HUE034702T2 - Rendszerek és eljárások szomszédtudatos hálózaton belüli szinkronizációra - Google Patents

Rendszerek és eljárások szomszédtudatos hálózaton belüli szinkronizációra Download PDF

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Publication number
HUE034702T2
HUE034702T2 HUE14714468A HUE14714468A HUE034702T2 HU E034702 T2 HUE034702 T2 HU E034702T2 HU E14714468 A HUE14714468 A HU E14714468A HU E14714468 A HUE14714468 A HU E14714468A HU E034702 T2 HUE034702 T2 HU E034702T2
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Hungary
Prior art keywords
message
discovery
window
network
aspects
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HUE14714468A
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English (en)
Inventor
Santosh Paul Abraham
George Cherian
Alireza Raissinia
Guido Robert Frederiks
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Qualcomm Inc
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Publication of HUE034702T2 publication Critical patent/HUE034702T2/hu

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/08Access restriction or access information delivery, e.g. discovery data delivery
    • H04W48/10Access restriction or access information delivery, e.g. discovery data delivery using broadcasted information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0225Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
    • H04W52/0229Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal where the received signal is a wanted signal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0212Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave
    • H04W52/0216Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave using a pre-established activity schedule, e.g. traffic indication frame
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/18Self-organising networks, e.g. ad-hoc networks or sensor networks
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

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

Description

(12) EUROPEAN PATENT SPECIFICATION (45) Date of publication and mention (51) Int Cl.: of the grant of the patent: H04W 52102 <200901> H04W 84118 <2009 01> 19.04.2017 Bulletin 2017/16 (86) International application number: (21) Application number: 14714468.7 PCT/US2014/020743 (22) Date of filing: 05.03.2014 (87) International publication number: WO 2014/138229 (12.09.2014 Gazette 2014/37)
(54) SYSTEMS AND METHODS FOR SYNCHRONIZATION WITHIN A NEIGHBOR AWARE NETWORK
SYSTEME UND VERFAHREN ZUR SYNCHRONISIERUNG MIT EINEM NACHBARSCHAFTSBEWUSSTEN NETZWERK
SYSTEMES ET PROCEDES DE SYNCHRONISATION DANS UN RESEAU A L’ECOUTE DU VO IS I NAG E (84) Designated Contracting States: · CHERIAN, George AL AT BE BG CH CY CZ DE DK EE ES FI FR GB San Diego, California 92121-1714 (US) GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO · RAISSINIA, Alireza PL PT RO RS SE SI SK SM TR San Diego, California 92121-1714 (US) • FREDERIKS, Guido Robert (30) Priority: 08.03.2013 US 201361775298 P San Diego, California 92121-1714 (US) 04.03.2014 US 201414197018 (74) Representative: Wegner, Hans
(43) Date of publication of application: Bardehle Pagenberg Partnerschaft mbB 13.01.2016 Bulletin 2016/02 Patentanwalte, Rechtsanwalte
Prinzregentenplatz 7 (60) Divisional application: 81675 Miinchen (DE) 17157927.9 (56) References cited: (73) Proprietor: Qualcomm Incorporated WO-A2-2012/174151 US-A1-2006 221 927
San Diego, CA 92121 (US) US-A1- 2009 141 692 US-A1- 2011 038 358 (72) Inventors: • ABRAHAM, Santosh Paul San Diego, California 92121-1714 (US)
Description
BACKGROUND
Field [0001] The present application relates generally to wireless communications, and more specifically to systems, methods, and devices for synchronization in a peer-to-peer wireless network.
Background [0002] In many telecommunication systems, communications networks are used to exchange messages among several interacting spatially-separated devices. Networks may be classified according to geographic scope, which could be, for example, a metropolitan area, a local area, or a personal area. Such networks would be designated respectively as a wide area network (WAN), metropolitan area network (MAN), local area network (LAN), wireless local area network (WLAN), or personal area network (PAN). Networks also differ according to the switching/routing technique used to interconnect the various network nodes and devices (e.g. circuit switching vs. packet switching), the type of physical media employed for transmission (e.g. wired vs. wireless), and the set of communication protocols used (e.g. Internet protocol suite, SONET (Synchronous Optical Networking), Ethernet, etc.).
[0003] Wireless networks are often preferred when the network elements are mobile and thus have dynamic connectivity needs, or if the network architecture is formed in an ad hoc, rather than fixed, topology. Wireless networks employ intangible physical media in an unguided propagation mode using electromagnetic waves in the radio, microwave, infra-red, optical, etc. frequency bands. Wireless networks advantageously facilitate user mobility and rapid field deployment when compared to fixed wired networks.
[0004] Devices in a wireless network may transmit and/or receive information to and from each other. To carry out various communications, the devices may need to coordinate according to a protocol. As such, devices may exchange information to coordinate their activities. Improved systems, methods, and devices for coordinating transmitting and sending communications within a wireless network are desired.
[0005] Reference US 2009/0141692 A1 relates to improvements in wireless ad hoc network communication with IP networking. A protocol handler in a wireless device is described, which is coupled between a standard service discovery protocol module in the device, such as a Zeroconf protocol module or a UPnP protocol module, and at least one internet protocol stack in the device. The Transport, Internet, and Network Interface layers of the IP protocol stack are mapped by the protocol handler to corresponding functions in the standard service discov ery protocol module, using a service table for storing information on relationships between available services, wireless devices, and channels on one or more ad hoc wireless networks.
[0006] There still exists a need for an improved technique for synchronization within a neighbor aware network.
[0007] The present invention provides a solution according to the subject matter of the independent claims.
SUMMARY
[0008] The systems, methods, devices, and computer program products discussed herein each have several aspects, no single one of which is solely responsible for its desirable attributes. Without limiting the scope of this invention as expressed by the claims which follow, some features are discussed briefly below. After considering this discussion, and particularly after reading the section entitled "Detailed Description," it will be understood how advantageous features of this invention include reduced power consumption when introducing devices on a medium.
[0009] One aspect of the disclosure provides a method of enabling reduced power consumption in wireless devices operating in a neighbor aware network. The method includes generating a first message, the first message indicating beacon transmit window information, the beacon transmit window information indicating a first time interval when one or more beacon messages are trans-mittable, and transmitting the first message on the neighbor aware network. In some aspects, the beacon transmit window information further indicates a periodicity of a beacon transmit interval. In some aspects, the beacon transmit window information further indicates a duration of a beacon transmit window. In some aspects, a beacon message indicates a clock reference.
[0010] In some aspects, the method further includes transmitting a second message indicating discovery query window information, the discovery query window information indicating a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services. In some of these aspects, the discovery query window information further indicates a periodicity of a discovery query interval. In some of these aspects, the discovery query window information further indicates a duration of a discovery query window. In some aspects, the discovery query window information further indicates a clock reference of a start time of a discovery query window. In some aspects, the second message is the first message.
[0011] In some aspects, the method also includes transmitting a third message indicating discovery query response window information, the discovery query response window information indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message responding to one of the discovery query messages and indicating one or more services that may be provided by a node transmitting the discovery query response message. In some aspects, the discovery query response window information further indicates a periodicity of a discovery query response window. In some aspects, the discovery query response window information further indicates a duration of a discovery query response window. In some aspects, the discovery query response window information further indicates a clock reference of a start time of a discovery query response window. In some aspects, the first message is a synchronization beacon message. In some aspects, the third message is the first message.
[0012] In some aspects of the method, the first time interval is indicated in an attribute of a NAN Information Element included in the first message. In some aspects of the method the third time interval also indicates when unsolicited broadcast discovery messages may be transmitted.
[0013] Another aspect disclosed is an apparatus for enabling reduced power consumption in wireless devices operating in a neighbor aware network. The apparatus includes a processor configured to generate a first message, the first message indicating beacon transmit window information, the beacon transmit window information indicating a first time interval when one or more beacon messages are transmittable, and a transmitter configured to transmit the first message on the neighbor aware network.
[0014] In some aspects, the beacon transmit window information further indicates a periodicity of a beacon transmit interval. In some aspects, the beacon transmit window information further indicates a duration of a beacon transmit window. In some aspects, a beacon message indicates a clock reference.
[0015] In some aspects, the transmitter is further configured to transmit a second message indicating discovery query window information, the discovery query window information indicating a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services. In some aspects, the discovery query window information further indicates a periodicity of a discovery query interval. In some aspects, the discovery query window information further indicates a duration of a discovery query window. In some aspects, the discovery query window information further indicates a clock reference of a start time of a discovery query window. In some aspects, the second message is the first message.
[0016] In some aspects, the transmitter is further configured to transmit a third message indicating discovery query response window information, the discovery query response window information indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message responding to one of the discovery query messages and indicating one or more services that may be provided by a node transmitting the discovery query response message. In some aspects, the discovery query response window information further indicates a periodicity of a discovery query response window. In some aspects, the discovery query response window information further indicates a duration of a discovery query response window. In some aspects, the discovery query response window information further indicates a clock reference of a start time of a discovery query response window. In some aspects, the first message is a synchronization beacon message. In some aspects, the third message is the first message. In some aspects, the first time interval is indicated in an attribute of a NAN Information Element included in the first message. In some aspects, the third time interval also indicates when unsolicited broadcast discovery messages may be transmitted.
[0017] Another aspect disclosed is an apparatus for enabling reduced power consumption in wireless devices operating in a neighbor aware network. The apparatus includes means for generating a first message, the first message indicating beacon transmitwindow information, the beacon transmitwindow information indicating a first time interval when one or more beacon messages are transmittable, and means for transmitting the first message on the neighbor aware network. In some aspects, the beacon transmitwindow information further indicates a periodicity of a beacon transmit interval. In some aspects, the beacon transmit window information further indicates a duration of a beacon transmit window. In some aspects, a beacon message indicates a clock reference.
[0018] In some aspects, the apparatus also includes means for transmitting a second message indicating discovery query window information, the discovery query window information indicating a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services. In some aspects, the discovery query window information further indicates a periodicity of a discovery query interval. In some aspects, the discovery query window information further indicates a duration of a discovery query window. In some aspects, the discovery query window information further indicates a clock reference of a start time of a discovery query window. In some aspects, the second message is the first message.
[0019] In some aspects, the apparatus also includes means for transmitting a third message indicating discovery query response window information, the discovery query response window information indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message responding to one of the discovery query messages and indicating one or more services that may be provided by a node transmitting the discovery query response message. In some as- pects, the discovery query response window information further indicates a periodicity of a discovery query response window. In some aspects, the discovery query response window information further indicates a duration of a discovery query response window. In some aspects, the discovery query response window information further indicates a clock reference of a start time of a discovery query response window. In some aspects, the first message is a synchronization beacon message. In some aspects, the third message is the first message. In some aspects, the first time interval is indicated in an attribute of a NAN Information Element included in the first message. In some aspects, the third time interval also indicates when unsolicited broadcast discovery messages may be transmitted.
[0020] Another aspect disclosed is a computer readable storage medium including instructions that when executed cause a processor to perform a method of enabling reduced power consumption in wireless devices operating in a neighbor aware network, the method including generating a first message, the first message indicating beacon transmit window information, the beacon transmitwindow information indicating afirsttime interval when one or more beacon messages are transmittable, and transmitting the first message on the neighbor aware network. In some aspects, the beacon transmit window information further indicates a periodicity of a beacon transmit interval. In some aspects, the beacon transmit window information further indicates a duration of a beacon transmit window. In some aspects, a beacon message indicates a clock reference.
[0021] In some aspects, the method also includes transmitting a second message indicating discovery query window information, the discovery query window information indicating a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services. In some aspects, the discovery query window information further indicates a periodicity of a discovery query interval. In some aspects, the discovery query window information further indicates a duration of a discovery query window. In some aspects, the discovery query window information further indicates a clock reference of a start time of a discovery query window. In some aspects, the second message is the first message.
[0022] In some aspects, the method further comprising transmitting a third message indicating discovery query response window information, the discovery query response window information indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message responding to one of the discovery query messages and indicating one or more services that may be provided by a node transmitting the discovery query response message. In some aspects, the discovery query response window information further indicates a periodicity of a discovery query response win dow. In some aspects, the discovery query response window information further indicates a duration of a discovery query response window. In some aspects, the discovery query response window information further indicates a clock reference of a start time of a discovery query response window. In some aspects, the first message is a synchronization beacon message. In some aspects, the third message is the first message. In some aspects, the first time interval is indicated in an attribute of a NAN Information Element included in the first message. In some aspects, the third time interval also indicates when unsolicited broadcast discovery messages may be transmitted.
[0023] Another aspect disclosed is a method of saving power in a wireless device when operating in a neighbor aware network. The method includes receiving a first message, the first message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network, entering a sleep state during a time period outside the first time interval, and receiving or transmitting a beacon message during the first time interval. In some aspects, entering a sleep state reduces power consumption of the wireless device.
[0024] In some aspects, the method also includes receiving a second message indicating discovery query window information, the discovery query window information including a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, wherein the sleep state is entered during a time period outside both the first time interval and the second time interval. In some aspects, the discovery query window information includes a duration of a discovery query window. In some aspects, the discovery query window information includes a periodicity or frequency of a discovery query window. In some aspects, the method also includes determining a start time for a discovery query window based on a local clock reference and the periodicity. In some aspects, the method also includes determining a transmission time for a discovery query message based on a discovery query window start time and a random delay, and transmitting the discovery query message at the determined transmission time. In some aspects, the random delay includes a CSMA back-off delay. In some aspects, the method also includes transmitting or receiving a discovery query message during the second time interval. In some aspects, the second message is the first message.
[0025] In some aspects, the method also includes receiving a third message indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message in response to a discovery query message and indicating one or more services that may be provided by a node transmitting the discovery response message. In some aspects, the method also in- eludes transmitting or receiving a discovery query response message during the third time interval, wherein the sleep state is entered during a time period outside the first, second, and third time intervals. In some aspects, the discovery query response window information includes a duration of a discovery query response window. In some aspects, the discovery query response window information includes a periodicity of a discovery query response window. In some aspects, the method also includes determining a start time of a discovery query response window based on a local clock reference and the periodicity. In some aspects, the method also includes determining a start time of a discovery query response window based on a local clock reference and the periodicity. In some aspects, the method includes determining a transmission time for a discovery query response message based on a discovery query response window start time and a random delay; and transmitting the discovery query response message at the determined transmission time. In some aspects, the random delay includes a CSMA back-off delay. In some aspects, the third message is the first message. In some aspects, the second time interval and the third time interval overlap. In some aspects, the second time interval and the third time interval do not overlap. In some aspects, the second time interval and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval do not overlap.
[0026] Another aspect disclosed is an apparatus for saving power in a wireless device when operating in a neighbor aware network. The apparatus includes a receiver configured to receive a first message, the first message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are trans-mittable on the neighbor aware network, a processor configured to cause the wireless device to enter asleep state during a time period outside the first time interval, and a receiver configured to receive ortransmit a beacon message during the first time interval. In some aspects, entering a sleep state reduces power consumption of the wireless device.
[0027] In some aspects, the apparatus also includes a receiver configured to receive a second message indicating discovery query window information, the discovery query window information including a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, wherein the sleep state is entered during a time period outside both the first time interval and the second time interval. In some of these aspects, the apparatus also includes a processor configured to determine a transmission time for a discovery query message based on a discovery query window start time and a random delay, and a transmitter configured to transmit the discovery query message at the determined transmission time. In some aspects, the random delay includes a CSMA back-off delay. In some aspects, the discovery query window information includes a duration of a discovery query window. In some aspects, the discovery query window information includes a periodicity or frequency of a discovery query window. In some aspects, the apparatus also includes a processor configured to determine a start time for a discovery query window based on a local clock reference and the periodicity. In some aspects, the apparatus also includes a transmitter configured to transmit or a receiver configured to receive a discovery query message during the second time interval. In some aspects, the second message is the first message.
[0028] In some aspects, the apparatus also includes a receiver configured to receive a third message indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message in response to a discovery query message and indicating one or more services that may be provided by a node transmitting the discovery response message. In some aspects, the apparatus also includes a transmitter configured to transmit or a receiver configured to receive a discovery query response message during the third time interval, wherein the sleep state is entered during a time period outside the first, second, and third time intervals. In some aspects, the apparatus also includes a processor configured to determine a transmission time for a discovery query response message based on a discovery query response window start time and a random delay, and a transmitter configured to transmit the discovery query response message at the determined transmission time. In some aspects, the random delay includes a CSMA back-off delay. In some aspects, the discovery query response window information includes a duration of a discovery query response window. In some aspects, the discovery query response window information includes a periodicity of a discovery query response window. In some aspects, the apparatus also includes a processor configured to determine a start time of a discovery query response window based on a local clock reference and the periodicity. In some aspects, the third message is the first message. In some aspects, the second time interval and the third time interval overlap. In some aspects, the second time interval and the third time interval do not overlap. In some aspects, the second time interval and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval do not overlap.
