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Publication numberUS20030176969 A1
Publication typeApplication
Application numberUS 10/359,468
Publication dateSep 18, 2003
Filing dateFeb 5, 2003
Priority dateJul 13, 2000
Also published asCN1199053C, CN1465015A, CN1680823A, CN100587514C, EP1305735A1, EP1305735A4, US6411892, US6587789, US6703972, US6704651, US6813560, US8930137, US20020032526, US20020032527, US20020105459, US20020175856, US20030236620, US20060271293, US20090267833, US20130234888, WO2002006987A1
Publication number10359468, 359468, US 2003/0176969 A1, US 2003/176969 A1, US 20030176969 A1, US 20030176969A1, US 2003176969 A1, US 2003176969A1, US-A1-20030176969, US-A1-2003176969, US2003/0176969A1, US2003/176969A1, US20030176969 A1, US20030176969A1, US2003176969 A1, US2003176969A1
InventorsFrank Diggelen
Original AssigneeDiggelen Frank Van
Export CitationBiBTeX, EndNote, RefMan
External Links: USPTO, USPTO Assignment, Espacenet
Method and apparatus for locating mobile receivers using a wide area reference network for propagating ephemeris
US 20030176969 A1
Abstract
A method and apparatus for distribution and delivery of global positioning system (GPS) satellite telemetry data using a communication link between a central site and a mobile GPS receiver. The central site is coupled to a network of reference satellite receivers that send telemetry data from all satellites to the central site. The mobile GPS receiver uses the delivered telemetry data to aid its acquisition of the GPS satellite signal. The availability of the satellite telemetry data enhances the mobile receiver's signal reception sensitivity.
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Claims(64)
What is claimed is:
1. A method for assisting a satellite positioning system mobile device comprising:
receiving satellite ephemeris data from all satellites in a global positioning system constellation of satellites;
communicating satellite ephemeris data to a central processing site;
selecting ephemeris data for a subset of all the satellites; and
providing the selected ephemeris data to said mobile device.
2. The method of claim 1 wherein said selecting step further comprises selecting ephemeris data for at least one satellite that is in view of the mobile device.
3. The method of claim 2 wherein said selecting step further comprises selecting ephemeris data for at least one satellite that will be within view of the mobile device.
4. The method of claim 3 wherein said at least one satellite will be within view of said mobile device within about four hours.
5. The method of claim 2 further comprising acquiring at least one satellite signal using said selected ephemeris data.
6. The method of claim 5 further comprising:
a. computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. searching for a signal correlation in a frequency bin within said frequency window;
c. determining whether there are signal correlations within said frequency bin; and
d. repeating steps (b) and (c) using different frequency bins until a signal correlation is detected.
7. The method of claim 5 further comprising computing position of the mobile receiver using said selected ephemeris data.
8. The method of claim 7 wherein said computing step is performed in the mobile device.
9. The method of claim 7 wherein said computing step is performed at a location remote from said mobile device.
10. The method of claim 3 further comprising acquiring said at least one satellite, in the future, using said selected ephemeris data.
11. The method of claim 10 further comprising:
a. computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. searching for a signal correlation in a frequency bin within said frequency window;
c. determining whether there are signal correlations within said frequency bin; and
d. repeating steps (b) and (c) using different frequency bins until a signal correlation is detected.
12. The method of claim 10 further comprising computing position of the mobile device using said selected ephemeris data.
13. The method of claim 12 wherein said computing step is performed in the mobile device.
14. The method of claim 12 wherein said computing step is performed at a location remote from said mobile device.
15. The method of claim 5 further comprising using information derived from said at least one satellite signal to assist in acquisition of other satellite signals.
16. The method of claim 15 further comprising:
a. computing a frequency window having a plurality of frequency bins and a code delay window having a plurality of code bins from said selected ephemeris data, and a receiver time and receiver frequency offsets;
b. searching for a signal correlation in a frequency bin within said frequency window and a code bin within said code delay window;
c. determining whether there are signal correlations within said frequency bin and said code bin;
d. repeating steps (b) and (c) using different frequency bins and code bins until a signal correlation is detected;
e. using said signal correlation to improve the receiver time offset and the frequency offset;
f. recomputing frequency delay windows and code delay windows for other satellite signals; and
g. acquiring at least one other satellite signal.
17. The method of claim 1 wherein said ephemeris data is used to derive at least one pseudo-range model.
18. The method of claim 17 wherein said selecting step further comprises selecting ephemeris data for at least one satellite that is in view of the mobile device.
19. The method of claim 18 wherein said selecting step further comprises selecting ephemeris data for at least one satellite that will be within view of the mobile device.
20. The method of claim 19 wherein said at least one satellite will be within view of said mobile device within, about four hours.
21. The method of claim 18 further comprising acquiring at least one satellite signal using said selected ephemeris data.
22. The method of claim 21 further comprising:
a. computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. searching for a signal correlation in a frequency bin within said frequency window;
c. determining whether there are signal correlations within said frequency bin; and
d. repeating steps (b) and (c) using different frequency bins until a signal correlation is detected.
23. The method of claim 19 further comprising acquiring a satellite signal from said at least one satellite, in the future, using said selected ephemeris data.
24. The method of claim 23 further comprising:
a. computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. searching for a signal correlation in a frequency bin within said frequency window;
c. determining whether there are signal correlations within said frequency bin; and
d. repeating steps (b) and (c) using different frequency bins until a signal correlation is detected.
25. The method of claim 21 wherein information derived from said at least one satellite signal is used to assist in acquisition of other satellite signals.
26. The method of claim 25 further comprising:
a. computing a frequency window having a plurality of frequency bins and a code delay window having a plurality of code bins from said selected ephemeris data, and a receiver time and receiver frequency offsets;
b. searching for a signal correlation in a frequency bin within said frequency window and a code bin within said code delay window;
c. determining whether there are signal correlations within said frequency bin and said code bin;
d. repeating steps (b) and (c) using different frequency bins and code bins until a signal correlation is detected;
e. using said signal correlation to improve the receiver time offset and the frequency offset;
f. recomputing frequency delay windows and code delay windows for other satellite signals; and
g. acquiring at least one other satellite signal.
27. The method of claim 17 wherein said at least one pseudo-range model comprises a pseudorange, and a pseudorange rate, and a pseudorange acceleration.
28. The method of claim 1 where said subset of all the satellites is based on an estimated position of said mobile device.
29. The method of claim 28 where said estimated position is the last known position of said mobile device.
30. The method of claim 28 where said estimated position is a position within a region served by a communications network used by the mobile device.
31. The method of claim 30 wherein said position within the region is at the center of said region.
32. The method of claim 28 where said estimated position is derived from a location of a radio tower used by the mobile device.
33. Apparatus for assisting a satellite positioning system mobile receiver comprising:
a network of satellite signal receivers receiving satellite ephemeris from all satellites in a global positioning system constellation of satellites and communicating satellite ephemeris data to a central processing site; and
said central processing site selecting ephemeris data from a subset of all the satellites and providing the selected ephemeris data to a mobile receiver.
