A wireless data communication system is operable in a power saving mode wherein stations are synchronized to be in an awake state to receive synchronizing messages (TIM, PSYNC) and traffic indicator information and are changed to a doze state if they are not to receive data messages. In one embodiment all stations (20) communicate via a base station access point (16), which broadcasts synchronizing messages (TIM) at regular intervals identifying stations (20) that are to receive data messages. In another embodiment all stations (220) communicate directly with one another, one station assumes the role of a master station and broadcasts synchronizing messages (PSYNC), and stations (220) desiring to transmit data messages transmit traffic indicator messages (PTIM) to the appropriate destination stations (220), in a synchronized awake period just before the next synchronizing message (PSYNC) is expected to arrive.
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14. A wireless data communication system including a plurality of wireless data communication stations communicating directly in an ad-hoc network, wherein at least one of the plurality of wireless data communication stations acts as a master station and the remainder of the plurality of wireless data communication stations act as slave stations, wherein said system:
said master station broadcasts a synchronizing message in accordance with a synchronization timer, wherein the slave stations remain in an awake state;
said slave stations enter a doze state once the synchronizing message from the master station is received;
a slave station than has messages to broadcast transmits a traffic message, if the slave station is in the awake state;
wherein the traffic message is stored in a buffer of the slave station that has messages to broadcast and the traffic message is transmitted to all stations to which the slave station wishes to transit, wherein a holdover timer ensures the slave station remains in the awake state until all the message are broadcast.
10. A method of operating a wireless data communication system including a plurality of wireless data communication stations communicating directly in an ad-hoc network, wherein at least one of the plurality of wireless data communication stations acts as a master station and the remainder of the plurality of wireless data communication stations act as slave stations, said method comprising:
broadcasting a synchronizing message by the master station in accordance with a synchronization timer, wherein the slave stations remain in an awake state;
entering a doze state by the slave stations once the synchronizing message from the master station is received;
transmitting a traffic message by a slave station that has messages to broadcast, if the slave station is in the awake state;
wherein the traffic message is stored in a buffer of the slave station that has messages to broadcast and the traffic message is transmitted to all stations to which the slave station wishes to transmit, wherein a holdover timer ensures the slave station remains in the awake state until all the message are broadcast.
0. 91. A method of operating a mobile wireless station, comprising the steps of:
receiving periodically transmitted synchronizing messages from an access point,
operating in an awake state of relatively high power consumption during the receiving step;
identifying whether the mobile wireless station is to receive data messages;
changing the operating state of the mobile wireless station to doze stage of relatively low power consumption after the receiving step and identifying steps are performed if the mobile wireless station is not to receive a data message; and
maintaining both transmitter and receiver functions of the mobile wireless station in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the mobile wireless station if the mobile wireless station is to receive a data message, wherein the mobile wireless station receives one or more data messages via the access point and returns to the doze state when the mobile wireless station determines that no additional data messages await.
0. 110. A mobile wireless station, comprising:
a station transceiver that receives and transmits messages; and
switching device that can switch the mobile wireless station between an awake state of relatively high power consumption so that the station transceiver is capable of receiving messages, and a doze state of relatively low power consumption,
wherein the switching device causes the mobile wireless station to be in an awake state to receive periodically transmitted synchronizing messages, and
wherein the switching device causes the mobile wireless station to be in the doze state following receipt of the synchronizing messages if no data messages are to be transmitted by an access point to the mobile wireless station, the switching device causes both transmitter and receiver functions of the mobile wireless station to remain in the awake state if data messages are to be transmitted by the access point to the mobile wireless station, and the switching device causes the mobile wireless station to return to the doze state when the mobile wireless station determines that no additional data messages await.
0. 101. A mobile wireless station, comprising:
a station transceiver that receives and transmits messages; and
a switching device that can switch the mobile wireless station between an awake state of relatively high power consumption so that the station transceiver is capable of receiving messages, and a doze state of relatively low power consumption,
wherein the switching device causes the mobile wireless station to be in an awake state to receive periodically transmitted synchronizing messages, and
wherein the switching device causes the mobile wireless station to be in the doze state following receipt of the synchronizing messages if no data messages are to be transmitted by an access point to the mobile wireless station, the switching device causes both transmitter and receiver functions of the mobile wireless station to remain in the awake state if data messages are to be transmitted by the access point to the mobile wireless station, and the switching device causes the mobile wireless station to return to the doze state when the mobile wireless station determines that no additional data messages await.
0. 60. A mobile wireless station, comprising:
a station transceiver that receives and transmits messages; and
a switching device, that can switch the mobile wireless station between an awake state of relatively high power consumption so that the station transceiver is capable of receiving messages, and a doze state of relatively low power consumption
wherein the switching device causes the mobile wireless station to be in an awake state to receive periodically transmitted synchronizing messages containing traffic indicator information from an access point;
wherein the switching device causes the mobile wireless station to be in the doze state following receipt of the periodically transmitted synchronizing messages if the traffic indicator information indicates that no data messages are to be transmitted by the access point to the mobile wireless station and wherein the switching device causes both transmitter and receiver functions of the mobile wireless station to remain in an awake state until the next synchronizing message is received if the mobile wireless station has received a message in the current synchronizing period.