[0029] Another aspect disclosed is an apparatus for saving power in a wireless device when operating in a neighbor aware network. The apparatus includes means for receiving a first message, the first message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network, means forentering a sleep state during a time period outside the first time interval, and means for receiving or transmitting a beacon message during the first time interval. In some aspects, the means for entering a sleep state reduces power consumption of the wireless device when the device is in the sleep state.
[0030] In some aspects, the apparatus also includes means for receiving a second message indicating discovery query window information, the discovery query window information including a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, wherein the sleep state is entered during a time period outside both the first time interval and the second time interval. In some aspects, the apparatus also includes means for determining a transmission time for a discovery query message based on a discovery query window start time and a random delay, and means for transmitting the discovery query message at the determined transmission time. In some aspects, the random delay includes a CS-MA back-off delay.
[0031] In some aspects, the discovery query window information includes a duration of a discovery query window. In some aspects, the discovery query window information includes a periodicity orfrequency of a discovery query window. In some aspects, the apparatus also includes means for determining a start time for a discovery query window based on a local clock reference and the periodicity. In some aspects the apparatus also includes means for transmitting or receiving a discovery query message during the second time interval. In some aspects, the second message is the first message.
[0032] In some aspects, the apparatus also includes means for receiving a third message indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message in response to a discovery query message and indicating one or more services that may be provided by a node transmitting the discovery response message. In some aspects, the apparatus also includes means for transmitting or receiving a discovery query response message during the third time interval, wherein the sleep state is entered during a time period outside the first, second, and third time intervals.
[0033] In some aspects, the apparatus also includes means for determining a transmission time for a discovery query response message based on a discovery query response window start time and a random delay, and means for transmitting the discovery query response message at the determined transmission time. In some aspects, the random delay includes a CSMA back-off delay. In some aspects, the discovery query response window information includes a duration of a discovery query response window. In some aspects, the discovery query response window information includes a periodicity of a discovery query response window. In some as pects, the apparatus also includes meansfordetermining a start time of a discovery query response window based on a local clock reference and the periodicity. In some aspects, the third message is the first message. In some aspects, the second time interval and the third time interval overlap. In some aspects, the second time interval and the third time interval do not overlap. In some aspects, the second time interval and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval do not overlap.
[0034] Another aspect disclosed is a computer readable storage medium comprising instructions that when executed cause a processor to perform a method of saving power in a wireless device when operating in a neighbor aware network, the method including receiving a first message, the first message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network;, entering a sleep state during a time period outside the first time interval, and receiving or transmitting a beacon message during the first time interval. In some aspects, entering a sleep state reduces power consumption of the wireless device. In some aspects, the method further comprising receiving a second message indicating discovery query window information, the discovery query window information including a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, wherein the sleep state is entered during a time period outside both the first time interval and the second time interval. In some aspects, the discovery query window information includes a duration of a discovery query window. In some aspects, the discovery query window information includes a periodicity or frequency of a discovery query window.
[0035] In some aspects, the method also includes determ i n ing a start time for a discovery query window based on a local clock reference and the periodicity. In some aspects, the method also includes transmitting or receiving a discovery query message during the second time interval. In some aspects, the second message is the first message. In some aspects, the method also includes receiving a third message indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message in response to a discovery query message and indicating one or more services that may be provided by a node transmitting the discovery response message. In some aspects, the method also includes transmitting or receiving a discovery query response message during the third time interval, wherein the sleep state is entered during a time period outside the first, second, and third time intervals. In some as- pects, the discovery query response window information includes a duration of a discovery query response window. In some aspects, the discovery query response window information includes a periodicity of a discovery query response window. In some aspects, the method also includes determining a start time of a discovery query response window based on a local clock reference and the periodicity. In some aspects, the third message is the first message. In some aspects, the second time interval and the third time interval overlap. In some aspects, the second time interval and the third time interval do not overlap. In some aspects, the second time interval and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval do not overlap.
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] FIG. 1a illustrates an example of a wireless communication system. FIG. 1b illustrates another example of a wireless communication system. FIG. 2 illustrates afunctional block diagram of a wireless device that may be em ployed within the wireless communication system of FIG. 1a or FIG. 1b. FIG. 3 illustrates an example of a communication system in which aspects of the present disclosure may be employed. FIG. 4 illustrates an exemplary discovery window structure for an STA to communicate with an AP to discover a NAN in accordance with an exemplary implementation of the invention. FIG. 5 shows an exemplary structure of a media access control (MAC) frame. FIG.6A shows an exemplary attribute of a NAN information element. FIG.6B shows an exemplary attribute of a NAN information element. FIG.7 is a timing diagram illustrating one embodiment of a beacon window, discovery query window, and discovery query response window. FIG.8 is a timing diagram illustrating one embodiment of a beacon window, discovery query window, and discovery query response window. FIG.9 is a timing diagram illustrating one embodiment of a beacon window, discovery query window, and discovery query response window. FIG.10 is a flowchart of a method of reducing power consumption of mobile devices participating in a neighbor aware network. FIG. 11 is a flowchart of a method of saving power in a mobile device participating in a neighbor aware network.
DETAILED DESCRIPTION
[0037] The word "exemplary" is used herein to mean "serving as an example, instance, or illustration." Any embodiment described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other embodiments. Various aspects of the novel systems, apparatuses, and methods are described more fully hereinafter with reference to the accompanying drawings. This disclosure may, however, be embodied in many different forms and should not be construed as limited to any specific structure or function presented throughout this disclosure. Rather, these aspects are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Based on the teachings herein one skilled in the art should appreciate that the scope of thedisclosure is intended to coverany aspect of the novel systems, apparatuses, and methods disclosed herein, whether implemented independently of, or combined with, any other aspect of the invention. For example, an apparatus may be implemented or a method may be practiced using any number of the aspects set forth herein. In addition, the scope of the invention is intended to cover such an apparatus or method which is practiced using other structure, functionality, or structure and functionality in addition to or other than the various aspects of the invention set forth herein. It should be understood that any aspect disclosed herein may be embodied by one or more elements of a claim.
[0038] Although particular aspects are described herein, many variations and permutations of these aspects fall within the scope of the disclosure. Although some benefits and advantages of the preferred aspects are mentioned, the scope of the disclosure is not intended to be limited to particular benefits, uses, or objectives. Rather, aspects of the disclosure are intended to be broadly applicable to different wireless technologies, system configurations, networks, and transmission protocols, some of which are illustrated by way of example in the figures and in the following description of the preferred aspects. The detailed description and drawings are merely illustrative of the disclosure rather than limiting, the scope of the disclosure being defined by the appended claims and equivalents thereof.
[0039] Wireless network technologies may include various types of wireless local area networks (WLANs). A WLAN may be used to interconnect nearby devices together, employing widely used networking protocols. Flowever, the various aspects described herein may apply to any communication standard, such as a wireless protocol.
[0040] In some implementations, a WLAN includes various devices which are the components that access the wireless network. For example, there may be two types of devices: access points ("APs") and clients (also referred to as stations, or "STAs"). In general, an AP may serve as a hub or base station for the WLAN and a STA serves as a user of the WLAN. For example, a STA may be a laptop computer, a personal digital assistant (PDA), a mobile phone, etc. In an example, a STA connects to an AP via a WiFi (e.g., IEEE 802.11 protocol) compliant wireless link to obtain general connectivity to the Internet or to other wide area networks. In some implementations a STA may also be used as an AP.
[0041] An access point ("AP") may also comprise, be implemented as, or known as a NodeB, Radio Network Controller ("RNC"), eNodeB, Base Station Controller ("BSC"), Base Transceiver Station ("BTS"), Base Station ("BS"), Transceiver Function ("TF"), Radio Router, Radio Transceiver, or some other terminology.
[0042] A station "STA" may also comprise, be implemented as, or known as an access terminal ("AT"), a subscriber station, a subscriber unit, a mobile station, a remote station, a remote terminal, a userterminal, a user agent, a user device, user equipment, or some other terminology. In some implementations an access terminal may comprise a cellular telephone, a cordless telephone, a Session Initiation Protocol ("SIP") phone, a wireless local loop ("WLL") station, a personal digital assistant ("PDA"), a handheld device having wireless connection capability, or some other suitable processing device or wireless device connected to a wireless modem. Accordingly, one or more aspects taught herein may be incorporated into a phone (e.g., a cellular phone or smartphone), a computer (e.g., a laptop), a portable communication device, a headset, a portable computing device (e.g., a personal data assistant), an entertainmentdevice (e.g., a music or video device, or a satellite radio), a gaming device or system, a global positioning system device, or any other suitable device that is configured to communicate via a wireless medium.
[0043] As discussed above, one or more nodes of a peer to peer network may transmit synchronization messages to coordinate one or more availability windows for communication between nodes of the peer to peer network. The nodes may also exchange discovery queries and responses to provide for service discovery between devices operating within the same peer to peer or neighbor aware network. A neighbor aware network may be considered a peer to peer network or an ad-hoc network in some aspects. The nodes repeatedly wake from a sleep state to periodically transmit and/or receive synchronization messages and discovery messages. It would be advantageous if the nodes 106 were able to stay longer in a sleep state to conserve power and not wake from the sleep state to transmit and/or receive synchronization messages on the network. In addition, the transmission and retransmissions ofsynchronization and discovery messages by the nodes 106 may introduce a large amount of unnecessary overhead to the network [0044] These synchronization and discovery messages may be transmitted on a fixed interval. For example, these synchronization and discovery messages may be transmitted once every 5, 10, 20, 50, or 100 availability windows. Flowever, a fixed interval may be problematic as too short an interval may result in unnecessary network overheard, while too long an interval may result in synchronization error due to clock drift. Thus, it may be beneficial to optimize the intervals between synchronization messages in order to minimize synchronization errors while also minimizing unnecessary network overhead. It may also be beneficial to optimize the timing and duration of intervals used for nodes on the neighbor aware network to exchange discovery messages. This may ensure that adequate time is reserved for discovery queries and discovery query responses, so as to avoid excessive collisions which result in a need for costly retransmissions.
[0045] This disclosure provides methods, apparatus, and computer readable media that, in some aspects, generate or receive messages defining one or more of a beacon window, discovery query window, and/or discovery query response window. These messages enable the timing of one or more of these windows to be dynamically configured and controlled. For example, in some aspects, the length of one or more of the beacon, discovery query, and/or discovery query response windows may be dynamically configured based on the number of devices using a neighbor aware network, and/or the amount of network traffic or collisions on the neighbor aware network or within one or more of the windows. By dynamically configuring the timing and/or length of one or more of these windows, network latency may be reduced and/or network throughput may be improved. Additionally, in some aspects, devices participating in the neighbor aware network may utilize the information provided by the disclosed messages to increase the amount of time they spend in a reduced powerstate. For example, some devices may selectively configure one or more of a receiver, processor, and/or transmitter to operate in a reduced power state when outside one or more of the beacon, discovery query, and/or discovery query response windows. This may result in increased battery life for these devices.
[0046] FIG. 1a illustrates an example of a wireless communication system 100. The wireless communication system 100 may operate pursuant to a wireless standard, such as an 802.11 standard. The wireless communication system 100 may include an AP 104, which communicates with STAs. In some aspects, the wireless communication system 100 may include more than one AP. Additionally, the STAs may communicate with other STAs. As an example, a first STA 106a may communicate with a second STA 106b. As another example, a first STA 106a may communicate with a third STA 106c although this communication link is not illustrated in FIG. 1a.
[0047] A variety of processes and methods may be used for transmissions in the wireless communication system 100 between the AP 104 and the STAs and between an individual STA, such as the first STA 106a, and another individual STA, such as the second STA 106b. For example, signals may be sent and received in ac- cordance with OFDM/OFDMA techniques. If this is the case, the wireless communication system 100 may be referred to as an OFDM/OFDMA system. Alternatively, signals may be sent and received between the AP 104 and the STAs and between an individual STA, such as the first STA 106a, and another individual STA, such as the second STA 106b, in accordance with CDMA techniques. If this is the case, the wireless communication system 100 may be referred to as a CDMA system.
[0048] A communication link may be established between STAs. Some possible communication links between STAs are illustrated in FIG. 1a. As an example, a communication link 112 may facilitate transmission from the first STA 106a to the second STA 106b. Another communication link 114 may facilitate transmission from the second STA 106b to the first STA 106a.
[0049] The AP 104 may act as a base station and provide wireless communication coverage in a basic service area (BSA) 102. The AP 104 along with the STAs associated with the AP 104 and that use the AP 104 for communication may be referred to as a basic service set (BSS).
[0050] It should be noted that the wireless communication system 100 may not have a central AP 104, but rather may function as a peer-to-peer network between the STAs. Accordingly, the functions of the AP 104 described herein may alternatively be performed by one or more of the STAs.
[0051] FIG. 1b illustrates an example of a wireless communication system 160 that may function as a peer-to-peer network. For example, the wireless communication system 160 in FIG. 1b shows STAs 106a-106i that may communicate with each other without the presence of an AP. As such, the STAs, 106a-106i may be configured to communicate in different ways to coordinate transmission and reception of messages to prevent interference and accomplish various tasks. In one aspect, the networks shown in FIG. 1b may be configured as a "neighbor awareness networking" (NAN). In one aspect, a NAN may referto a network for communication between STAs that are located in close proximity to each other. In some cases the STAs operating within the NAN may belong to different network structures (e.g., STAs in different homes or buildings as part of independent LANs with different external network connections).
[0052] In some aspects, a communication protocol used for communication between nodes on the peer to peercommunications network 160 may schedule periods of time during which communication between network nodes may occur. These periods of time when communication occurs between STAs 106a-106i may be known as availability windows. An availability window may include a discovery interval or paging interval as discussed further below.
[0053] The protocol may also define other periods of time when no communication between nodes of the network is to occur. In some embodiments, nodes may enter one or more sleep states when the peer to peer network 160 is not in an availability window. Alternatively, in some embodiments, portions of the stations 106a-i may enter a sleep state when the peer to peer network is not in an availability window. For example, some stations may include networking hardware that enters a sleep state when the peer to peer network is not in an availability window, while other hardware included in the STA, for example, a processor, an electronic display, or the like do not enter a sleep state when the peer to peer network is not in an availability window.
[0054] The peer to peer communication network 160 may assign one node to be a root node. In FIG. lb, the assigned root node is shown as STA 106e. In peer to peer network 160, the root node is responsible for periodically transmitting synchronization signals to other nodes in the peer to peer network. The synchronization signals transmitted by root node 160e may provide a timing reference for other nodes 106a-d and 106f-i to coordinate an availability window during which communication occurs between the nodes. For example, a synchronization message 172a-172d may be transmitted by root node 106e and received by nodes 106b-106c and 106f-106g. The synchronization message 172 may provide a timing source for the STAs 106b-c and 106f-106g. The synchronization message 172 may also provide updates to a schedule for future availability windows. The synchronization messages 172 may also function to notify STAs 106b-106c and 106f-106g that they are still present in the peer to peer network 160.
[0055] Some of the nodes in the peer to peer communication network 160 may function as branch synchronization nodes. A branch synchronization node may retransmit both availability window schedule and master clock information received from a root node. In some embodiments, synchronization messages transmitted by a root node may include availability window schedule and master clock information. In these embodiments, the synchronization messages may be retransmitted by the branch synchronization nodes. In FIG. lb, STAs 106b-106c and 106f-106g are shown functioning as branch-synchronization nodes in the peerto peer communication network 160. STAs 106b-106c and 106f-106g receive the synchronization message 172a-172d from root node 106e and retransmit the synchronization message as retransmitted synchronization messages 174a-174d. By retransmitting the synchronization message 172 from root node 106e, the branch synchronization nodes 106b-106c and 106f-106g may extend the range and improve the robustness of the peerto peer network 160.
[0056] The retransmitted synchronization messages 174a-174d are received by nodes 106a, 106d, 106h, and 106i. These nodes may be characterized as "leaf" nodes, in that they do not retransmit the synchronization message they receive from either the root node 106e or the branch synchronization nodes 106b-106c or106f-106g.