34. The apparatus of claim 33 wherein said selected ephemeris data comprises ephemeris data for at least one satellite that is in view of the mobile receiver.
35. The apparatus of claim 33 wherein said selected ephemeris data comprises ephemeris data for at least one satellite that will be within view of the mobile receiver.
36. The apparatus of claim 35 wherein said at least one satellite will be within view of said mobile device within about four hours.
37. The apparatus of claim 34 wherein said mobile device comprises means for acquiring at least one satellite signal using said selected ephemeris data.
38. The apparatus of claim 37 wherein said mobile device further comprises:
a. means for computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. means for searching for a signal correlation in a frequency bin within the frequency window;
c. means for determining whether there are signal correlations within said frequency bin; and
d. means for repeating operation of means (b) and (c) using different frequency bins until a signal correlation is detected.
39. The apparatus of claim 37 wherein said central processing site comprises means for computing a position of the mobile device using said selected ephemeris data.
40. The apparatus of claim 37 wherein said mobile device comprises means for computing a position of said mobile device.
41. The apparatus of claim 37 wherein a location remote from said mobile device comprises means for computing a position of said mobile device.
42. The apparatus of claim 35 said at least one satellite signal is acquired, in the future, using said selected ephemeris data.
43. The apparatus of claim 42 wherein said mobile device further comprises:
a. means for computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. means for searching for a signal correlation in a frequency bin within the frequency window;
c. means for determining whether there are signal correlations within said frequency bin; and
d. means for repeating operation of means (b) and (c) using different frequency bins until a signal correlation is detected.
44. The apparatus of claim 42 wherein said central processing site comprises means for computing a position of the mobile device using said selected ephemeris data.
45. The apparatus of claim 42 wherein said mobile device comprises means for computing a position of said mobile receiver.
46. The apparatus of claim 42 wherein a location remote from said mobile device comprises means for computing a position of said mobile device.
47. The apparatus of claim 37 wherein said central processing site comprises means for utilizing information derived from said at least one satellite signal to assist in acquisition of other satellite signals.
48. The apparatus of claim 47 wherein said mobile device comprises:
a. means for computing a frequency window having a plurality of frequency bins and a code delay window having a plurality of code bins from said selected ephemeris data, and a receiver time and receiver frequency offsets;
b. means for searching for a signal correlation in a frequency bin within said frequency window and a code bin within said code delay window;
c. means for determining whether there are signal correlations within said frequency bin and said code bin;
d. means for repeating operation of means (b) and (c) using different frequency bins and code bins until a signal correlation is detected;
e. means for using said signal correlation to improve the receiver time offset and the frequency offset;
f. means for recomputing frequency delay windows and code delay windows for other satellite signals; and
g. means for acquiring at least one other satellite signal.
49. The apparatus of claim 33 wherein said central processing site comprises a means for utilizing said ephemeris data to derive at least one pseudo-range model.
50. The apparatus of claim 49 wherein said central processing site is further configured to select ephemeris data for at least one satellite that is in view of the mobile device.
51. The apparatus of claim 49 wherein said central processing site comprises a means for selecting ephemeris data for at least one satellite that will be within view of the mobile device.
52. The apparatus of claim 51 wherein said at least one satellite will be within view of said mobile device within about four hours.
53. The apparatus of claim 50 wherein said mobile device further comprises a means for acquiring at least one satellite signal using said selected ephemeris data.
54. The apparatus of claim 53 wherein said mobile device further comprises:
a. means for computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. means for searching for a signal correlation in a frequency bin within the frequency window;
c. means for determining whether there are signal correlations within said frequency bin; and
d. means for repeating operation of means (b) and (c) using different frequency bins until a signal correlation is detected.
55. The apparatus of claim 51 said at least one satellite signal is acquired, in the future, using said selected ephemeris data.
56. The apparatus of claim 55 wherein said mobile device further comprises:
a. means for computing a frequency window from said selected ephemeris data, and means for computing a frequency window having a plurality of frequency bins from said selected ephemeris data, a mobile receiver approximate position, and an approximate time;
b. means for searching for a signal correlation in a frequency bin within the frequency window;
c. means for determining whether there are signal correlations within said frequency bin; and
d. means for repeating operation of means (b) and (c) using different frequency bins until a signal correlation is detected.
57. The apparatus of claim 53 wherein said mobile device comprises a means for utilizing information derived from said at least one satellite signal to assist in acquisition of other satellite signals.
58. The apparatus of claim 57 wherein said mobile device comprises:
a. means for computing a frequency window and a code delay window from said selected ephemeris data, and an approximate location of said mobile receiver, and an approximate receiver time and frequency offsets;
b. means for searching for a signal correlation in a frequency/code bin within said frequency window and code delay window;
c. means for determining whether there are signal correlations within said frequency/code bin;
d. means for repeating operation of means (b) and (c) using different frequency/code bins until a signal correlation is detected;
e. means for using said signal correlation to improve said receiver time offset and said frequency offset;
f. means for recomputing frequency delay windows and code delay windows for remaining satellites; and
g. means for acquiring at least one other satellite.
59. The apparatus of claim 49 wherein said pseudo-range models comprise a pseudorange, and a pseudorange rate, and a pseudorange acceleration.
60. The apparatus of claim 33 where said subset of all the satellites is based on the estimated position of said mobile device.
61. The apparatus of claim 60 where said estimated position is the last known position of said mobile device.
62. The apparatus of claim 60 where said estimated position is a position within a region served by a communications network used by the mobile device.
63. The apparatus of claim 62 wherein said position within said region is at the center of said region.
64. The apparatus of claim 60 where said estimated position is derived from a location of a radio tower used by the mobile device.
Description
    CROSS-REFERENCE TO RELATED APPLICATIONS
  • [0001]
    This application is a continuation of co-pending U.S. patent application Ser. No. 09/989,625, filed Nov. 20, 2001, which is a divisional of U.S. Pat. No. 6,411,892, issued Jun. 25, 2002, each of which are incorporated herein by reference.
  • BACKGROUND OF THE INVENTION
  • [0002]
    1. Field of Invention
  • [0003]
    The present invention relates to signal processing in GPS receivers. In particular, the present invention relates to a method and apparatus for delivering satellite data to GPS receivers to enable a GPS receiver to acquire and lock on to GPS satellite signals in low signal strength environments (e.g., indoors).
  • [0004]
    2. Description of the Background Art
  • [0005]
    Conventional GPS receivers require an inordinate amount of time to acquire and lock onto the satellite signals. Then, once locked, a GPS receiver extracts telemetry data (almanac and ephemeris) from the signal. From these data the GPS receiver can calculate information that enhances its ability to lock onto the satellite signal. A relatively high signal strength satellite signal is necessary to enable the system to achieve an initial lock. Once the GPS signal is acquired, the signal strength must remain high while the almanac and/or ephemeris data is extracted from the satellite signal. Any severe attenuation of the signal can cause a loss of lock and the signal will require re-acquisition. As such, the system has an inherent circularity that makes it difficult or impossible for GPS receivers to acquire signals in low signal strength environments.