0. 54. A mobile wireless station, comprising:
a station transceiver that receives and transmits messages; and
a switching device, that can switch the mobile wireless station between an awake state of relatively high power consumption so that the station transceiver is capable of receiving messages, and a doze state of relatively low power consumption
wherein the switching device causes the mobile wireless station to be in an awake state to receive periodically transmitted synchronizing messages containing traffic indicator information from an access point;
wherein the switching device causes the mobile wireless station to be in the doze state following receipt of the periodically transmitted synchronizing messages if the traffic indicator information indicates that no data messages are to be transmitted by the access point to the mobile wireless station and wherein the switching device causes both transmitter and receiver functions of the mobile wireless station to remain in an awake state until the next synchronizing message is received if the mobile wireless station has received a message in the current synchronizing period.
0. 53. A method of operating a mobile wireless station, comprising the steps of:
receiving periodically transmitted synchronizing messages broadcast from an access point;
determining whether the mobile wireless station is to receive a data message by receiving traffic indicator information transmitted from the access point;
operating in an awake state of relatively high power consumption during the receiving step and the determining step;
changing the operating state to a doze state of relatively low power consumption after the receiving step and the determining step are performed if the mobile wireless station is not to receive a data message; and
maintaining the operating state of both transmitter and receive functions of the mobile wireless station in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the mobile wireless station if the mobile wireless station is to receive a data message wherein the mobile wireless station receives one or more data messages via the access point and remains in the awake state at least until the next synchronization message is received.
0. 97. A mobile wireless station, comprising:
a station transceiver adapted to receive and transmit messages; and
a switching device, adapted to control the power received by the station transceiver so that the mobile wireless station is controlled to be in an awake state of relatively high power consumption to receive synchronizing messages and traffic indicator information from an access point, wherein the synchronizing messages further include message indicator portions indicating that additional data messages await transmission to the mobile wireless station;
and following receipt of the synchronizing messages and the traffic indicator information, if the mobile wireless station has no data messages destined therefore, the switching device changes to a doze state of relatively low power consumption, and if the mobile wireless station has data messages destined therefore, the switching device maintains both transmitter and receiver functions of the mobile wireless station in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator information; and
wherein the switching device is controllable to return the mobile wireless station to the doze state when the mobile wireless station determines that no additional data messages await.
0. 79. A wireless data communication system, comprising:
an access point, broadcasting periodically transmitted synchronizing messages;
a plurality of mobile stations, receiving the periodically transmitted synchronizing messages broadcast by the access point, the plurality of mobile stations operating in an awake state of relatively high power consumption during broadcasting by the access point, the plurality of mobile stations identifying which are to receive data messages,
wherein the plurality of mobile stations that were not identified change to a doze state of relatively low power consumption and the plurality of mobile stations that were identified stay in the awake state for a time period beginning immediately after receiving each synchronizing message so that one or more data messages are able to be transmitted to the plurality of mobile stations that were identified;
the access point transmitting all data messages for the plurality of mobile stations that were identified;
the mobile stations that were identified returning to the doze state when the mobile stations that were identified determine that no additional data messages await; and
both transmitter and receiver functions of each identified mobile station stay in the awake state for the time period beginning immediately after receiving each synchronizing message.
0. 67. A method of operating a wireless data communication system, comprising the steps of:
broadcasting periodically transmitted synchronizing messages from an access point to a plurality of mobile stations,
operating the plurality of mobile stations in an awake state of relatively high power consumption during the broadcasting step;
identifying which of the plurality of mobile stations are to receive data messages;
changing the operating state of the mobile stations that were not identified to a doze state of relatively low power consumption after the broadcasting step and identifying steps are performed;
maintaining the mobile stations that were identified in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the mobile stations that were identified;
transmitting all data messages for the mobile stations that were identified via the access point;
returning the mobile stations that were identified to the doze state when the mobile stations that were identified determine that no additional data messages await, wherein both transmitter and receiver functions of each identified station are maintained in the awake state for at least the time period beginning immediately after the completion of the operating step.
0. 90. A method of operating a mobile wireless station, comprising the steps of:
receiving synchronizing messages broadcast from an access point, the synchronizing messages including message indicator portions indicating that additional messages await transmission to the mobile wireless station;
determining whether the mobile wireless station is to receive a data message by receiving and processing traffic indicator information from the access point;
operating in an awake state of relatively high power consumption during the receiving step and the determining step;
changing the operating state to a doze state of relatively low power consumption after the receiving step and the determining step are performed if the mobile wireless station is not to receive a data message; and
maintaining the operating state of both transmitter and receiver functions of the mobile wireless station in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the mobile wireless station if the mobile wireless station is to receive a data message, wherein the mobile wireless station receives one or more data messages from the access point and returns to the doze state when the mobile wireless station determines that no additional data messages await.
