (types of other technolo gies], such as NR (by means of an NR flag "on " or "off”, for example].
  • such a flag may be used to indicate whether the other technology operates in another channel on the same band, or in the same channel (i.e. shares the channel]. It is also possible that such channel/band infor mation may indicate (determine], which CCA parameters are to be used. Naturally, such a flag may just be sent to the user device(s] as background information on the operating information.
  • the access node AP triggers sending state infor mation from the user device UE to the access node AP by sending message 7-1 que rying states of their radios, and the user device sends the state information in mes sage 7-2.
  • determining in point 7- 3 corresponds to determining in point 6-3
  • message 7-4 corresponds to message 6- 4
  • using in point 7-5 corresponds to using in point 6-5, and therefore they are not described in more detail with Figure 7.
  • the messages may re-use existing radio measurement category.
  • category field value '5' defined for radio measurement may be used in action frames, and in measurement request elements as an element identifier value '38' may be used, but for measurement type a new value, such as‘17’, which has not yet been defined to specify a specific measurement, may be used to specify that the measurement is for co-existence measurement.
  • the value in a field "measurement request” could be used to indicate what the user device should report.
  • value ⁇ ' requests the user device to report to the access node information on the user de vice's radios (radio interfaces ⁇ .
  • Another value could be used to request the user device to report on state changes in the user device's radios (radio interfaces ⁇ .
  • the user device may be requested to report whenever any of the radio interfaces that operates in an unlicensed band is activated or deactivated.
  • the user device may be also requested to report on changes in a mode of an active radio interface.
  • a radio interface may be operated, for example, in different modes, and the mode may have an impact on the behavior and requirements of the radio inter face. Examples of different modes include discovery mode, paging mode, power save mode, and active mode. It should be appreciated that if only one report type is in use, the measurement request field may be left empty.
  • category field value '5' defined for radio measurement may be used in action frames, but in the following field defining radio measurement action, new values are used. For example value '6' defines that the message is for co-existence meas urement request and value '7' defines that the message is a corresponding meas urement report message.
  • a new cate gory value such as '22' may be defined for co-existence measurements, and the first octet after the category value may be used to indicate, whether the frame is a co-existence measurement request frame (e.g. value ⁇ ' ⁇ , or a co-existence meas urement response frame (e.g. value ⁇ ' ⁇ .
  • the request and report elements may be the same as those described above.
  • the measurement report may contain a list of radios in the user device and their current state (active/inactive ⁇ , for example using following values with following meanings:
  • a user device may send infor mation on the state(s] of the transceiver (s] to those access nodes to which the user device is connected to (associated to ⁇ .
  • the actions performed by the access node may be performed fully or partly by another net work node or network element or even by multiple network nodes/elements.
  • said actions or at least some of said actions] may be performed, instead of the access node, by a core element or by an edge cloud (element ⁇ .
  • an apparatus/device configured to support information sharing based on at least partly on what is disclosed above with any of Figures 1 to 7, including implementing one or more functions/operations of a corresponding user device or access node (or network element] described above with an embod iment/example, for example by means of any of Figures 3 to 7, comprises not only prior art means, but also means for implementing the one or more functions/oper ations of a corresponding functionality described with an embodiment, for exam ple by means of any of Figures 3 to 7, and it may comprise separate means for each separate function/operation, or means may be configured to perform two or more functions/operations.
  • one or more of the means and/or the unli censed band unit, or its sub-units, and/or the co-existence management unit, or its sub-units, described above may be implemented in hardware (one or more de vices], firmware (one or more devices], software (one or more modules], or com binations thereof.
  • the apparatuses] of embodi ments may be implemented within one or more application-specific integrated cir cuits (ASICs], digital signal processors (DSPs], digital signal processing devices (DSPDs], programmable logic devices (PLDs], field programmable gate arrays (FPGAs], processors, controllers, micro-controllers, microprocessors, logic gates, decoder circuitries, encoder circuitries, other electronic units designed to perform the functions described herein by means of Figures 1 to 7, or a combination thereof.
  • ASICs application-specific integrated cir cuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGAs field programmable gate arrays
  • processors controllers, micro-controllers, microprocessors, logic gates, decoder circuitries, encoder circuitries, other electronic units designed to perform the functions described herein by means of Figures 1 to 7, or a combination thereof.
  • the implementation can be carried out through modules of at least one chips
  • the software codes may be stored in a memory unit and executed by processors.
  • the memory unit may be implemented within the proces sor or externally to the processor. In the latter case, it can be communicatively cou pled to the processor via various means, as is known in the art.
  • the components described herein may be rearranged and/or complemented by addi tional components in order to facilitate the achievements of the various aspects, etc., described with regard thereto, and they are not limited to the precise configu rations set forth in the given figures, as will be appreciated by one skilled in the art.
  • Figure 8 provides a user device (apparatus, equipment] according to some embodiments.
  • Figure 8 illustrates a user device configured to carry out at least the functions described above in connection with information sharing.
  • Each user device may comprise one or more communication control circuitry, such as at least one processor 802, and at least one memory 804, including one or more algo rithms 803, such as a computer program code (software] wherein the at least one memory and the computer program code (software] are configured, with the at least one processor, to cause the user device to carry out any one of the exemplified functionalities of the user device described above.