  • [0006]
    To aid initial acquisition of the satellite signal, many GPS receivers store a copy of the almanac data, from which the expected Doppler frequency of the satellite signal can be calculated. Several techniques have been developed to calculate useful information at a separate GPS receiver and then transmit this data to another GPS receiver. U.S. Pat. No. 6,064,336, issued May 16, 2000, collects almanac data at a separate GPS receiver, then transmits the almanac data to a mobile receiver. The mobile receiver then uses the almanac data to compute the expected Doppler frequency of the satellite signal, thus aiding in initial signal acquisition.
  • [0007]
    The advantage of receiving the almanac is that each GPS satellite repeatedly transmits a complete almanac containing orbit information for the complete GPS constellation, thus a single GPS receiver, tracking any satellite, can collect and propagate the almanac for all satellites in the constellation. The disadvantage of using the almanac is that it is a fairly rough model of the satellite orbit and satellite clock errors, thus the almanac is only useful in reducing the frequency uncertainty and cannot be used to enhance receiver sensitivity by reducing the search window of code-delay uncertainties.
  • [0008]
    If a GPS receiver had a complete set of ephemeris data for all satellites in view, before said receiver attempted to lock onto those satellites, the receiver would have significantly improved acquisition times and enhanced sensitivity. This is because the ephemeris data contains an accurate description of the satellite position, velocity, and clock errors; and the GPS receiver can use this data to increase its sensitivity by reducing significantly the search windows for frequency uncertainty and code-delay uncertainty. The disadvantage of the ephemeris is that each satellite only transmits its own ephemeris; thus a single GPS receiver cannot collect and propagate ephemeris for all the satellites in the constellation.
  • [0009]
    Therefore there is a need in the art for a GPS receiver system that propagates satellite ephemeris for all satellites in the constellation, thereby enhancing the speed of acquisition and signal sensitivity of mobile receivers.
  • SUMMARY OF THE INVENTION
  • [0010]
    The invention comprises a method and apparatus for distribution and delivery of the Global Positioning System (GPS) satellite ephemeris using a communication link between a central site and a wide area network of GPS receivers. The wide area network of GPS receivers collects the ephemeris data that is transmitted by the satellites and communicates the data to the central site. The central site delivers the ephemeris to the mobile receiver. The mobile GPS receiver uses the delivered data to enhance its sensitivity in two ways. First, the data allows the receiver to detect very weak signals that the receiver would not ordinarily be able to detect, and second, the GPS receiver does not have to track the satellite signals for very long before a position can be calculated.
  • [0011]
    In one embodiment of the invention, the satellite ephemeris data is retransmitted without manipulating the data in any way. The GPS receiver may then use this data exactly as if the receiver had received the data from the satellite. In another embodiment, a satellite pseudo-range model is computed at the central site from the ephemeris data, and this pseudo-range model is transmitted to the GPS receiver. The pseudo-range model has the characteristic that the model is more concise than the complete ephemeris. As such, the GPS receiver does not have to perform as many calculations when using the pseudo-range model as when using the complete ephemeris.
  • BRIEF DESCRIPTION OF DRAWINGS
  • [0012]
    The teachings of the present invention may be readily understood by considering the following detailed description in conjunction with the accompanying drawings, in which:
  • [0013]
    [0013]FIG. 1 depicts an architecture for a wide area reference station network in accordance with the present invention;
  • [0014]
    [0014]FIG. 2 depicts a GPS orbital sphere;
  • [0015]
    [0015]FIG. 3 depicts the intersection of the GPS orbital sphere and the horizon planes of three reference stations;
  • [0016]
    [0016]FIGS. 4A and 4B depict the intersection of the GPS orbital sphere and the horizon planes of four reference stations;
  • [0017]
    [0017]FIG. 5 depicts a flow diagram of a method of generating pseudo-range models;
  • [0018]
    [0018]FIG. 6 is a graph illustrating the timing (pseudo-range) and frequency (pseudo-range rate) uncertainty for a mobile GPS receiver, and the improvement in sensitivity that is gained by reducing both these uncertainties;
  • [0019]
    [0019]FIG. 7 depicts a flow diagram of a method of searching through the time (pseudo-range) and frequency (pseudo-range rate) windows; and
  • [0020]
    [0020]FIG. 8 depicts a flow diagram of a method for using pseudo-range information of satellites having high signal strength to improve receiver sensitivity for signals received from satellites having low signal strength.
  • DETAILED DESCRIPTION OF THE INVENTION
  • [0021]
    To facilitate understanding, the description has been organized as follows:
  • [0022]
    Overview, introduces each of the components of the invention, and describes their relationship to one another.
  • [0023]
    Global Tracking Network, describes how a worldwide network of tracking stations is constructed and deployed to ensure that all satellites are tracked at all times.
  • [0024]
    Ephemeris Processing, describes an embodiment of the invention that provides a more compact, and simpler, model of the satellite ephemeris.
  • [0025]
    Signal Detection, describes how the retransmitted satellite ephemeris data is used in a GPS receiver to detect signals that would otherwise be undetectable.
  • [0026]
    Sensitivity Enhancement, describes how the two strongest satellite signals may be used to compute the time and correlator offset at the mobile receiver. This information is, in turn, used to enhance sensitivity for weaker GPS signals that are received by the mobile receiver.
  • Overview
  • [0027]
    [0027]FIG. 1 depicts one embodiment of a global positioning system (GPS) satellite data distribution system 100 comprising:
  • [0028]
    a) A reference station network 102 comprising a plurality of tracking stations 104 1, 104 2, . . . 104 n coupled to one another through a communications network 105. The reference stations 104 are deployed over a wide area and contain GPS receivers 126 so that ephemeris may be collected from all satellites 106 within a global network of satellites e.g., the global positioning system (GPS). Ephemeris information comprises a 900 bit packet containing satellite position and clock information.
  • [0029]
    b) A central processing site 108 that collects the ephemeris from the tracking stations 104 comprises an ephemeris processor 128 that removes duplicate occurrences of the same ephemeris, and provides the latest ephemeris data for redistribution to mobile GPS receivers 114 and 118.
  • [0030]
    c) A communications link 120 from the central processing site to the mobile GPS receiver 114. The link 120 may be a landline 110, or other direct communications path, that couples the mobile GPS receiver 114 directly to the central processing site 108. Alternatively, this link may have several parts, for example: a landline 112 to a wireless transmitter 116, and a wireless link 122 from the transmitter 116 to a mobile receiver 118.
  • [0031]
    d) A mobile GPS receiver 114 or 118 that uses the redistributed ephemeris data (or a modified form thereof) to aid the receiver in detecting GPS signals from satellites 106 in a satellite constellation.
