WO2007022361A1 - Synchronizing a radio network with end user radio terminals - Google Patents
Synchronizing a radio network with end user radio terminals Download PDFInfo
- Publication number
- WO2007022361A1 WO2007022361A1 PCT/US2006/032158 US2006032158W WO2007022361A1 WO 2007022361 A1 WO2007022361 A1 WO 2007022361A1 US 2006032158 W US2006032158 W US 2006032158W WO 2007022361 A1 WO2007022361 A1 WO 2007022361A1
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- WIPO (PCT)
- Prior art keywords
- wireless communication
- signal
- gps
- offset
- network
- Prior art date
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/24—Radio transmission systems, i.e. using radiation field for communication between two or more posts
- H04B7/26—Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile
- H04B7/2662—Arrangements for Wireless System Synchronisation
- H04B7/2671—Arrangements for Wireless Time-Division Multiple Access [TDMA] System Synchronisation
- H04B7/2678—Time synchronisation
- H04B7/2687—Inter base stations synchronisation
- H04B7/2693—Centralised synchronisation, i.e. using external universal time reference, e.g. by using a global positioning system [GPS] or by distributing time reference over the wireline network
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L7/00—Arrangements for synchronising receiver with transmitter
- H04L7/02—Speed or phase control by the received code signals, the signals containing no special synchronisation information
Definitions
- the present invention relates in general to Global Satellite System (GSS) receivers, and in particular to a method for synchronizing a radio network using end user radio terminals.
- GSS Global Satellite System
- GPS Global Positioning Systems
- GPS data may be used by the MS user to locate other mobile stations, determine the relative location of the mobile station user to other landmarks, obtain directions for the cellular user via internet maps or other GPS mapping techniques, etc.
- GPS receivers in a MS may not always have an unobstructed view of the sky causing the received signals to be very weak. Often, the receiver is unable to demodulate the Almanac or Ephemeris data, making it impossible to determine the user's location or accurate GPS time.
- Ephemeris and/or Almanac data and GPS time may be transmitted to the receiver over a communication network.
- a common feature of communication networks is a large and variable transmission delay, making it difficult to transmit accurate (uncertainty less than 1 millisecond) time.
- Code Division Multiple Access (CDMA)(TIA/IS-95B) networks use a GPS time reference standard at every base station, and all transmission frames are absolutely synchronized onto GPS time. Therefore, a Mobile Station, by observing particular transitions on frame, master frame or hyper frame, may predict absolute GPS time within tens of microseconds, including radio transmission delay and group delays inside the mobile station or wireless handset.
- Other classes of wireless networks e.g., Time Division Multiple Access (TDMA) 5 GSM, Analog Mobile Phone Systems (AMPS, TAGS), DTV, etc., are not synchronized onto GPS time. Still, the accuracy, precision and stability of the master clock used at the base stations is fairly stable, and slowly varies relative to GPS time. Hence, both the time offset and frequency drift are very stable compared to GPS time, and can be monitored at relatively large intervals. However, any timing information derived solely from such a system has limited value, as there is currently no way to derive absolute GPS time from it.
- LMU Local Measurement Units
- BS base stations
- the LMU consists of a wireless section and a GPS timing receiver. At intervals, they measure time offset and frequency drift of every base station in the area, relative to GPS time. As one LMU can cover only a few Base Stations, the overlay monitoring network can become quite large and expensive.
- GPS capable MS such as wireless handsets. It can also be seen that there is a need in the art to be able to aid the GPS receiver to speed acquisition and for position determination. It can also be seen that there is a need in the art to be able to aid the GPS receiver to provide more precise position determination. It can also be seen that there is a need in the art for a large cellular system that can use and/or supply GPS information to cellular users for a number of applications, including E911 without the requirement of geographically proximate base stations.
- FIG. 1 illustrates a typical GPS architecture.
- FIG. 2 illustrates an implementation of synchronizing a radio network with end user radio terminals.
- FIG. 3 is a diagram of the time tagging of GSM transmissions.
- FIG. 4 is a diagram of GSM frames carrying GPS TOW.
- FIG. 5 is a flow diagram of offset determination.
- FIG. 6 is a flow diagram of a wireless handset using the offset determined in FIG. 5.
- System 100 comprises GPS satellite 102, which is illustrative of the constellation of GPS satellites that are in orbit, a MS (i.e. wireless handset 104) which may include a GPS receiver, a base station 106, a geolocation (server) service center 108, a geolocation end application 110, and a Public Safety Answering Point (PSAP) 112.
