WO2008131579A1 - System and method for optimizing data over signaling transmissions - Google Patents

System and method for optimizing data over signaling transmissions Download PDF

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Publication number
WO2008131579A1
WO2008131579A1 PCT/CN2007/001376 CN2007001376W WO2008131579A1 WO 2008131579 A1 WO2008131579 A1 WO 2008131579A1 CN 2007001376 W CN2007001376 W CN 2007001376W WO 2008131579 A1 WO2008131579 A1 WO 2008131579A1
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WO
WIPO (PCT)
Prior art keywords
access terminal
access
data
message
data over
Prior art date
Application number
PCT/CN2007/001376
Other languages
French (fr)
Inventor
Shunlin Chen
Sha Lv
Mintao Dai
Original Assignee
Huawei Technologies Co., Ltd.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Huawei Technologies Co., Ltd. filed Critical Huawei Technologies Co., Ltd.
Priority to PCT/CN2007/001376 priority Critical patent/WO2008131579A1/en
Priority to CNA2007800000419A priority patent/CN101461156A/en
Publication of WO2008131579A1 publication Critical patent/WO2008131579A1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/12Messaging; Mailboxes; Announcements
    • H04W4/14Short messaging services, e.g. short message services [SMS] or unstructured supplementary service data [USSD]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W60/00Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration
    • H04W60/04Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration using triggered events

Definitions

  • the present invention relates generally to wireless communications, and more particularly, to a versatile system and methods for optimizing data over signaling transmissions in a CDMA2000 IxEV-DO environment.
  • Recent revisions of the IxEV-DO standard provide a Data over Signaling (DoS) protocol, by which data may be transmitted over a Control Channel or an Access Channel, thereby increasing data communication flexibility.
  • DoS Data over Signaling
  • DoS protocol provides a DataOverSignaling message to carry upper- layer data, and a DataOverSignalingAck message as a response.
  • DataOverSignaling and DataOverSignalingAck messages forward data as well as reverse data can be transmitted.
  • FIG. 1 is a diagram illustrating a conventional method for transmitting data in DoS format over a Control Channel.
  • PDSN Packet Data Serving Node
  • AT Access Terminal
  • PCF Packet Control Function
  • AN Access Network
  • FIG. 1 is a diagram illustrating a conventional method for transmitting data in DoS format over a Control Channel.
  • AT 102 sends a DataOverSignalingAck message to AN 104 indicating the DataOverSignaling message was received.
  • AN 104 then sends an A9-Short Data Delivery Ack message to PCF 106 indicating delivery of the data to A l 102 in the DoS format.
  • AN 104 only has knowledge of the subnet where AT 102 is in. but does not know which cell or sector of the subnet AT 102 is located. Therefore, the DataOverSignaling message is sent throughout the entire subnet. If SecondaryColorCode feature is supported in the network, then the DataOverSignaling message also needs to be sent to subnets having a ColorCode value included in the SecondaryColorCode.
  • a DoS message may need to be sent throughout a very large area.
  • DataOverSignaling messages are used to transmit data, a large amount of data may be involved in a DataOverSignaling message.
  • sending a message having a large amount of data, throughout a large area places a very high demand for system processing capability, forward resources and air interface resources.
  • CDMA2000 IxEV-DO environment is provided.
  • DataOverSignaling messages are sent only to a serving cell or a sector for an Access Terminal (AT).
  • AT Access Terminal
  • FIG. 1 is a diagram illustrating a PRIOR ART method of signaling:
  • FIG. 2 is a diagram illustrating signaling according to one embodiment of the present invention.
  • FIG. 3 is a diagram illustrating signaling according to another embodiment of the present invention.
  • FIG. 4 is a diagram illustrating signaling according to yet another embodiment of the present invention.
  • DataOverSignaling messages are only sent to the serving cell or the sector for an Access Terminal (AT).
  • AT Access Terminal
  • the embodiments of the present invention provide methods to send DoS messages over a Control Channel (CC) to an AT when the AT is in a dormant state or an idle state.
  • the methods of the embodiments of the present invention may: determine a DoS message delivery method (optional); locate a serving cell or a sector for the AT; and send DoS messages to the designated serving cell or sector.
  • an Access Network may specify a given threshold value for determining which method is to be used for DoS message delivery. If the received packet data is greater than the given threshold - that is, a large amount of data needs to be delivered to an AT - then a serving cell or sector for the AT is determined before sending the DoS messages. If the received packed data is small, then conventional methods are used to send the DoS messages.