  • [0032]
    e) A position processor 130, where the position of a GPS receiver 114 or 118 is calculated. This could be the GPS receiver itself, the central processing site 108, or some other site to which the mobile GPS receivers send the measurement data that has been obtained from the satellites 106.
  • [0033]
    In operation, each of the satellites 106 continually broadcast ephemeris information associated with a particular satellite. To comprehensively and simultaneously capture the ephemeris data of all the satellites 106 in the constellation, the network 106 is spread worldwide.
  • [0034]
    To obtain all the ephemeris data, three or more tracking stations 104 are needed. Each of the 28 satellites has an orbit inclined at 55 degrees relative to the equator of the earth. As such, no satellite ever travels outside of a plus or minus 55 degree range on an orbital sphere. Consequently, three stations placed 120 degrees apart and lying exactly on the equator of the earth, would have all the satellites in view. However, placing reference stations at or close to those exact locations on the equator is impractical. To place reference stations in large cities around the world, a realistic, minimum number that will achieve viewing of all the satellites 106 is four.
  • [0035]
    Each of the tracking stations 104 contains a GPS receiver 126 that acquires and tracks satellite signals from all satellites 106 that are in view. The stations 104 extract the ephemeris information that uniquely identifies the position of each satellite as well as satellite clock information e.g., a 900 bit packet with a GPS signal. The ephemeris information is coupled to the central processing site 108 via, for example, a terrestrial land line network 105.
  • [0036]
    The central processing site 108 sends all or part of the ephemeris information to one or more mobile GPS receivers 114 and 118. If the central processing site knows the approximate position of the mobile GPS receiver, the central processing site 108 may only send the ephemeris information for satellites that are presently (or about to be) in view of the mobile GPS receiver 114 or 118. The ephemeris information can be coupled directly through a land line 110 or other communication path (e.g., internet, telephone, fiber optic cable, and the like). Alternatively, the ephemeris information can be coupled to a mobile GPS receiver 118 through a wireless system 116 such as a cell phone, wireless Internet, radio, television, and the like. The processing and utilization of the ephemeris information is described below (see EPHEMERIS PROCESSING and SIGNAL DETECTION).
  • Global Tracking Network
  • [0037]
    The global GPS reference network 102 has stations 104 arranged such that all satellites are in view all the time by the tracking stations 104 in the network 102. As such, the ephemeris for each satellite 106 is available to the network in real time, so that the network, in turn, can make the ephemeris, or derived pseudo-range models, available to any mobile receiver that needs them.
  • [0038]
    The minimum complete network of reference stations comprises three stations, approximately equally placed around the earth, on or close to the equator. FIG. 2 shows the GPS orbital sphere 202 surrounding the earth 204, and an indication 206 of all orbits of the satellites. FIG. 3 shows the intersection of the horizon planes of 3 tracking stations, (denoted A, B, and C), with the GPS orbital sphere. In FIG. 3, the orbital sphere is shaded gray in any region above the horizon of a tracking station. Regions on the orbital sphere above the horizons of two tracking stations are shaded slightly darker. The orbital sphere is white in the regions, above and below 55 degrees, where there are no GPS satellites. From FIG. 3, it is clear that any point on any GPS orbit is always above the horizon of at least one reference station A, B or C.
  • [0039]
    It is not commercially or technically practical to place reference stations around the equator. Preferred sites are major cities with good communications infrastructure to enable the ephemeris to be coupled to the control processing site via a reliable network. When the reference stations are moved away from the equator, more than three stations are needed to provide coverage of all satellites all the time. However, it is possible to create a network of only four reference stations with complete coverage of all GPS satellites all the time, and with the four stations located in or near major cities. For example, the stations may be placed in Honolulu, Hawaii (USA), Buenos Aires (Argentina), Tel Aviv (Israel) and Perth (Australia). FIG. 4A and 4B show the intersection of the horizon planes of these stations with the GPS orbital sphere. Any point of any GPS orbit is always above the horizon of at least one of the reference stations. FIG. 4A and 4B show the orbital sphere viewed from two points in space, one point (FIG. 4A) in space approximately above Spain, and the other (FIG. 4b) from the opposite side of the sphere, approximately above New Zealand. The figure is shaded in a similar way to FIG. 3. Gray shading shows regions of the GPS orbital sphere above the horizon of at least one tracking station and darker gray regions represent portions of the orbital sphere accessible to two stations.
  • Ephemeris Processing
  • [0040]
    The ephemeris is used to compute a model of the satellite pseudo-range and pseudo-range rate. From the pseudo-range rate the mobile GPS receiver can calculate the Doppler frequency offset for the satellite signal. The computation of the pseudo-range model can be done at the mobile receiver, or at the central processing site. In the preferred embodiment the pseudo-range model is computed at the central site as follows.
  • [0041]
    [0041]FIG. 5 depicts a flow diagram of a method 500 for generating a pseudo-range model. At step 502, the ephemeris data from all the tracking stations is brought to the central processing site. Ephemeris data is transmitted continually by all satellites, mostly this is repeated data; new ephemeris is typically transmitted every 2 hours. The ephemeris is tagged with a “Time of Ephemeris”, denoted TOE. This tag indicates the time at which the ephemeris is valid. Ephemeris calculations are highly accurate within 2 hours of TOE. A satellite first transmits an ephemeris 2 hours ahead of the TOE, thus any ephemeris is highly accurate for a maximum of four hours.
  • [0042]
    At step 506, the central processing site keeps all the ephemeris data with TOE closest to the time T at which the mobile receiver requires ephemeris (or a pseudo-range model). Time T is provided by the mobile receiver at step 504. Usually T will be the current real time, however, it could be a time up to 4 hours in the future for mobile receivers that are collecting ephemeris/pseudo-range models in advance of when they need them. T could also be a time in the past, for mobile receivers processing previously stored data.
  • [0043]
    At step 508, the central processing site then calculates the satellite positions at time T. In the preferred embodiment, this is performed using the equations provided in the GPS Interface Control Document, ICD-GPS-200-B.
  • [0044]
    At step 512, the central processing site obtains the approximate position of the mobile GPS Receiver. In the preferred embodiment, the mobile GPS receiver communicates with the central processing site over a wireless communications link, such as a 2-way paging network, or a mobile telephone network, or similar 2-way radio networks. Such 2-way radio networks have communication towers that receive signals over a region of a few miles. The central processing site obtains the reference ID of the radio tower used to receive the most recent communication from the mobile GPS. The central processing site then obtains the position of this radio tower from a database. This position is used as the approximate mobile GPS position.
  • [0045]
    In an alternative embodiment, the approximate position of the mobile GPS receiver may be simply the center of the region served by a particular communications network used to implement this invention.
  • [0046]
    In another alternate embodiment, the approximate position of the mobile GPS receiver may be the last known point of said receiver, maintained in a database at the central processing site.
  • [0047]
    It is understood that many combinations and variants of the above methods may be used to approximate the mobile GPS receiver position.