0. 40. A mobile wireless station, comprising:
a station transceiver that receives and transmits messages; and
a switching device that can switch the mobile wireless station between an awake state of relatively high power consumption so that the station transceiver is capable of receiving messages, and a doze state of relatively low power consumption,
wherein the switching device causes the mobile wireless station to be in an awake state to receive periodically transmitted synchronizing messages containing traffic indicator information from an access point, wherein the synchronizing messages further include header portions, broadcast message indicator portions, and destination identifying portions, and
wherein the switching device causes the mobile wireless station to be in the doze state following receipt of the synchronizing messages if the traffic indicator information indicates that no data messages are to be transmitted by the access point to the mobile wireless station, and wherein the switching device causes both transmitter and receiver functions of the mobile wireless station to remain in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator information if the traffic indicator information indicates that data messages are to be transmitted by the access point to the mobile wireless station.
0. 34. A mobile wireless station, comprising:
a station transceiver that receives and transmits messages; and
a switching device that can switch the mobile wireless station between an awake state of relatively high power consumption so that the station transceiver is capable of receiving messages, and a doze state of relatively low power consumption,
wherein the switching device causes the mobile wireless station to be in an awake stage to receive periodically transmitted synchronizing messages containing traffic indicator information from an access point, wherein the synchronizing messages further include header portions, broadcast message indicator portions, and destination identifying portions, and
wherein the switching device causes the mobile wireless station to be in the doze state following receipt of the synchronizing messages if the traffic indicator information indicates that no data messages are to be transmitted by the access point to the mobile wireless station, and wherein the switching device causes both transmitter and receiver functions of the mobile wireless station to remain in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator information if the traffic indicator information indicates that data messages are to be transmitted by the access point to the mobile wireless station.
0. 31. A method of operating a mobile wireless station, comprising the steps of:
receiving periodically transmitted synchronizing messages broadcast from an access point, the synchronizing messages including destination identifying portions, header portions and broadcast message indicator portions;
determining whether the mobile wireless station is to receive a data message by receiving traffic indicator information transmitted from the access point;
operating the mobile wireless station in an awake state of relatively high power consumption during the receiving step and the determining step;
changing the operating state of the mobile wireless station of a doze state to relatively low power consumption after the receiving step and the determining step are performed if the mobile wireless station is not to receive a data message; and
maintaining the operating state of both transmitter and receiver functions of the mobile wireless station in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data massages are able to be transmitted to the mobile wireless station if the mobile wireless station is to receive a data message, wherein:
the mobile wireless station receives one or more data messages via the access point; and
the mobile wireless station returns to the doze state after receiving the one or more data messages via the access point before receiving another synchronization message.
0. 18. A method of operating a wireless data communication system including a plurality of wireless stations, comprising the steps of:
broadcasting synchronizing messages from a selected station of the plurality of stations;
identifying which of a number of non-selected stations of the plurality of stations are to receive data messages by transmitting traffic indicator information from the selected station, wherein at least two non-selected stations were identified in the identifying step;
operating the non-selected stations in an awake state of relatively high power consumption during the broadcasting step and the identifying step;
changing the operating state of non-selected stations that were not identified in the identifying step to a doze state of relatively low power consumption after the broadcasting step and the identifying step is performed;
maintaining all non-selected stations that were identified in the identifying step in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the non-selected stations which were identified in the identifying step;
transmitting all data messages exchanged between the non-selected stations via the selected station;
including in the synchronizing messages destination identifying portions identifying non-selected stations that are to receive data messages;
further including in the synchronizing messages header portions and broadcast message indicator portions to be transmitted to the respective non-selected stations that are to receive data messages; and
returning the non-selected stations to the doze state.
0. 46. A method of operating a wireless data communication system including a plurality of wireless stations, comprising the steps of:
broadcasting synchronizing messages from a selected station of the plurality of stations;
identifying which of a number of non-selected stations of the plurality of stations are to receive data messages by transmitting traffic indicator information from the selected station, wherein at least two non-selected stations were identified in the identifying step;
operating the non-selected stations in an awake state of relatively high power consumption during the broadcasting step and the identifying step;
changing the operating state of non-selected stations that were not identified in the identifying step to a doze state of relatively low power consumption after the broadcasting step and the identifying step is performed;
maintaining all non-selected stations that were identified in the identifying step in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the non-selected stations which were identified in the identifying steps
transmitting all data messages exchanged between the non-selected stations via the selected station;
including in the synchronizing messages destination identifying portions identifying non-selected stations that are to receive data messages;
further including in the synchronizing messages header portions and broadcast message indicator portions, to be transmitted to the respective non-selected that are to receive data messages; and
returning the non-selected stations to the doze state after indicating such a mode change to the selected station.
1. A method of operating a wireless data communication system including a plurality of wireless stations, comprising the steps of:
broadcasting synchronizing messages from a selected station of the plurality of stations;
identifying which of a number of non-selected stations of the plurality of stations are to receive data messages by transmitting traffic indicator information from the selected station, wherein at least two non-selected stations were identified in the identifying step;
operating the non-selected stations in an awake state of relatively high power consumption during the broadcasting step and the identifying step;
changing the operating state of non-selected stations that were not identified in the identifying step to a doze state of relatively low power consumption after the broadcasting step and the identifying step is performed;
maintaining all non-selected stations that were identified in the identifying step in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the non-selected stations which were identified in the identifying steps
transmitting all data messages exchanged between the non-selected stations via the selection selected station;
including in the synchronizing messages destination identifying portions identifying non-selected stations that are to receive data messages;
including in the synchronizing messages a count portion identifying the number of data messages to be transmitted to the respective non-selected stations that are to receive data messages; and
returning the non-selected stations to the doze state after the respective number of data messages have been received.