[0057] Synchronization messages, or synchronization frames, may be transmitted periodically. However, periodic transmission of synchronization messages may be problematic for the nodes 106. These problems may be caused by the nodes 106 having to repeatedly wake from a sleep state to periodically transmit and/or receive synchronization messages. It would be advantageous if the nodes 106 were able to stay longer in a sleep state to conserve power and not wake from the sleep state to transmit and/or receive synchronization messages on the network.
[0058] When a new wireless device enters a location with a NAN, the wireless device may scan the airwaves for discovery and synchronization information before joining the NAN. It would be advantageous if the information necessary forthe STAto join the NAN was quickly accessible to the STA.
[0059] In addition, the transmission and retransmissions of synchronization and/or discovery messages by the nodes 106 within a NAN may introduce a large amount of unnecessary overhead to the network.
[0060] FIG. 2 illustrates various components that may be utilized in a wireless device 202 that may be employed within the wireless communication system 100 or 160. The wireless device 202 is an example of a device that may be configured to implement the various methods described herein. For example, the wireless device 202 may comprise the AP 104 or one of the STAs.
[0061] The wireless device 202 may include a processor 204 which controls operation of the wireless device 202. The processor 204 may also be referred to as a central processing unit (CPU). Memory 206, which may include both read-only memory (ROM) and random access memory (RAM), may provide instructions and data to the processor 204. A portion of the memory 206 may also include non-volatile random access memory (NVRAM). The processor 204 typically performs logical and arithmetic operations based on program instructions stored within the memory 206. The instructions in the memory 206 may be executable to implement the methods described herein.
[0062] The processor 204 may comprise or be a component of a processing system implemented with one or more processors. The one or more processors may be implemented with any combination of general-purpose microprocessors, microcontrollers, digital signal processors (DSPs), field programmable gate array (FPGAs), programmable logic devices (PLDs), controllers, state machines, gated logic, discrete hardware components, dedicated hardware finite state machines, or any other suitable entities that can perform calculations or other manipulations of information.
[0063] The processing system may also include machine-readable media forstoring software. Software shall be construed broadly to mean any type of instructions, whether referred to as software, firmware, middleware, microcode, hardware description language, orotherwise. Instructions may include code (e.g., in source code format, binary code format, executable code format, or any other suitable format of code). The instructions, when executed by the one or more processors, cause the processing system to perform the various functions described herein.
[0064] The wireless device 202 may also include a housing 208 that may include a transmitter 210 and/or a receiver 212 to allow transmission and reception of data between the wireless device 202 and a remote location. The transmitter 210 and receiver 212 may be combined into a transceiver 214. An antenna 216 may be attached to the housing 208 and electrically coupled to the transceiver 214. The wireless device 202 may also include (not shown) multiple transmitters, multiple receivers, multiple transceivers, and/or multiple antennas.
[0065] The transmitter 210 may be configured to wirelessly transmit packets having different packet types or functions. For example, the transmitter 210 may be configured to transmit packets of different types generated by the processor 204. When the wireless device 202 is implemented or used as an AP 104 or STA 106, the processor 204 may be configured to process packets of a plurality of different packet types. For example, the processor 204 may be configured to determine the type of packet and to process the packet and/or fields of the packet accordingly. When the wireless device 202 is implemented or used as an AP 104, the processor 204 may also be configured to select and generate one of a plurality of packet types. For example, the processor 204 may be configured to generate a discovery packet comprising a discovery message and to determine what type of packet information to use in a particular instance.
[0066] The receiver 212 may be configured to wirelessly receive packets having different packet types. In some aspects, the receiver 212 may be configured to detect a type of a packet used and to process the packet accordingly.
[0067] The wireless device 202 may also include a signal detector 218 that may be used in an effort to detect and quantify the level of signals received by the transceiver 214. The signal detector 218 may detect such signals as total energy, energy per subcarrier per symbol, power spectral density and other signals. The wireless device 202 may also include a digital signal processor (DSP) 220 for use in processing signals. The DSP 220 may be configured to generate a packet for transmission. In some aspects, the packet may comprise a physical layer data unit (PPDU).
[0068] The wireless device 202 may further comprise a user interface 222 in some aspects. The user interface 222 may comprise a keypad, a microphone, a speaker, and/or a display. The user interface 222 may include any element or component that conveys information to a user of the wireless device 202 and/or receives input from the user.
[0069] The various components of the wireless device 202 may be coupled together by a bus system 226. The bus system 226 may include a data bus, for example, as well as a power bus, a control signal bus, and a status signal bus in addition to the data bus. The components of the wireless device 202 may be coupled together or accept or provide inputs to each other using some other mechanism.
[0070] Although a numberof separate components are illustrated in FIG. 2, one or more of the components may be combined or commonly implemented. For example, the processor 204 may be used to implement not only the functionality described above with respect to the processor 204, but also to implement the functionality described above with respect to the signal detector 218 and/or the DSP 220. Further, each of the components illustrated in FIG. 2 may be implemented using a plurality of separate elements.
[0071] Devices, such as STAs, 106a-i shown in FIG. 1b, for example, may be used for neighborhood-aware networking, or NANing. For example, various stations within the network may communicate on a device to device (e.g., peer-to-peer communications) basis with one another regarding applications that each of the stations supports. A discovery protocol may be used in a NAN to enable STAs to advertise themselves (e.g., by sending discovery packets) as well as discover services provided byotherSTAs (e.g., by sending paging orquery packets), while ensuring secure communication and low power consumption.
[0072] In a neighborhood-aware or NAN, one device, such as STA or wireless device 202, in the network may be designated as the root device or node. In some embodiments, the root device may be an ordinary device, like the other devices in the network, rather than a specialized device such as a router. In NAN, the root node may be responsible for periodically transmitting synchronization messages, or synchronization signals orframes, to other nodes in the network. The synchronization messages transmitted by root node may provide a timing reference for other nodes to coordinate an availability window during which communication occurs between the nodes. The synchronization message may also provide updates to a schedule for future availability windows. The synchronization messages may also function to notify STAs that they are still present in the peer to peer network.
[0073] In a Neighbor Aware Network (NAN), STA’s on the network may use synchronization messages transmitted by a root STA and retransmitted by branch STA’s in order to determine availability windows. During these availability windows, STA’s in the NAN may be configured to transmit and/or receive messages from other STA’s on the network. At other times, STA’s, or portions of STA’s, on the NAN may be in a sleep state. For example, an STA on a NAN, such as wireless device 202, may enter a sleep state based at least in part on synchronization messages received from a root node. In some embodiments, STA’s on a NAN may enter a sleep mode, where one or more elements of the STA may enter a sleep mode, rather than the entire STA. For example, STA 202 may enter a sleep mode where the transmitter 210, receiver 212, and/or transceiver 214 may enter a sleep mode based on synchronization messages re ceived on a NAN. This sleep mode may enable the STA 202 to conserve power or battery life.
[0074] FIG. 3 illustrates an example of a NAN 320 in which aspects of the present disclosure may be employed. A root STA 300 of the network provides synchronization information to the nodes. In this way, the root STA 300 is configured to transmit and receive messages 310, 311,312, and 314 with the STA’s on the NAN 320.
[0075] STA’s 300, 302, and 304 may be nodes on the NAN 320. As nodes on the NAN 320, STA’s 300, 302, and 304 may transmit messages 312, and 314 to other STA’s on the network 320. These messages may be transmitted to other STA’s during an availability window, during which time each STA is configured to transmit and/or receive transmissions from other STA’s on the network 320. For example, STA 302 may transmit messages 312 to STA 304 during an availability window for both STA’s, where the availability windows is based in part upon a synchronization message received from a root STA.
[0076] Because STA’s on the NAN 320 are wireless and have a finite amount of power between charges, it is advantageous if the STA’s do not repeatedly wake from a sleep state to periodically transmit and/or receive synchronization messages between the STA’s of the NAN 320. Thus, it would be advantageous if the STA’s 300, 302, and 304 were able to stay longer in a sleep state to conserve power and not wake from the sleep state to transmit and/or receive synchronization messages on the network.
[0077] Root STA 300 may periodically transmit synchronization messages within the NAN 320. In some embodiments, synchronization messages may indicate the frequency of availability windows forSTA’s in the network 320, and may further indicate the frequency of synchronization messages and/or the interval until the next synchronization message. In this way, root STA 300 provides synchronization and some discovery functionality to the network 320. Since the root STA does not go to sleep, the root STA is able to coordinate discovery and timing for the NAN 320 independent of the state of the STA’s 302, and 304. In this way, the STA’s 302, and 304 rely on the root STA 300 for this functionality and can stay longer in the sleep state to save power.
[0078] FIG. 4 illustrates an exemplary discovery window structure for an STA to discover the NAN 320 in accordance with an exemplary implementation of the invention. The exemplary discovery window structure 400 can include a discovery window (DW) 402 of time duration 404 and an overall discovery period (DP) 406 interval of time duration 408. In some aspects, communications can occur via other channels as well. Time increases horizontally across the page over the time axis.
[0079] During the DW 402, STAs can advertise services through broadcast messages such as discovery packets or discovery frames. STAs may listen to broadcast messages transmitted by other STAs. In some aspects, the duration of DWs can vary over time. In other aspects, the duration of the DW can remain fixed over a period of time. The end of the DW 402 can be separated from the beginning of the subsequent DW by a first remainder period of time as illustrated in FIG. 4.
[0080] The overall interval of duration 408 can measure the period of time from the beginning of one DW to the beginning of a subsequent DW as illustrated in FIG. 4. In some embodiments, the duration 408 can be referred to as a discovery period (DP). In some aspects, the duration of the overall interval can vary over time. In other aspects, the duration of the overall interval can remain constant over a period of time. At the conclusion of the overall interval of duration 408, another overall interval can begin, including a DWand the remainder interval. Consecutive overall intervals can follow indefinitely or continue for a fixed period of time. A STA can enter a sleep or power-save mode when the STA is not transmitting or listening or is not expecting to transmit or listen.
[0081] Discovery queries are transmitted during the DW 402. STA responses to the transmitted discovery queries are transmitted during the DP 406. As explained below, the allocated time for transmitting responses to the transmitted probe or discovery queries can, for example, overlap with the allocated time for transmitting the discovery queries, be adjacent to the allocated time for transmitting the discovery queries, or be at some time period after the end of the allocated time for transmitting the discovery queries.
[0082] The STA which sent the request for a NAN 320 subsequently wakes up to receive a beacon. The STA in the sleep mode or power-save mode can awake or return to normal operation or full power mode at the beginning of the beacon 410 to enable listening by the STA. In some aspects, the STA can awake or return to normal operation or full power mode at other times when the STA expects to communicate with another device, or as a result of receiving a notification packet instructing the STA to awake. The STA can awake early to ensure that the STA receives the beacon 410. The beacon includes an information element, described below, which at least identifies the NAN 320 which is responsive to the probe request of the STA.
[0083] The start and end of the DW 402 can be known via numerous methods to each STA desiring to transmit a probe or discovery query. In some aspects, each STA can wait for a beacon. The beacon can specify the start and end of the DW 402.
[0084] Figure 5 shows an exemplary structure of a media access control (MAC) frame 500. In some aspects, the media access control frame (MAC) 500 may be utilized for the beacon signal 410 discussed above. As shown, the MAC frame 500 includes 11 different fields: a frame control (fc) field 502 a duration/identification (dur) field 504, a receiver address (a1) field 506, a transmitter address (a2) field 508, a destination address (a3) field 510, which in some aspects may indicate a NAN BSSID, a sequence control (sc) field 512, a timestamp field 514, a beacon interval field 516, a capacity field 518, an infor mation element 520 including window information, and a frame check sequence (FCS) field 522. The fields 502-522 comprise a MAC header in some aspects. Each field may be comprised of one or more sub-fields orfields. For example, frame control field 502 of media access control header 500 may be comprised of multiple subfields, such as a protocol version, type field, subtype field, and other fields.
[0085] In some aspects, the NAN BSSID field 510 can indicate a cluster of NAN devices. In another embodiment, each NAN can have a different (for example, pseudorandom) NAN BSSID 510. In an embodiment, the NAN BSSID 510 can be based on a service application. For example, a NAN created by Application A can have a BSSID 510 based on an identifier of Application A. In some embodiments, the NAN BSSID 510 can be defined by a standards-body. In some embodiments, the NAN BSSID 510 can be based on other contextual information and/ordevice characteristics such as, for example, a device location, a server-assigned ID, etc. In one example, the NAN BSSID 510 can include a hash of the latitude and longitude location of the NAN. The NAN BSSID field 510 shown is six octets long. In some implementations, NAN BSSID field 510 can be four, five, or eight octets long. In some embodiments, the AP 104 can indicate the NAN BSSID 510 in an information element.
[0086] FIG. 6A shows an exemplary attribute of a NAN information element (IE) 600 that can be employed within the NAN 320 of FIG. 3. In various embodiments, any device described herein, or another compatible device, can transmit the attribute of the NAN IE 600 such as, for example, any of devices 300, 302, or 304 (FIG. 3). One or more messages in the wireless NAN 320 can include the attribute of the NAN IE 600 such as, for example, the beacon 410. In some aspects, the NAN information element 600 may be included in MAC header 500 field 520 as described above.
[0087] As shown in FIG. 6A, the attribute of the NAN IE 600 includes an attribute ID 602, a length field 604, a Timestamp of a next Discovery Query Window (DQW) field 606, a Timestamp of the next Discovery Query Window (DQW) field 608, a Discovery Query Window (DQW) duration field 610, a Discovery Query Response Window (DRW) duration field 612, a DQW Period field 614, a DRW Period field 616, a Beacon Window field 618, and a transmit address field 620. A person having ordinary skill in the art will appreciate that the attribute of the NAN IE 600 can include additional fields, and fields can be rearranged, removed, and/or resized.
[0088] The attribute identifier field 602 shown is one octet long. In some implementations, the attribute identifier field 602 can be two, five, or twelve octets long. In some implementations, the attribute identifier field 602 can be of variable length, such as varying length from signal to signal and/or as between service providers. The attribute identifier field 602 can include a value which identifies the element as an attribute of the NAN IE 600.
[0089] The length field 604 can be used to indicate the length of the attribute of the NAN IE 600 or the total length of subsequent fields. The length field 604 shown in FIG. 6A is two octets long. In some implementations, the length field 604 can be one, five, or twelve octets long. In some implementations, the length field 604 can be of variable length, such as varying length from signal to signal and/or as between service providers.
[0090] The Timestamp of next DQW field 606 can indicate a start time of the next discovery query window (for example, the start of the next discovery period 406 described above with respect to FIG. 4). In various embodiments, the start time can be indicated using an absolute timestamp or a relative timestamp. The Timestamp of next DQR field 608 can indicate a start time of the next discovery query response (for example, the start of the next discovery query response period described below with respect to Figures 7-9). In various embodiments, the start time can be indicated using an absolute timestamp or a relative timestamp.
[0091] The DQW duration field 610 can indicate a duration of the DQW (for example, the duration of the DQW described below with respect to FIG. 7-9). In various embodiments, the DQW duration field 610 can indicate the duration of the DQW in ms, με, time units (TUs), or another unit. In some embodiments, time units can be 1024 με. The DQW duration field 610 shown is two octets long. In some implementations, DQW duration field 610 can be four, six, or eight octets long.
[0092] The DRW duration field 612 can indicate a duration of the DRW (for example, the duration of the DRW described below with respect to FIG. 7-9). In various embodiments, the DRW duration field 612 can indicate the duration of the DRW in ms, με, time units (TUs), or another unit. In some embodiments, time units can be 1024 με. The DRW duration field 612 shown is two octets long. In some implementations, DRW duration field 612 can be four, six, or eight octets long.
[0093] In some embodiments, the DQW period field 614 can indicate a length of the DQW (described below with respect to FIGS. 7-9). In various embodiments, the DQW period field 614 can indicate the length of the DQW in ms, με, time units (TUs), or another unit. In some embodiments, time units can be 1024 με. The DQW period field 614 shown is between two and eight octets long. In some implementations, the DQW period field 614 can be two, four, six, or eight octets long.
[0094] In some embodiments, the DRW period field 616 can indicate a length of the DRW (described below with respect to FIGS. 7-9). In various embodiments, the DRW period field 616 can indicate the length of the DRW in ms, με, time units (TUs), or another unit. In some embodiments, time units can be 1024 με. The DRW period field 616 shown is between two and eight octets long. In some implementations, the DRW period field 616 can be two, four, six, or eight octets long.