  • [0048]
    Having calculated the satellite positions, and obtained the approximate user position, the central processing site computes (at step 510) which satellites are, or will soon be, above the horizon at the mobile GPS receiver. For applications requiring simply the redistribution of the ephemeris data, at step 514, the central processing site now outputs the ephemeris for those satellites above, or about to rise above, the horizon.
  • [0049]
    In the preferred embodiment, a pseudo-range model is computed that comprises: time T, and, for each satellite above, or about to rise above, the horizon: the satellite PRN number, pseudo-range, pseudo-range rate, and pseudo-range acceleration.
  • [0050]
    To compute a pseudo-range model, the central processing site first computes at step 516 the pseudo-ranges of all satellites above, or about to rise above, the mobile GPS receiver horizon. . The pseudo-range is the geometric range between the satellite and the approximate GPS position, plus the satellite clock offset described in the ephemeris.
  • [0051]
    At step 518, the pseudo-range rate may be computed from the satellite velocity and clock drift. Satellite velocity may be obtained directly by differentiating the satellite position equations (in ICD-GPS-200-B) with respect to time. In an alternative embodiment, satellite velocity may be computed indirectly by computing satellite positions at two different times, and then differencing the positions.
  • [0052]
    In another alternative embodiment, the pseudo-range rates may be computed indirectly by computing the pseudo-ranges at two different times, and then differencing these pseudo-ranges.
  • [0053]
    At step 520, the pseudo-range acceleration is then computed in a similar fashion (by differentiating satellite velocity and clock drift with respect to time, or by differencing pseudo-range rates).
  • [0054]
    The complete pseudo-range model is then packed into a structure and output to the mobile GPS receiver at step 522.
  • [0055]
    The mobile GPS receiver may use the pseudo-range model for the period of validity of the ephemeris from which it was derived. To apply the pseudo-range model at some time after time T, the mobile receiver propagates the pseudo-ranges and range rates forward using the rate and acceleration information contained in the pseudo-range model.
  • [0056]
    In an alternative embodiment, the central processing site propagates the unaltered ephemeris 519 and the derivation of the pseudo-range model and pseudo-range rate is performed at the mobile GPS receiver.
  • [0057]
    Krasner (U.S. Pat. No. 6,064,336) has taught that the availability of Doppler information can aid the mobile GPS receiver by reducing the frequency uncertainty. U.S. Pat. No. 6,064,336 describes a system and method for delivering to a mobile receiver Almanac information from which Doppler may be derived; or for delivering equivalent information, derived from the Almanac; or for delivering the Doppler measurement itself from a base station near to the mobile receiver. In another alternative embodiment of the current invention, the Ephemeris may be used to derive Doppler information. In the section that follows (SIGNAL DETECTION) it will be appreciated that the use of this Doppler information will aid in signal acquisition to the extent of reducing the Pseudo-range rate uncertainty, i.e., the number of frequency bins to search, but the Doppler information will not reduce the Pseudo-range uncertainty (i.e. the code delays).
  • Signal Detection
  • [0058]
    There are several ways in which the availability of ephemeris data (or the derived pseudo-range model) aid the signal acquisition and sensitivity of the mobile GPS receiver, described below.
  • [0059]
    The ephemeris or pseudo-range models can predict the elevation angle to the satellite, allowing the receiver to focus on acquiring high elevation satellite signals, which are generally less subject to obstruction. Satellites that are calculated to be below the horizon (negative elevation angles) can be ignored. This satellite selection can also be performed using an almanac of satellite orbital information, but providing models, or ephemeris from which models can be created, eliminates the need for non-volatile storage for the almanac within the mobile receiver. Thus, the ephemeris provides some advantage in this respect, however the main advantage of the invention is in the improvement in signal acquisition and receiver sensitivity, described below.
  • [0060]
    The “re-transmitted” or “re-broadcast” ephemeris information improves the operation of the mobile receiver in two ways.
  • [0061]
    First, the mobile receiver does not need to collect the ephemeris from the satellite. The ephemeris is broadcast from a satellite every 30 seconds and requires 18 seconds to transmit. In order to receive ephemeris without the use of the present invention, a mobile receiver needs clear, unobstructed satellite reception for the entire 18-second interval during which the ephemeris is being transmitted. Depending on the environment and usage of the receiver, it may be minutes before the situation allows the ephemeris to be collected and in many applications, for example, indoor use, the mobile receiver may never have an unobstructed view of a satellite. To eliminate the data collection delay, the present invention provides the ephemeris data directly to the mobile receiver.
  • [0062]
    Second, the ephemeris is used, as described above, to form the pseudo-range models of the satellite signals being received at the mobile receiver. These models can accelerate the acquisition process in several ways.
  • [0063]
    The models predict the pseudo-range and pseudo-range rate of the received signals. If the approximate user position is fairly accurate, these models will be very accurate in estimating the pseudo-range and pseudo-range rate. Using the models, the receiver can focus the correlation process around an expected signal.
  • [0064]
    [0064]FIG. 6 shows a graph 601 that illustrates the usual frequency and timing uncertainty for a mobile GPS receiver. On the y-axis 602, the various rows show different pseudo range rates, and on the x-axis 604 the various columns show different pseudo ranges. Without an accurate model, such as available using the present invention, the possibilities for range rates will vary considerably because a wide range of satellite motions are possible, and the possibilities for ranges will also vary over many cycles of the PN codes. With an accurate model provided by the ephemeris information, the uncertainties can be reduced to a small range, depicted by the black cell 606. Many receivers will be able to search this small range in a single pass that eliminates a time consuming sequential search and allows the use of longer integration times for better sensitivity, as will now be described.
  • [0065]
    Better sensitivity is achieved as follows: The sensitivity of a GPS receiver is a function of the amount of time that the receiver can integrate the correlator outputs. The relationship between sensitivity and integration time is shown by the graph 608. With many bins to search, the integration time 610 equals the total available search time divided by the number of search bins. With only a single bin to search, the integration time 612 equals the total available search time, increasing the sensitivity as shown 608.
  • [0066]
    It should be noted that in some receivers, the pseudo-ranges and pseudo-range rates that can be predicted from the pseudo-range models will not be accurate because of a lack of synchronization of the local clock. In this case, a search over a wide range of uncertainties will still be initially required, but only for the strongest satellite(s). If the local clock is known to be correct to within approximately one second of GPS time then any one satellite will be enough to synchronize the local correlator offset. Thereafter, the expected pseudo-range and pseudo-range rates can be accurately computed for the remaining satellites. If the local clock is not known to within approximately one second, then two satellites must be used to compute the two required clock parameters: the local clock and the correlator offset. The fact that two satellites are required is an often misunderstood point. In the GPS literature, it is often mentioned that one satellite is enough to solve for an unknown clock offset without realizing that this is only true for systems where the local clock is already approximately synchronized with GPS time. In traditional GPS receivers that continuously track the GPS signals, the local clock is synchronized to GPS time to much better than one second accuracy. In some more modern implementations (e.g., U.S. Pat. No. 6,064,336), the local clock is synchronized to a network time reference, which is synchronized to GPS time. However, the current invention is specifically intended to operate in implementations where the local clock is not synchronized to GPS time. The manner in which one solves for these clock parameters is described in detail below.