0. 22. A wireless data communication system, comprising:
a selected wireless data communication station having a synchronizing timer adapted to control transmission of synchronizing messages by said selected station, wherein the selected station is adapted to transmit traffic indicator information, in association with the synchronizing messages, that identify data message destinations; and
a number of non-selected wireless data communication stations each having a switching device, a power supply, and a station transceiver, wherein the switching device is adapted to control the power supply which is applied to the station transceiver so that the non-selected stations are controlled to be in an awake state of relatively high power consumption to receive the synchronizing messages and the traffic indicator information, and following receipt of the synchronizing messages and the traffic indicator information (1) any non-selected stations having no data messages destined therefor are changed to a doze state of relatively low power consumption, and (2) all non-selected stations having data messages destined therefor are maintained in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator information;
wherein said selected station is an access point, and further wherein the synchronizing messages include destination identifying portions identifying stations that are to receive date messages; and
wherein the synchronizing messages further include header portions and broadcast message indicator portions to be transmitted to the respective non-selected stations, and further wherein the switching device is controlled to return the respective non-selected stations to the doze state.
0. 66. A method of operating a wireless data communication system including a plurality of wireless stations, comprising the steps of:
broadcasting synchronizing messages from a selected station of the plurality of stations;
identifying which of a number of non-selected stations of the plurality of stations are to receive data messages by transmitting traffic indicator information from the selected station, wherein at least two non-selected stations were identified in the identifying step;
operating the non-selected stations in an awake state of relatively high power consumption during the broadcasting step and the identifying step;
changing the operating state of non-selected stations that were not identified in the identifying step to a doze state of relatively low power consumption after the broadcasting step and the identifying step is performed;
maintaining all non-selected stations that were identified in the identifying step in the awake state for at least a time period beginning immediately after completion of the operating step so that one or more data messages are able to be transmitted to the non-selected stations which were identified in the identifying steps
transmitting all data messages exchanged between the non-selected stations via the selected station;
including in the synchronizing messages destination identifying portions identifying non-selected stations that are to receive data messages;
further including in the synchronizing messages message indicator portions indicating that additional messages await transmission to the respective non-selected stations that are to receive data messages; and
returning the non-selected stations to the doze state when the respective non-selected stations that are to receive data messages determine that no additional data messages await.
7. A wireless data communication system, comprising:
a selected wireless data communication station having a synchronizing timing means adapted to control transmission of synchronizing messages by said selected station;
means for transmitting traffic indicator information, in association with the synchronizing messages, that identify data message destinations;
a number of non-selected wireless data communication stations each having a switching means, a power supply, and a station transceiver means, wherein the switching means is adapted to control the power supply which is supplied to the station transceiver means so that the non-selected stations are controlled to be in an awake state of relatively high power consumption to receive the synchronizing messages and the traffic indicator messages, and following receipt of the synchronizing messages and the traffic indicator information (1) any non-selected stations having no data messages destined therefor are changed to a doze state of relatively low power consumption, and (2) all non-selected stations having data messages destined therefor are maintained in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator messages;
wherein said selected station is an access point communicating with a backbone LAN, and further wherein the synchronizing messages include destination identifying portions identifying stations that are to receive data messages; and
wherein the synchronizing messages include count information identifying the number of data messages to be transmitted to the respective non-selected stations, and further wherein the switching means is controlled to return the respective non-selective non-selected stations to the doze state when the specified number of data messages have been received.
0. 47. A wireless data communication system, comprising:
a selected wireless data communication station having a synchronizing timer adapted to control transmission of synchronizing messages by said selected station, wherein the selected station is adapted to transmit traffic indicator information, in association with the synchronizing messages, that identify data message destinations; and
a number of non-selected wireless data communication stations each having a switching device, a power supply, and a station transceiver, wherein the switching device is adapted to control the power supply which is applied to the station transceiver so that the non-selected stations are controlled to be in an awake state of relatively high power consumption to receive the synchronizing messages and the traffic indicator information, and following receipt of the synchronizing messages and the traffic indicator information (1) any non-selected stations having no data messages destined therefor are changed to a doze state of relatively low power consumption, and (2) all non-selected stations having data messages destined therefor are maintained in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator information;
wherein said selected station is an access point, and further wherein the synchronizing messages include destination identifying portions identifying stations that are to receive data messages; and
wherein the synchronizing messages further include header portions and broadcast message indicator portions, to be transmitted to the respective non-selected stations that are to receive data messages, and further wherein the switching divide is controlled to return the respective non-selected stations to the doze state after indicating such a mode change to the selected station.