  • This threshold may be determined or defined, dynamically or statically, by the AN itself; or it may be desirable to provide it having a pre-defined length on the order of a paging message.
  • the AN When a serving cell or sector for an AT needs to be determined before DoS messages are sent from an AN, the AN needs to obtain the location of the AT.
  • the location of the AT may be obtained through communications between the AN and the AT.
  • the AN may send a message to the AT for locating purposes, and obtain AT's location after receiving a response from the AT.
  • a first method uses additional messages to locate an AT before the DoS messages are delivered.
  • a locating message may be any message that an AT may respond in an Access Channel (AC), such as a paging message, a RouteUpdateRequest message, or other messages.
  • a second method uses a DoS message for locating purposes.
  • An AN may send large data packet using multiple DoS messages.
  • the first DoS message may be directly used to locate an AT. That is, an AN broadcasts the first DoS message throughout the subnet, and once the AN receives a corresponding DataOverSignalingAck message, the AT's location information is obtained. Subsequent DataOverSignaling messages are then sent to the AT according to the location information.
  • an AN When an AN has DoS messages to deliver to an AT, it determines whether an AT needs to be located first, according to the amount of data to be delivered. When the AT is located, data may then be sent to the determined location of the AT.
  • FIG. 2 an embodiment for delivering a DoS message from an AN 204 to an Access Terminal (AT) 202 after locating AT 202 is illustrated.
  • a paging message is used to locate AT 202 .
  • a Packet Data Serving Node (PDSN) 208 has packet data destined for AT 202 , so, PDSN 208 sends the packet data to a Packet Control
  • PCF Policy Function
  • PCF 206 sends the packet data to AN 204 in an A9-
  • AT 202 is in a dormant state or an idle state.
  • AT 204 sends a paging message to page AT 202 , initiating a call connection.
  • AT 202 then sends a ConnectionRcquest message or a RouteUpdale message to AN 204 . requesting call connection initiation, and reporting the current location of AT 202 .
  • AN 204 locates AT 202 based on the RouteUpdate message, and sends a DoS message to AT 202 .
  • AT 202 then sends DataOverSignalingAck indicating that the DoS message was received.
  • AN 204 then sends A9-Short Data Delivery Ack message to PCF 206 indicating data delivery.
  • the above embodiment uses a paging message to locate an AT.
  • an AT receiving a paging message, may only respond to the paging message for locating purposes.
  • the AT does not need to initiate a call connection.
  • a Connectionlndication field may be added in a paging message, indicating whether an AT is initiating a call connection, as shown below in Table 1.
  • the Connectionlndication is set to 0.
  • the Connectionlndication is set to 1. Therefore, when an AN sends a paging message to an AT, and the Connectionlndication is equal to 0, the AT only need respond with a RouteUpdate message to the AN, and does not initiate a call connection.
  • FIG. 3 is a diagram of delivering a DoS message from an AN 304 to an AT 302 after locating the AT 302 using a RoutelJpdateRequest message.
  • a PDSN 308 has packet data destined for AT 302. Therefore, PDSN 308 first sends the packet data to a PCl- " 306. At this time, there is no traffic connection between PCF 306 and AT 302. Thus, PCF 306 sends the packet data to AN 304 in an A9-Short Data Delivery message. If AT 302 is in a dormant state or an idle state, AN 304 sends a RoutelJpdateRequest message, instructing AT 302 to send a RouteUpdate message. AT 302 then sends a RouteUpdate message to AN 304, reporting the current location of AT 302.
  • AN 304 locates AT 302 based on the RouteUpdate message, and send a DoS message to AT 302 at the corresponding location.
  • AT 302 then sends a DataOverSignalingAck indicating the DoS message was received.
  • AN 304 then sends a A9-Short Data Delivery Ack message to PCF 306 indicating data delivery.
  • an AN uses multiple DoS messages to deliver a data packet, and uses the first DoS message to locate an AT.
  • FIG. 4 is a diagram of delivering DoS messages from an AN 404 to an AT 402 after locating AT 402 using a DoS message.
  • a PDSN 408 has packet data destined for AT 402.
  • PDSN 408 first sends the packet data to a PCF 406.
  • PCF 406 sends the packet data to AN 404 in an A9-Short Data Delivery message.
  • AT 402 is in a dormant state or an idle state, then AN 404 splits one DoS message up into two or more DoS messages, and sends the first DoS message.
