Claims
- 1. In a star configured multiple access radio communication system wherein a hub station communicates, in time division multiplex mode, with a plurality of remote subscriber stations by means of a forward link signal path and the remote subscriber stations communicate with the hub on a return link that has multiple RF carriers that are configured in an orthogonal manner and wherein all received return link signals are time synchronous, and all signals possess the same time division multiplex structure in which a portion of the signal is dedicated to time synchronization, the system comprising:
- at each remote subscriber station, a synchronization burst sequence generator, each burst sequence generator assuming that the time tracking and synchronization process of each return link is relatively unaffected by all other remote stations, said synchronization burst sequence including Sync Codes, said Sync Codes are constructed using a basis sequence of length N, b.sub.0, b.sub.1, . . . ,b.sub.N-1, with each element in the basis sequence drawn from a binary alphabet {-1, +1}, said basic sequence having a two valued circular auto-correlation function, which is given as: ##EQU5## where N=a whole number. and at said hub station a delay discriminator for each remote subscriber, each said delay discriminator including a first and a second channel,
- said first channel having a one symbol delay means, a first matched filter, and a squaring circuit, said second channel having a matched filter and a squaring circuit,
- means summing the outputs of said squaring circuits,
- and
- an output sampler for sampling the incoming signals at an offset of half a symbol period with respect to the peak of said first matched filter.
- 2. The invention defined in claim 1 wherein said Sync Codes are constructed as follows:
- 1) the number of symbols in a Sync Code sequence is N+5,
- 2) denoting the symbols of the k.sup.th Sync Code sequence as a.sub.0 (k), a.sub.1 (k), a.sub.2 (k), . . . , a.sub.N+4 (k), then the first 3 symbols are fixed such that a.sub.0 (k)=+1, a.sub.1 (k)=+1, and a.sub.2 (k)=+1,
- 3) the fourth symbol of the Sync Code is the same as the symbol previous to the last such that a.sub.3 (k)=a.sub.N+3 (k), where a.sub.N+3 (k) is determined in Step 4,
- 4) the next N symbols of the Sync Code, a.sub.4 (k), a.sub.5 (k), . . . , a.sub.N+3 (k), are obtained from a circular shift of the basis sequence such that a.sub.i k)=b.sub.(i+J(k))mod(N) for i=4, 5, . . . , N+3 and for a given J(k), 0.ltoreq.J(k).ltoreq.N-1; the set J consists of the circular shift indices for the K remote stations; the definition of the values in the set J is crucial to the functionality of this invention; to a large degree it is the proper selection of the circular shift indices that provides for minimal interference between the Return Link Sync Codes; since the use of a Sync Code sequence is in conjunction with a Delay Discriminator, the operational limitations of the discriminator will dictate the design of Sync Code sequence; it leads to the following rule for selecting the circular shift indices in J;
- Rule: the set J consisting of the circular shift indices is divided into 2 subsets J.sub.odd and J.sub.even corresponding to the odd numbered carriers and even numbered carriers, respectively; the minimum difference between all pairs of indices in either subset must be greater than one, that is: ##EQU6## where K is the number of remote subscriber stations, 5) the last symbol of the Sync Code is the same as the fifth symbol such that a.sub.N+4 (k)=a.sub.4 (k),
- where a.sub.4 (k) is determined in Step 4.
- 3. In a star configured multiple access radio communication system wherein a hub station communicates, in time division multiplex mode, with a plurality of remote subscriber stations by means of a forward link signal path and the remote subscriber stations communicate with the hub on a return link that has multiple RF carriers that are orthogonally configured and wherein all received return link signals are time synchronous, and all signals possess the substantially same time division multiplex structure in which a portion of the signal is dedicated to time synchronization, the system comprising:
- at each remote subscriber station, a synchronization burst sequence generator, said synchronization burst sequence including Sync Codes, said Sync Codes are constructed using a basis sequence, said basis sequence being non-palindromic and having a two valued circular auto-correlation function,
- said hub station having a delay discriminator for each remote subscriber, each said delay discriminator including a first and a second channel,
- said first channel having a one symbol delay means, a first matched filter, and a squaring circuit, said second channel having a matched filter and a squaring circuit,
- means summing the outputs of said squaring circuits, and
- an output sampler for sampling the incoming signals at an offset of half a symbol period with respect to the peak of said first matched filter.
REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of application Ser. No. 08/739,319 filed Oct. 29, 1996 now abandoned, entitled CODE TRACKING IN SYNCHRONOUS MULTIPLE ACCESS COMMUNICATION SYSTEMS.
This application is related to application Ser. No. 08/739,317 filed Oct. 29, 1996 (now abandoned) entitled A DELAY-LOCK LOOP FOR TIME TRACKING IN SYNCHRONOUS MULTIPLE ACCESS COMMUNICATION SYSTEMS; Ser. No. 08/813,091 filed Mar. 7, 1997 entitled A CLASS OF LOW CROSS CORRELATION PALINDROMIC SYNCHRONIZATION SEQUENCES FOR TIME TRACKING IN SYNCHRONOUS MULTIPLE ACCESS COMMUNICATION SYSTEMS; and application Ser. No. 08/444,749 filed May 19, 1995, now U.S. Pat. No. 5,623,487, entitled DOUBLY ORTHOGONAL CODE AND FREQUENCY DIVISION MULTIPLE ACCESS COMMUNICATION SYSTEM, incorporated herein by reference.
US Referenced Citations (5)
Continuation in Parts (1)
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Number |
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739319 |
Oct 1996 |
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