Mobile station for use in a cellular communications network
3 claims: 1 independent, 2 dependent
- 1A mobile station for performing adaptive-power control of a spread-spectrum transmitter of the mobile station operating in a cellular-communications network using spread-spectrum modulation, the mobile station characterized by comprising:means (104) for detecting a received power level of a generic spread spectrum signal in a first channel;means (105) for decoding an APC data signal in a second channel as a threshold;wherein the first channel and the second channel are not a same channel;means (106) for generating a comparison signal by comparing the received power level to said threshold;means (112) for transmitting a transmitter spread-spectrum signal;an antenna;and variable-gain means (111) responsive to said comparison signal for adjusting a transmitter-power level of the transmitter spread-spectrum signal from said transmitter.
37 paragraphs, as filed
0001This invention relates to a mobile station for use in a cellular communications network using spread-spectrum modulation wherein a base station transmits spread-spectrum signals which are received by the mobile station and the mobile station includes a transmitter and an associated antenna for transmitting spread-spectrum signals to the base station, the mobile station including an adaptive-power control.
0002A spread-spectrum signal typically is generated by modulating an information-data signal with a chip-code signal. The information-data signal may come from a data device such as a computer, or an analog device which outputs an analog signal which has been digitized to an information-data signal, such as voice or video. The chip-code signal is generated by a chip-code where the time duration, T<sub>C</sub>, of each chip is substantially less than a data bit or data symbol.
0003Spread-spectrum provides a means for communicating in which a spread-spectrum signal occupies a bandwidth in excess of the minimum bandwidth necessary to send the same information. The band spread is accomplished using a chip-code which is independent of an information-data signal. A synchronized reception with the chip-code at a receiver is used for despreading the spread-spectrum signal and subsequent recovery of data from the spread-spectrum signal.
0004Spread-spectrum modulation offers many advantages as a communications system for an office or urban environment. These advantages include reducing intentional and unintentional interference, combating multipath problems, and providing multiple access to a communications system shared by multiple users. Commercially, these applications include, but are not limited to, local area networks for computers and personal communications networks for telephone, as well as other data applications.
0005A 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 a particular cell is that discussed in a scientific paper by <nplcit id="ncit0001" npl-type="s"><text>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</text></nplcit>. 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. To implement such a system in a jamming environment, frequency hopping may be employed, as taught in an article by <nplcit id="ncit0002" npl-type="s"><text>Munday and Pinches, entitled "Jaguar-V Frequency-Hopping Radio System", IEE Proceedings, Vol. 129, Part F, No. 3 (June 1982</text></nplcit>) .
0006<patcit id="pcit0001" dnum="EP0392079A"><text>EP-A-0 392 079</text></patcit> discloses a radio transceiver including a control section for setting a transmitting output level higher or lower than a prescribed output level with a tolerance range, in response to a signal from a level conversion circuit.
0007In a first geographical region, such as an urban environment, the cellular architecture within the first geographical region may have small cells which are close to each other, requiring a low power level from each mobile user. In a second geographical region, such as a rural environment, the cellular architecture within the region may have large cells which are spread apart, requiring a relatively high power level from each mobile user. A mobile user who moves from a first geographical region to the second geographical region must adjust the power level of his transmitter, for meeting the requirements of a particular geographical region. Otherwise, if the mobile user travels from a sparsely populated region with few and spread out cells using the relatively higher power level with his spread-spectrum transmitter, to a densely populated region with many cells without reducing the power level of his spread-spectrum transmitter, his spread-spectrum transmitter may cause undesirable interference within the cell in which he is located and/or to adjacent cells.
0008An 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.
0009Another object of the invention is to provide a spread-spectrum apparatus and method which will allow operating a spread-spectrum transmitter in different geographical regions, wherein each geographical region has a multiplicity of cells, and cells within a geographical region may have different size cells and transmitter power requirements.
0010These objects are met according to the present invention, as embodied and broadly described herein, by a mobile station for use in a cellular communications network using spread-spectrum modulation comprising the features of Aspect 1.
