‘Second generation telecommunication systems, such as GSM, enabled voice traffic to go wireless: the number of mobile phones exceeds the number of landline phones and the mobile phone penetration exceeds 80% in countries with the most advanced wireless markets. The data handling capabilities of second generation systems are limited, however, and third generation systems are needed to provide the high bit rate services that enable high quality images and video to be transmitted and received, and to provide access to the web with higher data rates. These third generation mobile communication systems are referred to in this book as UMTS (Universal Mobile Telecommunication System). WCDMA (Wideband Code Division Multiple Access) is the main third generation air interface in the world and deployment has been started in Europe and Asia, including Japan and Korea, in the same frequency band, around 2GHz.’
"It has been said that a declaration as to non-liability ought very rarely to be made, see Dyson v. Attorney-General [1911] I K.B. 410 and Guaranty Trust Co. of New York v. Hannay & Co. [1915] 2 K.B. 536. And In re Clay[1919] 1 Ch. 66 is sometimes cited for the proposition that it cannot be made. But it is nothing of the kind. In modern times, I think that a declaration as to non-liability can be made whenever it will serve a useful purpose. I would not limit it in any way." 40. In the House of Lords Lord Wilberforce stated the position in his own words but the effect was very much the same. He said [1976] 2 L1oyd's Rep. 10, 14: "
'... a declaration that a person is not liable in an existing or possible action is one that will hardly ever be made.'
"Any statutory rule, unless framed in terms so wide as to give the court an almost unlimited discretion, would be bound to impose an element of inflexibility which would in my view be wholly undesirable."
'... a declaration that a person is not liable in an existing or possible action is one that will hardly ever be made.'
‘In spread spectrum communications systems each user accesses the shared communication channel at the same time and with the same frequency. In order to distinguish between the different users each mobile station is allocated its own so-called spreading code. The code is used to change the information that the user wants to transmit in such a way that it can easily be distinguished from other users' information. This spreading operation is simply a multiplication of the information data signal with a spreading code signal. The information data signal consists of the values -1 and + 1 that represent the binary information digits 0 and 1, which are called bits. The spreading code signal also consists of the values -1 and + 1, which are called chips to distinguish them from the bits. Therefore, the spreading code signal is also called chipping code signal. The values of the chipping code signal changes much faster than the values of the information data signal which causes an increase (spread) of the frequency bandwidth of the information data signal, hence the name spread spectrum. This multiple access technique is also called code division multiple access (CDMA). All spread information data signals from the different users interfere with each other on the communication channel. However, the [spreading] codes are constructed in such a way that the receiver in the base station can discriminate between the different information data signals and can recover the information signals of one user from the mixture of spread information signals.’
‘A cellular communications network using spread spectrum modulation for communicating between a base station and a multiplicity of users, requires control of the power level of a particular mobile user station. Within a particular cell, a mobile station near the base station of the cell may be required to transmit with a power level less than that when the mobile station is near an outer perimeter of the cell. This is done to ensure a constant power level at the base station, received from each mobile station. A representative power level control system adapted to address power control requirements within particular cell is that discussed in a scientific paper by R.F. Ormondroyd entitled "Power Control for Spread-Spectrum Systems”, pages 109 to 115 of the Proceedings of the Conference on Communications Equipment and Systems, held on April 20-22, 1982 in Birmingham, U.K. The Ormondroyd system is a closed loop system requiring feedback, namely, the power level of a mobile unit transmission is measured at the base station and, responsive to this measurement, the base station directs an increase or decrease in the mobile unit’s transmitter power.’
‘An object of the invention is to provide an apparatus and method for automatically and adaptively controlling the power level of a plurality of mobile stations so that the power level received at the base station of each cell is the same for each mobile station. Another object of the invention is to provide a spread-spectrum apparatus and method which will allow operating a spread spectrum transmitter in different geographic regions, wherein each geographic region has a multiplicity of cells, and cells within a geographic region may have different size cells and transmitter power requirements.’