[0095] The Beacon Duration field 618 can indicate a duration of a Beacon Window (for example, the duration of the Beacon Window described below with respect to FIGs. 7-9). In various embodiments, the Beacon Duration field 618 can indicate the duration of the Beacon Window in ms, με, time units (TUs), or another unit. In some embodiments, time units can be 1024 με. The Beacon Window field 618 shown is between two and eight octets long. In some implementations, BeaconWindowfield618 can be four, six, or eight octets long.
[0096] The Transmit Address field 620 indicates a network address of a node transmitting the NAN IE 600. In some aspects, the A3 field 510 of the MAC header 500 discussed above with respect to FIG. 5 will instead be set to a NAN BSSID. Therefore, in these embodiments, the NAN IE 600 provides the transmitter address field 620 to enable receivers to determine the network address of the transmitter.
[0097] FIG. 6B shows an exemplary attribute of a NAN information element (IE) 650 that can be employed within the NAN 320 of FIG. 3. In various embodiments, any device described herein, or another compatible device, can transmit the attribute of the NAN IE 650 such as, for example, any of devices 300, 302, or 304 (FIG. 3). One or more messages in the wireless NAN 320 can include the attribute of the NAN IE 650 such as, for example, the beacon 410. In some aspects, the NAN information element 650 may be included in MAC header 500 field 520 as described above.
[0098] NAN information element 650 differs from NAN information element 600 in that the discovery query window timestamp and the discovery query response window timestamp have been removed from NAN information element 650 relative to NAN information element 600. In some aspects, a receiver of NAN information element 650 may determine a discovery query window start time as the time when a local clock reference that is synchronized to a NAN clock reference is evenly divided by the DQW period field 660 (Station Clock mod DQW period = 0). Similarly, the discovery response window start time may be determined in some aspects based on when a local clock synchronized to a NAN clock reference is evenly divided by the DRW period field 662 (Station Clock mod DRW period = 0). Note that these example methods of determining a discovery query window or discovery response window start time are similar to the method used to determine a beacon window start time, which may be found in some aspects as Station Clock mod Beacon Interval = 0).
[0099] Figure 7 is a timing diagram 700 illustrating one embodiment of a beacon window, discovery query window, and discovery query response window within the NAN 320. A portion 701 of the timeline 702 is expanded as the lower timeline 703. Timeline 702 shows a series of beacon signals 705. Shown on the expanded timeline 703 are a discovery window 710 and a discovery query response window 715. Expanded timeline 703 also shows that one or more beacon windows 720a-b may occur within the discovery period. In the illustrated embodiment, the discovery query window 710 is completely within the discovery query response window 715.
[0100] Figure 8 is a timing diagram 800 illustrating one embodiment of a beacon window, discovery query window, and discovery query response window within the Nan 320. A portion 801 of the timeline 802 is expanded as the lower timeline 803. Timeline 802 shows a series of beacon signals 805. Shown on the expanded timeline 803 are a discovery window 810 and a discovery query response window 815. Expanded timeline 803 also shows that one or more beacon windows 820a-b may occur within the discovery period. In the illustrated embodiment of FIG. 8, the discovery query window 810 does not overlap the discovery query response window 815. Instead, the discovery query response window 815 immediately follows the end of the discovery query window 810.
[0101] Figure 9 is a timing diagram 900 illustrating one embodiment of a beacon window, discovery query window, and discovery query response window within the NAN 320. A portion of timeline 902 is expanded as the lower timeline 903. Timeline 902 shows a series of beacon signals 905. Shown on the expanded timeline 903 are a discovery query window 910 and a discovery query response window 915. Expanded timeline 903 also shows that one or more beacon windows 920 may occur within the discovery period. In the illustrated embodiment of FIG. 9, the timing of the discovery query window 910 is unrelated to the timing of the discovery query response window 915.
[0102] Figure 10 is a flowchart of a method of reducing power consumption of mobile devices participating in a neighbor aware network, for example, NAN 320. In some aspects, method 1000 may be performed by device 202 of FIG. 2. Method 1000 provides for a wireless message that indicates when beacon messages are transmittable. Devices intending to either send or receive (or both) beacon messages may utilize this information to determine when they may enter a lower power state of operation. For example, some devices may selectively disable and/or shutdown hardware components during periods when beacon messages are not expected, as defined by the message generated and transmitted by method 1000. This may result in reduced power consumption, reduced radiated emissions, and/or prolonged battery life in some aspects.
[0103] In some aspects, a device performing method 1000 may vary respective lengths and/or periodici-ties/frequencies of one or more of a beacon window, discovery query window, and/or discovery query response windows based on one or more network parameters. For example, if the neighbor aware network is experiencing a number of packet collisions during a window that is above a threshold, a device performing process 1000 may increase a duration/length and/or frequency/perio-dicity of the window to provide more available time for transmissions during the window. This may result in a reduced number of collisions during the window.
[0104] In some aspects, a length and/or periodicity of one window may be increased, while a duration/length and/or periodicity/frequency of a second window may be decreased. For example, if the number of collisions during a beacon transmission window is high, the length and/or periodicity of the beacon transmission window may be increased. To accommodate the increased duration and/or periodicity of the beacon transmission window, in some aspects a discovery query window duration and/or periodicity/frequency may be reduced, especially if the number of packet collisions occurring during the discovery query window is relatively low. This may indicate that the duration and/or periodicity of the discovery query window may be reduced without significant adverse effects.
[0105] I n block 1005, a first message is generated. The first message indicates beacon transmit window information. The beacon transmit window information indicates a first time interval when one or more beacon messages are transmittable. In some aspects, the first time interval may be indicated by one or more of a clock reference, a beacon transmit interval duration, and/or a periodicity indication. The beacon messages may be used by the devices operating on the neighbor aware network (NAN) to discover the presence of the NAN and/or to synchronize internal clocks so as to be able to communicate during one or more time windows with other devices on the NAN. In some aspects, the generated message includes NAN IE 600 or NAN IE 650 as illustrated in FIGS. 6A-B respectively.
[0106] In some aspects, the beacon transmit window information further indicates a frequency or periodicity of a beacon transmit interval. In some aspects, the beacon transmit window information further indicates a duration of a beacon transmit window. In some aspects, a beacon message indicates a clock reference.
[0107] In some aspects, block 1005 may be performed by one or more of a programmable chip, a processor, a memory, and a network interface. For exam pie, the block 1005 may be performed by one or more of the processor 204. In some implementations, a means for generating may include the processor 204 performing block 1005. In block 1010, the generated message is transmitted. In some aspects, block 1010 may be performed by one or more of a processor, a memory, and/or a network interface. For example, block 1104 may be performed in some aspects by the transmitter 210. In some implementations, a means for transmitting may include the transmitter 210 performing block 1104.
[0108] In some aspects, the method 1000 further includes transmitting a second message indicating discovery query window information, the discovery query window information indicating a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services. In some aspects, the discovery query window information further indicates a frequency or periodicity of a discovery query window. In some aspects, the discovery query window information further indicates a duration of a discovery query window.
In some aspects, the second message is the first message. In some aspects, the second message may include the NAN IE 600 or 650.
[0109] In some aspects, method 1000 further includes transmitting a third message indicating discovery response window information, the discovery response window information indicating discovery response window information, the discovery response window information including a third time interval when discovery response messages are transmittable on the neighbor aware network, each discovery response message responding to one of the discovery query messages and indicating one or more services that may be provided by a node transmitting the discovery response message. In some aspects, the discovery response window information further indicates a periodicity of a discovery response interval. In some aspects, the discovery response window information further indicates a duration of a discovery response interval. In some aspects, the first message is a synchronization beacon message. In some aspects, the third message may include the NAN IE 600 or 650. In some aspects, the third message is the first message.
[0110] In some aspects, the first time interval is indicated in an attribute of a NAN Information Element included in the first message. In some aspects, the third time interval also indicates when unsolicited broadcast discovery messages may be transmitted. In some aspects, the second time interval and the third time interval overlap. In some aspects, the second time interval and the third time interval do not overlap. In some aspects, the second time interval and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval do not overlap.
[0111] The determination of the intervals discussed above may be based, in some aspects, on one or more network parameters. The network parameters may indicate utilization and/or capacity of one or more of a beacon window, d iscovery q uery window, a nd/or d iscovery q uery response window. For example, in some aspects, a device transmitting the first message may determine a length and/or periodicity of a window based on a number of devices communicating during the window, and or an amount of data traffic occurring during the window. For example, to reduce contention of a busy window, some devices generating the first message may increase the periodicity and or length of the window. To more efficiently utilize network bandwidth and/or capacity allocated to a window that is underutilized, some devices generating the first message may reduce the periodicity and/or the length of the underutilized window, and allocate the time previously allocated to the underutilized window to a second window that may be experiencing collisions and or other form of contention above a threshold, or at least a second window with higher utilization than the underutilized window.
[0112] Figure 11 is a flowchart of a method of saving power in a mobile device participating in a neighbor aware network, for example, NAN 320. In some aspects, method 1100 may be performed by device 202 of FIG. 2. Because the method 1100 receives messages indicating when particular message types, such as a beacon message, discovery query message, and/or discovery query response messages may be transmitted and/or received, a device performing method 1100 may be able to enter a lower power mode, such as asleep state, during periods when the device does not expect to receive and/or transmit any messages of one or more of those message types. In some aspects, a device performing process 1100 may selectively reduce or shut down particular hardware components, such as a receiver and/or transmitter based on the first message described below. This may result in reduced power consumption, reduced radiated emissions, and/or prolonged battery life.
[0113] In block 1102, a first message is received. The first message indicates beacon transmit window information. The beacon transmit window information indicates a first time interval when one or more beacon messages are transmittable. In some aspects, the first time interval is indicated by a clock reference, duration and/or periodicity indicator in the beacon transmit window information. In some aspects, the first message includes NAN IE 600 or NAN IE 650 as illustrated in FIGS. 6A-B respectively. Some aspects of block 1102 may be performed by one or more of a processor, a memory, and/or a network interface. For example, block 1102 may be performed in some aspects by the receiver 212. In some implementations, a means for receiving may include the receiver 212 performing block 1102.
[0114] In block 1104, the mobile device enters a sleep state for a time period outside the first time interval. In some aspects, the mobile device may be able to save power by entering a sleep state when it does not expect to receive messages from the neighbor aware network. In the aspect illustrated in FIG. 11, the first message indicates the timing for when beacon frames may be transmitted and thus received by a mobile device. In some aspects, devices that only want to receive and/or transmit beacon frames may sleep during time periods outside the first window interval.
[0115] Some aspects of block 1104 may be performed by one or more of a processor, a memory, and/or a network interface. For example, block 1104 may be performed in some aspects by the processor 204. In some implementations, a means for sleeping may include the processor 204 performing block 1104.
[0116] In block 1106, a beacon message is received or transmitted (or both) during the first time interval. Because the wireless device performing process 1100 receives or transmits a message during block 1106, the device may be in a state that enables it to actively receive or actively transmit messages on the neighbor aware network. In some aspects, the device may activate particular hardware components prior to the first time interval so those components may function during the first time in- terval. For example, a transmitter may be powered up prior to the first time interval so as to transmit a message during the first time interval. In some aspects, a receiver may be powered up prior to the first time interval so as to receive a message during the first time interval. The "powering up" of either a transmitter and/or a receiver prior to the first time interval may be based on the first message. Similar management of hardware components may be performed with respect to the second and/or third time intervals, discussed below.
[0117] Some aspects of block 1106 may be performed by one or more of a processor, a memory, and/or a network interface. For example, block 1106 may be performed in some aspects by the receiver 212. In some implementations, a means for receiving may include the receiver 212 performing block 1106.
[0118] Some aspects of method 1100 also include receiving a second message in block 1102 indicating a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services. In these aspects, the sleep state entered in block 1104 may be entered during a time period outside both the first time interval and the second time interval. For example, ifadevice performing process 1100 intends to transmit and or receive discovery query messages, the device may configure itself not to sleep during the second time interval. Alternatively, if the device has no expectation that it will transmit or (need to) receive discovery query messages, the device may configure itself to sleep during the second time interval.
[0119] In some aspects, the method 1100 further comprises transmitting or receiving a discovery query message during the second time interval in block 1106. In some aspects, the second message is the first message. In some aspects, the second message also includes an indication ofa periodicity orfrequency of adiscovery query window. In some aspects, the second message includes an indication of a duration of a discovery query window.
[0120] In some aspects, the method 1100 further includes, in block 1106, determination of a transmission time for a discovery query message within a discovery query window based on a random number. For example, in some aspects, a transmission delay after the start of the discovery query window for a discovery query message is determined based on a random delay value. In some aspects, the transmission delay further includes a back-off value determined based on 802.11 CSMA. Use of a delay in initiating transmission of a discovery query message may reduce collisions that could otherwise occur if multiple nodes in a NAN began transmission immediately after a discovery query window opens.
[0121] In some aspects, the method 1100 also includes receiving a third message in block 1102 indicating a third time interval when discovery query response messages are transmittable on the neighbor aware network. Each discovery query response message may be transmitted by a device in response to the device receiving a discovery query message and indicates one or more services that may be provided by the device or node transmitting the discovery query response message. In some aspects, the method 1100 also includes transmitting or receiving a discovery response message during the third time interval. In some of these aspects, the sleep state is entered in block 1104 during a time period outside the first, second, and/or third time intervals. For example, if a device performing process 1100 intends to either transmit and/or receive discovery query response messages, the device may configure itself to remain "active" during the third time interval. Alternatively, if the device performing process 1100 has no expectation to transmit and/or receive discovery query response messages, the device may configure itself to "sleep" during the third time interval. As discussed previously, sleeping during the third time interval may include selectively reducing power to some hardware components during the third time interval, such as a transmitter and/or receiver.
[0122] In some aspects, the third message includes an indication of a frequency or periodicity ofa discovery query response window. In some aspects, the third message includes an indication of a duration of a discovery query response window.
[0123] In some aspects, the third message is the first message. In some aspects, the second time interval and the third time interval overlap. In some aspects, the second time interval and the third time interval do not overlap. In some aspects, the second time interval and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval are equivalent. In some aspects, the first time interval, the second time interval, and the third time interval do not overlap.
[0124] In some aspects, the method 1100 further includes, in block 1106, determination ofa transmission time for a discovery query response message within a discovery query response window based on a random number. For example, in some aspects, a transmission delay after the start of the discovery query response window for a discovery query response message is determined based on a random delay value. In some aspects, the transmission delay further includes a back-ofF value determined based on 802.11 CSMA. Use of a delay in initiating transmission of a discovery query response message may reduce collisions that could otherwise occur if multiple nodes in a NAN initiated transmission of a discovery query response at the beginning of the discovery query response window.
[0125] It should be understood that any reference to an element herein using a designation such as "first," "second," and so forth does not generally limit the quantity or order of those elements. Rather, these designations may be used herein as a convenient wireless device of distinguishing between two or more elements or instances of an element. Thus, a reference to first and second elements does not mean that only two elements may be employed there or that the first element must precede the second element in some manner. Also, unless stated otherwise a set of elements may include one or more elements.
[0126] A person/one having ordinary skill in the art would understand that information and signals may be represented using any of a variety of different technologies and techniques. For example, data, instructions, commands, information, signals, bits, symbols, and chips that may be referenced throughout the above description may be represented by voltages, currents, electromagnetic waves, magnetic fields or particles, optical fields or particles, or any combination thereof.
[0127] A person/one having ordinary skill in the art would further appreciate that any of the various illustrative logical blocks, modules, processors, means, circuits, and algorithm steps described in connection with the aspects disclosed herein may be implemented as electronic hardware (e.g., a digital implementation, an analog implementation, or a combination of the two, which may be designed using source coding or some othertechnique), various forms of program or design code incorporating instructions (which may be referred to herein, for convenience, as "software" or a "software module), or combinations of both. To clearly illustrate this interchangeability of hardware and software, various illustrative components, blocks, modules, circuits, and steps have been described above generally in terms of their functionality. Whether such functionality is implemented as hardware or software depends upon the particular application and design constraints imposed on the overall system. Skilled artisans may implement the described functionality in varying ways for each particular application, butsuch implementation decisions should not be interpreted as causing a departure from the scope of the present disclosure.
[0128] The various illustrative logical blocks, modules, and circuits described in connection with the aspects disclosed herein and in connection with FIGS. 1-11 may be implemented within or performed by an integrated circuit (IC), an access terminal, or an access point. The IC may include a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic, discrete hardware components, electrical components, optical components, mechanical components, or any combination thereof designed to perform the functions described herein, and may execute codes or instructions that reside within the IC, outside of the IC, or both. The logical blocks, modules, and circuits may include antennas and/or transceivers to communicate with various components within the network or within the device. A general purpose processor may be a microprocessor, but in the alternative, the processor may be any conventional processor, controller, microcontroller, or state machine. A processor may also be implemented as a combination of computing devices, e.g., a combina tion of a DSP and a microprocessor, a plurality of microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration. The functionality of the modules may be implemented in some other manner as taught herein. The functionality described herein (e.g., with regard to one or more of the accompanying figures) may correspond in some aspects to similarly designated "means for" functionality in the appended claims.