  • At least one of the communication control circuit ries in the user device (apparatus] 800 is configured to provide the unlicensed band unit, or its sub-units, and to carry out functionalities described above by means of any of Figures 2 to 7 by one or more circuitries.
  • the memory 804 may be implemented using any suitable data storage technology, such as semiconductor based memory devices, flash memory, magnetic memory devices and systems, optical memory devices and systems, fixed memory and removable memory.
  • the user device may further comprise different interfaces 801 such as two or more communication interfaces (TX/RX] comprising hardware and/or software for realizing communication connectivity over the me dium according to one or more communication protocols.
  • the communication in terface may provide the user device with communication capabilities to communi cate in the cellular communication system and enable communication between ter minal devices and different network nodes or elements, for example.
  • the commu nication interface may comprise standard well-known components such as an am plifier, filter, frequency-converter, (demodulator, and encoder/decoder circuit ries, controlled by the corresponding controlling units, and one or more antennas.
  • the communication interfaces comprise radio interface components providing the user device radio communication capability to use the unlicensed band.
  • the user device may also comprise different user interfaces.
  • Figure 9 provides an access node or other network node or network el ement (apparatus, device] according to some embodiments.
  • Figure 9 illustrates an access node or other network element (in the following, simply "the access node” for brevity] configured to carry out at least the functions described above in con nection with information sharing.
  • Each access node may comprise one or more communication control circuitry, such as at least one processor 902, and at least one memory 904, including one or more algorithms 903, such as a computer pro gram code (software] wherein the at least one memory and the computer program code (software] are configured, with the at least one processor, to cause the access node to carry out any one of the exemplified functionalities of the access node de scribed above.
  • At least one of the communication control circuit ries in the access node 900 is configured to provide the co-existence management unit, or its sub-units, and to carry out functionalities described above by means of any of Figures 2 to 7 by one or more circuitries.
  • the memory 904 may be implemented using any suitable data storage technology, such as semiconductor based memory devices, flash memory, magnetic memory devices and systems, optical memory devices and systems, fixed memory and removable memory.
  • the access node may further comprise different interfaces 901 such as one or more communication interfaces (TX/RX] comprising hardware and/or software for realizing communication connectivity over the me dium according to one or more communication protocols.
  • the communication in terface may provide the access node with communication capabilities to communi cate in the cellular communication system and enable communication between user devices (terminal devices] and different network nodes or elements and/or a communication interface to enable communication between different network nodes or elements, for example.
  • the communication interface may comprise stand ard well-known components such as an amplifier, filter, frequency-converter, (demodulator, and encoder/decoder circuitries, controlled by the corresponding controlling units, and one or more antennas.
  • the communication interfaces com prise radio interface components providing the access node radio communication capability to provide a cell with at least an unlicensed band.
  • the communication interfaces may comprise optical interface components providing the base station with optical fibre communication capability.
  • the term 'circuitry' may refer to one or more or all of the following: (a] hardware-only circuit implementations, such as implementations in only analog and/or digital circuitry, and (b] combinations of hardware circuits and software (and/or firmware], such as (as applicable]: (i] a combination of analog and/or digital hardware circuit(s] with software/firmware and (ii] any portions of hardware processor ⁇ ] with soft ware, including digital signal processor ⁇ ], software, and memory(ies] that work together to cause an apparatus, such as a user device or an access node, to perform various functions, and (c] hardware circuit(s] and processor(s], such as a micro processors] or a portion of a microprocessors], that requires software (e.g.
  • 'circuitry' applies to all uses of this term in this appli cation, including any claims.
  • the term 'circuitry' also covers an implementation of merely a hardware circuit or pro cessor (or multiple processors] or a portion of a hardware circuit or processor and its (or their] accompanying software and/or firmware.
  • the term 'circuitry' also co vers, for example and if applicable to the particular claim element, a baseband in tegrated circuit for an access node or a user device or other computing or network device.
  • the at least one processor, the memory, and the com puter program code form processing means comprises one or more computer program code portions for carrying out one or more operations according to any one of the embodiments of Figures 2 to 7 or operations thereof.
  • Embodiments as described may also be carried out in the form of a com puter process defined by a computer program or portions thereof.
  • Embodiments of the methods described in connection with Figures 1 to 7 may be carried out by executing at least one portion of a computer program comprising corresponding instructions.
  • the computer program may be provided as a computer readable me dium comprising program instructions stored thereon or as a non-transitory com puter readable medium comprising program instructions stored thereon.
  • the com puter program may be in source code form, object code form, or in some interme diate form, and it may be stored in some sort of carrier, which may be any entity or device capable of carrying the program.
  • the computer program may be stored on a computer program distribution medium readable by a computer or a processor.
  • the computer program medium may be, for example but not limited to, a record medium, computer memory, read-only memory, electrical carrier sig nal, telecommunications signal, and software distribution package, for example.
  • the computer program medium may be a non-transitory medium. Coding of soft ware for carrying out the embodiments as shown and described is well within the scope of a person of ordinary skill in the art.

