1460744191-6099df92-6cd3-4751-94ed-a4c1f38198cf

1-19. (canceled)
20. A process for planning a communications network adapted to serve a set of user terminals to which communication services are provided by means of a set of service areas identified through cells with respective associated cell serving stations, each serving station having certain output transmission power and service capacity, wherein the cells are divided into pixels and wherein said user terminals are adapted to communicate within said cells on respective uplinks and downlinks, said services having associated respective service quality levels on said uplinks and downlinks, each one of said serving stations having respective power limits related to the maximum power that can be delivered by the radio station globally toward all served terminals and the power that can be delivered by an individual connection toward an individual terminal, comprising the steps of determining each one of the service areas of said set as joint uplinkdownlink service areas composed of the set of pixels in which respective service is guaranteed by complying with associated quality requirements on both uplinks and downlinks and verifying the compliance of said limits on the maximum power that can be delivered by the radio station both globally toward all served terminals and for the individual connection toward an individual terminal.
21. The process according to claim 20, wherein the step of determining said joint uplinkdownlink service area comprises:
a first sub-step of controlling the admission wherein a set of admission control pixels are determined that are subjected to be served by the determined service capacity of the respective serving station, and
a second sub-step of controlling the power which also comprises checking whether said admission control pixels belong to said joint uplinkdownlink service area.
22. The process according to claim 21, wherein said first sub-step defines, depending on the distribution of expected traffic and the domain of pixels in which the signal from said serving station can be decoded by a terminal when there is only thermal noise, at least one sub-area of said domain comprising admission control pixels in which a control channel of said serving station has a signal level that is greater than all control signals related to all other serving stations belonging to the area under planning.
23. The process according to claim 21, wherein said second sub-step comprises:
checking in a first check step on the uplink, depending on the admission control pixels, whether the power level of terminal necessary for communicating with said serving station is lower than or equal to the maximum power level that can be delivered by the terminal; and
checking in a second checking step on the downlink, depending on said first checking step, whether the power level of said serving station falls within the maximum power that can be delivered by the serving station globally toward all served terminals and by individual connection toward an individual terminal.
24. The process according to claim 21, comprising performing the first sub-step of controlling the admission by determining a cell loading factor as ratio between the cell load that is provided to be accepted and the maximum load defined as load next to which the system is under unstable conditions.
25. The process according to claim 22, comprising, in case of a universal mobile telecommunications network, the step of choosing, as said sub-area, the best server common pilot-channel area of said universal mobile telecommunications network related to the stations belonging to the service area under planning.
26. The process according to claim 21, wherein said second sub-step of jointly checking the power on the uplinks and downlinks comprises a check on the uplink for computing the necessary power for every terminal being present in one of said admission control pixels for communicating with the serving station and then verifying that such power is lower than or at most equal to the maximum power that can be delivered by the terminal, and
i) if said check on the uplink provides a positive result, inserting the related pixel in the set of served pixels on the uplink, and
ii) if said check on the uplink provides a negative result, inserting the related pixel in the set of pixels that are not operating.
27. The process according to claim 26, wherein said second sub-step of jointly checking the power on the uplinks and downlinks comprises a further check, performed on said set of served pixels on the uplink, comprising computing the necessary power for the station serving each pixel of said served set on the uplink for managing the expected traffic in the pixel and in verifying that such power is within a given range and wherein total power of every serving station is lower than or at most equal to maximum power that can be delivered by the serving station.
28. The process according to claim 20, comprising the steps of:
initialising the power associated with user terminals of said set by initialising to zero all output power of the terminals for every pixel belonging to a respective access control area and for every service;
initialising, for every cell, a first set of pixels belonging to the service area of the cell by setting said set equal to a second set of the pixels belonging to said respective access control area of the cell;
initialising the cell power, setting said respective output transmission power to a minimum value corresponding to the power dedicated to common channels;
determining, for every cell, the interference to which the cells had been subjected;
establishing new power values associated with the user terminals of said set, determining for every terminal and for every pixel belonging to said respective access control area and for every service, the power required to the terminals for satisfying the service quality requirements on the uplink, updating said first set by assigning to said first set the pixels of said second set for which said service quality requirements on the uplink are satisfied;
computing the necessary power for every connection on said downlink, determining for every pixel belonging to said respective access control area and for every service, the power required to the serving station of said cell to satisfy the service quality requirements on the downlink;
establishing new total cell powers, cumulating the service powers used by the respective serving station to serve the communication channels toward said user terminals; and
setting out of service the pixels that require such a service power to be outside a given range of minimum power and maximum power.