[0129] If implemented in software, the functions may be stored on or transmitted over as one or more instructions or code on a computer-readable medium. The steps of a method or algorithm disclosed herein may be implemented in a processor-executable software module which may reside on a computer-readable medium. Computer-readable media includes both computer storage media and communication media including any medium that can be enabled to transfer a computer program from one place to another. A storage media may be any available media that may be accessed by a computer. By way of example, and not limitation, such computer-readable media may include RAM, ROM, EEPROM, CD-ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other medium that may be used to store desired program code in the form of instructions or data structures and that may be accessed by a computer. Also, any connection can be properly termed a computer-readable medium. Disk and disc, as used herein, includes compact disc (CD), laser disc, optical disc, digital versatile disc (DVD), floppy disk, and blu-ray disc where disks usually reproduce data magnetically, while discs reproduce data optically with lasers. Combinations of the above should also be included within the scope of computer-readable media. Additionally, the operations of a method or algorithm may reside as one or any combination or set of codes and instructions on a machine readable medium and computer-readable medium, which may be incorporated into a computer program product.
[0130] It is understood that any specific order or hierarchy of steps in any disclosed process is an example of a sample approach. Based upon design preferences, it is understood that the specific order or hierarchy of steps in the processes may be rearranged while remaining within the scope of the present disclosure. The accompanying method claims present elements of the various steps in a sample order, and are not meant to be limited to the specific order or hierarchy presented.
[0131] Various modifications to the implementations described in this disclosure may be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other implementations without departing from the spirit or scope of this disclosure. Thus, the disclosure is not intended to be limited to the implementations shown herein, but is to be accorded the widest scope consistent with the claims, the principles and the novel features disclosed herein. The word "exemplary" is used exclusively herein to mean "serving as an example, instance, or illustration." Any implementation described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other implementations.
[0132] Certain features that are described in this specification in the context of separate implementations also can be implemented in combination in a single implementation. Conversely, various features that are described in the context of a single implementation also can be implemented in multiple implementations separately or in any suitable sub-combination. Moreover, although features may be described above as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination can in some cases be excised from the combination, and the claimed combination may be directed to a sub-combination or variation of a sub-combination.
[0133] Similarly, while operations are depicted in the drawings in a particular order, this should not be understood as requiring that such operations be performed in the particular order shown or in sequential order, or that all illustrated operations be performed, to achieve desirable results. In certain circumstances, multitasking and parallel processing may be advantageous. Moreover, the separation of various system components in the implementations described above should not be understood as requiring such separation in all implementations, and it should be understood that the described program components and systems can generally be integrated together in a single software product or packaged into multiple software products. Additionally, other implementations are within the scope of thefollowing claims. In some cases, the actions recited in the claims can be performed in a different order and still achieve desirable results.
[0134] In the following, further examples are described to facilitate the understanding of the invention: 1. A method of enabling reduced power consumption in wireless devices operating in a neighbor aware network, comprising: generating, by a wireless device, a first message, the first message indicating beacon transmit window information, the beacon transmit window information indicating afirsttime interval when one or more beacon messages are trans-mittable by the wireless device or other wireless devices; and transmitting the first message on the neighbor aware network. 2. The method of example 1, wherein the beacon transmit window information further indicates a periodicity or a duration of a beacon transmit interval. 3. The method of example 1, wherein the message further indicates one or more of discovery query window information or discovery query response window information, wherein discovery query window information indicates a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, and wherein discovery query response window information indicates a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message responding to a discovery query message and indicating one or more services that are provided by a node transmitting the discovery query response message. 4. The method of example 1, further comprising determining one or more network parameters; determining a second time interval when one or more beacon messages are transmittable by the wireless device or other wireless devices based on the one or more network parameters; generating, by the wireless device, a second message, the second message indicating beacon trans-mitwindow information, the beacon transmit window information indicating the second time interval; and transmitting the second message on the neighbor aware network. 5. The method of example 3, wherein the discovery query window information further indicates a periodicity or a duration of a discovery query interval and wherein the discovery query response window information further indicates a periodicity or a duration of a discovery query response window. 6. The method of example 3, wherein the discovery query window information further indicates a clock reference of a start time of a discovery query window. 7. The method of example 1, wherein the first time interval is indicated in an attribute of a neighbor aware network information element included in the first message. 8. The method of example 3, wherein the third time interval also indicates when unsolicited broadcast discovery messages are transmitted. 9. The method of example 3, further comprising determining one or more network parameters; determining a fourth time interval when one or more discovery request messages are transmittable by the wireless device or other wireless devices based on the one or more network parameters; determining a fifth time interval when one or more discovery response request messages are transmittable by the wireless device or other wireless devices based on the one or more network parameters; generating, by the wireless device, a second message, the second message indicating discovery request transmit window information indicating the fourth time interval and further indicating discovery response transmit window information indicating the fifth time interval; and transmitting the second message on the neighbor aware network. 10. The method of example 9, wherein the one or more network parameters include one or more of synchronization error parameters, network overhead parameters, and network collision parameters. 11. An apparatus for enabling reduced power consumption in wireless devices operating in a neighbor aware network, comprising: a processor configured to generate a first message, the first message indicating beacon transmit window information, the beacon transmit window information indicating a first time interval when one or more beacon messages are trans-mittable by the apparatus or other apparatus; and a transmitter configured to transmit the first message on the neighbor aware network. 12. The apparatus of example 11, wherein the beacon transmit window information further indicates a periodicity or a duration of a beacon transmit interval. 13. The apparatus of example 11, wherein the first time interval is indicated in an attribute of a neighbor aware network information element included in the first message. 14. The apparatus of example 11, wherein the third time interval also indicates when unsolicited broadcast discovery messages are transmitted. 15. The apparatus of example 11, wherein the processor is further configured to: determine one or more network parameters, determine a second time interval when one or more beacon messages are transmittable by the wireless device or other wireless devices based on the one or more network parameters, generate a second message, the second message indicating beacon transmit window information, the beacon transmit window information indicating the second time interval, and wherein the transmitter is further configured to transmit the second message on the neighbor aware network. 16. The apparatus of example 11, wherein the message indicates discovery query window information or discovery query response window information, wherein the discovery query window information indicates a second time interval when discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, and wherein discovery query response window information indicates a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query re sponse message responding to one of the discovery query messages and indicating one or more services that are provided by a node transmitting the discovery query response message. 17. The apparatus of example 16, wherein the discovery query window information further indicates a periodicity or a duration of a discovery query interval and wherein the discovery query response window information further indicates a periodicity or a duration of a discovery query response interval. 18. The apparatus of example 16, wherein the processor is further configured to: determine one or more network parameters, determine a fourth time interval when one or more discovery request messages are transmittable by the wireless device or other wireless devices based on the one or more network parameters, determine a fifth time interval when one or more discovery response request messages are transmittable by the wireless device or other wireless devices based on the one or more network parameters, generate a second message, the second message indicating discovery request transmit window information indicating the fourth time interval and further indicating discovery response transmit window information indicating the fifth time interval, and wherein the transmitter is further configured to transmit the second message on the neighbor aware network. 19. The apparatus of example 18, wherein the one or more network parameters include one or more of synchronization error parameters, network overhead parameters, and network collision parameters. 20. A method of saving power in a wireless device when operating in a neighbor aware network, comprising: receiving, by a wireless device, a first message, the first message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network by the wireless device or other wireless devices; entering a sleep state during a time period outside the first time interval; and receiving ortransmitting a beacon message during the first time interval. 21. The method of example 20, further comprising: receiving a message indicating discovery query window information or discovery query response window information, wherein discovery query window information indicates a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, wherein discovery query response window information indicates a third time interval when discovery query response messages are transmittable on the neighbor aware network, each discovery query response message in response to a discovery query message and indicating one or more services that are provided by a node transmitting the discovery response message, and wherein the sleep state is entered during a time period outside both the first time interval and the second time interval. 22. The method of example 21, wherein the discovery query window information includes a periodicity orfrequency orduration of a discovery query window and the discovery query response information includes a periodicity orfrequency orduration of a discovery query response window. 23. The method of example 21, further comprising: determining a transmission time for a discovery query message based on a discovery query window start time and a random delay; and transmitting the discovery query message at the determined transmission time. 24. The method of example 23, wherein the random delay includes a CSMA back-off delay. 25. The method of example 21, wherein the second time interval and the third time interval overlap. 26. An apparatus for saving power in a wireless device when operating in a neighbor aware network, comprising: a receiver configured to receive a message, the message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network by the apparatus or other apparatus; a processor configured to cause the wireless device to enter a sleep state during a time period outside the first time interval; and a receiver configured to receive or transmit a beacon message during the first time interval. 27. The apparatus of example 26, further comprising a receiver configured to receive a message indicating discovery query window information ordiscovery query response window information, the discovery query window information including a second time interval when one or more discovery query messages are transmittable on the neighbor aware network, each discovery query message requesting one or more services, wherein the discovery query response window information indicates a third time interval when one or more discovery query response window messages are transmittable on the neighbor aware network, each discovery query response message transmitted in response to a discovery query message and indicating one or more services that are provided by a transmitter of the discovery query response message, and wherein the processor is further configured to cause the wireless device to enter the sleep state during a time period outside both the first time interval and the second time interval. 28. The apparatus of example 27, further comprising: a processor configured to determine a transmission time for a discovery query message based on a discovery query window start time and a random delay; and a transmitter configured to transmit the discovery query message at the determined transmission time. 29. The apparatus of example 28, wherein the random delay includes a CSMA back-off delay. 30. The apparatus of example 27, wherein the discovery query window information includes a periodicity or frequency or duration of a discovery query window and the discovery query response window information includes a periodicity orfrequency orduration of a discovery query response window.
Claims 1. A method of enabling reduced power consumption in wireless devices (106, 202, 300, 302, 304) operating in a neighbor aware network(320), comprising: generating, by a wireless device (106,202, 300, 302, 304), a first message, the first message indicating beacon transmit window information, the beacon transmitwindow information indicating a first time interval when one or more beacon messages are transmittable by the wireless device (106, 202, 300, 302, 304) or other wireless devices (106, 202, 300, 302, 304); and transmitting the first message on the neighbor aware network (320), wherein the beacon transmit window information further indicates a periodicity or a duration of a beacon transmit interval. 2. The method of claim 1, wherein the message further indicates one or more of discovery query window information or discovery query response window information, wherein discovery query window information indicates a second time interval when discovery query messages are transmittable on the neighbor aware network (320), each discovery query message requesting one or more services, and wherein discovery query response window information indicates a third time interval when discovery query response messages are transmittable on the neighbor aware network (320), each discovery query response message responding to a discovery query message and indicating one or more services that are provided by a node transmitting the discovery query response message. 3. The method of claim 1, further comprising determining one or more network parameters; determining a second time interval when one or more beacon messages are transmittable by the wireless device (106, 202, 300, 302, 304) or other wireless devices (106, 202, 300, 302, 304) based on the one or more network parameters; generating, by the wireless device (106, 202, 300, 302, 304), a second message, the second message indicating beacon transmit window information, the beacon transmit window information indicating the second time interval; and transmitting the second message on the neighbor aware network (320). 4. The method of claim 2, further comprising determining one or more network parameters; determining a fourth time interval when one or more discovery request messages are transmittable by the wireless device (106,202,300,302,304) or other wireless devices (106,202,300,302,304) based on the one or more network parameters; determining a fifth time interval when one or more discovery response request messages are transmittable by the wireless device (106, 202, 300, 302, 304) or other wireless devices (106, 202, 300, 302, 304) based on the one or more network parameters; generating, by the wireless device (106, 202, 300, 302, 304), a second message, the second message indicating discovery request transmit window information indicating the fourth time interval and further indicating discovery response transmit window information indicating the fifth time interval; and transmitting the second message on the neighbor aware network (320), in particular wherein the one or more network parameters include one or more of synchronization error parameters, network overhead parameters, and network collision parameters. 5. An apparatus (106, 202, 300, 302, 304) for enabling reduced power consumption in wireless devices (106, 202, 300, 302, 304) operating in a neighbor aware network (320), comprising: a processor (204) configured to generate a first message, the first message indicating beacon transmit window information, the beacon transmit window information indicating a first time interval when one or more beacon messages are transmittable by the apparatus (106, 202, 300, 302, 304) or other apparatus (106, 202, 300, 302, 304); and a transmitter (210) configured to transmitthefirst message on the neighbor aware network (320), wherein the beacon transmit window information further indicates a periodicity or a duration of a beacon transmit interval. 6. The apparatus (106, 202, 300, 302, 304) of claim 5, wherein the processor (204) is further configured to: determine one or more network parameters, determine a second time interval when one or more beacon messages are transmittable by the wireless device (106,202,300,302,304) or other wireless devices (106, 202, 300, 302, 304) based on the one or more network parameters, generate a second message, the second message indicating beacon transmit window information, the beacon transmit window information indicating the second time interval, and wherein the transmitter (210) is further configured to transmit the second message on the neighbor aware network (320). 7. The apparatus (106, 202, 300, 302, 304) of claim 5, wherein the message indicates discovery query window information or discovery query response window information, wherein the discovery query window information indicates a second time interval when discovery query messages are transmittable on the neighbor aware network (320), each discovery query message requesting one or more services, and wherein discovery query response window information indicates a third time interval when discovery query response messages are transmittable on the neighbor aware network (320), each discovery query response message responding to one of the discovery query messages and indicating one or more services that are provided by a node transmitting the discovery query response message. 8. The apparatus (106, 202, 300, 302, 304) of claim 7, wherein the processor (204) is further configured to: determine one or more network parameters, determine a fourth time interval when one or more discovery request messages are transmit-table by the wireless device (106,202,300, 302, 304) or other wireless devices (106, 202, 300, 302, 304) based on the one or more network parameters, determine a fifth time interval when one or more discovery response request messages are transmittable by the wireless device (106, 202, 300, 302, 304) or other wireless devices (106, 202, 300, 302, 304) based on the one or more network parameters, generate a second message, the second message indicating discovery request transmit window information indicating the fourth time interval and further indicating discovery response transmit window information indicating the fifth time interval, and wherein the transmitter (210) is further configured to transmit the second message on the neighbor aware network (320), in particular wherein the one or more network parameters include one or more of synchronization error parameters, network overhead parameters, and network collision parameters. 9. A method of saving power in a wireless device (106, 202, 300, 302, 304) when operating in a neighbor aware network (320), comprising: receiving, by a wireless device (106, 202, 300, 302, 304), a first message, the first message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network (320) by the wireless device (106, 202, 300, 302, 304) or other wireless devices (106, 202, 300, 302, 304); entering a sleep state during a time period outside the first time interval; and receiving or transmitting a beacon message during the first time interval. 10. The method of claim 9, further comprising: receiving a message indicating discovery query window information or discovery query response window information, wherein discovery query window information indicates a second time interval when one or more discovery query messages are transmittable on the neighbor aware network (320), each discovery query message requesting one or more services, wherein discovery query response window information indicates a third time interval when discovery query response messages are transmittable on the neighbor aware network (320), each discovery query response message in response to a discovery query message and indicating one or more services that are provided by a node transmitting the discovery response message, and wherein the sleep state is entered during a time period outside both the first time interval and the second time interval. 11. The method of claim 10, further comprising: determining a transmission time for a discovery query message based on a discovery query window start time and a random delay; and transmitting the discovery query message at the determined transmission time, in particular wherein the random delay includes a CSMA back-off delay. 12. An apparatus (106, 202, 300, 302, 304) for saving power in a wireless device (106,202, 300,302,304) when operating in a neighbor aware network (320), comprising: a receiver (212) configured to receive a message, the message indicating beacon transmit window information, the beacon transmit window information including a first time interval when one or more beacon messages are transmittable on the neighbor aware network (320) by the apparatus (106, 202, 300, 302, 304) or other apparatus (106, 202, 300, 302, 304); a processor (204) configured to cause the wireless device (106, 202, 300, 302, 304) to enter a sleep state during a time period outside the first time interval; and a receiver configured to receive or transmit a beacon message during the first time interval. 13. The apparatus (106,202,300,302,304) of claim 12, further comprising a receiver configured to receive a message indicating discovery query window information or discovery query response window information, the discovery query window information including a second time interval when one or more discovery query messages are transmittable on the neighbor aware network (320), each discovery query message requesting one or more services, wherein the discovery query response window information indicates a third time interval when one or more discovery query response window messages are transmittable on the neighbor aware network (320), each discovery query response message transmitted in response to a discovery query message and indicating one or more services that are provided by a transmitter of the discovery query response message, and wherein the processor (204) is further configured to cause the wireless device (106, 202, 300, 302, 304) to enter the sleep state during a time period outside both the first time interval and the second time interval. 14. The apparatus (106,202, 300, 302, 304) of claim 13, further comprising: a processor (204) configured to determine a transmission time for a discovery query message based on a discovery query window start time and a random delay; and a tra ns m i tier (210) config ured to tra nsm it the d is-covery query message at the determined transmission time, in particular wherein the random delay includes a CSMA back-off delay. 15. A computer program comprising instructions for performing a method according to any of the claims 1 to 4 or 9 to 11 when executed on a computer.
