WO2006045797A1 - Method for fast radio link measurements of access point candidates for wlan handover, a mobile terminal, an access point and program modules therefor - Google Patents

Method for fast radio link measurements of access point candidates for wlan handover, a mobile terminal, an access point and program modules therefor Download PDF

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Publication number
WO2006045797A1
WO2006045797A1 PCT/EP2005/055531 EP2005055531W WO2006045797A1 WO 2006045797 A1 WO2006045797 A1 WO 2006045797A1 EP 2005055531 W EP2005055531 W EP 2005055531W WO 2006045797 A1 WO2006045797 A1 WO 2006045797A1
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WO
WIPO (PCT)
Prior art keywords
mobile terminal
access point
sta
api
prul
Prior art date
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Ceased
Application number
PCT/EP2005/055531
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French (fr)
Inventor
Lionel Fiat
Philippe Dauchy
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Alcatel Lucent SAS
Nokia Inc
Original Assignee
Alcatel SA
Alcatel Lucent SAS
Nokia Inc
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Priority to JP2007538404A priority Critical patent/JP2008526051A/en
Priority to US11/577,990 priority patent/US7936726B2/en
Publication of WO2006045797A1 publication Critical patent/WO2006045797A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0083Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
    • H04W36/0085Hand-off measurements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/02Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
    • H04W84/10Small scale networks; Flat hierarchical networks
    • H04W84/12WLAN [Wireless Local Area Networks]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/04Interfaces between hierarchically different network devices
    • H04W92/10Interfaces between hierarchically different network devices between terminal device and access point, i.e. wireless air interface

Definitions

  • the invention relates to a method for fast determination of the quality of a radio link in a Wireless Local Area Network (WLAN) according to the preamble of claim 1, a mobile terminal according to the preamble of claim 4, an access point according to the preamble of claim 10 and program modules according to the preambles of claims 7 and 12.
  • WLAN Wireless Local Area Network
  • the WLAN standards IEEE 802.1 la/b/g are experiencing a successful de ⁇ velopment. This success is mainly based upon the use of these standards in enterprise networks, hot spots and at home, i.e. conference centers, railway stations, airports, hotels and so on. In these environments, Voice over Internet Protocol (VoIP) and Voice over WLAN (VoWLAN) are becoming attractive technologies with the main goal to reduce the communication costs by merging data and voice networks.
  • VoIP Voice over Internet Protocol
  • VoIP Voice over WLAN
  • one phase consists in measuring (scanning) the radio link qualities of potential candidate access points.
  • the IEEE 802.11 standard only defines quite slow methods for passive and active scanning to perform these measurements. Active scanning according to the IEEE 802.11 standard is the faster one, but it is still too long to carry out a fast handover in accordance with real time service requirements.
  • the IEEE 802.11 standard active scanning is implemented in such a way that the mobile terminal sends a broadcast probe request for each IEEE 802.11 channel and awaits for each channel the responses from each potential candidate access point of this channel.
  • Each potential candidate access point may respond with a delay, so for each channel the mobile terminal has to wait a significant delay to discover and measure radio link quality of the access points that it can join.
  • This significant delay is dependent on the number of access points and has a value of about 15 ms in case of three access points. A typical default value used for this significant delay is about 20 ms.
  • the object of the invention is to propose a solution for fast determination of the quality of a radio link in a Wireless Local Area Network (WLAN).
  • WLAN Wireless Local Area Network
  • the invention is based on the insight, that standard measurements with active scanning solutions and existing proprietary solutions always imply that the probe response from the candidate access points have to be awaited.
  • the common shortcoming of these solutions is, that the global measurement time is too long for real time service requirements.
  • a mobile terminal performs mea ⁇ surements over another channel than the one of its current access point, it can not receive and send user traffic during the measurement time.