  • [0067]
    Once the unknown clock parameters have been computed, the parameters can then be used to adjust the pseudo-range models for the remaining, weaker satellites to reduce the range of uncertainty back to a narrow region; thus enhancing sensitivity precisely when high sensitivity is needed, i.e., for detecting the weaker satellite signals.
  • [0068]
    In other receivers, the local clock and clock rate may be quite accurate. For example, if the clock signals are derived from a wireless media that is synchronized to GPS timing (e.g., a two-way paging network), then the clock parameters are typically accurate. In this case, there is no clock effect and a narrow search region can be used from the onset.
  • [0069]
    To quantify the benefits of the invention, consider an example where the user position is known to within the radius of reception of a 2-way pager tower (2-miles). In this case the pseudo-range (expressed in milliseconds) can be pre-calculated to an accuracy of one-hundredth of a millisecond. Without the invention, a GPS receiver would search over a full millisecond of all possible code delays to lock onto the code transmitted by the satellite. Using the invention the search window is reduced by up to one hundred times, making the GPS receiver faster, and, more importantly, allowing the use of longer integration times (as described above), making the receiver capable of detecting weaker signals, such as occur indoors.
  • [0070]
    An additional advantage of having ephemeris, or the derived pseudo-range model, at the mobile receiver is that the process of identifying the true correlation is more robust, since, apart from increasing the integration time as described above, the chance that a “false peak” would be identified is greatly reduced by considering only correlations that occur within the expected range.
  • [0071]
    One embodiment of the use of ephemeris (or derived pseudo-range models) to enhance sensitivity is described further with respect to FIG. 7.
  • [0072]
    [0072]FIG. 7 is a flow diagram of a method 700 of signal search. The method begins at step 702 with an input of the pseudo-range model. As noted earlier this pseudo-range model is calculated from the ephemeris, either at the mobile receiver itself, or at the central processing site. At step 704, the model is applied at the current time in the mobile device and is used to estimate the expected current frequency and timing of GPS satellite signals, as well as the expected uncertainties of these quantities, to form a frequency and code delay search window for each satellite. This window is centered on the best estimates of frequency and delay but allows for actual variations from the best estimates due to errors in the modeling process including inaccuracies in the rough user position, errors in the time and frequency transfer from the wireless carrier etc. In addition, the frequency uncertainty is divided into a number of frequency search bins to cover the frequency search window. As shown in FIG. 6, the number of search bins is dramatically reduced by using the pseudo-range model.
  • [0073]
    In step 706, the detection and measurement process is set to program the carrier correction to the first search frequency. At step 708, a code correlator is invoked to search for signal correlations within the delay range of the delay window. Such a code correlator is standard in the art, but the present invention dramatically reduces the number of possible code delays over which the correlator must search thereby increasing the integration time for each code delay, and thus the sensitivity of the receiver.
  • [0074]
    At step 710, the method 700 queries whether a signal is detected. If no signal is detected, the carrier correction is set, at step 712, to the next search frequency and the search continues until a signal is found or the frequency search bins are exhausted.
  • [0075]
    If, at step 710, the method 700 affirmatively answers the query, the signal is used at step 714 to further improve the estimate of clock time delay and clock frequency offset. This information is utilized at step 716 to re-compute the frequency and delay search windows for the remaining undetected satellites. In step 718, the process continues until all satellites have been detected or the search windows have been exhausted.
  • [0076]
    The method of FIG. 7 is illustrative of one of a variety of algorithms that can be used to guide the search process based on the GPS signal processing's ability to estimate time and frequency. Additionally, the algorithms could be altered to include various retry mechanisms since the signals themselves may be fading or blocked.
  • Sensitivity Enhancement
  • [0077]
    To enhance the sensitivity of the receiver (as described with respect to FIG. 6), the invention uses the approximate position of the mobile device to compute expected pseudo-range, this reduces the pseudo-range uncertainty. However, before the inventive receiver can compute the expected pseudo-range the following three items are required:
  • [0078]
    1. the approximate position of the mobile device (to within a few miles of a true position)
  • [0079]
    2. the approximate time at the mobile device (to within approximately one second of the true time)
  • [0080]
    3. the correlator clock offset at the mobile device (to within a few microseconds of the true offset).
  • [0081]
    The more accurately each of the three terms is known, the more precisely the invention can bound the pseudo-range uncertainty, and thus the greater the sensitivity (see FIG. 6). In the preferred embodiment, the approximate position of the mobile device is determined from the known location of the radio tower last used by the device. The radius of reception of radio towers for 2-way pagers and cell-phones is typically 3 kilometers. Thus the approximate position of the mobile device is known to within 3 kilometers, and the induced error on the pseudo-range estimate will be no more than 3 kilometers. With reference to FIG. 6., note that the full pseudo-range uncertainty for an unaided GPS receiver is equal to one code epoch, which is approximately 300 kilometers. Thus, even knowing an approximate position as roughly as 3 kilometers can reduce the pseudo-range uncertainty one hundred times.
  • [0082]
    The timing errors also induce errors on the expected pseudo-range. To compute expected pseudo-range, the receiver must calculate the satellite position in space. The satellite range from any location on earth varies at a rate between plus and minus 800 meters per second. Thus each second of time error will induce a range error (and pseudo-range error) of up to 800 meters.
  • [0083]
    The mobile device correlator delay offset induces a direct error in the pseudo-range measurement, as is well known in the GPS literature. Each microsecond of unknown correlator delay offset induces 300 meters of error in the range measurement.
  • [0084]
    Thus, to keep the pseudo-range estimate within a range of a few kilometers (as illustrated in FIG. 6), the receiver of the present invention requires estimates of position, time and correlator delay offset in the ranges shown above.
  • [0085]
    In an implementation where the real time at the mobile device is not known to better than a few seconds, and the correlator delay offset is not known, one solves for both using two satellite measurements, as follows.
  • [0086]
    The equation relating pseudo-range errors to the two clock errors is:
  • y=c*dt c−rangeRate*dt s  (1)
  • [0087]
    where:
  • [0088]
    y is the “pseudo-range residual”, i.e., the difference between the expected pseudo-range and the measured pseudo-range;
  • [0089]
    c is the speed of light;
  • [0090]
    dtc is the correlator delay offset; and
  • [0091]
    dts is the offset of the real time estimate.
  • [0092]
    [0092]FIG. 8 depicts a flow diagram of a method 800 for improving the clock parameters, and then improving the receiver sensitivity. Method 800 comprises:
  • [0093]
    Step 802. Using the best known clock parameters, compute expected pseudo-ranges for all the satellites.