‘An apparatus for adaptive-power control of a spread-spectrum transmitter of a mobile station operating in a cellular communications network using spread spectrum modulation characterised by a base station for transmitting, on a continuous basis or on a repetitive periodic basis, a generic spread-spectrum signal and an APC-data signal; a multiplicity of mobile stations, each mobile station having an acquisition circuit (101,102,103) for acquiring and decoding the generic spread-spectrum signal; a detector (104) coupled to said acquisition circuit for detecting a received power level of the generic spread-spectrum signal; a decoder (105) coupled to said acquisition circuit for decoding the APC-data signal as a threshold; a differential amplifier (106) coupled to said detector and said decoder for generating a comparison signal by comparing the received power level to said threshold; a transmitter (112) for transmitting a transmitter spread-spectrum signal; an antenna coupled to said transmitter; and a variable-gain device (111) coupled to said differential amplifier and between said transmitter and said antenna, responsive to said comparison signal indicating an increase or decrease, for adjusting a transmitter-power level of the transmitter spread-spectrum signal from said transmitter.’ characterised by an acquisition circuit (101,102,103) for acquiring and decoding the generic spread-spectrum signal; a detector (104) coupled to said acquisition circuit for detecting a received power level of the generic spread-spectrum signal; a decoder (105) coupled to said acquisition circuit for decoding the APC-data signal as a threshold; a differential amplifier (106) coupled to said detector and said decoder for generating a comparison signal by comparing the received power level to said threshold; a transmitter (112) for transmitting a transmitter spread-spectrum signal; an antenna coupled to said transmitter; and a variable-gain device (111) coupled to said differential amplifier and between said transmitter and said antenna, responsive to said comparison signal indicating an increase or decrease, for adjusting a transmitter-power level of the transmitter spread-spectrum signal from said transmitter.’
‘6. A method for adaptive-power control of a spread-spectrum transmitter of a respective one of a plurality of mobile stations operating in a cellular communications network using spread-spectrum modulation, characterized by a base station transmitting, on a continuous basis or on a repetitive periodic basis, a generic spread-spectrum signal and an APC-data signal, used by the plurality of mobile stations to adjust a transmitter-power level of a respective plurality of mobile station transmitters, said method comprising the steps, at each mobile station, of: acquiring (702) and decoding (704) the generic spread-spectrum signal; detecting (703) a received power level of the generic spread-spectrum signal; decoding the APC-data signal as a threshold (705); generating a comparison signal by comparing (706) the received power level to said threshold; and adjusting (707) a transmitter-power level of a transmitter spread-spectrum signal from a respective transmitter responsive to said comparison signal.’ characterized by acquiring (702) and decoding (704) the generic spread-spectrum signal; detecting (703) a received power level of the generic spread-spectrum signal; decoding the APC-data signal as a threshold (705); generating a comparison signal by comparing (706) the received power level to said threshold; and adjusting (707) a transmitter-power level of a transmitter spread-spectrum signal from a respective transmitter responsive to said comparison signal.’
‘…the mobile station transmits a first PRACH preamble with the preamble transmission power that is equal to the parameter "Preamble_Initial_Power". When the preamble is not detected or incorrectly received by the base station it sends nothing or a negative acquisition indicator (AI) on the AI channel (AICH) to the mobile station. After a specified time or on reception of the negative AI, the mobile station transmits a new preamble with an increased power level which is calculated as a sum of the initial power level "Preamble_Initial_Power" and a value "Power ramp step". This process is repeated until either a positive AI is received by the mobile station, indicating a correct detection of the AI by the base station (good case), or until a maximum number of preambles has been transmitted by the mobile station without positive acknowledgement by the base station (bad case). In the good case, the mobile station transmits the message data on the PRACH before ending the physical random access procedure. The message is sent with a power offset Pp_m relative to the last transmitted preamble. In the worst case, the physical random access procedure is exited without data transmission and random access control is given back to higher layers [programs controlling the base station] that will re-initiate the complete physical random procedure with the same message data after a certain random backoff time. The random access can be illustrated by the following example, see figure 11, where the first physical random access procedure is unsuccessful, and the message will be transmitted only during a second physical random access procedure. Also, in this example, the preamble initial power Pinit was updated by RRC for the second physical random access procedure. Such an update may result for instance from an increased path loss that has been measured by the mobile station, as explained in the next paragraph.’
‘According to this specification … the transmitter power level for the initial PRACH preamble transmission (Preamble_Initial_Power) is calculated from the values "CPICH_RSCP", "Primary CPICH TX power", "UL interference", and "Constant Value". … The value "CPICH_RSCP" is defined in TS25.215…[as] Received Signal Code Power, the received power on one code measured on the Primary CPICH. The reference point for the RSCP shall be the antenna connector of the UE… … The values "Primary CPICH TX power", "UL interference", and "Constant Value" are transmitted on the broadcast channel so that all mobile stations can read them from this channel. However, the mobile station may take these values from an internal storage as well, if it has read and stored them before and the stored values are still valid, which basically means that they haven't become obsolete. A value may for instance become obsolete when the mobile station changes the cell, because the broadcast parameters are cell dependent. Furthermore, the network can notify the mobile stations that parameters have changed in a cell and shall be re-read from the broadcast channel.’