  • the main idea of the invention is that an access point that has received a probe request message from a mobile terminal does not send back a probe response message to the mobile terminal if the mobile terminal has indicated in the probe request message that it intends to perform radio link measurements. Instead of sending a probe response message, the access point only sends an acknowledgement message which will be used by the mobile terminal to perform the measurements. In order that the access point sends back an acknowledgement message, the probe request message must be sent in unicast, i.e. point-to-point and not in broadcast according to the IEEE 802.11 standard. A further embodiment could implement that the access point also replies to a probe request message sent in broadcast with an acknowledgement message.
  • the mobile terminal initiates a measurement procedure by means of sending probe request messages for each candidate access point in unicast, i.e. a dedicated probe request message will be sent to each candidate access point with a specific service set identifier (SSID).
  • SSID service set identifier
  • this specific SSID could be composed in the following way: "used SSID for traffic" + "_” + "MEASUREMENT”.
  • MEASUREMENT the access point does not send back a probe response message, but only sends back an acknowledgement message as response to the unicast probe request message. It is also possible to use no specific SSID and in this case the access point will have a non-standard behavior.
  • both the uplink and downlink radio links must be measured because the uplink and downlink powers are not necessarily equal.
  • an acknowledgement message as response to a unicast probe request message is sufficient.
  • the solution supports power asymmetry deployment for the radio link between the access point and the mobile terminal.
  • the proposed solution requires that the access point manages a specific SSID and that the access point preferably ignores this specific SSID when it is probed in broadcast, as in this case no acknowledgement message is sent. This solution also enables to support mobile terminals that are not supporting this solution. It is also possible that the access point responds to this specific SSID when it is probed in broadcast which will enable a mobile terminal supporting the solution to test the solution that is implemented in the access point.
  • a mobile terminal will be enabled by this solution to perform a measurement in 0.8 ms for each access point at a data rate of 11 Mbit/s instead of about 2 ms for the fast al ⁇ ternative solution of a unicast probe request and a probe response.
  • This delta time is very important because it may be necessary that the mobile terminal performs several measurements for each candidate access point.
  • the invention preferably uses the well-known principle of the so-called candidate access point list and the corresponding channels, i.e. the mobile terminal knows its adjacent access points together with their corresponding channels and can therefore restrict the number of unicast probe request messages it has to send.
  • the WLAN network in which the invention can be implemented comprises at least two access points API, AP2 and at least one mobile terminal STA.
  • the access points API, AP2 are both connected to each other via a backbone system and the mobile terminal STA is within the coverage of the radio links of said access points API, AP2.
  • the mobile terminal STA is connected via a wireless connection to access point API and can by means of the backbone system be further connected to another mobile terminal within the same WLAN network.
  • said mobile terminal STA can also be connected by means of the backbone system and via gateways to devices like e.g. terminals or servers located in further networks like e.g. the Internet or another mobile or fixed network.
  • Additional access points that can be comprised in the WLAN network may also be connected to each other and/or to said access points API, AP2 via a backbone system, and additional mobile terminals that can be comprised in the WLAN network may also be connected to one or more of the additional access points and/or said access points API, AP2.
  • the access points API, AP2 comprise the functionality of an access point of a
  • the access points API, AP2 comprise means to omit sending a probe response message PREl and PRE2 resp. to said mobile terminal STA after having received a probe request message PRUl and PRU2 resp. from said mobile terminal STA.
  • the access points API, AP2 additionally comprise means for sending an acknowledgement message ACK to said mobile terminal STA after having received the probe request message PRUl and PRU2 resp. from said mobile terminal STA.
  • the mobile terminal STA comprises the functionality of a mobile terminal for a
  • the mobile terminal STA comprises means for sending the probe request messages PRUl, PRU2 at least to the access point API and AP2 resp. with said probe request messages PRUl, PRU2 comprising a specific identifier requesting from the receiving access point API and AP2 resp. notto respond with a probe response message PREl and PRE2 resp. to the mobile terminal STA.
  • the probe request messages PRUl, PRU2 sent from the mobile terminal STA additionally comprise a specific identifier requesting from the receiving access point API and AP2 resp. to respond with an acknowledgement message ACK.