  • [0094]
    Step 804. Measure the pseudo-ranges for the two strongest satellites with the highest signal strength.
  • [0095]
    Step 806. Using these two measurements, solve equation (1) for the two unknowns: dtc and dts.
  • [0096]
    Step 808. Use dtc and dts to improve the estimate of the expected pseudo-ranges for the remaining (weaker) satellites.
  • [0097]
    Step 810. Use these improved expected pseudo-ranges to reduce the pseudo-range uncertainty, thus improving the sensitivity of the receiver, as shown in FIG. 6.
  • [0098]
    Although various embodiments which incorporate the teachings of the present invention have been shown and described in detail herein, those skilled in the art can readily devise many other varied embodiments that still incorporate these teachings.
Patent Citations
Cited PatentFiling datePublication dateApplicantTitle
US4445118 *May 22, 1981Apr 24, 1984The United States Of America As Represented By The Administrator Of The National Aeronautics And Space AdministrationNavigation system and method
US4751512 *Jan 21, 1986Jun 14, 1988Oceanonics, Inc.Differential navigation system for remote mobile users
US4764465 *Sep 30, 1986Aug 16, 1988Cetus CorporationHuman monoclonal antibody against group A red blood cells
US4847862 *Apr 7, 1988Jul 11, 1989Trimble Navigation, Ltd.Global positioning system course acquisition code receiver
US4884208 *May 16, 1988Nov 28, 1989Equipment Tracking Network, Inc.System for continuously establishing and indicating the location of a movable object
US4970523 *Mar 27, 1989Nov 13, 1990Trimble Navigation, Ltd.Differential doppler velocity GPS receiver
US5108334 *Jun 1, 1989Apr 28, 1992Trimble Navigation, Ltd.Dual down conversion GPS receiver with single local oscillator
US5148179 *Jun 27, 1991Sep 15, 1992Trimble NavigationDifferential position determination using satellites
US5187805 *Oct 2, 1989Feb 16, 1993Motorola, Inc.Telemetry, tracking and control for satellite cellular communication systems
US5225842 *May 9, 1991Jul 6, 1993Navsys CorporationVehicle tracking system employing global positioning system (gps) satellites
US5347284 *Feb 28, 1991Sep 13, 1994Texas Instruments IncorporatedSystem and method for a digital navigation satellite receiver
US5365450 *Dec 17, 1992Nov 15, 1994Stanford Telecommunications, Inc.Hybrid GPS/data line unit for rapid, precise, and robust position determination
US5434787 *Apr 8, 1992Jul 18, 1995Sharp Kabushiki KaishaSystem for measuring position by using global positioning system and receiver for global position system
US5555503 *Nov 23, 1993Sep 10, 1996Caterpillar Inc.System and method for providing accurate vehicle positioning using spatial bias techniques
US5587715 *Mar 19, 1993Dec 24, 1996Gps Mobile, Inc.Method and apparatus for tracking a moving object
US5600329 *Jun 30, 1995Feb 4, 1997Honeywell Inc.Differential satellite positioning system ground station with integrity monitoring
US5781156 *Apr 23, 1997Jul 14, 1998Snaptrack, Inc.GPS receiver and method for processing GPS signals
US5796365 *Dec 23, 1996Aug 18, 1998Lewis; Peter T.Method and apparatus for tracking a moving object
US5812087 *Feb 3, 1997Sep 22, 1998Snaptrack, Inc.Method and apparatus for satellite positioning system based time measurement
US5812932 *Nov 17, 1995Sep 22, 1998Globalstar L.P.Mobile satellite user information request system and methods
US5825327 *Oct 7, 1996Oct 20, 1998Snaptrack, Inc.GPS receivers and garments containing GPS receivers and methods for using these GPS receivers
US5831574 *Oct 7, 1996Nov 3, 1998Snaptrack, Inc.Method and apparatus for determining the location of an object which may have an obstructed view of the sky
US5841396 *Dec 4, 1996Nov 24, 1998Snaptrack, Inc.GPS receiver utilizing a communication link
US5862495 *Sep 18, 1996Jan 19, 1999Lockheed Martin Corp.Real time position correction to ground generated spacecraft ephemeris
US5874914 *Mar 8, 1996Feb 23, 1999Snaptrack, Inc.GPS receiver utilizing a communication link
US5884214 *Sep 6, 1996Mar 16, 1999Snaptrack, Inc.GPS receiver and method for processing GPS signals
US5886665 *Aug 7, 1997Mar 23, 1999Rockwell InternationalGNSS local constellation/acquisition aiding system
US5899957 *Mar 10, 1997May 4, 1999Trimble Navigation, Ltd.Carrier phase differential GPS corrections network
US5940026 *Jul 21, 1997Aug 17, 1999Rockwell Science Center, Inc.Azimuth determination for GPS/INS systems via GPS null steering antenna
US5945944 *Apr 24, 1997Aug 31, 1999Snaptrack, Inc.Method and apparatus for determining time for GPS receivers
US5966658 *Sep 26, 1996Oct 12, 1999Highwaymaster Communications, Inc.Automated selection of a communication path
US5977909 *Mar 13, 1998Nov 2, 1999General Electric CompanyMethod and apparatus for locating an object using reduced number of GPS satellite signals or with improved accuracy
US5995556 *Jun 6, 1990Nov 30, 1999California Institute Of TechnologyFront end for GPS receivers
US5999124 *Apr 22, 1998Dec 7, 1999Snaptrack, Inc,Satellite positioning system augmentation with wireless communication signals
US6002363 *May 23, 1996Dec 14, 1999Snaptrack, Inc.Combined GPS positioning system and communications system utilizing shared circuitry
US6016119 *Sep 28, 1998Jan 18, 2000Snaptrack, Inc.Method and apparatus for determining the location of an object which may have an obstructed view of the sky
US6032108 *Jul 8, 1998Feb 29, 2000Seiple; RonaldSports performance computer system and method
US6052081 *May 7, 1998Apr 18, 2000Snaptrack, Inc.Method and apparatus for satellite positioning system based time measurement
US6061018 *May 5, 1998May 9, 2000Snaptrack, Inc.Method and system for using altitude information in a satellite positioning system
US6064336 *Aug 5, 1998May 16, 2000Snaptrack, Inc.GPS receiver utilizing a communication link
US6067484 *Mar 23, 1998May 23, 2000Airsys Atm, Inc.Differential GPS landing system
US6075987 *Feb 27, 1998Jun 13, 2000Ericsson Inc.Stand alone global positioning system (GPS) and method with high sensitivity
US6091959 *Jun 2, 1999Jul 18, 2000Motorola, Inc.Method and apparatus in a two-way wireless communication system for location-based message transmission
US6121923 *Feb 19, 1999Sep 19, 2000Motorola, Inc.Fixed site and satellite data-aided GPS signal acquisition method and system
US6150980 *Jun 29, 1999Nov 21, 2000Snaptrack, Inc.Method and apparatus for determining time for GPS receivers