  • AT 402 then sends a DataOverSignalingAck message indicating the DoS message was received.
  • AN 404 obtains the location of AT 402 based upon the DataOverSignalingAck message, and then sends the remaining DoS messages to this location. AT 402 then sends a DataOverSignalingAck messages indicating the DoS messages were received. In addition, AN 404 responds to PCF 406 with an A9-Short Data Ack message.
  • embodiments of the present invention obtain location information of an AT for an AN, before sending DoS messages to the AT.
  • DoS messages are sent to the AT based on obtained location information, instead of sending messages throughout the entire subnet where the AT is. This greatly reduces demand for system performance and improves data delivery reliability.
  • the AN may first locate the AT using a paging message, and then send the DoS message to the AT, as described in the embodiment above.
  • the paging message which includes 2 bytes, is first sent throughout the subnet.
  • At least one embodiment, among others, of the present invention greatly reduces the amount of data to be delivered.
  • At least one embodiment, among others, of the present invention is also advantageous when a large DoS message needs to be delivered.
  • the first DoS message may be made as short as possible (e.g., 1 byte), to be used for locating an AT.
  • the remaining DoS messages, containing effective data to be delivered, arc then delivered within the serving cell or sector of the AT according to the location information.
  • the amount of data to be delivered is decreased substantially.
  • this step for determining whether a DoS message is a large amount may be included or omitted as needed.
  • An AN may make such a determination if desired.
  • An AN may also set up a threshold for the determination.

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

Abstract

A system for optimizing data over signaling (DoS) transmissions in wireless communications system is disclosed. The system comprises at least one access network and at least one access terminal. The at least one access network is adapted to determine location of the at least one access terminal through communication between the at least one access network and the at least one access terminal, and adapted to transfer data between the at least one access network and the at least one access terminal.

Description

SYSTEM AND METHOD FOR OPTIMIZING DATA OVER SIGNALING TRANSMISSIONS
Field of the Technology
The present invention relates generally to wireless communications, and more particularly, to a versatile system and methods for optimizing data over signaling transmissions in a CDMA2000 IxEV-DO environment.
Background of the Invention
Recent revisions of the IxEV-DO standard provide a Data over Signaling (DoS) protocol, by which data may be transmitted over a Control Channel or an Access Channel, thereby increasing data communication flexibility. When small amounts of data are sent over a Control Channel or an Access Channel, the need to establish a connection is eliminated, thus conserving air interface resources and improving the ability to communicate data in real time.
In addition, DoS protocol provides a DataOverSignaling message to carry upper- layer data, and a DataOverSignalingAck message as a response. By utilizing DataOverSignaling and DataOverSignalingAck messages, forward data as well as reverse data can be transmitted.
FIG. 1 is a diagram illustrating a conventional method for transmitting data in DoS format over a Control Channel. When a Packet Data Serving Node (PDSN) 108 has packet data destined for an Access Terminal (AT) 102, PDSN 108 sends the packet data to a Packet Control Function (PCF) entity 106. There is no traffic connection between PCF 106 and AT 102. Thus, PCF 106 sends the packet data to an Access Network (AN) 104 in an A9-Short Data Delivery message. If A'l 102 is in a dormant state or an idle state, then the AN 104 sends a DataOverSignaling message throughout the range of an entire subnet where AT 102 is being served. Then, AT 102 sends a DataOverSignalingAck message to AN 104 indicating the DataOverSignaling message was received. AN 104 then sends an A9-Short Data Delivery Ack message to PCF 106 indicating delivery of the data to A l 102 in the DoS format. In this scheme, AN 104 only has knowledge of the subnet where AT 102 is in. but does not know which cell or sector of the subnet AT 102 is located. Therefore, the DataOverSignaling message is sent throughout the entire subnet. If SecondaryColorCode feature is supported in the network, then the DataOverSignaling message also needs to be sent to subnets having a ColorCode value included in the SecondaryColorCode. Thus, a DoS message may need to be sent throughout a very large area. Furthermore, since DataOverSignaling messages are used to transmit data, a large amount of data may be involved in a DataOverSignaling message. Thus sending a message having a large amount of data, throughout a large area, places a very high demand for system processing capability, forward resources and air interface resources.
Therefore, there is a need for more efficient and optimal methods of DoS transmission that reduce the demand on system resources and processing capabilities. There is a further need for efficient and optimal methods of DoS transmission that improve transmitted data reliability.