- MS Mobile Station
- the Mobile Station (MS) 104 such as a wireless handset, Personal Digital Assistant (PDA), or similar mobile device may have location technology of the present invention and may use GPS technology in support of various MS device implementations of E911 and geo-location services.
- the PSAP 112 and the geolocation end application 110 are included for reference only.
- the GPS satellite 102 transmits spread spectrum signals 114 that are received at the wireless handset 104 and the geolocation server 108.
- the other GPS satellites are not shown, however, other GPS satellites also are transmitting signals that are received by the wireless handset 104 and the geolocation server 108.
- the GPS receiver (not shown) in the wireless handset 104 may autonomously compute the position of the wireless handset 114 as is typically done in the GPS system.
- wireless handsets 104 are typically not able to receive strong enough spread spectrum signals 114 to autonomously compute the position of the wireless handset 104, but can still communicate with base station 106.
- base station 106 may communicate information via signals 116 to wireless handset 104 to allow wireless handset 104 to compute the location, or may transmit information from wireless handset 104 to the geolocation server 108 to enable the geolocation server 108 to compute the position of the wireless handset 104. If the base station 106 is transferring information to the wireless handset 104 to allow the wireless handset 104 to compute position, it is called “wireless aided GPS” or "MS Based,” whereas when the base station 106 transfers information from the wireless handset 104 to the geolocation server 108 for the geolocation server 108 to compute the position of the wireless handset 104, it is called “network-centric GPS" or "MS Assisted.”
- Geolocation server 108 may also communicates with geolocation application 110 via signals 118 and with PSAP 112 via signals 120. These signals 118 and 120 may either be via wireless links, such as cellular, WiFi, Blue Tooth, to name but a few, or may be through the landline network, such as PSTN, Ethernet, or other such wired networks, to name but a few.
- wireless links such as cellular, WiFi, Blue Tooth, to name but a few
- landline network such as PSTN, Ethernet, or other such wired networks, to name but a few.
- the wireless handset 104 may include a typical wireless handset section that performs the call processing (CP) function, and a GPS section for position computation, pseudorange measurement, and other GPS functions.
- CP call processing
- a serial communication link, or other communication link performs the communications between the CP section and the GPS section.
- a collection of hardware lines may be utilized to transmit signals between the CP and GPS section.
- both the CP and GPS sections may share circuitry.
- the MS 104 has the ability to compute GPS position, it gets GPS time from the GPS signal, and is able to calculate the offset between GPS time and the cell site clock. This is true whether or not the GPS portion of the MS 104 received assistance data from the geolocation service center 108. In unsynchronized networks, each cell site clock will have a different offset from GPS time, necessitating the pairing of cell site identifiers with the measured offset. In some wireless handset designs, the frequency error of the base station clock may also be computed.
- the offset and frequency error may then be stored in the phone, and/or transmitted to the network (via signals 116) for storage in a database (possibly contained in the geolocation service center 108). Each time a wireless handset goes through that cell, the offset and error may be updated. If it is not possible to make a direct measurement of base station frequency error, then multiple clock-offset measurements may be used to determine drift rates.
- Non-network related storage that is capable of being accessed via a data link such as SMS or GPRS may also be used such that independent service providers could store and forward time assistance information to other wireless handset units independent of the network.
- This concept may also be used in conjunction with other localized networks like Nextel, SMS, FRS, etc. where a group of wireless handsets or mobile communication devices may help each other to determine location. For example, where a wireless handset gets a fix, that wireless handset can transmit offset information, or transmit other information via a non-cellular network, such as SMS, CB bands, WiFi, Blue Tooth, or whatever, to other wireless handsets that use that network, or are part of a group of devices used by the same company.
- a non-cellular network such as SMS, CB bands, WiFi, Blue Tooth, or whatever, to other wireless handsets that use that network, or are part of a group of devices used by the same company.
- the MS 104 may capture simultaneous events from the GPS signals and the Base Station signals, and send them via signals 116 to a server, which is able to compute GPS position of the MS 104. After such computation, the server will be able to determine precise GPS time, and compute the offset (and drift) between GPS time and the clock in the Base Station. This information may then be transmitted via signals 116 to other MS 104 devices to assist their acquisition of GPS signals, whether or not those MS devices have the ability to compute their own GPS position.
- System 100 has a set of GPS satellites (illustrated by 102), a base station 106, a geolocation service center 108 and two wireless handsets 104 and 105.