0. 73. A wireless data communication system, comprising:
a selected wireless data communication station having a synchronizing timer adapted to control transmission of synchronizing messages by said selected station, wherein the selected station is adapted to transmit traffic indicator information, in association with the synchronizing messages, that identify data messages destinations; and
a number of non-selected wireless data communication stations each having a switching device, a power supply, and a station transceiver, wherein the switching device is adapted to control the power supply which is applied to the station transceiver so that the non-selected stations are controlled to be in an awake state of relatively high power consumption to receive the synchronizing messages and the traffic indicator information, and following receipt of the synchronizing messages and the traffic indicator information (1) any non-selected stations having no data messages destined therefor are changed to a doze state of relatively low power consumption, and (2) all non-selected stations having data messages destined therefor are maintained in the awake state for a time period beginning immediately after receiving the synchronizing messages and the traffic indicator information;
wherein said selected station is an access point, and further wherein the synchronizing messages include destination identifying portions identifying stations that are to receive data messages; and
wherein the synchronizing messages message indicator portions indicating the additional messages await transmission to the respective non-selected stations, and further wherein the switching device is controlled to return the respective non-selected station to the doze state when the respective non-selected station that is to receive one or more data messages determines that no additional data messages await.
2. A method according to
3. A method according to
4. A method according to
5. A method according to
6. A method according to
operating the non-selected stations selectively in a power-save mode wherein the doze states and the awake states alternate, or in a continuous-active mode wherein the awake state is continuously effective.
8. A wireless data communication system according to
9. A wireless data communication system according to
11. The method of
12. The method of
13. The method of
15. The system of
16. The system of
17. The system of
0. 19. The method of
0. 20. The method of
0. 21. The method of
0. 23. The wireless data communication system of
0. 24. The wireless data communication system of
0. 25. The wireless data communication system of
0. 26. The wireless data communication system of
0. 27. The wireless data communication system of
0. 28. The wireless data communication system of
0. 29. The wireless data communication system of
0. 30. The wireless data communication system of
0. 32. The method of
0. 33. The method of
triggering a doze interval timer in the mobile wireless station upon receipt of the periodically transmitted synchronizing messages broadcast from the access point and
returning the mobile wireless station to an awake state of relatively high power after the doze interval ends such that the mobile wireless station can receive the next periodically transmitted synchronizing message.
0. 35. The mobile wireless station of
a switch adapted to couple power to the station transceiver,
a power management circuit adapted to control the switch, and
a doze timer adapted to cause the power management circuit to periodically initiate an awake state to receive the periodically transmitted synchronizing messages.
0. 36. The mobile wireless station of
0. 37. The mobile wireless station of
0. 38. The mobile wireless station of
0. 39. The mobile wireless station of
0. 41. The mobile wireless station of
a switch adapted to couple power to the station transceiver,
a power management circuit adapted to control the switch, and
a doze timer adapted to cause the power management circuit to periodically initiate an awake state to receive the periodically transmitted synchronizing messages.
0. 42. The mobile wireless station of
0. 43. The mobile wireless station of
0. 44. The mobile wireless station of
0. 45. The mobile wireless station of
0. 48. The wireless data communication system of
0. 49. The wireless data communication system of
0. 50. The wireless data communication system of
0. 51. The wireless data communication system of
0. 52. The wireless data communication system of
0. 55. The mobile wireless station of
a switch adapted to couple power to the station transceiver,
a power management circuit adapted to control the switch, and
a doze timer adapted to cause the power management circuit to periodically initiate an awake state to receive the periodically transmitted synchronizing messages.
0. 56. The mobile wireless station of
0. 57. The mobile wireless station of
0. 58. The mobile wireless station of
0. 59. The mobile wireless station of
0. 61. The mobile wireless station of
a switch adapted to couple power to the station transceiver,
a power management circuit adapted to control the switch, and
a doze timer adapted to cause the power management circuit to periodically initiate an awake state to receive the periodically transmitted synchronizing messages.