  • FIG. 1 schematically shows the data transfer belonging to an active scanning procedure according to the IEEE 802.11 standard between two access points API and AP2 and a mobile terminal STA all belonging to the same WLAN network and with the mobile terminal STA being connected to the access point API and also being within the coverage of the radio link of the access point AP2.
  • the data transfer scheme according to the prior art depicted in fig. 1 shows in the upper row data packets sent from the mobile terminal STA to the access points API and/or AP2, in the middle row data packets sent from the access point API to the mobile terminal STA and in the lower row data packets sent from the access point AP2 to the mobile terminal STA all plotted against the timeline t.
  • the active scanning scenario of a radio channel depicted in fig. 1 starts with the mobile terminal STA broadcasting a probe request message PRB. Subsequent, the mobile terminal STA awaits probe response messages PREl, PRE2 from the access point API and AP2 resp. that have received the probe request message PRB. If the mobile terminal STA does not receive any probe response messages PREl, PRE2 within a minimum time span MIN that is depicted by a double arrow in fig. 1, the mobile terminal STA starts scanning another radio channel. Otherwise, the mobile terminal STA processes all probe response messages PREl, PRE2 received within a maximum time span MAX that is depicted by the large double arrow in fig. 1.
  • the access point AP2 is the first to send a probe response message PRE2 to the mobile terminal STA.
  • the mobile terminal STA receives this response within the minimum time span MIN, the mobile terminal STA has to wait for further probe response messages PREl, PRE2 to arrive till the maximum time span MAX has elapsed.
  • the mobile terminal STA After the waiting time SIFS, the mobile terminal STA sends an acknowledgement message ACK as a response to the access point AP2.
  • the backoff time BO increases on average with the number of un ⁇ successful attempts of the access point API to transmit data and decreases every time the sending is deferred caused e.g. by the use of the channel by the access point AP2.
  • the mobile terminal STA After the time span SIFS has elapsed, the mobile terminal STA sends an ac ⁇ knowledgement message ACK as a response to the access point API.
  • the mobile terminal STA begins with the processing of all received probe response messages PREl, PRE2 only after the maximum time span MAX has elapsed.
  • FIG. 2 schematically shows the data transfer according to one embodiment of the invention between the two access points API and AP2 and the mobile terminal STA all belonging to the same WLAN network and with the mobile terminal STA being connected to the access point API and being within the coverage of the radio links of the access points API and AP2.
  • Said data transfer scheme is used in order to perform a method for fast radio link measurements according to the invention.
  • the data transfer scheme depicted in fig. 2 shows in the upper row the data packets sent from the mobile terminal STA to the access points API and/or AP2, in the middle row the data packets sent from the access point API to the mobile terminal STA and in the lower row the data packets sent from the access point AP2 to the mobile terminal STA all plotted against the timeline t.
  • the active scanning scenario of a radio channel depicted in fig. 2 starts with the mobile terminal STA sending a probe request message PRU2 to the access point AP2 in unicast.
  • the probe request messages PRUl and PRU2 shall comprise a specific identifier requesting from the receiving access point API and AP2 resp. notto respond with a probe response message PREl and PRE2 resp. to the mobile terminal STA.
  • the probe response messages PRUl and PRU2 can comprise a specific SSID with an additional keyword as already mentioned above.
  • the access point AP2 sends an acknowledgement message ACK to the mobile terminal STA.
  • the mobile terminal STA after a waiting time DIFS and a backoff time BO have elapsed, sends a probe request message PRUl to the access point API in unicast.
  • the access point API After the waiting time SIFS has elapsed, the access point API sends an ac ⁇ knowledgement message ACK to the mobile terminal STA.
  • the mobile terminal STA broadcasts the probe request message PRUl and said probe request message PRUl comprises an additional specific identifier requesting from the receiving access point API to respond with an acknowledgement message ACK.
  • the mobile terminal STA can restrict the sending of probe request messages PREl, PRE2 to its adjacent access points API, AP2.
  • the mobile terminal STA uses the acknowledgement messages received from the access points API, AP2 to perform measurements to determine the downlink radio link quality.