Summary of the Invention
Structure and methods for optimizing data over signaling transmissions in a
CDMA2000 IxEV-DO environment is provided. DataOverSignaling messages are sent only to a serving cell or a sector for an Access Terminal (AT). Thus, impact on the network caused by sending large amounts of data is minimized, and reliability of data transmitted over the DoS protocol is optimized.
The following description and drawings set forth in detail a number of illustrative embodiments of the invention. These embodiments are indicative of but a few of the various ways in which the present invention may be utilized.
Brief Description of the Drawings
For a more complete understanding of the present disclosure and its advantages, reference is now made to the following description taken in conjunction with the accompanying drawings, in which like reference numerals represent like parts:
FlG. 1 is a diagram illustrating a PRIOR ART method of signaling: FIG. 2 is a diagram illustrating signaling according to one embodiment of the present invention;
FIG. 3 is a diagram illustrating signaling according to another embodiment of the present invention; and
FIG. 4 is a diagram illustrating signaling according to yet another embodiment of the present invention.
Detailed Description of the Invention
The following discussion is presented to enable a person skilled in the art to make and use the invention. The general principles described herein may be applied to embodiments and applications other than those detailed below without departing from the spirit and scope of the present invention as defined herein. The present invention is not intended to be limited to the embodiments shown, but is to be accorded the widest scope consistent with the principles and features disclosed herein.
System for optimizing Data over Signaling (DoS) transmissions in a CDMA2000 IxEV-DO environment is provided. In the embodiments of the present invention, DataOverSignaling messages are only sent to the serving cell or the sector for an Access Terminal (AT). Thus impact on the network caused by sending large amount of data is reduced to the minimum, and reliability of data transmitted over the DoS protocol is further improved.
The embodiments of the present invention provide methods to send DoS messages over a Control Channel (CC) to an AT when the AT is in a dormant state or an idle state. The methods of the embodiments of the present invention may: determine a DoS message delivery method (optional); locate a serving cell or a sector for the AT; and send DoS messages to the designated serving cell or sector.
Moreover, an Access Network (AN) may specify a given threshold value for determining which method is to be used for DoS message delivery. If the received packet data is greater than the given threshold - that is, a large amount of data needs to be delivered to an AT - then a serving cell or sector for the AT is determined before sending the DoS messages. If the received packed data is small, then conventional methods are used to send the DoS messages. This threshold may be determined or defined, dynamically or statically, by the AN itself; or it may be desirable to provide it having a pre-defined length on the order of a paging message.
When a serving cell or sector for an AT needs to be determined before DoS messages are sent from an AN, the AN needs to obtain the location of the AT. The location of the AT may be obtained through communications between the AN and the AT. For example, the AN may send a message to the AT for locating purposes, and obtain AT's location after receiving a response from the AT. In this case, several methods may be employed. A first method uses additional messages to locate an AT before the DoS messages are delivered. A locating message may be any message that an AT may respond in an Access Channel (AC), such as a paging message, a RouteUpdateRequest message, or other messages. A second method uses a DoS message for locating purposes. An AN may send large data packet using multiple DoS messages. In this case, the first DoS message may be directly used to locate an AT. That is, an AN broadcasts the first DoS message throughout the subnet, and once the AN receives a corresponding DataOverSignalingAck message, the AT's location information is obtained. Subsequent DataOverSignaling messages are then sent to the AT according to the location information.
When an AN has DoS messages to deliver to an AT, it determines whether an AT needs to be located first, according to the amount of data to be delivered. When the AT is located, data may then be sent to the determined location of the AT.
Referring now to FlG. 2, an embodiment for delivering a DoS message from an AN 204 to an Access Terminal (AT) 202 after locating AT 202 is illustrated. In this embodiment, a paging message is used to locate AT 202 .
In this example, a Packet Data Serving Node (PDSN) 208 has packet data destined for AT 202 , so, PDSN 208 sends the packet data to a Packet Control
Function (PCF) entity 206 . There is no traffic connection between PCF 206 and AT
202 at this time. Accordingly, PCF 206 sends the packet data to AN 204 in an A9-
Short Data Delivery message. If AT 202 is in a dormant state or an idle state. AN
204 sends a paging message to page AT 202 , initiating a call connection. AT 202 then sends a ConnectionRcquest message or a RouteUpdale message to AN 204 . requesting call connection initiation, and reporting the current location of AT 202 . AN 204 then locates AT 202 based on the RouteUpdate message, and sends a DoS message to AT 202 . AT 202 then sends DataOverSignalingAck indicating that the DoS message was received. AN 204 then sends A9-Short Data Delivery Ack message to PCF 206 indicating data delivery.