- wireless handset 104 receives signals from satellites 102 and either computes a GPS position locally, or transmits via signals 116 sufficient information to allow a server, such as the geolocation service center 108, to compute the position. Concomitant with computing the GPS position, a controller (not shown) in the wireless handset 104 or the geolocation service center 108 or some other device (not shown), determines the time offset and/or drift between GSP time and the clock in the base station 106.
- Wireless handset 105 is illustrative of a wireless device containing a GPS receiver which requires knowledge of the clock offset and/or drift of the base station 106 clock in order to acquire satellite 102 signals and produce a GPS position fix.
- wireless handset 105 may receive the required data from wireless handset 104 directly via signals 202, from base station 106 via signals 204, or from the geolocation service center via signals 116 and 204 in sequence.
- Other sources of this information may include non-network devices (not shown) that may be implemented by independent service providers.
- wireless handset 105 and wireless handset 104 may be the same wireless handset, used at different times. Wireless handset 104 may compute the clock offset and drift at one time, then be turned off and forget the previously computed data. Upon being re-powered, wireless handset 104 may require this data and may retrieve it (or a more recently computed value) from the base station 106, the geolocation service center 108 or some other source.
- wireless handset 104 may compute the clock offset and/or drift of the clock in base station 106, then be turned off, but store the previously computed data. Upon being re-powered, the wireless handset may recall the data from its own memory without making use of any external data store. In some cases, this may eliminate the need for timekeeping in the MS when the MS is powered off which may increase battery time between charging.
- the wireless handset may also build up a database of offsets computed for several different base stations, and since the base station clocks are stable for long periods, that information is useful when the wireless handset returns to that base station.
- the mobile GPS receiver in a wireless handset or similar enabled device returns to a known cell site at a later time, the mobile GPS receiver already knows the offset between the cell site clock and GPS time, making a TTFF shorter for that mobile GPS receiver.
- FIG. 3 the time tagging of GSM transmissions is shown.
- a GSM network has been chosen for illustration. Other networks will have a similar implementation. This time-tagging is essential to the process of measuring the offset between GPS time and "network" time.
- the CP section of the wireless handset 104 that has a valid GPS solution, generates a time mark 110 that may be implemented as a hardware pulse that the GPS receiver in the wireless handset tags with its own clock that has a known relation with the GPS system time that includes a "Time of Week" (TOW) portion.
- the CP section may also send a message to the GPS receiver identifying the GSM frame and bit number associated with the time mark, and the base station being used, as shown in Table 1.
- a GPS time tag for the received GSM bit may be used for time tagging of the GSM transmission. By subtracting the time lag for transmission between the base station location and the wireless handset location, the wireless handset knows the GPS time when the GSM bit left the transmitting antenna.
- the wireless handset 104 may measure the frequency difference between the GPS clock and the call processing clock (provided the GPS clock and call processing clocks are not the same clock).
- the GPS receiver in the wireless handset 104 may already have the ability to measure the frequency difference between its clock and the GPS system frequency standard.
- the wireless handset may also already have the ability to measure the frequency difference between its call processing clock and the frequency received from the Radio Network transmitter located at a base station.
- all the components may be incorporated into a wireless handset to measure the frequency difference between the GPS system frequency standard and the wireless network transmitter frequency and may be located in the CP section of the wireless handset or the GPS receiver section depending on the design and implementation of the wireless handset.
- Table 1 contains the information supplied by the CP section to accompany the time mark:
- the geolocation server 108 may receive a number of parameters 112 from the wireless handset 104 including, but not limited to a GSM bit identifier, the associated GPS TOW and base station ID, position data, and frequency error.
- a Kalman Filter or other estimation method may be used to model the wireless network's transmitter clock.
- the transmitter clock may be adjusted to minimize the errors. Such knowledge of the transmitter clock frequency and time error, enables better performance of the GPS receiver's TTFF, energy usage and position accuracy.
- the geolocation service center may propagate the stored time- tagged GSM frame/bit information to an approximate current time. This propagated time may then be transmitted to an acquiring wireless handset that does not currently have a GPS solution as described below.
- FIG. 4 a diagram of GSM frames carrying GPS TOW. This functionality provides for accurate GPS time to a wireless handset 104 that does not yet have a GPS position. It also illustrates the method by which the present invention compensates for network delays.
- a message from the server to the wireless handset is sent.
- the message identifies the GPS time with a specific GSM frame/bit, identified as "GSM Bit Y" in the figure.