0. 62. The mobile wireless station of
0. 63. The mobile wireless station of
0. 64. The mobile wireless station of
0. 65. The mobile wireless station of
0. 68. The method of
0. 69. The method of
0. 70. The method of
0. 71. The method of
0. 72. The method of
0. 74. The wireless data communication system of
0. 75. The wireless data communication system of
0. 76. The wireless data communication system of
0. 77. The wireless data communication system of
0. 78. The wireless data communication system of
0. 80. The wireless data communication system of
0. 81. The wireless data communication system of
0. 82. The wireless data communication system of
0. 83. The wireless data communication system of
0. 84. The wireless data communication system of
0. 85. The wireless data communication system of
0. 86. The wireless data communication system of
0. 87. The wireless data communication system of
0. 88. The wireless data communication system of
0. 89. The wireless data communication system of
0. 92. The method of
0. 93. The method of
0. 94. The method of
0. 95. The method of
0. 96. The method of
0. 98. The mobile wireless station of
0. 99. The mobile wireless station of
0. 100. The mobile wireless station of
0. 102. The mobile wireless station of
0. 103. The mobile wireless station of
0. 104. The mobile wireless station of
0. 105. The mobile wireless station of
0. 106. The mobile wireless station of
0. 107. The mobile wireless station of
0. 108. The mobile wireless station of
0. 109. The mobile wireless station of
0. 111. The mobile wireless station of
0. 112. The mobile wireless station of
0. 113. The mobile wireless station of
0. 114. The mobile wireless station of
0. 115. The mobile wireless station of
0. 116. The mobile wireless station of
0. 117. The mobile wireless station of
0. 118. The mobile wireless station of
0. 119. The wireless data communication system of
0. 120. The method of
0. 121. The mobile wireless station of
0. 122. The mobile wireless station of
0. 123. The wireless data communication system of
0. 124. The method of
0. 125. The mobile wireless station of
0. 126. The mobile wireless station of
0. 127. The method of
0. 128. The wireless data communication system of
0. 129. The wireless data communication system of
0. 130. The method of
0. 131. The method of
0. 132. The mobile wireless station of
0. 133. The method of
0. 134. The method of
0. 135. The wireless data communication system of
0. 136. The wireless data communication system of
0. 137. The method of
0. 138. The mobile wireless station of
0. 139. The mobile wireless station of
0. 140. The method of
0. 141. The method of
0. 142. The wireless data communication system of
0. 143. The wireless data communication system of
0. 144. The method of
0. 145. The mobile wireless station of
0. 146. The mobile wireless station of
0. 147. The method of
0. 148. The method of
0. 149. The method of
0. 150. The wireless data communications system of
0. 151. The wireless data communication system of
0. 152. The wireless data communication system of
0. 153. The method of
0. 154. The method of
0. 155. The mobile wireless station of
0. 156. The mobile wireless station of
0. 157. The mobile wireless station of
0. 158. The method of
0. 159. The method of
0. 160. The wireless data communication system of
0. 161. The wireless data communication system of
0. 162. The method of
0. 163. The mobile wireless station of
0. 164. The mobile wireless station of
0. 165. The mobile wireless station of
0. 166. The mobile wireless station of
0. 167. The method of
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0. 176. The method of
0. 177. The mobile wireless station of
0. 178. The mobile wireless station of
0. 179. The mobile wireless station of
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This invention relates to wireless data communication systems.
A recent development in the field of local area networks (LANs), has been the introduction of wireless communication in such networks. Another development has been the introduction of portable, battery-operated devices for use in such wireless networks.
International Patent Application No. WO 92/19059 discloses a wireless data communication system which includes a cable-based network to which are attached controllers which maintain a portable device in communication with the network for data transfer. The portable unit transmits polling packets at regular intervals. Normally, a response packet is received from the current controller. If no response packet is received for a predetermined number of attempts, the portable unit initiates a procedure for registering with a new controller. The portable unit is powered by a battery which supplies power to the unit's transceiver and packet processor via a switch. Following transmission of a polling packet, the portable unit remains fully active until a response packet is received, or until the expiry of a predetermined time period such as 10 milliseconds, and then operates the switch thereby disabling battery current to the packet processor and transceiver for a further predetermined time period, whereafter a new polling packet is transmitted. This procedure effects a power-saving function. Initially, the polling may be at a slow rate of about two second intervals, this rate being doubled each time a response packet is received. When the transmission rate is low, the polling rate is reduced, thereby reducing requirements for battery current. The power saving function is thus seen to be a complex procedure, involving the exchange of polling and response packets for each individual station, which results in inefficient use of the wireless communication medium. Furthermore, the two seconds response time is inadequate for normal network operation at current data rates. Thus, a 200 milliseconds interval is considered appropriate to ensure uninterrupted communication under the typical LLC (logical link control) layer protocols used in the majority of contemporary LAN networks. These protocols typically utilize a timeout timer having around 400 milliseconds duration, after which a transmitted packet is considered to have been lost. On expiry of such timer, the protocols will attempt a recovery procedure by retransmitting the packet a limited number of times.
It is an object of the present invention to provide a method for operating a wireless communication system having a power saving function, wherein efficient use of the wireless communication medium is achieved.
Therefore, according to one aspect of the present invention, there is provided a method of operating a wireless data communication system including a plurality of wireless stations, characterized by the steps of: broadcasting synchronizing messages from a selected one of said stations; identifying stations that are to receive data messages by transmitting traffic indicator information in association with said synchronizing messages; operating said stations in an awake state of relatively high power consumption while broadcasting said synchronizing messages and transmitting said traffic indicator information; changing the operating state of stations that are not to receive data messages to a doze state of relativity low power consumption after receiving a synchronizing message; and maintaining stations that are to receive data messages in said awake state for at least a time period during which one or more data messages are transmitted to those stations.
According to another aspect of the present invention, there is provided a wireless data communication system, including a plurality of wireless data communication stations, characterized in that a selected one of said stations includes synchronizing timing means adapted to control the transmission of synchronizing messages by the selected station; in that means are provided adapted to transmit traffic indicator information in association with said synchronizing messages, identifying stations that are to receive data messages; and in that said stations include switching means adapted to control the power supply applied to station transceiver means, such that said stations are controlled to be in an awake state of relatively high power consumption to receive said synchronizing messages and said traffic indicator information and any data messages to be received and are changed to a doze state of relatively low power consumption following receipt of said synchronizing messages and said traffic indicator information if no data messages are to be received.