0011Preferred embodiments of the invention are given in the subAspects.
0012Preferably, each acquisition circuit includes a chip-code generator, a bandpass filter, and a product device coupled to said chip-code generator and said bandpass filter.
0013A first acquisition circuit is coupled to said detector, and a second different acquisition circuit is coupled to said decoder.
0014According to a further embodiment, said detector and said decoder are coupled to the same acquisition circuit.
0015Preferably, said decoder includes a data demodulator and said variable-gain device includes a variable-gain attenuator and/or a variable-gain amplifier.
0016Additional objects and advantages of the invention are set forth in part in the description which follows, and in part are obvious from the description, or may be learned by practice of the invention. The objects and advantages of the invention also may be realized and attained by means of the instrumentalities and combinations particularly pointed out in the appended Aspects.
0017The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate preferred embodiments of the invention, and together with the description serve to explain the principles of the invention. <dl id="dl0001"><dt>Fig. 1</dt><dd>shows an adaptive power control receiver and transmitter according to the present invention;</dd><dt>Fig. 2</dt><dd>shows an adaptive power control receiver and transmitter according to the present invention;</dd><dt>Fig. 3</dt><dd>shows the relative effect of a multiplicity of users communicating with spread-spectrum in a cellular environment with and without using adaptive power control; and</dd><dt>Fig. 4</dt><dd>is a flow chart of the method of the present invention.</dd></dl>
0018Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals indicate like elements throughout the several views.
0019The present invention assumes that a plurality of mobile stations operate in a cellular communications network using spread-spectrum modulation. The cellular communications network has a plurality of geographical regions, with a multiplicity of cells within a geographical region. The size of the cells in a first geographical region may differ from the size of the cells in a second geographical region. In a first geographical region such as an urban environment, a cellular architecture within the region may have small cells which are close to each other. In a second geographical region such as a rural environment, a cellular architecture within the region may have large cells which are spread apart.
0020A mobile station while in the first geographical region may be required to transmit a lower power level than while in the second geographical region. This requirement might be due to a decreased range of the mobile station from the base 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.
0021In the present invention, a base station within a particular cell transmits a generic spread-spectrum signal and an APC-data signal. The APC-data signal may be transmitted with or separate from the generic spread-spectrum signal. For example, a spread-spectrum signal using a first chip codeword may be considered a first channel having the generic spread-spectrum signal, and a spread-spectrum signal using a second chip codeword may be considered a second channel. The APC-data signal may be transmitted in the same channel, i.e., the first channel, as the generic spread-spectrum signal, or in a second channel which is different from the generic spread-spectrum signal.
0022In the exemplary arrangement shown in <figref idref="f0001">Fig. 1</figref>, an apparatus for adaptive-power control of a spread-spectrum transmitter is provided. Each mobile station comprises acquisition means, detector means, decoder means, difference means, transmitter means, an antenna, and variable-gain means. The apparatus, by way of example, may have the acquisition means embodied as a first product device 101, a first chip-code generator 102, and a bandpass filter 103. The detector means may be embodied as envelope detector 104. Other type detectors may be used with the present invention, such as square law detectors or coherent detectors, as is well known in the art. The decoder means may be embodied as decoder 105. The difference means may be embodied as differential amplifier 106, the transmitter means as transmitter 112 and the variable-gain means as variable-gain device 111. The variable-gain device 111 may be a variable-gain amplifier, a variable-gain attenuator or any device which performs the same function as the variable-gain device 111 and described herein.
0023The first product device 101 is coupled to the first chip-code generator 102 and to the bandpass filter 103. The envelope detector 104 is coupled between the bandpass filter 103 and the differential amplifier 106. The decoder 105 is coupled between the bandpass filter 103 and the differential amplifier 106. The decoder 105 alternatively may be coupled to the output of the envelope detector 104. The variable-gain device 111 is coupled to the differential amplifier 106 and between the transmitter 112 and antenna.