  • the time that elapses till a measurement can be performed is composed of the time span DIFS, a backoff time, the time needed for a probe request message PRUl or PRU2, the time span SIFS and the time needed for an acknowledgement message ACK which sums up to about 0.8 ms at a data rate of 11 Mbit/s.
  • the time that elapses till a measurement can be performed is composed of the time span DIFS, a backoff time, the time needed for a probe request message PRUl or PRU2, the time span SIFS, the time needed for an acknowledgement message ACK, the time span DIFS, a backoff time, the time needed for a probe response message PREl or PRE2, the time span SIFS and the time needed for an acknowledgement message ACK which sums up to about 2 ms at a data rate of 11 Mbit/s.
  • this delta time compared to the method according to the invention is very important because it may be necessary that the mobile terminal STA performs several measurements for each candidate access point API or AP2 to get an average measurement.
  • the time that elapses after the probe request has been broadcasted till a measurement can be performed is mainly composed of the time span DIFS, the backoff time, the time needed for a probe response message PREl or PRE2, the time span SIFS and the time needed for an acknowledgement message ACK.
  • the main difference to the method according to the invention with respect to the time consumption is that in case of the solution depicted in fig. 1, the mobile terminal STA collects and processes all probe response messages PREl, PRE2 that arrive within a certain time span MAX..
  • the typical default value for the time span MAX that has to be awaited before the mobile terminal STA begins with processing of all received probe response messages PREl, PRE2 is about 20 ms and therefore too high to allow for real time services.

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

The invention concerns a method for fast determination of the quality of the radio link from a mobile terminal (STA) to an access point (AP1) in a Wireless Local Area Network wherebyafter having received a probe request message (PRU1) from the mobile terminal (STA), the access point (AP1) does not send a probe response message (PRE1) to said mobile terminal (STA), a mobile terminal (STA), an access point (AP1) and program modules therefor.

Description

METHOD FOR FAST RADIO LINK MEASUREMENTS OF ACCESS POINT CANDIDATES FOR WLAN HANDOVER, A MOBILE TERMINAL, AN ACCESS POINT AND PROGRAM MODULES THEREFOR
Description
[001] A method for fast radio link measurements of access point candidates for WLAN handover, a mobile terminal, an access point and program modules therefore
[002] The invention relates to a method for fast determination of the quality of a radio link in a Wireless Local Area Network (WLAN) according to the preamble of claim 1, a mobile terminal according to the preamble of claim 4, an access point according to the preamble of claim 10 and program modules according to the preambles of claims 7 and 12.
[003] The WLAN standards IEEE 802.1 la/b/g are experiencing a successful de¬ velopment. This success is mainly based upon the use of these standards in enterprise networks, hot spots and at home, i.e. conference centers, railway stations, airports, hotels and so on. In these environments, Voice over Internet Protocol (VoIP) and Voice over WLAN (VoWLAN) are becoming attractive technologies with the main goal to reduce the communication costs by merging data and voice networks.
[004] Offering real time handover is an essential requirement for VoWLAN and other real time services like video conferences and therefore the handover between two WLAN access points is an active subject of research because the handover time has to be drastically reduced in order to allow VoWLAN seamless mobility between two IEEE 802.11 access points.
[005] During a handover, one phase consists in measuring (scanning) the radio link qualities of potential candidate access points. The IEEE 802.11 standard only defines quite slow methods for passive and active scanning to perform these measurements. Active scanning according to the IEEE 802.11 standard is the faster one, but it is still too long to carry out a fast handover in accordance with real time service requirements.
[006] The IEEE 802.11 standard active scanning is implemented in such a way that the mobile terminal sends a broadcast probe request for each IEEE 802.11 channel and awaits for each channel the responses from each potential candidate access point of this channel. Each potential candidate access point may respond with a delay, so for each channel the mobile terminal has to wait a significant delay to discover and measure radio link quality of the access points that it can join. This significant delay is dependent on the number of access points and has a value of about 15 ms in case of three access points. A typical default value used for this significant delay is about 20 ms.