It will be appreciated that in a method and apparatus according to the invention, the synchronous operation of the power saving function enables efficient use of the wireless medium to be achieved by reducing the number of messages transmitted over the wireless medium to effect the power saving function as compared with the system disclosed in the aforementioned International Patent Application No. WO 92/19059. Also, the synchronous operation is more power efficient since the earliest possible arrival time of the synchronizing message is known in advance.
Two embodiments of the present invention will now be described by way of example, with reference to the accompanying drawings, in which:
While the invention is susceptible to various modifications and alternative forms, a specific embodiment thereof has been shown by way of example in the drawings and will herein be described in detail. It should be understood, however, that it is not intended to limit the invention to the particular form disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention as defined by the appended claims.
Referring first to
The access point 16 has a coverage area, referred to herein as cell 24. It should be understood that additional access points (not shown), similar to the access point 16, may be connected to the cable 14 and form part of the LAN 12. Each mobile wireless station communicates with only one access point at any one time, depending on which cell the station is currently located in. This is effected by providing a cell identification portion in messages transmitted in the system. When a mobile station 20 moves from one cell 24 to another cell, a handover procedure is effected to hand over communications to a new access point. In a modification, the access point 16 is not connected to a backbone LAN, but has as its sole function the regulation of the traffic within its associated cell 24.
Referring now to
Referring now to
The operation of the mobile station 20 in the power-save mode will now be described. The present invention enables a significant reduction in power consumption during the periods when a station is not transmitting or receiving messages, by switching the station to the doze state for a considerable part of this time. Reductions of more than 90% may be achieved. In operation, when a mobile station 20 is initially powered-up, it is put in the awake state, until it receives a TIM message (traffic indicator message) from the access point. It should be understood at this point that the access point 16 broadcasts TIM messages at regular intervals (such as every 200 milliseconds), under the control of the TIM timer 62 (FIG. 3).
Referring briefly to
The second format of a TIM message is shown in FIG. 5. This second format TIM message 90 includes a header portion 92 similar to the header portion 72 (FIG. 4), a broadcast indicator portion 94, and a broadcast count portion 96, which represents the number of broadcast messages buffered in the access point 16. The TIM message 90 further includes, for messages buffered in the access point 16, an identification of the destination addresses and the number of messages for each destination address. Thus, the message portions 98, 100,102 and 104 represent that there are pending messages for two destination addresses, and include counts representing the number of messages pending for the respective destination addresses.
The operation of the system in a first type of power-save mode, which is referred to as a “stay awake” mode, will now be described with reference to
Referring again to
Proceeding with the operational description, it is assumed that the next TIM message TIM-2 indictes that messages are to be transmitted to stations 1 and 2. Thus, stations 1 and 2 remain awake at least until the reception of the next TIM message, and their doze timers are not effective. A message to station 1 is transmitted during time interval 140, the receipt thereof resulting in a data interrupt to the processor of station 1, as shown by arrow 142. During time interval 144, a message for station 2 providing a data interrupt to its processor as shown by arrow 145. During time interval 146, a second message for station 1 is transmitted, the receipt thereof resulting in a data interrupt to the processor of station 1, as shown by arrow 148. It should be understood that since stations 1 and 2 remain awake at least until the reception of the next TIM message, then any messages that arrive at the access point in the current TIM interval before the transmission of the next TIM message can also be transmitted during such current TIM interval to stations (such as stations 1 and 2) which are awake during that interval.
It is assumed that the next TIM message, TIM-3, indicates that there is a message for station 1 only. Thus, station 1 remains awake for the duration of the next TIM interval, whereas station 2 returns to the doze state and triggers its doze interval timer as shown by dashed line interval 132-3. A message for station 1 is transmitted during time interval 150, and the receipt thereof resulting in a data interrupt to the processor of station 1 as shown by arrow 152. The next TIM message, TIM-4, indicates that there are no messages for transmission to any of the stations. Consequently, all four stations return to the doze state until the expiry of their doze interval timers, as shown by dashed time intervals 130-4, 132-4,134-4, and 136-4.
The next TIM message, TIM-5, indicates that a broadcast message is to be sent, such a message being intended for reception by all the stations. Thus, upon receiving the message TIM-5, all four stations 1 to 4 remain awake for the duration of the next TIM interval. The broadcast message is transmitted during the time interval 160 and data interrupts are generated for stations 1 to 4 as shown by arrows 162, 164,166 and 168, respectively. The next TIM message, TIM-6, indicates that a message is to be transmitted to station 2. Thus, stations 1, 3 and 4 return to the doze state as shown by dashed line intervals 130-6, 134-6 and 136-6, whereas station 2 remains in the awake state for receipt of the message during time interval 170, a data interrupt being provided as shown by arrow 172.
It should be noted that the described procedure is self synchronizing, in that if a TIM message missed, e.g. through interference, a station which missed that message stays awake until the next TIM message, and synchronizes thereon. This is shown by the X mark 180 shown for station 4 which misses reception of TIM message TIM-7, but resynchronizes upon reception of TIM message TIM-8.