The above embodiment uses a paging message to locate an AT. However, an AT, receiving a paging message, may only respond to the paging message for locating purposes. Thus, the AT does not need to initiate a call connection. For covering this scenario, a Connectionlndication field may be added in a paging message, indicating whether an AT is initiating a call connection, as shown below in Table 1.
Table 1
Figure imgf000006_0001
If an AT is not expected to initiate a call connection when receiving a paging message, then the Connectionlndication is set to 0. On the other hand, if an AT is expected to initiate a call connection, the Connectionlndication is set to 1. Therefore, when an AN sends a paging message to an AT, and the Connectionlndication is equal to 0, the AT only need respond with a RouteUpdate message to the AN, and does not initiate a call connection.
An alternative embodiment uses a RoutelJpdateRequest message to locale an AT. FlG. 3 is a diagram of delivering a DoS message from an AN 304 to an AT 302 after locating the AT 302 using a RoutelJpdateRequest message.
In this embodiment, a PDSN 308 has packet data destined for AT 302. Therefore, PDSN 308 first sends the packet data to a PCl-" 306. At this time, there is no traffic connection between PCF 306 and AT 302. Thus, PCF 306 sends the packet data to AN 304 in an A9-Short Data Delivery message. If AT 302 is in a dormant state or an idle state, AN 304 sends a RoutelJpdateRequest message, instructing AT 302 to send a RouteUpdate message. AT 302 then sends a RouteUpdate message to AN 304, reporting the current location of AT 302. AN 304 locates AT 302 based on the RouteUpdate message, and send a DoS message to AT 302 at the corresponding location. AT 302 then sends a DataOverSignalingAck indicating the DoS message was received. AN 304 then sends a A9-Short Data Delivery Ack message to PCF 306 indicating data delivery.
In another embodiment, an AN uses multiple DoS messages to deliver a data packet, and uses the first DoS message to locate an AT. FIG. 4 is a diagram of delivering DoS messages from an AN 404 to an AT 402 after locating AT 402 using a DoS message.
In this embodiment, a PDSN 408 has packet data destined for AT 402. Thus. PDSN 408 first sends the packet data to a PCF 406. At this time, there is no traffic connection between PCF 406 and AT 402. As a result, PCF 406 sends the packet data to AN 404 in an A9-Short Data Delivery message. If AT 402 is in a dormant state or an idle state, then AN 404 splits one DoS message up into two or more DoS messages, and sends the first DoS message. AT 402 then sends a DataOverSignalingAck message indicating the DoS message was received. AN 404 obtains the location of AT 402 based upon the DataOverSignalingAck message, and then sends the remaining DoS messages to this location. AT 402 then sends a DataOverSignalingAck messages indicating the DoS messages were received. In addition, AN 404 responds to PCF 406 with an A9-Short Data Ack message.
In summary, embodiments of the present invention obtain location information of an AT for an AN, before sending DoS messages to the AT. Thus, DoS messages are sent to the AT based on obtained location information, instead of sending messages throughout the entire subnet where the AT is. This greatly reduces demand for system performance and improves data delivery reliability.
Some advantages of at least one embodiment of the present invention may be shown by an analysis on data volume involved in sending a DoS message to an A l\ In one example, an AN sends a DoS message to an AT, and the message is 200 bytes in length. If there are 100 cells in a subnet of the AN, then the total amount of data to be delivered within the subnet is: 100 * 200 = 20,000 bytes (headers are not considered in this analysis). The AN may first locate the AT using a paging message, and then send the DoS message to the AT, as described in the embodiment above. The paging message, which includes 2 bytes, is first sent throughout the subnet. Thus, delivering the paging message involves a data amount of: 100 * 2 = 200 bytes.
Once the AT's location information is obtained, the AN sends the DoS message to the serving cell or sector of the AT, which consists of a data amount of: 1 * 200 = 200 bytes.
Therefore the total amount of data involved in delivering a DoS message to an AT by use of one embodiment, among others, of the present invention is: 200 + 200 = 400 bytes.
Comparatively, sending a DoS message using a conventional method requires delivering a data amount of 20.000 bytes. In contrast, the method in one embodiment. among others, of the present invention only requires 400 Bytes of data to be sent.
Therefore, at least one embodiment, among others, of the present invention greatly reduces the amount of data to be delivered.