[007] In order to speed up the probe exchange by means of enabling an access point to send back faster the probe response, some contributions to the IEEE 802.11 standard suggested that the access point does not wait for the time span of a so-called distributed coordination function interframe space (DIFS) and a so-called backoff time but responds instantaneously only after the so-called short interframe space (SIFS). The disadvantage of this kind of solution is that it introduces a non-standard behavior.
[008] The object of the invention is to propose a solution for fast determination of the quality of a radio link in a Wireless Local Area Network (WLAN).
[009] This object is achieved by a method according to the teaching of claim 1, a mobile terminal according to the teaching of claim 4, an access point according to the teaching of claim 10 and program modules according to the teaching of claims 7 and 12.
[010] The invention is based on the insight, that standard measurements with active scanning solutions and existing proprietary solutions always imply that the probe response from the candidate access points have to be awaited. The common shortcoming of these solutions is, that the global measurement time is too long for real time service requirements. Furthermore, when a mobile terminal performs mea¬ surements over another channel than the one of its current access point, it can not receive and send user traffic during the measurement time.
[011] The main idea of the invention is that an access point that has received a probe request message from a mobile terminal does not send back a probe response message to the mobile terminal if the mobile terminal has indicated in the probe request message that it intends to perform radio link measurements. Instead of sending a probe response message, the access point only sends an acknowledgement message which will be used by the mobile terminal to perform the measurements. In order that the access point sends back an acknowledgement message, the probe request message must be sent in unicast, i.e. point-to-point and not in broadcast according to the IEEE 802.11 standard. A further embodiment could implement that the access point also replies to a probe request message sent in broadcast with an acknowledgement message.
[012] The mobile terminal initiates a measurement procedure by means of sending probe request messages for each candidate access point in unicast, i.e. a dedicated probe request message will be sent to each candidate access point with a specific service set identifier (SSID). For instance, this specific SSID could be composed in the following way: "used SSID for traffic" + "_" + "MEASUREMENT". By means of the keyword MEASUREMENT, the access point does not send back a probe response message, but only sends back an acknowledgement message as response to the unicast probe request message. It is also possible to use no specific SSID and in this case the access point will have a non-standard behavior.
[013] Preferably, both the uplink and downlink radio links must be measured because the uplink and downlink powers are not necessarily equal. For downlink measurements from the access point to the mobile terminal, an acknowledgement message as response to a unicast probe request message is sufficient. Thus, the solution supports power asymmetry deployment for the radio link between the access point and the mobile terminal.
[014] The proposed solution requires that the access point manages a specific SSID and that the access point preferably ignores this specific SSID when it is probed in broadcast, as in this case no acknowledgement message is sent. This solution also enables to support mobile terminals that are not supporting this solution. It is also possible that the access point responds to this specific SSID when it is probed in broadcast which will enable a mobile terminal supporting the solution to test the solution that is implemented in the access point.
[015] A mobile terminal will be enabled by this solution to perform a measurement in 0.8 ms for each access point at a data rate of 11 Mbit/s instead of about 2 ms for the fast al¬ ternative solution of a unicast probe request and a probe response. This delta time is very important because it may be necessary that the mobile terminal performs several measurements for each candidate access point.
[016] The invention preferably uses the well-known principle of the so-called candidate access point list and the corresponding channels, i.e. the mobile terminal knows its adjacent access points together with their corresponding channels and can therefore restrict the number of unicast probe request messages it has to send.
[017] Further developments of the invention can be gathered from the dependent claims and the following description.
[018] In the following the invention will be explained further making reference to the attached drawings.
[019] The WLAN network in which the invention can be implemented comprises at least two access points API, AP2 and at least one mobile terminal STA.