The operation of the system in a second type of power-save mode, which is referred to as “back-to-doze” mode will now be briefly described with reference to
Although, in the above description, it has been assumed that the stations 20 are operating in power-save mode throughout, it will be appreciated that it is possible that a station 20 can dynamically select to be in power-save mode or continuous-active mode, the access point 16 being informed of all mode changes. When a station 20 is operating in continuous-active mode, the message buffering system is by-passed and messages are sent to the station directly when they arrive. Where data traffic to a station is predictable to a certain extent, an automatic procedure may be employed to keep the station in continuous-active mode prior to the expected traffic, and return it to power-save mode when no further traffic is expected. Thus, for example, each time a station 20 sends a message (via the access point 16) it could be controlled to remain in continuous-active mode for a predetermined time, sufficient to allow for a response message to be received in normal circumstances. The access point 16, upon detecting that the station has sent a message, marks it as being a continuous-active mode and waits of the station to indicate explicitly that it has returned to power-save mode. The station, upon detecting that no further traffic is expected, or upon expiration of a fixed interval timer, sends an explicit message to the access point 16 to indicate a return to power-save mode, and the station then returns to power-save mode. In a modification, to avoid the transmission of an explicit message to the access point 16, the access point 16 and mobile station 20 can both utilize so-called holdover timers (described in more detail hereinbelow in connection with the second embodiment of the invention). The station 20, upon transmission of a data message, starts a holdover timer (not shown) and stays in continuous-active mode until the expiration of that timer. With each transmission, the timer is restarted. The access point 16 can employ a similar arrangement to know when a station 20 is still in continuous-active mode and when it has returned to power-save mode. It will be appreciated that when utilizing this modified procedure, the mobile station 20 will be interpreting TIM messages even while it is in continuous-active mode.
Referring now to
Referring to
In a similar manner to that described for the first embodiment, the mobile wireless station 220 can operate either in a power-save mode, or in a continuous-active mode. In the power-save mode, the station 220 can be in an awake state, in which it is fully operational, or in a doze state, in which the wireless transceiver 230 operates at a reduced power level.
The network 210 operates in accordance with a power saving scheme, the principles underlying which will now be described. At initial start-up, one of the stations 220, assumed here to be the station 220-1, will assume the role of master station, and commences to transmit PSYNC messages (to be described) at regular intervals. The PSYNC messages are broadcast messages and therefore received by all stations. Preferably, each station 220 initially listens for a PSYNC message for a predetermined time, and if none is received, assumes the role of master station. The PSYNC messages include a portion identifying the message as a PSYNC message and a source address portion identifying the station 220 transmitting the message. Only one station 220 will assume the role of master station and transmit PSYNC messages.
Referring to
The reception of a PSYNC message at stations 220 other than the master station triggers the doze timer 246 (
When a station 220 starts participation in the network 210, it is controlled to be in the awake state until it receives a PSYNC message. The reception of the PSYNC message triggers the doze timer 246 as previously mentioned to commence timing a doze interval, with a time interval shorter than that of the PSYNC timer, and the station goes into the doze state. The doze timer 246 is triggered after every PSYNC message reception. When the doze timer 246 expires, the station switches to the awake state and waits for messages to be received.
A station 220 that wants to transmit one or more data messages to one or more other stations determines its position in the current SYNC interval. If it is in a low-power period such as LP-1 (FIG. 10), it waits until the doze timer 246 expires before transmitting, whereas if it is in a full-power period such as the period FP-1 (
Returning to the operation of a station which does not have messages to transmit, such a station, upon the expiry of its doze timer 246, goes into the awake state and waits for messages. There are three possibilities. The first possibility is that the first message that the station receives is a PSYNC message. This means that there is no message waiting for it, and the station returns to the doze state. The second possibility is that the station receives one or more PTIM messages. This means that one or more messages are waiting for it. The station then stays in the awake state after the PSYNC message is received until it receives the indicated messages from the issuers of all the received PTIM messages. It then returns to the doze state unless it happens to be in a full-power period, in which case the station waits for a next PSYNC message or a data message. When the receipt of data messages extends over several SYNC intervals, the doze timer 246 is restarted after each PSYNC message, in the normal way, but does not return the station to the doze state. This enables the station to stay synchronized.
The third possibility for the station waiting to receive messages is that the station receives a (short) data message, transmitted as described hereinabove. The station then stays in the awake state until it receives a PSYNC message, whereafter it returns to the doze state in the usual way.
The above operation is illustrated in FIG. 12. Thus, the first line of
When station B receives the PTIM message 300 (
It will be appreciated that if there are no data messages pending at a station at the end of a low power period LP (
While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description is to be considered as exemplary and not restrictive in character, it being understood that only the preferred embodiment has been shown and described and that all changes and modifications that come within the spirit of the invention are desired to be protected.
Haagh, Johannes P. N., van Bokhorst, Hendrik, Moelard, Hendrik, Monteban, Leo, Claessen, Albertus M. G., Diepstraten, Wilhelmus J. M., Mud, Rienk
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