Patentansprüche 1. Ein Verfahren zum Ermöglichen von vermindertem Energieverbrauch in drahtlosen Vorrichtungen (106, 202, 300, 302, 304), welche in einem nachbarschaftsbewussten Netzwerk (320) operieren, aufweisend:
Generieren einer ersten Nachricht durch eine drahtlose Vorrichtung (106,202,300,302,304), wobei die erste Nachricht Beaconübertragungsfensterinformationen anzeigt, wobei die Beaconübertragungsfensterin-formationen ein erstes Zeitintervall anzeigen zu dem eine oder mehrere Beacon-Nachrichten durch die drahtlose Vorrichtung (106, 202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106,202, 300, 302, 304) übertragbar sind; und Ü bertragen der ersten Nachricht über das nachbarschaftsbewusste Netzwerk (320), wobei die Beaconübertragungsfensterinforma-tionen weiterhin eine Periodizität oder eine Dauer eines Beacon-Übertragungsintervalls anzeigen. 2. Das Verfahren gemäß Anspruch 1, wobei die Nachricht weiterhin eine oder mehrere Entdeckungsabfragefensterinformationen oder Entdeckungsabfrageantwortfensterinformationen anzeigt, wobei Entdeckungsabfragefensterinformationen ein zweites Zeitintervall angeben, zu welchem Entdeckungsabfragenachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfragenachricht einen oder mehrere Dienste abfragt, und wobei Entdeckungsabfrageantwortfensterinformationen ein drittes Zeitintervall anzeigen, zu dem Entdeckungsabfrageantwortnachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfrageantwortnachricht auf eine Entdeckungsabfragenachricht antwortet und einen oder mehrere Dienste anzeigt, die von einem Knoten bereitgestellt werden, der die Entdeckungsabfrageantwortnachricht überträgt. 3. Das Verfahren gemäß Anspruch 1 .weiterhin aufweisend Bestimmen eines oder mehrerer Netzwerkparameter;
Bestimmen eines zweiten Zeitintervalls, zu dem eine oder mehrere Beacon-Nachrichten durch die drahtlose Vorrichtung (106, 202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106, 202, 300, 302, 304) übertrag bar sind, basierend auf dem einen oder mehreren Netzwerkparametern; Generieren einer zweiten Nachricht durch die drahtlose Vorrichtung (106.202.300.302.304) , wobei die zweite Nachricht Beaconübertragungsfensterinformationen anzeigt, wobei die Beaconübertragungsfensterinformatio-nen das zweite Zeitintervall anzeigen; und Übertragen der zweiten Nachricht über das nachbarschaftsbewusste Netzwerk (320). 4. Das Verfahren gemäß Anspruch 2, weiterhin aufweisend Bestimmen eines oder mehrerer Netzwerkparameter;
Bestimmen eines vierten Zeitintervalls, zu dem eine oder mehrere Entdeckungsabfragenachrichten durch die drahtlose Vorrichtung (106,202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106,202, 300, 302, 304) übertragbar sind, basierend auf dem einen oder mehreren Netzwerkparametern; Bestimmen eines fünften Zeitintervalls, zu dem eine oder mehrere Entdeckungsantwortabfragenachrichten durch die drahtlose Vorrichtung (106, 202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106.202.300.302.304) übertragbarsind basierend auf dem einen oder mehreren Netzwerkparametern; Generieren einer zweiten Nachricht durch die drahtlose Vorrichtung (106, 202, 300, 302, 304), wobei die zweite Nachricht Entdeckungsabfrageübertragungsfensterinformationen anzeigt, die das vierte Zeitintervall und weiterhin Entdeckungsantwortübertragungsfensterinformationen, die das fünfte Zeitintervall anzeigen, anzeigt; und Übertragen der zweiten Nachricht über das nachbarschaftsbewusste Netzwerk (320), wobei insbesondere der eine oder die mehreren Netzwerkparameter eines oder mehr aufweist von
Synchronisationsfehlerparametern, Netzwerk-Overhead-Parametern und Netzwerkkollisionsparametern. 5. Eine Vorrichtung (106, 202, 300, 302, 304) zum Ermöglichen von vermindertem Energieverbrauch in drahtlosen Vorrichtungen (106,202, 300,302,304), welche in einem nachbarschaftsbewussten Netzwerk (320) operieren, aufweisend:
Einen Prozessor (204), welcher ausgebildet ist zum Generieren einer ersten Nachricht, wobei die erste Nachricht Beaconübertragungsfenste-rinformationen anzeigt, wobei die Beaconüber-tragungsfensterinformationen ein erstes Zeitintervall anzeigen, zu dem eine oder mehrere Be-acon-Nachrichten durch die Vorrichtung (106, 202, 300, 302, 304) oder andere Vorrichtungen (106, 202, 300, 302, 304) übertragbar sind; und Einen Sender (210), welcher ausgebildet ist zum Übertragen der ersten Nachricht über das nachbarschaftsbewusste Netzwerk (320), wobei die Beaconübertragungsfensterinforma-tionen weiterhin eine Periodizität oder eine Dauer eines Beacon-Übertragungsintervalls anzeigen. 6. Die Vorrichtung (106, 202, 300, 302, 304) gemäß Anspruch 5, wobei der Prozessor (204) weiterhin ausgebildet ist zum:
Bestimmen eines oder mehrerer Netzwerkparameter;
Bestimmen eines zweiten Zeitintervalls, zu dem eine oder mehrere Beacon-Nachrichten durch die drahtlose Vorrichtung (106, 202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106, 202, 300, 302, 304) übertragbar sind, basierend aufdem einen odermehreren Netzwerkparametern;
Generieren einer zweiten Nachricht, wobei die zweite Nachricht Beaconübertragungsfenster-informationen anzeigt, wobei die Beaconüber-tragungsfensterinformationen das zweite Zeitintervall anzeigen, und wobei der Sender (210) weiterhin ausgebildet ist zum Übertragen der zweiten Nachricht über das nachbarschaftsbewusste Netzwerk (320). 7. Die Vorrichtung (106, 202, 300, 302, 304) gemäß Anspruch 5, wobei die Nachricht Entdeckungsabfragefensterinformationen oder Entdeckungsabfrageantwortfensterinformationen anzeigt, wobei die Entdeckungsabfragefensterinformationen ein zweites Zeitintervall angeben, zu welchem Entdeckungsabfragenachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfragenachricht einen oder mehrere Dienste abfragt, und wobei Entdeckungsabfrageantwortfensterinformationen ein drittes Zeitintervall anzeigen, zu dem Entdeckungsabfrageantwortnachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfrageantwortnachricht auf eine der Entdeckungsabfragenachrichten antwortet und einen oder mehrere Dienste anzeigt, die von einem Knoten bereitgestellt werden, der die Entdeckungsabfrageantwortnachricht überträgt. 8. Die Vorrichtung (106, 202, 300, 302, 304) gemäß Anspruch 7, wobei der Prozessor (204) weiterhin ausgebildet ist zum:
Bestimmen eines oder mehrerer Netzwerkparameter,
Bestimmen eines vierten Zeitintervalls, zu dem eine oder mehrere Entdeckungsabfragenachrichten durch die drahtlose Vorrichtung (106, 202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106, 202, 300, 302, 304) übertragbarsind, basierend aufdem einen oder mehreren Netzwerkparametern,
Bestimmen eines fünften Zeitintervalls, zu dem eine oder mehrere Entdeckungsantwortabfragenachrichten durch die drahtlose Vorrichtung (106,202, 300,302,304) oder andere drahtlose Vorrichtungen (106, 202, 300, 302, 304) übertragbar sind, basierend auf dem einen oder mehreren Netzwerkparametern,
Generieren einer zweiten Nachricht, wobei die zweite Nachricht Entdeckungsabfrageübertragungsfensterinformationen anzeigt, die das vierte Zeitintervall und weiterhin Entdeckungsantwortübertragungsfensterinformationen, die das fünfte Zeitintervall anzeigen, anzeigt, und wobei der Sender (210) ausgebildet ist zum Übertragen der zweiten Nachricht über das nachbarschaftsbewusste Netzwerk (320), wobei insbesondere der eine oderdie mehreren Netzwerkparameter eines oder mehrere aufweisen von Synchronisationsfehlerparametern, Netzwerk-Overhead-Parametern und Netzwerkkollisionsparametern. 9. Ein Verfahren zur Energieeinsparung in einer drahtlosen Vorrichtung (106, 202, 300, 302, 304) wenn sie in einem nachbarschaftsbewussten Netzwerk (320) operierert, aufweisend:
Empfangen einer ersten Nachricht durch eine drahtlose Vorrichtung (106,202, 300, 302, 304), wobei die erste Nachricht Beaconübertragungsfensterinformationen anzeigt, wobei die Beaconübertragungsfensterin-formationen ein erstes Zeitintervall anzeigen, zu dem eine oder mehrere Beacon-Nachrichten durch die drahtlose Vorrichtung (106, 202, 300, 302, 304) oder andere drahtlose Vorrichtungen (106, 202, 300, 302, 304) über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind;
Eintreten in einen Schlafzustand während einer Zeitperiode außerhalb des ersten Zeitintervalls; und
Empfangen oder Übertragen einer Beacon-Nachricht während des ersten Zeitintervalls. 10. Das Verfahren gemäß Anspruch 9, weiterhin aufweisend:
Empfangen einer Nachricht, die Entdeckungsabfragefensterinformationen oder
Entdeckungsabfrageantwortfensterinformationen anzeigt, wobei Entdeckungsabfragefensterinformationen ein zweites Zeitintervall angeben, zu welchem eine oder mehrere Entdeckungsabfragenachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfragenachricht einen oder mehrere Dienste abfragt, wobei Entdeckungsabfrageantwortfensterinformationen ein drittes Zeitintervall anzeigen, zu dem Entdeckungsabfrageantwortnachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfrageantwortnachricht in Antwort auf eine Entdeckungsabfragenachricht ist und einen oder mehrere Dienste anzeigt, die von einem Knoten bereitgestellt werden, der die Entdeckungsantwortnachricht überträgt, und wobei in den Schlafzustand eingetreten wird während einer Zeitperiode außerhalb sowohl des ersten, als auch des zweiten Zeitintervalls. 11. Das Verfahren gemäß Anspruch 10, weiterhin aufweisend:
Bestimmen einerÜbertragungszeitfüreine Entdeckungsabfragenachrichtbasierend auf einem Entdeckungsabfragefenster-Startzeitpunkt und einer zufälligen Verzögerung; und Übertragen der Entdeckungsabfragenachricht zu der bestimmten Übertragungszeit, wobei insbesondere die zufällige Verzögerung eine CS-MA back-off Verzögerung umfasst. 12. Eine Vorrichtung (106, 202, 300, 302, 304) zur Energieeinsparung in einer drahtlosen Vorrichtung (106, 202, 300, 302, 304) wenn sie in einem nachbarschaftsbewussten Netzwerk (320) operiert, aufweisend: einen Empfänger (212), welcher ausgebildet ist zum Empfangen einer Nachricht, wobei die Nachricht Beaconübertragungsfensterinforma-tionen anzeigt, wobei die Beaconübertragungs-fensterinformationen ein erstes Zeitintervall aufweisen, zu dem eine oder mehrere Beacon-Nachrichten durch die Vorrichtung (106, 202, 300,302,304) oder andere Vorrichtungen (106, 202, 300, 302, 304) über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind; Einen Prozessor (204), welcher ausgebildet ist um die drahtlose Vorrichtung (106, 202, 300, 302, 304) zu veranlassen in einen Schlafzustand einzutreten während einer Zeitperiode außerhalb des ersten Zeitintervalls; und einen Empfänger, welcher ausgebildet ist zum Empfangen oder Übertragen einer Beacon-Nachricht während des ersten Zeitintervalls. 13. Die Vorrichtung (106, 202, 300, 302, 304) gemäß Anspruch 12, weiterhin aufweisend
Einen Empfänger, welcher ausgebildet ist zum Empfangen einer Nachricht, welche Entdeckungsabfragefensterinformationen oder Entdeckungsabfrageantwortfensterinformationen anzeigt, wobei die Entdeckungsabfragefensterinformationen ein zweites Zeitintervall aufweisen, zu welchem eine oder mehrere Entdeckungsabfragenachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfragenachricht einen oder mehrere Dienste abfragt, wobei die Entdeckungsabfrageantwortfensterinformationen ein drittes Zeitintervall anzeigen, zu dem eine oder mehrere Entdeckungsabfrageantwortfensternachrichten über das nachbarschaftsbewusste Netzwerk (320) übertragbar sind, wobei jede Entdeckungsabfrageantwortnachricht in Antwort auf eine Entdeckungsabfragenachricht übertragen wird und einen oder mehrere Dienste anzeigt, die von einem Sender der Entdeckungsabfrageantwortnachricht bereitgestellt werden, und wobei der Prozessor (204) weiterhin ausgebildet ist um die drahtlose Vorrichtung (106, 202, 300, 302, 304) zu veranlassen in den Schlafzustand einzutreten während einerZeitperiode außerhalb sowohl des ersten, als auch des zweiten Zeitintervalls. 14. Die Vorrichtung (106, 202, 300, 302, 304) gemäß Anspruch 13, weiterhin aufweisend:
Einen Prozessor (204), welcher ausgebildet ist zum Bestimmen einerÜbertragungszeitfüreine Entdeckungsabfragenachricht basierend auf einer auf einem Entdeckungsabfragefenster-Startzeitpunkt und einer zufälligen Verzögerung; und einen Sender (210), welcher ausgebildet ist Zum Übertragen derEntdeckungsabfragenach- rieht zu der bestimmten Übertragungszeit, wobei insbesonderediezufälligeVerzögerungeine CSMA back-off Verzögerung umfasst. 15. Ein Computerprogramm, welches Instruktionen aufweist zum Ausfuhren eines Verfahrens gemäß einem der Ansprüche 1 bis 4, oder 9 bis 11, wenn sie auf einem Computer ausgeführt werden.