‘1> acquire valid versions of the necessary System Information IEs as follows: 2> if the UE has stored valid versions of the IEs "Primary CPICH Tx power" and "Constant value": 3> use the stored content of the IEs. 2> otherwise: 3> read and store the IE "Primary CPICH Tx power" and "Constant value" in System Information Block type 6 (or System Information Block type 5, if System Information Block type 6 is not being broadcast). 2> if the UE has a valid version of the IE "UL interference" stored: 3> use the stored content of the IE "UL interference". 2> otherwise: 3> read and store the IE "UL interference" in System Information Block type 7; 3> if the UE fails to read the lE "UL interference" in System Information Block type 7 due to bad radio conditions, the UE shall use the last stored lE "UL interference". 1> measure the value for the CPICH_RSCP; 1> calculate the power for the first preamble as: Preamble_Initial_Power = Primary CPICH TX power - CPICH_RSCP + UL interference + Constant Value Where, Primary CPICH TX power shall have the value of IE "Primary CPICH Tx power", UL interference shall have the value of IE "UL interference"; and Constant Value shall have the value of IE "Constant value". 1> as long as the physical layer is configured for PRACH transmission: 2> continuously recalculate the Preamble_Initial_Power when any of the broadcast parameters used in the above formula changes; and 2> resubmit to the physical layer the new calculated Preamble_Initial_Power.’ 2> if the UE has stored valid versions of the IEs "Primary CPICH Tx power" and "Constant value": 3> use the stored content of the IEs. 2> otherwise: 3> read and store the IE "Primary CPICH Tx power" and "Constant value" in System Information Block type 6 (or System Information Block type 5, if System Information Block type 6 is not being broadcast). 2> if the UE has a valid version of the IE "UL interference" stored: 3> use the stored content of the IE "UL interference". 2> otherwise: 3> read and store the IE "UL interference" in System Information Block type 7; 3> if the UE fails to read the lE "UL interference" in System Information Block type 7 due to bad radio conditions, the UE shall use the last stored lE "UL interference". Preamble_Initial_Power = Primary CPICH TX power - CPICH_RSCP + UL interference + Constant Value Where, Primary CPICH TX power shall have the value of IE "Primary CPICH Tx power", UL interference shall have the value of IE "UL interference"; and Constant Value shall have the value of IE "Constant value". 2> continuously recalculate the Preamble_Initial_Power when any of the broadcast parameters used in the above formula changes; and 2> resubmit to the physical layer the new calculated Preamble_Initial_Power.’
‘The APC circuit 110 of FIGS. 1 and 2 may be built on a digital signal processor chip. An analog to digital converter located at the output of the bandpass filter 103 would convert the received signal to a data signal. The envelope detector 104, decoder 105 and differential amplifier 106 may be implemented as part of digital signal processing functions on the digital signal processor (DSP) chip. The analog to digital converters may be included on the DSP chip.’
‘Each mobile base station performs the steps of acquiring the generic spread-spectrum signal transmitted from the base station, and detecting a received power level of the generic spread-spectrum signal. The steps also include decoding the APC-data signal as a threshold from the generic spread-spectrum signal or from a signal or channel separate from the generic spread-spectrum signal.’
‘[[0005] If a coherent modulation technique such as phase shift keying or PSK is used for a plurality of subscribers, whether stationary or mobile, a global pilot is continuously transmitted by the base station for synchronizing with the subscribers. The subscriber units are synchronizing with the base station at all times and use the pilot signal information to estimate channel phase and magnitude parameters. For the reverse-link, a common pilot signal is not feasible. Typically, only non-coherent detection techniques are suitable to establish reverse-link communications. For initial acquisition by the base station to establish a reverse-link, a subscriber transmits a random access packet over a predetermined random access channel (RACH). … [0011] The present invention provides a base station architecture that is modular in configuration, lowering the initial cost of implementing a new CDMA telecommunication system for a defined geographical region while allowing for future capacity. The scalable architecture is assembled for a digital base station unit that is configured to support a plurality of simultaneous wireless calls connecting to a conventional public switched telephone network. For initial startup, two base station units are deployed for redundancy in case of a single failure. Additional base station units may be added when the need arises for extra traffic capacity. If sectorization is required, the base station units may be directionally oriented. … [0021] The scalable modular base station for a cdma air interface requires a set of global channels to support operation. The global pilot supports initial acquisition by the subscriber and provides channel estimation for coherent processing. One or more global broadcast channels provide signalling information. Each BSU requires its own set of global channels. However, global channels use air capacity and [it] is therefore costly to assign a set of full strength global channels for each BSU.’