0024The decoder 105, as illustratively shown in <figref idref="f0001">Fig. 2</figref>, alternatively may be coupled between a second bandpass filter 203 and differential amplifier 106. In this particular embodiment, the second bandpass filter 203 is coupled to a second product device 201. The second product device 201 is connected to a second chip-code generator 202. The embodiment of <figref idref="f0001">Fig. 2</figref> could be used where the APC-data signal is transmitted over the second channel simultaneously while the generic spread-spectrum signal is transmitted over the first channel. The second channel uses a spread-spectrum signal with a second chip codeword, and the second chip-code generator 203 generates a second chip-code signal using the second chip codeword.
0025The product device 101, <figref idref="f0001">Figures 1 or 2</figref>, using a first chip-code signal from the first chip-code generator 102 acquires the generic spread-spectrum signal transmitted from the base station. The first chip-code signal has the same chip codeword as the generic spread-spectrum signal. The envelope detector 104 detects a received power level of the generic spread-spectrum signal. The received power level may be measured at the detector.
0026The decoder 105 decodes the APC-data signal from the generic spread-spectrum signal as a threshold. More particularly, data which establish or set the threshold for differential amplifier 106 are sent with the APC-data signal.
0027The differential amplifier 106 generates a comparison signal by comparing the received power level of the generic spread-spectrum signal to the threshold. The differential amplifier 106 may employ a differential amplifier or other circuits for performing the comparison function.
0028The transmitter 112 transmits a transmitter spread-spectrum signal. The variable-gain device 111, using the comparison signal, adjusts a transmitter-power level of the transmitter spread-spectrum signal from the transmitter. The variable-gain device 111 may be realized with a variable-gain amplifier, a variable-gain attenuator, or an equivalent device which can adjust the power level of the transmitter spread-spectrum signal.
0029In operation, a base station in a cell may transmit the generic spread-spectrum signal on a continuous basis or on a repetitive periodic basis. Mobile stations within the cell receive the generic spread-spectrum signal. The received generic spread-spectrum signal is acquired and despread with the first chip-code signal from first chip-code generator 102 and first product device 101. The despread generic spread-spectrum signal is filtered through bandpass filter 103. The mobile station detects the despread generic spread-spectrum signal using envelope detector 104, and measures the received power level of the generic spread-spectrum signal.
0030The APC-data signal may be transmitted on the same channel as the generic spread-spectrum signal using the same chip codeword as the generic spread-spectrum signal. In this case, the APC-data signal is transmitted at a different time interval from when the generic spread-spectrum signal is transmitted. This format allows the mobile station to acquire synchronization with the first chip-code, using the generic spread-spectrum signal.
0031As an alternative, the APC-data signal may be transmitted on a different coded channel using a second chip codeword. In the latter case, the second spread-spectrum signal having the APC-data signal would be acquired by the second chip-code generator 202 and second product device 201. In either case, the APC-data signal is decoded using decoder 105. Further, the APC-data signal may be time division multiplexed or frequency division multiplexed with the generic spread-spectrum signal.
0032The decoder 105 decodes from the APC-data signal the value of the threshold for use by differential amplifier 106. For example, if there were eight levels for which to set the threshold level, then at minimum, a three bit word may be used with the APC-data signal to transmit the threshold to the mobile station. The threshold is used to adjust and/or set the threshold of the differential amplifier 106. Accordingly, the received power level from envelope detector 104 is compared to the threshold of the differential amplifier 106.
0033If the received power level is greater than the threshold, then the variable-gain device 111 would decrement or decrease the transmitter spread-spectrum power level. If the received power level is less than the threshold at differential amplifier 106, then the variable-gain device 111 increases the transmitter spread-spectrum power.
0034The APC circuit 110 of <figref idref="f0001">Figures 1 and 2</figref> 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.