Revendications 1. Un procédé pour assurer une consommation d’énergie réduite dans des dispositifs sans fil (106, 202, 303, 302, 304) opérant dans un réseau sensible au voisinage (320), comprenant : la génération, par un dispositif sans fil (106,202, 303, 302, 304), d’un premier message, le premier message indiquant une information de fenêtre d’émission de balise, l’information de fenêtre d’émission de balise indiquant un premier intervalle de temps pendant lequel un ou plusieurs messages de balise peuvent être émis par le dispositif sans fil (106,202,303,302,304) ou par d’autres dispositifs sans fil (106,202,303, 302, 304) ; et l’émission du premier message sur le réseau sensible au voisinage (320), dans lequel l’information de fenêtre d’émission de balise indique en outre une périodicité ou une durée d’un intervalle d’émission de balise. 2. Le procédé de la revendication 1, dans lequel le message indique en outre une ou plusieurs d’entre une information de fenêtre d’interrogation de découverte ou une information de fenêtre de réponse à interrogation de découverte, dans lequel une information de fenêtre d’interrogation de découverte indique un second intervalle de temps pendant lequel des messages d’interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message d’interrogation de découverte requérant un ou plusieurs services, et dans lequel une information de fenêtre de réponse à interrogation de découverte indique un troisième intervalle de temps pendant lequel des messages de réponse à interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message de réponse à interrogation de découverte répondant à un message d’interrogation de découverte et indiquant un ou plusieurs services qui sont fournis par un noeud émettant le message de réponse à interrogation de découverte. 3. Le procédé de la revendication 1, comprenant en outre : la détermination d’un ou plusieurs paramètres de réseau ; la détermination d’un second intervalle de temps pendant lequel un ou plusieurs messages de balise peuvent être émis par le dispositif sans fil (106, 202, 303, 302, 304) ou par d’autres dispositifs sans fil (106, 202, 303, 302, 304) sur la base des un ou plusieurs paramètres de réseau ; la génération, par le dispositif sans fil (106,202, 303.302.304) , d’un second message, le second message indiquant une information de fenêtre d’émission de balise, l’information de fenêtre d’émission de balise indiquant le second intervalle de temps ; et l’émission du second message sur le réseau sensible au voisinage (320). 4. Le procédé de la revendication 2, comprenant en outre : la détermination d’un ou plusieurs paramètres de réseau ; la détermination d’un quatrième intervalle de temps pendant lequel un ou plusieurs messages d’interrogation de découverte peuvent être émis par le dispositif sans fil (106,202,303,302,304) ou d’autres dispositifs sans fil (106, 202, 303, 302, 304) sur la base des un ou plusieurs paramètres de réseau ; la détermination d’un cinquième intervalle de temps pendant lequel un ou plusieurs messages d’interrogation de réponse à découverte peuvent être émis par le dispositif sans fil (106,202, 303, 302, 304) ou par d’autres dispositifs sans fil (106, 202, 303, 302, 304) sur la base des un ou plusieurs paramètres de réseau ; la génération, par le dispositif sans fil (106,202, 303.302.304) , d’un second message, le second message indiquant une information de fenêtre d’émission d’interrogation de découverte indiquant le quatrième intervalle de temps et indiquant en outre une information de fenêtre d'émission de réponse à découverte indiquant le cinquième intervalle de temps ; et l’émission du second message sur le réseau sensible au voisinage (320), en particulier dans lequel les un ou plusieurs paramètres de réseau incluent un ou plusieurs d’entre des paramètres d’erreurde synchronisation, des paramètres de charge de réseau, et des paramètres de collision de réseau. 5. Un équipement (106, 202, 303, 302, 304) pour assurer une consommation de puissance réduite par des dispositifs sans fil (106,202, 303, 302, 304) opérant dans un réseau sensible au voisinage (320), comprenant : un processeur (204) configuré pour générer un premier message, le premier message indiquant une information de fenêtre d’émission de balise, l’information de fenêtre d’émission de balise indiquant un premier intervalle de temps pendant lequel un ou plusieurs messages de balise peuvent être émis par l’équipement (106, 202,303,302,304)ou pard’autres équipements (106, 202, 303, 302, 304) ; et un émetteur (210) configuré pour émettre le premier message sur le réseau sensible au voisinage (320), dans lequel l’information de fenêtre d’émission de balise indique en outre une périodicité ou une durée d’un intervalle d’émission de balise. 6. L’équipement (106, 202, 303, 302, 304) de la revendication 5, dans lequel le processeur (204) est en outre configuré pour assurer : la détermination d’un ou plusieurs paramètres de réseau ; la détermination d’un second intervalle de temps pendant lequel un ou plusieurs messages de balise peuvent être émis par le dispositif sans fil (106, 202, 303, 302, 304) ou par d’autres dispositifs sans fil (106, 202, 303, 302, 304) sur la base des un ou plusieurs paramètres de réseau ; la génération d’un second message, le second message indiquant une information de fenêtre d’émission de balise, l’information de fenêtre d’émission de balise indiquant le second intervalle de temps ; et dans lequel l’émetteur (210) est en outre configuré pour assurer l’émission du second message sur le réseau sensible au voisinage (320). 7. L’équipement (106, 202, 303, 302, 304) de la revendication 5, dans lequel le message indique une information de fenêtre d’interrogation de découverte ou une information de fenêtre de réponse à interrogation de découverte, dans lequel une information de fenêtre d’interrogation de découverte indique un second intervalle de temps pendant lequel des messages d’interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message d’interrogation de découverte requérant un ou plusieurs services, et dans lequel une information de fenêtre de réponse à interrogation de découverte indique un troisième intervalle de temps pendant lequel des messages de réponse à interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message de réponse à interrogation de découverte répondant à un message d’interrogation de découverte et indiquant un ou plusieurs services qui sont fournis par un noeud émettant le message de réponse à interrogation de découverte. 8. L’équipement (106, 202, 303, 302, 304) de la revendication 7, dans lequel le processeur (204) est en outre configuré pour assurer : la détermination d’un ou plusieurs paramètres de réseau ; la détermination d’un quatrième intervalle de temps pendant lequel un ou plusieurs messages d’interrogation de découverte peuvent être émis par le dispositif sans fil (106,202,303,302,304) ou d’autres dispositifs sans fil (106, 202, 303, 302, 304) sur la base des un ou plusieurs paramètres de réseau ; la détermination d’un cinquième intervalle de temps pendant lequel un ou plusieurs messages d’interrogation de réponse à découverte peuvent être émis par le dispositif sans fil (106,202, 303, 302, 304) ou par d’autres dispositifs sans fil (106, 202, 303, 302, 304) sur la base des un ou plusieurs paramètres de réseau ; la génération d’un second message, le second message indiquant une information de fenêtre d’émission d’interrogation de découverte indiquant le quatrième intervalle de temps et indiquant en outre une information de fenêtre d’émission de réponse à découverte indiquant le cinquième intervalle de temps ; et dans lequel le processeur (204) est en outre configuré pour assurer l’émission du second message sur le réseau sensible au voisinage (320), en particulier dans lequel les un ou plusieurs paramètres de réseau incluent un ou plusieurs d’entre des paramètres d’erreur de synchronisation, des paramètres de charge de réseau, et des paramètres de collision de réseau. 9. Un procédé pour économiser l’énergie dans un dispositif sans fil (106,202,303,302,304) lorsqu’il fonctionne dans un réseau sensible au voisinage (320), comprenant : la réception, par un dispositif sans fil (106, 202, 303, 302, 304), d’un premier message, le premier message indiquant une information de fenêtre d’émission de balise, l’information de fenêtre d’émission de balise comprenant un premier intervalle de temps pendant lequel un ou plusieurs messages de balise peuvent être émis sur le réseau sensible au voisinage (320) par le dispositif sans fil (106, 202, 303, 302, 304) ou par d’autres dispositifs sans fil (106, 202, 303, 302, 304) ; l’entrée dans un état de sommeil pendant une période de temps située en dehors du premier intervalle de temps ; et la réception ou l’émission d’un message de balise durant le premier intervalle de temps. 10. Le procédé de la revendication 9, comprenant en outre : la réception d’un message indiquant une information de fenêtre d’interrogation de découverte ou une information de fenêtre de réponse à interrogation de découverte, dans lequel l’information de fenêtre d’interrogation de découverte indique un second intervalle de temps pendant lequel un ou plusieurs messages d’interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message d’interrogation de découverte requérant un ou plusieurs services, dans lequel l’information de fenêtre de réponse à interrogation de découverte indique un troisième intervalle de temps pendant lequel les messages de réponse à interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message de réponse à interrogation de découverte étant en réponse à un message d’interrogation de découverte et indiquant un ou plusieurs services qui sontfournis par un noeud émettant le message de réponse de découverte, et dans lequel l’entrée dans l’état de sommeil a lieu durant une période de temps située en dehors à la fois du premier intervalle de temps et du second intervalle de temps. 11. Le procédé de la revendication 10, comprenant en outre : la détermination d’un temps d’émission pour un message d’interrogation de découverte sur la base d’un instant de début de fenêtre d’interrogation de découverte et d’un délai aléatoire ; et l’émission du message d’interrogation de découverte à l’instant d’émission déterminé, en particulier dans lequel le délai aléatoire comprend un délai de backoff CSMA. 12. Un équipement (106, 202, 303, 302, 304) pour économiser de la puissance dans un dispositif sans fil (106, 202, 303, 302, 304) lorsqu’il fonctionne dans un réseau sensible au voisinage (320), comprenant : un récepteur (212) configuré pour recevoir un message, le message indiquant une information de fenêtre d’émission de balise, l’information de fenêtre d’émission de balise comprenant un premier intervalle temporel pendant lequel un ou plusieurs messages de balise peuvent être émis sur le réseau sensible au voisinage (320) par l’équipement (106, 202, 303, 302, 304) ou par un autre équipement (106, 202, 303, 302, 304) ; un processeur (204) configuré pour amener le dispositif sans fil (106, 202, 303, 302, 304) à entrer dans un état de sommeil durant une période de temps située en dehors du premier intervalle de temps ; et un récepteur configuré pour recevoir ou émettre un message de balise durant le premier intervalle de temps. 13. L’équipement (106, 202, 303, 302, 304) de la revendication 12, comprenant en outre : un récepteur configuré pour recevoir un message indiquant une information de fenêtre d’interrogation de découverte ou une information de fenêtre de réponse à interrogation de découverte, l’information de fenêtre d’interrogation de découverte comprenant un second intervalle de temps pendant lequel un ou plusieurs messages d’interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message d’interrogation de découverte requérant un ou plusieurs services, dans lequel l’information de fenêtre de réponse à interrogation de découverte indique un troisième intervalle de temps pendant lequel un ou plusieurs messages de fenêtre de réponse à interrogation de découverte peuvent être émis sur le réseau sensible au voisinage (320), chaque message de réponse à interrogation de découverte étant émis en réponse à un message d’interrogation de découverte et indiquant un ou plusieurs services qui sontfournis par un émetteur du message de réponse à interrogation de découverte, et dans lequel le processeur (204) est en outre configuré pour amener le dispositif sans fil (106, 202, 303, 302, 304) à entrer dans l’état de sommeil durant une période de temps située en dehors à la fois du premier intervalle de temps et du second intervalle de temps. 14. L’équipement (106, 202, 303, 302, 304) de la revendication 13, comprenant en outre : un processeur (204) configuré pour déterminer un instant d’émission pour un message d’interrogation de découverte sur la base d’un instant de début de fenêtre d’interrogation de découverte et d’un délai aléatoire ; et un émetteur (210) configuré pour émettre le message d’interrogation de découverte à l’instant d’émission déterminé, en particulierdans lequel le délai aléatoire inclut un délai de backoff CSMA. 15. Un programme informatique comprenant des instructions pour mettre en oeuvre un procédé selon l’une des revendications 1 à4ou9à11 lorsqu’elles sont exécutées sur un calculateur.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader’s convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.
Patent documents cited in the description • US 20090141692A1 [0005]

Claims (5)

  1. SéhŐkkétek: hálőtáttm beliül stlhkeordaéslörá Stabadelmi Igénypontok i< epres ehieöÉyéíésére egy poímÍtétítodatös: bálőtatban {32# működő V6^k««iiik«»w:a^ m% m*m%:m}, »i mrpimatta: égy vezeték hiküjlUkéstülék W§< .202, 10¾ 302, 3041 ólját* egy dsö: lí&amp;nek :itípö«lslt m. ei# ksenei tecon átei^0; Sb:l3k lnfeímáeiét ]efet alftesrnmflviteü abíéfe Információ egy olyan glss yskMt .Nlkíf MrmW platt égy vagy töhbbéáésp ütehéí Véiililk nélküli késtüiékkel {106, 203, 300,:303, 304), vagy más vezeték nélküli késtüiékke! $106, 202, 300, 302, 304); és a?, első mamit átviteléia stomstédtudatos háiöpton (320), ahol a beacon átviteli ablak információ továbbá egy beacon átviteli ibőköx periodicitását vagy íüőíáítsmét jeká 2- Ak :j. igéoyptmt^erlísti e.práf>. sbökartÖlénéttovábbá e|y vagy több i«jféde:aés iekérdégéskjs&amp;röiem ablak információt vagy íálfotíéxás lekéi-steíÉsI válási ablak infar mMöt jelet, égy olyan második időközt; jeles, amely alatt feifedetés lekőrde-téxi üzenetek küldhetők a stomsaédtíjdaíos hálózaton (320), ahol minden egyes feifedetés lekérdezési üzenet egy vagy több stoigáitatisí kérelmet, és ahol a fededezés iekétdetáss válást ablak Inlbrmádő egy harmadik (bökött piet, amely alatt {plfetteés iekárdé^ tesl válasaStanetsk vihetők át asaömstédtodstos itaiöietön {330), ahol minősei egyes feifedetés í#éydi?M válastütenof egy felfedezés lekérdezési üzenetre válástól, és egy vagy több: olyan szolgál tatást jelet, amelyeket a fekedétés lőkétdetési yálastötenetét adó csöfeópöht bittose.