US6185427 *Apr 28, 1998Feb 6, 2001Snaptrack, Inc.Distributed satellite position system processing and application network
US6204808 *Mar 8, 1999Mar 20, 2001Ericsson Inc.Method and system for aiding GPS receivers via a cellular or PCS network
US6215441 *Apr 28, 1998Apr 10, 2001Snaptrack, Inc.Satellite positioning reference system and method
US6266584 *Feb 24, 1999Jul 24, 2001Space Systems/Loral, Inc.Robust autonomous GPS time reference for space application
US6295023 *Jan 21, 2000Sep 25, 2001Ericsson Inc.Methods, mobile stations and systems for acquiring global positioning system timing information
US6313787 *Nov 12, 1999Nov 6, 2001Motorola, Inc.Method and apparatus for assisted GPS protocol
US6324473 *Aug 4, 1997Nov 27, 2001Trimble Navigation LimitedMethod and apparatus for collecting, processing and distributing differential global positioning system information using the internet
US6336076 *Aug 24, 1998Jan 1, 2002Rockwell Collins, Inc.Long range GNSS ephemeris data transfer method and apparatus using the same
US6393291 *Mar 25, 1999May 21, 2002Rockwell Collins, Inc.Method and apparatus for deriving a high rate output in a GPS system
US6411892 *Jul 13, 2000Jun 25, 2002Global Locate, Inc.Method and apparatus for locating mobile receivers using a wide area reference network for propagating ephemeris
US6433734 *Oct 30, 2000Aug 13, 2002Snaptrack, Inc.Method and apparatus for determining time for GPS receivers
US6453237 *Apr 21, 2000Sep 17, 2002Global Locate, Inc.Method and apparatus for locating and providing services to mobile devices
US6462707 *Mar 22, 2001Oct 8, 2002Lockheed Martin CorporationSatellite position monitor
US6473030 *Feb 28, 2001Oct 29, 2002Seiko Epson CorporationInfrastructure-aiding for satellite navigation receiver and method
US6515620 *Jul 18, 2001Feb 4, 2003Fast Location.Net, LlcMethod and system for processing positioning signals in a geometric mode
US6538600 *May 27, 1999Mar 25, 2003Lucent Technologies Inc.Wireless assisted GPS using a reference location
US6542743 *Aug 31, 1999Apr 1, 2003Qualcomm, IncorporatedMethod and apparatus for reducing pilot search times utilizing mobile station location information
US6542820 *Jun 6, 2001Apr 1, 2003Global Locate, Inc.Method and apparatus for generating and distributing satellite tracking information
US6560534 *Jun 19, 2001May 6, 2003Global Locate, Inc.Method and apparatus for distributing satellite tracking information
US6603978 *Mar 24, 2000Aug 5, 2003Ericsson Inc.Accurate GPS time estimate based on information from a wireless communications system
US6606560 *Mar 22, 2001Aug 12, 2003Lockheed Martin CorporationBeacon for satellite registration
US6628234 *Jul 18, 2001Sep 30, 2003Fast Location.Net, LlcMethod and system for processing positioning signals in a stand-alone mode
US6636740 *Jun 16, 1998Oct 21, 2003Ericsson Inc.Apparatus and methods for position computation based on broadcast initialization data
US6677893 *Mar 18, 2002Jan 13, 2004Qinetiq LimitedMethod and apparatus for locating the source of unknown signal
US6771625 *Jul 10, 2000Aug 3, 2004Ksi, Inc.Pseudolite-augmented GPS for locating wireless telephones
US6829535 *Sep 5, 2003Dec 7, 2004Global Locate, Inc.Method and apparatus for generating satellite tracking information in a compact format
US6922546 *May 3, 2000Jul 26, 2005Lucent Technologies Inc.GPS signal acquisition based on frequency-domain and time-domain processing
US20020024461 *Apr 10, 2001Feb 28, 2002Mark MoegleinSatellite positioning reference system and method
US20020031103 *Apr 25, 2001Mar 14, 2002Globalstar L.P.User terminal employing quality of service path determination and bandwidth saving mode for a satellite ISP system using non-geosynchronous orbit satellites
US20030023379 *Jul 25, 2001Jan 30, 2003Diggelen Frank VanMethod and apparatus for generating and distributing satellite tracking information in a compact format
Referenced by
Citing PatentFiling datePublication dateApplicantTitle
US7978131Jul 12, 2011Qualcomm IncorporatedSystem and/or method for determining sufficiency of pseudorange measurements
US8319684Feb 5, 2009Nov 27, 2012Qualcomm IncorporatedMethod and apparatus for position determination with extended SPS orbit information
US8473205 *Dec 2, 2004Jun 25, 2013Qualcomm IncorporatedProcedure for searching for position determination signals using a plurality of search modes
US8493267Aug 3, 2007Jul 23, 2013Qualcomm IncorporatedMethod and apparatus for position determination with extended SPS orbit information
US8930137Apr 23, 2013Jan 6, 2015Global Locate, Inc.Method and apparatus for locating mobile receivers using a wide area reference network for propagating ephemeris
US9019157Aug 9, 2012Apr 28, 2015Qualcomm IncorporatedMethod and apparatus for position determination with extended SPS orbit information
US9366763Feb 4, 2009Jun 14, 2016Qualcomm IncorporatedMethod and apparatus for position determination with hybrid SPS orbit data
US20040010368 *Jul 10, 2002Jan 15, 2004Logan ScottAssisted GPS signal detection and processing system for indoor location determination
US20050101272 *Dec 2, 2004May 12, 2005Rowitch Douglas N.Procedure for searching for position determination signals using a plurality of search modes
US20090267833 *Jul 8, 2009Oct 29, 2009Van Diggelen FrankMethod and apparatus for locating mobile receivers using a wide area reference network for propagating ephemeris
US20090315772 *Feb 5, 2009Dec 24, 2009Qualcomm IncorporatedMethod and apparatus for position determination with extended sps orbit information
US20100194634 *Feb 4, 2009Aug 5, 2010Qualcomm IncorporatedMethod and apparatus for position determination with hybrid sps orbit data
US20100328149 *Dec 15, 2009Dec 30, 2010Qualcomm IncorporatedSystem and/or Method for Determining Sufficiency of Pseudorange Measurements
EP2081040A2Jan 12, 2009Jul 22, 2009Broadcom CorporationMethod and appratus for determining location information of a mobile device
EP2088448A2Jan 20, 2009Aug 12, 2009Broadcom CorporationMethod and apparatus for improving accuracy and/or integrity of long-term-orbit information for a global-navigation-satellite system
Classifications
U.S. Classification701/469, 342/357.64, 342/357.43
International ClassificationG06F17/10, H04B7/195, G01S1/00, G01S19/06, G01S19/25
Cooperative ClassificationG01S19/258, G01S19/28, G01S19/06
European ClassificationG01S19/06, G01S19/25D, G01S19/28, G01S19/05
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