[020] The access points API, AP2 are both connected to each other via a backbone system and the mobile terminal STA is within the coverage of the radio links of said access points API, AP2. The mobile terminal STA is connected via a wireless connection to access point API and can by means of the backbone system be further connected to another mobile terminal within the same WLAN network. Furthermore, said mobile terminal STA can also be connected by means of the backbone system and via gateways to devices like e.g. terminals or servers located in further networks like e.g. the Internet or another mobile or fixed network. Additional access points that can be comprised in the WLAN network may also be connected to each other and/or to said access points API, AP2 via a backbone system, and additional mobile terminals that can be comprised in the WLAN network may also be connected to one or more of the additional access points and/or said access points API, AP2.
[021] The access points API, AP2 comprise the functionality of an access point of a
WLAN network, i.e. they provide the possibility for mobile terminals to get connected to the WLAN network. Furthermore, according to the invention the access points API, AP2 comprise means to omit sending a probe response message PREl and PRE2 resp. to said mobile terminal STA after having received a probe request message PRUl and PRU2 resp. from said mobile terminal STA.
[022] In another embodiment, the access points API, AP2 additionally comprise means for sending an acknowledgement message ACK to said mobile terminal STA after having received the probe request message PRUl and PRU2 resp. from said mobile terminal STA.
[023] The mobile terminal STA comprises the functionality of a mobile terminal for a
WLAN network, i.e. it can be connected to a WLAN network by means of an access point API or AP2. Additionally, the mobile terminal STA comprises means for sending the probe request messages PRUl, PRU2 at least to the access point API and AP2 resp. with said probe request messages PRUl, PRU2 comprising a specific identifier requesting from the receiving access point API and AP2 resp. notto respond with a probe response message PREl and PRE2 resp. to the mobile terminal STA.
[024] In another embodiment, the probe request messages PRUl, PRU2 sent from the mobile terminal STA additionally comprise a specific identifier requesting from the receiving access point API and AP2 resp. to respond with an acknowledgement message ACK.
[025] In the following, by way of example the method according to the invention is described in detail and compared with the prior art making reference to figs. 1 and 2.
[026] Fig. 1 schematically shows the data transfer belonging to an active scanning procedure according to the IEEE 802.11 standard between two access points API and AP2 and a mobile terminal STA all belonging to the same WLAN network and with the mobile terminal STA being connected to the access point API and also being within the coverage of the radio link of the access point AP2.
[027] The data transfer scheme according to the prior art depicted in fig. 1 shows in the upper row data packets sent from the mobile terminal STA to the access points API and/or AP2, in the middle row data packets sent from the access point API to the mobile terminal STA and in the lower row data packets sent from the access point AP2 to the mobile terminal STA all plotted against the timeline t.
[028] The active scanning scenario of a radio channel depicted in fig. 1 starts with the mobile terminal STA broadcasting a probe request message PRB. Subsequent, the mobile terminal STA awaits probe response messages PREl, PRE2 from the access point API and AP2 resp. that have received the probe request message PRB. If the mobile terminal STA does not receive any probe response messages PREl, PRE2 within a minimum time span MIN that is depicted by a double arrow in fig. 1, the mobile terminal STA starts scanning another radio channel. Otherwise, the mobile terminal STA processes all probe response messages PREl, PRE2 received within a maximum time span MAX that is depicted by the large double arrow in fig. 1.
[029] After the waiting time DIFS, the access point AP2 is the first to send a probe response message PRE2 to the mobile terminal STA. As the mobile terminal STA receives this response within the minimum time span MIN, the mobile terminal STA has to wait for further probe response messages PREl, PRE2 to arrive till the maximum time span MAX has elapsed.
[030] After the waiting time SIFS, the mobile terminal STA sends an acknowledgement message ACK as a response to the access point AP2.
[031] Subsequent, after the time span DIFS has elapsed, it is the turn of the access point
API to answer the probe request message PRB, but the access point API has to wait till a backoff time BO has elapsed before it is allowed to send the probe response message PREl. The backoff time BO increases on average with the number of un¬ successful attempts of the access point API to transmit data and decreases every time the sending is deferred caused e.g. by the use of the channel by the access point AP2.