- the server creates this message from earlier measurements made by this, or other, wireless handsets as described above.
- the CP section of the wireless handset 104 When the message is received at the wireless handset 104, the CP section of the wireless handset 104 generates a time mark aligned with a current GSM frame/bit, identified as "GSM Bit X" in the figure.
- the CP section may also send a message to the GPS receiver identifying the GSM frame and bit number associated with the time mark, and the base station being used, as shown in Table 1.
- the GPS receiver will then propagate the GPS time from the bit identified in the message (Y) to the bit that is aligned to the time mark (X), using nominal, (or corrected, if clock drifts are available) frame rates, thus compensating for the network delay and geolocation service center 108 time estimation errors. Because the wireless handset 104 location is unknown, there is an unknown transmission delay from the base station 106 to the wireless handset 104. This delay presents an unavoidable error in the received GPS time, but is limited by the typically small sizes of cellular radio sites. [047] In Table 2, an example of one possible message sent from the geolocation server 108 to the GPS receiver in an acquiring wireless handset 104 is the following:
- the items in Table 2 may be repeated once for each base station identified in a data structure such as a neighbor list that identifies base stations near the current base station in the wireless network.
- the CP section of the wireless handset 104 may filter the list of base stations and only provide data for the serving base station.
- deltaGSM ⁇ -2710000 * 1250 deltaGSM + 2715648 * 1250 ELSEIF deltaGSM > 2710000 * 1250
- a wireless handset 104 receives a GPS signal 114 at a GPS receiver in step 500.
- the wireless handset 104 also receives a communication signal 116 from the wireless network in step 504 that contains timing information.
- the controller determines the time offset and/or drift between the clock at base station 106 sent in the received communication signal 116 and the GPS time sent in GPS signal 114 in step 506. The offset may then be sent back to the current base station 508.
- FIG. 6 a flow diagram 600 of a wireless handset using offset determined in FIG. 5 is illustrated.
- a wireless handset 104 requests aiding from the geolocation server 108 in step 602, a message from the geolocation server 108 to the wireless handset is sent, step 604.
- the message identifies the GPS time with a specific GSM frame/bit, identified as "GSM Bit Y" in FIG. 4.
- the geolocation server 108 creates this message from earlier measurements made by this, or other, wireless handsets.
- the CP section of the wireless handset 104 generates a time mark aligned with a (possibly) different GSM frame/bit, identified as "GSM Bit X" in FIG. 4, see step 606.
- the CP section may also send a message to the GPS receiver identifying the GSM frame and bit number associated with the time mark, and the base station being used, as shown in Table 1.
- the GPS section of the wireless handset 104 propagates the GPS time from the bit identified in the message to the bit associated with the time mark, thus compensating for network delays and time errors caused by the geolocation service center server 108 in step 610. Because the wireless handset 104 location is unknown, there is an unknown transmission delay from the base station 106 to the wireless handset 104. This delay presents an unavoidable error in the received GPS time, but is limited by the typically small sizes of cellular radio sites.
- the flow diagrams in figure 5 and figure 6 may be implemented in software or hardware or a combination of software and hardware.
- the software may be presented on a signal-bearing medium that contains machine-readable instructions such as magnetic tape, compact disc, paper punch cards, smart cards, or other optical, magnetic, or electrical digital storage device.
- a controller may execute the software presented on the signal-bearing medium. Examples of a controller may include a microprocessor, digital signal processor, digital circuits configured to function as a state machine, analog circuits configures to function as a state machine, a combination of any of the above configured to execute the programmed instructions, such as presented on the signal- bearing medium.
Abstract
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EP06813503A EP1915830A1 (en) | 2005-08-16 | 2006-08-15 | Synchronizing a radio network with end user radio terminals |
JP2008527137A JP2009505583A (en) | 2005-08-16 | 2006-08-15 | Wireless network synchronization by end-user wireless terminals |
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US11/205,510 US7925210B2 (en) | 2001-05-21 | 2005-08-16 | Synchronizing a radio network with end user radio terminals |
US11/205,510 | 2005-08-16 |
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US (2) | US7925210B2 (en) |
EP (1) | EP1915830A1 (en) |
JP (1) | JP2009505583A (en) |
KR (1) | KR20080032193A (en) |
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US8437693B2 (en) | 2013-05-07 |
CN101238652A (en) | 2008-08-06 |
US20110183606A1 (en) | 2011-07-28 |
US20060013347A1 (en) | 2006-01-19 |
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