29. The process according to claim 28, comprising, after the step of establishing new power values associated with the user terminals of said set, the step of performing, for every serving station, a power stability test for user terminals by iterating the computation with increasing power values associated with user terminals of said set until, for every user terminal, for every pixel and for every service, a power value is obtained corresponding to an increase with respect to the previous interation lower than a predefined threshold value in uplink.
30. The process according to claim 28, comprising, after the step of establishing new total cell powers, the step of performing, for every serving station, a power stability test of a cell by iterating the computation with increasing values of total cell power until for every cell, a power value is obtained that corresponds to an increase with respect to the previous interation lower that a predefined threshold value in downlink.
31. The process according to claim 28, wherein said step of initialising the cell powers is realised by setting said respective output transmission powers to a minimum value corresponding to the power dedicated to common channels divided into terms related to a signaling channel and the remaining cell channels.
32. The process according to claim 28, wherein said step of initialising the cell powers is realised by expressing said powers with a value between the fraction of the amplifier power class of the related serving station and a fraction of the power delivered on a common pilot channel by said related serving station.
33. The process according to claim 28, wherein said step of determining, for every cell, the interference to which the cells had been subjected is realised by establishing, for each serving station, total power on a whole respective working band.
34. The process according to claim 28, wherein said step of determining, for every cell, the interference to which the cells had been subjected comprising the steps of:
establishing, for the power that can be delivered by said user terminals of said set, a maximum allowable value; and
taking into account, in regard to said interference, only the user terminals of said set that transmit at a power that is lower than, or at most equal to said maximum allowable value.
35. A process for implementing a communications network, comprising a step of materially implementing the communications network planned with the process according to claim 20.
36. A system for planning communications networks, comprising a configuration capable of performing the process according to claim 20.
37. A communications network, comprising a network realized in compliance with the planning performed with the process according to claim 20.
38. A computer program product that can be loaded in the memory of at least one processor and comprising portions of software code capable of performing the process according to claim 20.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A mobile station device comprising:
a preamble generator for generating a preamble signal to be transmitted in an intermittent pattern that reduces interference on other reverse link channels during a preamble interval prior to a transmission interval of a reverse access channel message; and
a transmitter for spreading and modulating the preamble signal received from the preamble generator and transmitting it to a base station,
wherein the preamble interval includes a non-transmission interval, and
wherein the intermittent pattern is determined using T=N(P+B)+A,
where T indicates a total duration of the preamble interval, N is an integer greater than or equal to zero, P indicates a duration of a transmission interval, B indicates a duration of the non-transmission interval, and A indicates a duration of a final transmission interval before the transmission interval of the reverse access channel message.
2. The mobile station device as claimed in claim 1, wherein the preamble generator comprises:
a generator for generating a reverse pilot signal;
an amplifier for amplifying the reverse pilot signal received from the generator to a predetermined strength; and
a gating controller for intermittently transmitting the reverse pilot signal amplified at the amplifier.
3. The mobile station device as claimed in claim 1, wherein the preamble interval comprises a repeating cycle of a preamble transmission interval and a preamble non-transmission interval, and wherein the preamble generator generates the preamble signal during the preamble transmission interval.
4. The mobile station device as claimed in claim 3, wherein the preamble generator generates the preamble signal in the preamble transmission interval just prior to the transmission interval of the access channel message, the preamble transmission being provided during an ending part of the preamble interval.
5. The mobile station device as claimed in claim 3, wherein the preamble generator generates the preamble signal using transmission power increased by a predetermined level.
6. The mobile station device as claimed in claim 3, wherein the preamble generator interrupts generation of the preamble signal upon receiving sync acquisition information from the base station.
7. The mobile station device as claimed in claim 6, wherein the sync acquisition information is non-coded data.
8. The mobile station device as claimed in claim 3, wherein the mobile station shortens the preamble interval and immediately transmits the access channel message, upon receiving sync acquisition information from the base station.
9. The mobile station device as claimed in claim 3, wherein the preamble generator generates the preamble signal with transmission power increased by a predetermined level during a next preamble transmission interval, upon failure to receive sync acquisition information in the preamble non-transmission interval.
10. The mobile station device as claimed in claim 3, wherein the mobile station generates the preamble signal during the preamble transmission interval that is exclusively assigned to the mobile station.
11. The mobile station device as claimed in claim 1, wherein the preamble generator generates the preamble signal during a predefined part of the preamble interval.
12. The mobile station device as claimed in claim 1, wherein the preamble generator generates the preamble signal during predefined beginning and ending parts of the preamble interval.