0035<figref idref="f0002">Fig. 3</figref> shows the advantage of using an adaptive power control apparatus with a mobile station in a personal communications network. The number of adaptive power control mobile stations, N (APC), versus the number of mobile stations which can be used in a similar region, N, is plotted with respect to an inner radius, R<sub>i</sub>, and an outer radius R<sub>o</sub>. When the inner radius goes to zero, using spread-spectrum as code division multiplex, the number of users with adaptive power control who can operate within a cell, is approximately ten times the number of users without adaptive power control who can operate within the cell.
0036The present invention also includes a method for automatic-power control of a spread-spectrum transmitter for a mobile station operating in a cellular communications network using spread-spectrum modulation. Referring to <figref idref="f0003">Fig. 4</figref>, a base station transmits 701 a generic spread-spectrum signal and an APC information-data signal. Each mobile base station performs the steps of acquiring 702 the generic spread-spectrum signal transmitted from the base station, and detecting 703 a received power level of the generic spread-spectrum signal. The steps also include decoding 704 the APC-data signal as a threshold, from the generic spread-spectrum signal, or from a separate signal from the generic spread-spectrum signal. A threshold is set 705 from the APC-data signal. The method further includes comparing 706 the received power level to the threshold, and adjusting 707 a transmitter power level of a transmitter spread-spectrum signal in response to the comparison.
0037It will be apparent to those skilled in the art that various modifications can be made to the method and apparatus for adaptively controlling a power level of a spread-spectrum signal in a cellular environment of the instant invention without departing from the scope of the invention, and it is intended that the present invention covers modifications and variations of the method and apparatus for adaptively controlling a power level of a spread-spectrum signal in a cellular environment provided they come within the scope of the appended claims.
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| Document | Relation | Office |
|---|---|---|
| EP0392079A | Cites | European Patent Office (EPO) |
| WO9115071A | Cites | World Intellectual Property Organization (WIPO) |
| US5056109A | Cites | United States of America |
| ORMONDROYD: "Power control for spread-spectrum systems" CONFERENCE ON COMMUNICATIONS EQUIPMENT AND SYSTEMS, BIRMINGHAM, UK, 20-22 APRIL 1982, 20 April 1982 (1982-04-20), - 22 April 1982 (1982-04-22) pages 109-115, XP002108122 London, UK | Non-patent | – |
| SALMASI: "On the system design aspects of code division multiple access (CDMA) applied to digital cellular and personal communications networks" EEE VEHICULAR TECHNOLOGY CONFERENCE, 19 May 1991 (1991-05-19), - 22 May 1991 (1991-05-22) pages 57-62, XP000260154 New York, US | Non-patent | – |
57 members in 8 offices
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| 61481690 | United States of America | A | |
| 92900295 | European Patent Office (EPO) | A | |
| 92900295 | European Patent Office (EPO) | A | |
| 98100395 | European Patent Office (EPO) | A | |
| 98100395 | European Patent Office (EPO) | A | |
| 614816 | – | – | – |
| 92900295 | – | – | – |
| 98100395 | – | – | – |
| EP19920900295 | – | – | – |
| EP19980100395 | – | – | – |
| US19900614816 | – | – | – |
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| US5299226A | United States of America | A | |
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Numbers
- Publication
- 1523110
- Publication, DOCDB
- 1523110
- Publication, EPODOC
- EP1523110
- Application
- 5000354
- Application, DOCDB
- 05000354
- Application, EPODOC
- EP20050000354
Titles3
- German
- Mobilsstation in einem zelullaren Kommunikationsnetzwerk
- English
- Mobile station for use in a cellular communications network
- French
- Station mobile dans un réseau de communication cellulaire
Classification
- CPC, 9
- H04W52/221
- H04B1/707
- H04B1/7075
- H04W52/146
- H04W52/225
- H04W52/228
- H04W52/245
- H04W52/246
- H04W52/52
- IPC, 7
- H04B7 005
- H04B1 707
- H04B1 7075
- H04W52 14
- H04W52 22
- H04W52 24
- H04W52 52
Designated states1
- Contracting states, 1
- Sweden