[032] After the time span SIFS has elapsed, the mobile terminal STA sends an ac¬ knowledgement message ACK as a response to the access point API.
[033] The mobile terminal STA begins with the processing of all received probe response messages PREl, PRE2 only after the maximum time span MAX has elapsed.
[034] Fig. 2 schematically shows the data transfer according to one embodiment of the invention between the two access points API and AP2 and the mobile terminal STA all belonging to the same WLAN network and with the mobile terminal STA being connected to the access point API and being within the coverage of the radio links of the access points API and AP2. Said data transfer scheme is used in order to perform a method for fast radio link measurements according to the invention.
[035] The data transfer scheme depicted in fig. 2 shows in the upper row the data packets sent from the mobile terminal STA to the access points API and/or AP2, in the middle row the data packets sent from the access point API to the mobile terminal STA and in the lower row the data packets sent from the access point AP2 to the mobile terminal STA all plotted against the timeline t.
[036] The active scanning scenario of a radio channel depicted in fig. 2 starts with the mobile terminal STA sending a probe request message PRU2 to the access point AP2 in unicast. The probe request messages PRUl and PRU2 shall comprise a specific identifier requesting from the receiving access point API and AP2 resp. notto respond with a probe response message PREl and PRE2 resp. to the mobile terminal STA. For instance, the probe response messages PRUl and PRU2 can comprise a specific SSID with an additional keyword as already mentioned above.
[037] Subsequent, after the waiting time SIFS has elapsed, the access point AP2 sends an acknowledgement message ACK to the mobile terminal STA.
[038] The mobile terminal STA, after a waiting time DIFS and a backoff time BO have elapsed, sends a probe request message PRUl to the access point API in unicast.
[039] After the waiting time SIFS has elapsed, the access point API sends an ac¬ knowledgement message ACK to the mobile terminal STA.
[040] In another embodiment of the invention, the mobile terminal STA broadcasts the probe request message PRUl and said probe request message PRUl comprises an additional specific identifier requesting from the receiving access point API to respond with an acknowledgement message ACK.
[041] To perform the method according to the invention, the already mentioned principle of the candidate access point list and the corresponding channels is preferably used. Thus, the mobile terminal STA can restrict the sending of probe request messages PREl, PRE2 to its adjacent access points API, AP2.
[042] The mobile terminal STA uses the acknowledgement messages received from the access points API, AP2 to perform measurements to determine the downlink radio link quality.
[043] In case of the method according to the invention, the time that elapses till a measurement can be performed is composed of the time span DIFS, a backoff time, the time needed for a probe request message PRUl or PRU2, the time span SIFS and the time needed for an acknowledgement message ACK which sums up to about 0.8 ms at a data rate of 11 Mbit/s.
[044] In case of the prior art solution of a unicast probe request with a probe response, the time that elapses till a measurement can be performed is composed of the time span DIFS, a backoff time, the time needed for a probe request message PRUl or PRU2, the time span SIFS, the time needed for an acknowledgement message ACK, the time span DIFS, a backoff time, the time needed for a probe response message PREl or PRE2, the time span SIFS and the time needed for an acknowledgement message ACK which sums up to about 2 ms at a data rate of 11 Mbit/s. As already mentioned, this delta time compared to the method according to the invention is very important because it may be necessary that the mobile terminal STA performs several measurements for each candidate access point API or AP2 to get an average measurement.
[045] In case of the solution according to the IEEE 802.11 standard depicted in fig. 1, the time that elapses after the probe request has been broadcasted till a measurement can be performed is mainly composed of the time span DIFS, the backoff time, the time needed for a probe response message PREl or PRE2, the time span SIFS and the time needed for an acknowledgement message ACK. The main difference to the method according to the invention with respect to the time consumption is that in case of the solution depicted in fig. 1, the mobile terminal STA collects and processes all probe response messages PREl, PRE2 that arrive within a certain time span MAX.. The typical default value for the time span MAX that has to be awaited before the mobile terminal STA begins with processing of all received probe response messages PREl, PRE2 is about 20 ms and therefore too high to allow for real time services.