‘Each subscriber unit 25 is assigned to a set of collocated BSUs and alternately acquires each one in sequence, once per wake up period. ’
‘A subscriber unit for use in a bidirectional communication system using cdma air interface between the plurality of subscriber units communicating with a base station which transmits multiple global pilot channel signals, comprising: means for selectively receiving a predetermined number n of global pilot channel signals from the base station such that reception of each global pilot signal is in one of n discrete time intervals, each interval for receiving a different global pilot channel signal.’ means for selectively receiving a predetermined number n of global pilot channel signals from the base station such that reception of each global pilot signal is in one of n discrete time intervals, each interval for receiving a different global pilot channel signal.’
‘The BSUs are preprogrammed to specify which BSU is selected to send its pilot at high power and which is selected to send its pilot at low power. [0029]…a BSU pilot is always programmed to be strong when a subscriber unit wakes-up…’ [0029]…a BSU pilot is always programmed to be strong when a subscriber unit wakes-up…’
‘The Synchronisation Channel (SCH) is a downlink signal used for cell search. The SCH consists of two sub channels, the Primary and Secondary SCH. The 10ms radio frames of the Primary and Secondary SCH are divided into 15 slots, each of length 2560 chips. Figure 18 shows the structure of the SCH radio frame. The Primary SCH consists of a modulated code of length 256 chips, the Primary Synchronisation Code (PSC) denoted cp in figure 18, transmitted once every slot. The PSC is the same for every cell in the system. The Secondary SCH consists of repeatedly transmitting a length 15 sequence of modulated codes of length 256 chips, the Secondary Synchronisation Codes (SSC), transmitted in parallel with the Primary SCH. The SSC is denoted csi,k in figure 18, where i = 0, 1, …, 63 is the number of the scrambling code group, and k = 0, 1, …, 14 is the slot number. Each SSC is chosen from a set of 16 different codes of length 256. This sequence on the Secondary SCH indicates which of the code groups the cell's downlink scrambling code belongs to. The primary and secondary synchronization codes are modulated by the symbol a shown in figure 18, which indicates the presence/ absence of STTD encoding on the P-CCPCH and is given by the following table: ’
‘5.3.3.5.1 SCH transmitted by TSTD Figure 19 illustrates the structure of the SCH transmitted by the TSTD scheme. In even numbered slots both PSC and SSC are transmitted on antenna 1, and in odd numbered slots both PSC and SSC are transmitted on antenna 2. ’
‘[0007] Although adaptive power control reduces interference between signals in the same bandwidth, interference still exists limiting the capacity of the system. One technique for increasing the number of signals using the same radio frequency (RF) spectrum is to use sectorization. In sectorization, a base station uses directional antennas to divide the base station's operating area into a number of sectors. As a result, interference between signals in differing sectors is reduced. However, signals within the same bandwidth within the same sector interfere with one another. Additionally, sectorized base stations commonly assign different frequencies to adjoining sectors decreasing the spectral efficiency for a given frequency bandwidth.’
‘[0015] By using an antenna array, the transmitter utilizes spa[t]ial diversity. If spaced far enough apart, the signals radiated by each antenna 48-52 will experience different multipath distortion while travelling to a given receiver. Since each signal sent by an antenna 48-52 will follow multiple paths to a given receiver, each received signal will have many multipath components. These components create a virtual communication channel between each antenna 48-52 of the transmitter and the receiver. Effectively, when signals transmitted by one antenna 48-52 over a virtual channel to a given receiver are fading, signals from the other antennas 48-52 are used to maintain a high received [signal-to-noise ratio]. This effect is achieved by the adaptive combining of the transmitted signals at the receiver.’
‘Q. I want to consider two implementations, both of which are seeking to perform channel estimation. A. Right. Q. OK, so far so good, obviously. The objective in both cases is to derive an estimate of the channel which will be used to receive a data signal. OK? A. OK. Q. Do you accept that as a reasonable working basis to move forward? A. Yes, then we are not talking again now about only channel estimation; we are talking about receiving a data via other channel, OK.’
‘[0017]…After weighting, all of the weighted recovered pilot signals are combined in a combiner 94. Using an error signal generator 98, an estimate of the pilot signal provided by the weighted combination is used to create an error signal. Based on the error signal, the weights of each weighting device 88-92 are adjusted to minimize the error signal using an adaptive algorithm, such as least mean squared (LMS) or recursive least squares (RLS). As a result, the signal quality of the combined signal is maximised.’
‘The UE uses the CPICH to separately estimate the channels seen from each antenna. Once every slot, the UE computes the phase adjustment, φ, that should be applied at the [Node B transmitter] to maximise the UE received power.’