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

Abstract

Selon l'invention, l'existence de réseaux sans fil sur des bandes de fréquences non autorisées est en constante augmentation. Par sa nature, le spectre non autorisé est partagé entre de nombreuses technologies qui coexistent entre elles, sans nécessairement connaître leur coexistence. Pour augmenter la connaissance sur la coexistence, un dispositif utilisateur comprenant deux émetteurs-récepteurs ou plus pour fournir un accès radio différent à au moins une bande non autorisée est configuré pour surveiller au moins des états des deux émetteurs-récepteurs ou plus, et pour envoyer des informations sur au moins l'un des états à un élément de réseau fournissant des services au moins sur la bande non autorisée. L'élément de réseau est configuré pour utiliser les informations pour déterminer au moins un ou plusieurs paramètres de canal pour la bande non autorisée, et pour informer le dispositif utilisateur sur les paramètres de canal. Le dispositif utilisateur est configuré pour utiliser les paramètres de canal.
PCT/EP2018/060081 2018-04-19 2018-04-19 Bandes non autorisées Ceased WO2019201445A1 (fr)

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Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3214889A2 (fr) * 2014-10-31 2017-09-06 Samsung Electronics Co., Ltd. Procédé et appareil de communication au moyen d'une bande sans licence dans un système de communications mobiles

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3214889A2 (fr) * 2014-10-31 2017-09-06 Samsung Electronics Co., Ltd. Procédé et appareil de communication au moyen d'une bande sans licence dans un système de communications mobiles

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APPLE INC: "NR Unlicensed Considerations", vol. RAN WG1, no. Sanya, China; 20180416 - 20180420, 15 April 2018 (2018-04-15), XP051427036, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/Meetings%5F3GPP%5FSYNC/RAN1/Docs/> [retrieved on 20180415] *
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