[046] Sending the probe request message PRUl or PRU2 in broadcast with requesting not to send a probe response message PREl and PRE2 resp., but to send an ac¬ knowledgement message ACK could reduce the time needed for performing radio link measurements using the acknowledgement message ACK even more, as only one probe request message PRUl or PRU2 must be sent. However, if the probe request message PRUl or PRU2 is sent in broadcast, the sending can not be restricted to the preselected adjacent access points API and AP2.
[047]
Unrecognized text
[048] [049]

Claims

Claims
[001] A method for fast determination of the quality of the radio link from a mobile terminal (STA) to an access point (API) in a Wireless Local Area Network char¬ acterized in, that after having received a probe request message (PRUl) from the mobile terminal (STA), the access point (API) does not send a probe response message (PREl) to said mobile terminal (STA).
[002] A method according to claim 1, characterized in, that after having received a probe request message (PRUl) from said mobile terminal (STA), said access point (API) sends an acknowledgement message (ACK) to said mobile terminal (STA).
[003] A method according to claim 1, characterized in, that said probe request message
(PRUl) is unicast.
[004] A mobile terminal (STA) for communicating within a Wireless Local Area
Network comprising means for sending a probe request message (PRUl) to at least one access point (API) characterized in, that the probe request message (PRUl) comprises a specific identifier requesting from the receiving access point (API) notto respond with a probe response message (PREl) to the mobile terminal (STA).
[005] A mobile terminal (STA) according to claim 4 characterized in, that said probe request message (PRUl) comprises a specific identifier requesting from said receiving access point (APl)to respond with an acknowledgement message (ACK).
[006] A mobile terminal (STA) according to claim 5, characterized in, that said mobile terminal (STA) comprises means to receive an acknowledgement message (ACK) from said receiving access point (API) in response to said probe request message (PRUl) that has been sent to said receiving access point (API).
[007] A program module to be executed in a mobile terminal (STA) for sending a probe request message (PRUl) to at least one access point (API) for com¬ municating within a Wireless Local Area Network characterized in, that the probe request message (PRUl) comprises a specific identifier requesting from the receiving access point (API) notto respond with a probe response message (PREl) to the mobile terminal (STA).
[008] A program module according to claim 7 characterized in, that said probe request message (PRUl) comprises a specific identifier requesting from said receiving access point (API) to respond with an acknowledgement message (ACK).
[009] A program module according to claim 8 characterized in, that if the program module is executed, it expects to receive an acknowledgement message (ACK) from said receiving access point (API) in response to said probe request message (PRUl).
[010] An access point (API) for communicating within a Wireless Local Area Network comprising at least one mobile terminal (STA) characterized in, that the access point (API) comprises means to omit sending a probe response message (PREl) to the mobile terminal (STA) after having received a probe request message (PRUl) from said mobile terminal (STA).
[011] An access point (API) according to claim 10 characterized in, that said access point (API) comprises means for sending an acknowledgement message (ACK) to said mobile terminal (STA) after having received the probe request message (PRUl) from said mobile terminal (STA).
[012] A program module to be executed in an access point (API) for communicating within a Wireless Local Area Network comprising at least one mobile terminal (STA) characterized in, that if the program module is activated, no probe response message (PREl) is sent to the mobile terminal (STA) after having received a probe request message (PRUl) from said mobile terminal (STA).
[013] A program module according to claim 12, characterized in, that if the program module is activated, an acknowledgement message (ACK) is sent to said mobile terminal (STA) after having received the probe request message (PRUl) from said mobile terminal (STA).
PCT/EP2005/055531 2004-10-26 2005-10-25 Method for fast radio link measurements of access point candidates for wlan handover, a mobile terminal, an access point and program modules therefor Ceased WO2006045797A1 (en)

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US20090135785A1 (en) 2009-05-28
CN101048974A (en) 2007-10-03
EP1653666B1 (en) 2011-05-04
JP2008526051A (en) 2008-07-17

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