  2. 3. At 1, igéóypöot stebotí epráSf amelytsftafmsttö tövábháí egy vagy több hálósat! paraméter meghatározását; át tgy yégy több hálóst pafn«sf|igr:alapjámigy :ff#$odik.jiilfkőa: meghatározását, amely alatt: egy vagy több •későért üzenet vihető át ai vezeték nélküli készülékkel (188, 202, 300, 302,:30a|, vagy más yetetik néiköll késtü-íékke! (tOb, 202, 300, 301,:104¾ e veteték neikids kestöiek tiOö, 202, 300, 302, 304) htján egy második (kenet létrehótását, á níissÖík daenet beaeors átviteli ablak információt jelez, a beacon átviteli ablak In lormáciő a második:időkögt jéítíj és á második öténél: átvitelét á stomstédtuőatos hóiézatöb (3201,
  3. 4. Aapigéhypont szerinti éf árás, amely tartalmazza továbbá; egy vagy több hálózati paraméter meghatározását; az egy vagy több báíőtati paraméter alapján egy eegyaöík időköt rnegbmárotását, smely aiatt égy vagy több feiieöezési kérelem üienet vihető át á veteták nélkeli késteíékkeí jiöő, 202, 3Ö0, 302,3Ö% vágy más vezesp nélküli készülékkel (XÜS, 202, 300,302, 3ü4j- sí egy vagy több hálózati paraméter alapján egy ötödik idők»;·: meghatározását, amely alatt -agy vagy több lel·· fedezést válasz ir^tw üzenet vihető át a vezeték: nélküli ké*8.ölélk*J $0% Mi, -190, Ml, S64), vagy más ^«t#k::Mlfe|íhké$29íákM|106, 202, 300, 302,004j; a yezeiékméiköli kész0íék;|pö, 203, 000, 302, 304¾ vagy: mis wtfeák· béiköü Ms*öMkk«j. {M®, 202, 000, 302i 3ö4j útján egy második Üzenet eiöéiíítását, 8 ptásödfk üzenet: felfedöpsf fe||r®íeöv.i^j|gjf sbiítk i.«'%rf)áiö§|:· jeles, énjely jelzi s negyedik Időkön Is iov|bbé|ey axt s:félbtde:sés válasz ályiteií ablak ihíörrnádbb: amely az Őtldlh: Idiőköst jaláb Is: a szemszádtodatos hálózaton (3SÜ}>: különösen ahol az egy vagy több hálózati par»> méter egy vagy több: szinkronizálási hiba persrhéterb hálózati everhéád pazémétört és 'hálózat: ütközés jsam métert taría IméZí 5, öeregdetéá :|:2ÖÜ, l02i::3öÖ, 3Ö%J|4| csökkentett tebesjt:ménylblvltet: engedélyezésire egy spmSzédfüda-Ms hálózstösn p20i működő:vezetek nélküli készülékekben (pb, 302,000,302,304), a berenoozés tartalmaz; egy iprocesszoft (204), amely úgy ved konügurllys, Nögy egy: első üzenetet állítson: elő; aböl m első üzenet beaóőó: átvlte!l ablak ínlösmádot jele?, a öttgeoa átviteli ablak információ egy olyan első Időközi jeles, amely slalt egy vagy több beatooüzenet Vihető ál a vezeték nélküli készülékké! (.106, 302, 300, 302, 304j, vagy más veretek nélküli készülékkel (!0S, 20% 300,3D2, ΚφΜ égy adbtIllOj, amely úgy van könfígütáivs, begy:M:első;üzenetet adja a saömssédtudstos:bálbaaton f320}, ahol a beacon átvííeú obiak információ továbbá egy beacon átviteli időköz periodicitását vagy időtartamát Jete,
  4. 6, Öt I, igénygöhtszerinfi berendezéslPő, 20% 300, 302, 3041, ahol a processzort»! úgy van továbbá kon-figura ívé, hegy: egy vagy több Miöxati paraméteri: határozzon meg, megbatároztön egy második ídököp: amely eleit amely áfáit egy vágy több beeron úzenei vihető ® e vezeték nélküli készülékkel (:1.:00,202,, 308,302,304), vagy más vezeték nélkbll készölékkei (|00,202,300,302,3040 elléílitsöh egy sn ásod Ik üzenetei, a második úzeaet beaoeo átviteli ablak Információé jelez, a heactm átviteli ablsk foförmádó a második időközt jelzd ás ahol ac adó (210) úgy van továbbá konhgurálvs, hogy a második üzemaiet adja a szomszédtodatos háíozatoo (320;. 2. M '3,.igénypont szerinti berendezés (106, 202,300,303, 3ü4j, ahol az üzenet felfedezés iekárdezéd ablak információt bsMróexisi vÉfessr aUiúk információt jelez. ahol© 'feii«öe«h leké* elesés! ablak mformáeipegy olyan második Idékőztjelss, amely alatt felfedezéslekérdezési énetek köidhetök a síomstéátutll^lililí'átö# |||öK áh<ai; mlódén egyes felf^dpés iéítiröeaéstömnet; 4i|v vagy tö»b szolgált,« ást kérelmezés éhöl a felfedezés lekétbezlsi válásé allék információ amétv alatt felfedezés iekétdm zési vei a szd ze netek vihetők át: a szomszédtedatas hálózaton {320), ahol mindem egyes felfedezés lekérdezés! válaSZózifeet egy ísifedéaés lekérdezési üzenetre válaszol, és ép vagy több olyam;^^^ s Í8lMiexés-Mkétá«2ési váísszOzenetst adó csomópont biztosit, s> A im m $m, w% wmt m$ a processzor pa# égy m* továbbá keni!·· guraiva, hogy: megbstáfözzoo egy vagy több hálózati paramétert, sí égy vagy több hálózati paraméter 3iap{an meghatározzon egy negyedik időközt, amely alatt egy vagy több felfedezés* kérelem üzenet vihető át a vezeték nélküli készülékkel (iOő, 202. 500.. 302, 304), vagy más vezeték néiköii mimmwmÍ<:2QZ, m 3§s, %m%, sz ágy vágy több Háibkaíkpramltor áiap)á» méghafeiozzop égy ötödik időközt, amely alatt agy «agy több M· fedezési válást kérelem üzenet vihető át a vezeték nélküli készülékkel (106, 202, 300, 302. 3041,. vagy más 3®2i.30^::3Oa, ü# el6éliftsö«^««f^má4öaik':ó5S|ft«tb*<;. a második üzenet: sgy: feifedézési kérelem: éMteil ablak ipfermáéiót jelez, amely jelzi a negyedik idököztés továbbájelzi azt a felfedezés: válást átviteli ablak információi, amely arctödlk időközi jelzi; és ehbks® adó {213) úgy van továbbá konfigurálva, hogy a második üzenetét adja a szornszébSMdatps hálózaton |320), különösen, ahol az egy vagy több hálózati pamméter egy vagy több szmkmn&amp;IM#M»:pfif{n#eft, hálózati överhaad paraméter- és hálózati ü-kötés paramétert tartalmaz:, &amp; ígíjátés energia megtakarítására: egy szömszédfudatos hálózatban (PD) működő vezeték tfeiköii készülékben im 202, 3ÖO, 3Ö2,304), ázéprás tarts lm sfza: egy vezeték nélküli készülékp3ö; 202, 300, 303, 30# it]id egy első özebst vételét, az első özénél beacoo átyltell ehlak Ihfbfmsemt felez, e beadón átviteli: ablak információ egy olyan első időközt: jelez, amely efefi egy vagy több heaonn üzenet vihető át a vezeték nélküli készülékkel (.106, 202, 300, 302, 304) vagy más vezeték oéfkö): készülékkel:(tOö, 282,330,332,334) a szomszédiadateshálözötoo {320)1 egy alvó éila^ístfe8-'yálÍst.e^#:^:^P^.kN$1 Idötaítam alatt; és egy beesőn üzenet, vételét vágyódását:az első idökszaiatt. Kh A 0, Igénypont sznrIAttéliárás, ante|y: tartalmazza {svábbá: í-gy olyan üzenet vételét, aa$ely; felfedezés lekérdezés! ábiék Mbsmtácléttvagr f«$éá#2#· *$§:§* ablak információt jelez, *«» felfedezés iokézdezési ábm iimmámrnm vésődik M§k%i jelez, amafy siarí feiéóeáés iey ^otisl üzenetek küldhetők a xzomszédtudatos hálózaton |320j, ahol minden egyes feifedezés lekérdezési üzenet egy yogy tóki;! szoigánatást kérelmez, »M <? felfedezés lekérdezési válasz ablak informáló agy harmadik időközt jéiéz, amely a jatt felfedezés iefeéróó-?ésf válsstüísnot# yihetgv \{ a «omszédtudatos· hálózat©» 1320), ebei minden sgyos Mfofeásóskócdosósf válsszüzanet sgy felfedeíOs leké»darád özemtlro vonzói, és égy Vágytőhb öipn szolgáltatást p«z\ amelyeket: adéiiktdszés lakérd«^:vÍas?8í®ft«M:;ad^^f»é!^tii«tasft,'# ahol mind az első időközön, mind a második időközön kivid esd időtartam alatt vájtunk alvó állapotba. I£: AIS, igenyóoot szerinti eljárás, sméjy ta^almazta továbbá: ógy felfedezés lekérdezési ablak kezdési időpont és egy- véleden késés siapjan egy adási ídősmeghacárezását egy felfedezés lekérdezést Üzenethez: és a felfedezés lelérdegési ökánll^vitélát ilftüggistárditött MM :|á§&amp;«% iöldnösási. a&amp;si a véletlen késés egy CSSV'A fssck-oíf késést tartalmaz. fii»· lerendezés jlöS, 202, 300.. 302, 304} energia megtakarítására egy szomszédtodaitos hálózatban (32öj ml' ködő vezeték nélküli készülékben (10ö, 202, 300, 302, $04}.. a berendezés tartslmsz; égy Vév#t: |222), ámély Ügy vád : konfigurálva, hogy egy üzenetet vegyen, ez üzenet beadón átviteli ablak Infom máeiőt .Mez, a beadón átviteli: ahiek IhlermáCid egy első ídMözr íogléi Vágy több beatoo üzenet vihető St á szómsíédtndátös hálözatfears $2Öj%&amp;mmúss?Mml jtdő, 3ö%z88Ö,,,^2,.:304} vagy más berendezéssel (1C6, 202,300, 302,304); egy proeesszörí :(204¾ amely ögy ven könőgyfáivs, bógy a vezeték nélkül! készüléket jXOő, 202, 300, 302, 304} ái^rália^tbá-:ié^#r#:-k#j^^^ ez első Időközön kivO; eső időtartam alatt; és egy vevőt, amely ügy van keofigorálva, hogy egy beaccn üzenetet vegyen vagy adjon az első Időtartam alatt· 13. A 12. igénypont: szerint'· berendezés (K>6, 202, 300, 302, 304)., amely tartalmaz covébbá ágy vevőt, slmely úgy van konfigurálva, hogy egy üzeuen i vegyen, amely felfedezés lekérdezési ablak idformádét vagy felfedezés lekérdezés válasz ablak inipmátiöt jeles, a felfedezés lekérdezési:rabiak információ egy másődik időközt foglal magában, amely alatt egy vágy több felfedezés jekéröézeái üz;enet vihető át« szomszéd tudatos hálózatban (320), mindegyik felfedezés lekérdezési üzenet egy vagy több szolgáltatást kérelmez, áhöl a felfedezés lekérdezési válasz abrak üzenet egy harmadik időközt jelez, amely álad egy vagy több felfedezés igkéfd^&amp;ák vite-áSi&amp;fc :üs«n«fe-y|^tö át a szömszédtúöáfos hálózatban 1320), minden: egyes fídiedézés lekérdezési válasz üzenet égy féifédMéS iekéröezési ijzéhétre válaszképpen kerül átvitelre és egy vagy több szölgéltátást jeiezi ámeiyet a felfedezés lekérdezési válasz üzenet agy adója biztasd:, és ahol a Í>roces:«or Í204Í ágy van továbbá konfiguréiva, :·ο§ν a versiek nélküli készüléket {100, 2G2, 300, 302, 30«? sívé állapon·* lépésre késnessesgy mindez első időközön, mind a második időközön kívül eső időtartam alatt,
  5. 14. Ml. .1g#R^ont. szerint: berendezésp^i|f 300, M%Mh srnolrtánalntáZ Wltó egy processzort {20«?, ámsly üp pn kao^lurátvay dögy meghatározzon agy átviteli időt egy felfedezés lekérdezést üzenet számát^ egy felfedezés lekérdezés sbiak kérdési idősöm és egy véletlen késés alapján; és égy adót {210?, amely úgy van konfígvráfva, hogy a féiíodsaes lekdídskós! üzenetet adja a megOatárokött átvita-ti időpontban, küíMŐsen, ahol a véletlen késes agy CSMA back-oíf késet tartalma*. IS? Simítógép? pmgmm/amély ütasrtasdkat samfma? egy stámMgéoee történő végrehajtása esetén: m i-C vágy §41, Igénypootökfeérmeiyite sterintí eljárás végrehajtására.
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Families Citing this family (41)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014123566A1 (en) 2013-02-11 2014-08-14 Minyoung Park Methods, wireless communication stations, and system for time synchronization and discovery
US9432925B2 (en) 2013-08-05 2016-08-30 Nokia Technologies Oy Method, apparatus, and computer program product for hop count usage in cluster selection
US9723581B2 (en) * 2013-10-18 2017-08-01 Qualcomm Incorporated Systems and methods for establishing synchronization across multiple networks and participating STAs via operations on a known common channel
EP3082058B1 (en) * 2014-05-14 2018-02-28 Huawei Technologies Co. Ltd. Terminal matching method and matched terminal
US9439147B2 (en) * 2014-06-30 2016-09-06 Intel IP Corporation Mechanisms of reducing power consumption for NAN devices
US9756603B2 (en) 2014-07-09 2017-09-05 Qualcomm Incorporated Traffic advertisement and scheduling in a neighbor aware network data link
US9955421B2 (en) 2014-07-09 2018-04-24 Qualcomm Incorporated Traffic advertisement and scheduling in a neighbor aware network data link
US9936479B2 (en) 2014-07-09 2018-04-03 Qualcomm Incorporated Traffic advertisement and scheduling in a neighbor aware network data link
US9936452B2 (en) 2014-07-09 2018-04-03 Qualcomm Incorporated Traffic advertisement and scheduling in a neighbor aware network data link
US9716992B2 (en) * 2014-09-24 2017-07-25 Qualcomm Incorporated Neighbor aware network logical channels
US9961668B2 (en) 2014-10-16 2018-05-01 Qualcomm Incorporated Communication between devices of a neighbor aware network
US9769645B2 (en) 2014-10-16 2017-09-19 Qualcomm Incorporated Communication between devices of a neighbor aware network
US9763223B2 (en) 2014-10-16 2017-09-12 Qualcomm Incorporated Communication between devices of a neighbor aware network
US9763221B2 (en) 2014-10-16 2017-09-12 Qualcomm Incorporated Communication between devices of a neighbor aware network
US10863431B2 (en) 2014-11-06 2020-12-08 Qualcomm Incorporated Systems and methods for synchronization within a neighborhood aware network
KR102246267B1 (ko) * 2014-11-25 2021-04-29 삼성전자주식회사 근접 네트워크 구성 방법 및 그 전자 장치
KR102251353B1 (ko) 2014-11-25 2021-05-12 삼성전자주식회사 근접 네트워크 구성 방법 및 그 전자 장치
KR102251326B1 (ko) * 2014-11-25 2021-05-12 삼성전자주식회사 근접 네트워크 구성 방법 및 그 전자 장치
KR102208438B1 (ko) * 2014-11-26 2021-01-27 삼성전자주식회사 근접 서비스 데이터 송신 방법 및 그 전자 장치
US9955523B2 (en) * 2014-12-01 2018-04-24 Intel Corporation Adaptively changing availability of NAN devices for post NAN activities
US20160157193A1 (en) * 2014-12-01 2016-06-02 Emily Qi Exchanging ranging and location information among peer-to-peer devices
US20160218866A1 (en) * 2015-01-27 2016-07-28 Qualcomm Incorporated Group key announcement and distribution for a data link group
US9935756B2 (en) * 2015-02-17 2018-04-03 Qualcomm Incorporated Methods and systems for ranging protocol
US10531370B2 (en) * 2015-02-24 2020-01-07 Lg Electronics Inc. Method and apparatus for transmitting data in wireless communication system
WO2016140423A1 (ko) * 2015-03-05 2016-09-09 엘지전자 주식회사 파워 세이브 모드로 동작하는 nan 장치 간의 데이터 통신 방법 및 데이터 통신을 수행하는 파워 세이브 모드로 운용되는 nan 장치
US9763266B2 (en) * 2015-03-12 2017-09-12 Intel IP Corporation Systems and methods for scheduling wireless communication
US10051469B2 (en) 2015-03-23 2018-08-14 Qualcomm Incorporated Schedule selection and connection setup between devices participating in a NAN data link
US10123260B2 (en) 2015-04-20 2018-11-06 Apple Inc. Neighbor awareness networking—data cluster
US10165622B2 (en) 2015-06-10 2018-12-25 Samsung Electronics Co., Ltd. Method and system for synchronizing communication between nodes in a Bluetooth network
US10051587B2 (en) * 2015-07-09 2018-08-14 Google Llc System for network discovery and synchronization
US9949204B2 (en) * 2015-08-07 2018-04-17 Provenance Asset Group Llc Method, apparatus, and computer program product for low power data delivery
CN105263130A (zh) * 2015-08-31 2016-01-20 青岛海尔智能家电科技有限公司 一种业务发现方法和装置
CN105404253B (zh) * 2015-10-30 2021-08-13 青岛海尔智能家电科技有限公司 一种控制指令发送方法、响应方法及装置
US10725170B2 (en) 2015-12-17 2020-07-28 Honeywell International Inc. Frequency modulated continuous wave radio altimeter spectral monitoring
US10039096B2 (en) * 2016-05-31 2018-07-31 Futurewei Technologies, Inc. System and method for protecting time slots
US10305771B2 (en) 2016-09-16 2019-05-28 Apple Inc. Proximity Wi-Fi
US10299266B2 (en) 2017-03-20 2019-05-21 Honeywell International Inc. Delay calculation in wireless systems
US10805345B2 (en) * 2017-09-29 2020-10-13 Paypal, Inc. Blind injection attack mitigation
US20190260826A1 (en) * 2018-02-21 2019-08-22 Artem Gurtovoy P2p video communication with a third-parties
US11540140B2 (en) 2018-05-15 2022-12-27 Apple Inc. Neighbor awareness networking time slot allocation
WO2020254231A1 (en) * 2019-06-20 2020-12-24 Signify Holding B.V. Control network system

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7406105B2 (en) * 2004-03-03 2008-07-29 Alfred E. Mann Foundation For Scientific Research System and method for sharing a common communication channel between multiple systems of implantable medical devices
US7231530B1 (en) * 2004-04-06 2007-06-12 Cisco Technology, Inc. System and method for saving power in a wireless network by reducing power to a wireless station for a time interval if a received packet fails an integrity check
JP4667100B2 (ja) 2005-03-31 2011-04-06 株式会社エヌ・ティ・ティ・ドコモ 無線通信装置および無線通信システム
US20090141692A1 (en) 2007-11-30 2009-06-04 Mika Kasslin Optimized ad hoc networking
JP5523473B2 (ja) 2008-12-23 2014-06-18 コーニンクレッカ フィリップス エヌ ヴェ 周波数帯域を共有する2つ又はこれ以上の無線ネットワークを含む柔軟な無線システムにおけるデバイスの自己共存
TWI387381B (zh) 2009-08-14 2013-02-21 Ind Tech Res Inst 基於鄰近覺察之同時傳輸的媒介存取控制協定裝置與方法
KR101718768B1 (ko) * 2009-12-21 2017-03-22 삼성전자주식회사 휴대용 단말기에서 전력 소모를 줄이기 위한 장치 및 방법
US8885530B2 (en) 2009-12-24 2014-11-11 Intel Corporation Method and system for power management in an ad hoc network
US9001693B2 (en) 2011-06-13 2015-04-07 Qualcomm, Incorporated Enhanced discovery procedures in peer-to-peer wireless local area networks (WLANs)
WO2013018303A1 (ja) 2011-07-29 2013-02-07 パナソニック株式会社 制御装置、通信端末装置、及び無線通信システム
WO2013052077A1 (en) * 2011-10-06 2013-04-11 Intel Corporation Methods and arrangements for short beacon frames in wireless networks

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