13. The mobile station device as claimed in claim 1, wherein the power level of the preamble signal is higher than a reverse pilot channel.
14. The mobile station device as claimed in claim 1, wherein the preamble signal is a transmission of a reverse pilot channel at an increased power level.
15. The mobile station device as claimed in claim 1, wherein the preamble interval includes a plurality of transmission intervals and a plurality of non-transmission intervals.
16. A transmitting method at a mobile station comprising the steps of:
generating a preamble signal to be transmitted intermittently by a transmitter in an intermittent pattern that reduces interference on other reverse link channels during a preamble interval prior to a transmission interval of a reverse access channel message; and
spreading and modulating the preamble signal received from the preamble generator and transmitting it to a base station,
wherein the preamble interval includes a non-transmission interval, and
wherein the intermittent pattern is determined using T=N(P+B)+A,
where T indicates a total duration of the preamble interval, N is an integer greater than or equal to zero, P indicates a duration of a transmission interval, B indicates a duration of the non-transmission interval, and A indicates a duration of a final transmission interval before the transmission interval of the reverse access channel message.
17. The method as claimed in claim 16, wherein the preamble signal generating step comprises the substeps of:
generating a reverse pilot signal;
amplifying the reverse pilot signal to a predetermined strength; and
intermittently transmitting the amplified reverse pilot signal.
18. The method as claimed in claim 16, wherein the preamble interval comprises a repeating cycle of a preamble transmission interval and a preamble non-transmission interval, the preamble signal being generated during the preamble transmission interval.
19. The method as claimed in claim 18, wherein the preamble signal is generated in the preamble transmission interval just prior to the transmission interval of the access channel message, the preamble transmission being provided during an ending part of the preamble interval.
20. The method as claimed in claim 18, wherein the preamble signal is generated with transmission power increased by a predetermined level.
21. The method as claimed in claim 18, wherein the preamble signal generation stops upon receipt of sync acquisition information from the base station.
22. The method as claimed in claim 21, wherein the sync acquisition information is non-coded data.
23. The method as claimed in claim 18, wherein the mobile station shortens the preamble interval and immediately transmits the access channel message, upon receiving sync acquisition information from the base station.
24. The method as claimed in claim 18, wherein the preamble signal is generated with transmission power increased by a predetermined level during a next preamble transmission interval, upon failure to receive sync acquisition information in the preamble non-transmission interval.
25. The method as claimed in claim 18, wherein the preamble signal is generated during the preamble transmission interval exclusively assigned to a specified mobile station.
26. The method as claimed in claim 16, wherein the preamble signal is generated during a predefined part of the preamble interval.
27. The method as claimed in claim 16, wherein the preamble signal is generated during predefined beginning and ending parts of the preamble interval.
28. The method as claimed in claim 16, wherein the power level of the preamble signal is higher than a reverse pilot channel.
29. The method as claimed in claim 16, wherein the preamble signal is a transmission of a reverse pilot channel at an increased power level.
30. The method as claimed in claim 16, wherein the preamble interval includes a plurality of transmission intervals and a plurality of non-transmission intervals.
31. A mobile station device comprising:
a preamble generator for generating a preamble signal to be transmitted intermittently during a preamble interval prior to a transmission interval of a reverse access channel message, using a plurality of transmission intervals and at least one non-transmission interval, said intervals being determined by a base station to reduce interference on other reverse link channels; and
a transmitter for spreading and modulating the preamble signal received from the preamble generator and intermittently transmitting the spread and modulated preamble signal to the base station,
wherein said intervals are determined using T=N(P+B)+A,
where T indicates a total duration of the preamble interval, N is an integer greater than or equal to zero, P indicates a duration of a transmission interval, B indicates a duration of the non-transmission interval, and A indicates a duration of a final transmission interval before the transmission interval of the reverse access channel message.
32. A transmitting method at a mobile station comprising the steps of:
generating a preamble signal to be transmitted intermittently by a transmitter during a preamble interval prior to a transmission interval of a reverse access channel message, using a plurality of transmission intervals and at least one non-transmission interval, said intervals being determined by a base station to reduce interference on other reverse link channels;
spreading and modulating the preamble signal received from the preamble generator; and
intermittently transmitting the spread and modulated preamble signal to the base station,
wherein said intervals are determined using T=N(P+B)+A,
where T indicates a total duration of the preamble interval, N is an integer greater than or equal to zero, P indicates a duration of a transmission interval, B indicates a duration of the non-transmission interval, and A indicates a duration of a final transmission interval before the transmission interval of the reverse access channel message.