In addition, at least one embodiment, among others, of the present invention is also advantageous when a large DoS message needs to be delivered. If a DoS message is divided into multiple DoS messages for delivery, the first DoS message may be made as short as possible (e.g., 1 byte), to be used for locating an AT. The remaining DoS messages, containing effective data to be delivered, arc then delivered within the serving cell or sector of the AT according to the location information. Thus, the amount of data to be delivered is decreased substantially.
However, this step for determining whether a DoS message is a large amount may be included or omitted as needed. An AN may make such a determination if desired. An AN may also set up a threshold for the determination. These options provide more flexibility for using one embodiment, among others, of the present invention.
The previous description of the disclosed embodiments is provided to enable those skilled in the art to make or use one embodiment, among others, of the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art and generic principles defined herein may be applied to other embodiments without departing from the spirit or scope of the invention. Thus, the present invention is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A method of transmitting data in a Data over Signaling message within a wireless network, comprising: determining location of an access terminal through communication between an access 5 network and the access terminal; and transferring the data between the access network and the access terminal.
2. The method of claim 1 wherein determining location of an access terminal further comprises the access network sending a message to the access terminal for location purpose, and the access terminal responding to the access network.
K) 3. The method of claim 2 wherein determining location of the access terminal within the wireless network comprises transmitting a paging message.
4. The method of claim 3 wherein when the access terminal receives the paging message, the access terminal initiates a call connection with the access network if a connection indicator is set to 1, or the access terminal does not initiate a call connection with, but only
15 responses to, the access network if the connection indicator is set to 0.
5. The method of claim 2 wherein determining location of the access terminal within the wireless network comprises transmitting a route update message or a Data over Signaling message.
6. The method of claim 2 wherein determining location of the access terminal within the 20 wireless network comprises: splitting the Data over Signaling message into two or more Data over Signaling messages by the access network; and sending a first Data over Signaling message of the two or more Data over Signaling messages to the access terminal by the access network. 5
7. The method of claim 6 wherein the first Data over Signaling message of the two or more Data over Signaling messages has a minimal length of bytes.
8. The method of claim 1 wherein transferring data between the access network and the access terminal is via a Control Channel or an Access Channel.
9. The method of claim 1 wherein the wireless network is a CDMA2000 IxEV-DO system.
10. The method of claim 1 wherein the access terminal is in a dormant state or an idle state.
5 1 1. The method of claim 1 wherein the step of determining location of an access terminal further comprises determining location of an access terminal when the amount of data exceeds a designated threshold.
12. A method of transmitting data in a Data over Signaling message within a wireless network, comprising:
K) identifying an amount of data to be transferred to an access terminal: determining location of the access terminal if the amount of data to be transferred exceeds a threshold size; and transferring data between an access network and the access terminal.
13. The method of claim 12 wherein determining location of the access terminal 15 comprises transmitting a paging message.
14. The method of claim 13 wherein when the access terminal receives the paging message, the access terminal initiates a call connection with the access network if a connection indicator is set to 1 , or the access terminal does not initiate a call connection with, but only responses to, the access network if the connection indicator is set to 0. 0
15. The method of claim 12 wherein determining location of the access terminal comprises transmitting a route update message or a Data over Signaling message.
16. The method of claim 12 wherein determining location of the access terminal comprises: splitting the Data over Signaling message into two or more Data over Signaling5 messages by the access network; and sending a first Data over Signaling message of the two or more Data over Signaling messages to the access terminal by the access network.
17. The method of claim 16 wherein the first Data over Signaling message of the two or more Data over Signaling messages has a minimal length of bytes.
18. The method of claim 12 wherein transferring data between the access network and the access terminal via a Control Channel or an Access Channel.
19. The method of claim 12 wherein the wireless network is a CDMA2000 IxEV-DO system.
20. The method of claim 12 wherein the access terminal is in a dormant state or an idle state.
21. A system for transmitting data in a Data over Signaling message within a wireless network, comprising: at least one access network and at least one access terminal; wherein the at least one access network is adapted to determine location of the at least one access terminal through communication between the at least one access network and the at least one access terminal, and adapted to transfer data between the at least one access network and the at least one access terminal.
22. The system of claim 21 wherein the at least one access network is adapted to determine location of the at least one access terminal if data to be transferred to the at least one access terminal exceeds a threshold size.
PCT/CN2007/001376 2007-04-25 2007-04-25 System and method for optimizing data over signaling transmissions WO2008131579A1 (en)

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