Radio system and method for duplex operation
4 claims: 2 independent, 2 dependent
- 1A method for implementing a duplex telecommunication connection in radio connections based on a frame-structured interactive communication, an interactive communication comprising one or more transmissions 5 (ARQ) in the uplink and in the reverse downlink transmission directions (UL,DL) such that a message of the interactive communication in one transmission direction (DL;UL) is dependent on one or more previous messages in the other transmission direction (UL;DL), characterized in that the method comprises the steps of:employing for the interactive communication in the uplink and the reverse downlink transmission directions (UL,DL) a frame construction composed of a first frame (UF1) in the uplink transmission direction and a corresponding second frame (DF1) in the reverse downlink transmission direction, wherein corresponding first and second frames (UF1,DF1) are at different frequencies and at least partly coincide in time, and each of the frames (UF1,DF1) is composed of at least two subframes (uf1-3,df1-3) comprising one or more channels (CH1, CH2) and having a defined transmission time within the duration of the frame (UF1,DF1), arranging a subframe (uf2) of the first frame (UF1) in the uplink transmission direction (UL) and as subframe (df1) of a corresponding second frame (DF1) in the reverse downlink transmission direction (DL) into subframe pair (uf2,df1) in such a way that the transmission times of the subframe (uf2, df1) of the subframe pair in corresponding frames (UF1, DF1) do not overlap in time, performing an interactive communication in a sequence of one or more frames by - transmitting data in a channel (CH2) of a subframe (uf2) of the first frame (UF1 in the uplink transmission direction (UL), - on the basis of the information transmitted in the channel (CH2) in at least one of the previous subframes (uf2), in case of successful data transmission, forming a data acknowledgement message that indicates success of the data transmission and freeing the channel (CH2) for the next frame, and in case of unsuccessful data transmission, forming a data acknowledgement message that indicates failure of the data transmission. - transmitting the data acknowledgement message (ARQ) in the subframe (df1) that is the subframe pair for the subframe (uf2) of the first frame (UF1) in the uplink transmission direction (UL).
- 3A radio system wherein a frame-structured interactive communication is performed in radio connections, an interactive communication comprising one or more transmissions (ARQ) in the uplink and in the reverse downlink transmission directions (UL,DL) such that a message of the interactive communication in the uplink transmission direction (UL;DL) is dependent on one or more previous messages in the downlink transmission direction (DL;UL), characterized in that the radio system is configured to employ in the uplink and the downlink transmission directions (UL,DL) a frame construction composed of a first frame (UF1) in the uplink transmission direction and a corresponding second frame (DF1) in the reverse downlink transmission direction, wherein corresponding first and second frames (UF1,DF1) are at different frequencies and at least partly coincide in time, and each of the frames (UF1,DF1) is composed of at leash two subframes (uf1-3,df1-3) comprising one or more channels (CH1, CH2) end having a defined transmission time within the duration of the frame (UF1,DF1), wherein a subframe (uf2) of the first frame (UF1) in the uplink transmission direction (UL) and at subframe (df1) of a corresponding second frame (DF1) in the reverse downlink transmission direction (DL) are arranged into a subframe pair (uf2,df1) in such a way that the transmission times of the subframes (uf2, df1) of the subframe pair in corresponding frames (UF1, DF1) do not overlap in time, perform an interactive communication by transmitting messages of the interactive communication in subframes of subframe pairs (uf2,df1) in a sequence of one or more frames by forming a message of the interactive communication for a subframe (df1) on the basis of the information in at least one of the previous subframes (uf2) of the subframe pair;- receiving data message in a channel (CH2) of a subframe (uf2) of of the first frame (UF1) in the uplink transmission direction (UL);- on the basis of the information transmitted in the channel (CH2) in at least one of the previous subframes (uf2) in case of successful transmission of the data message, forming a data acknnowledgement message that indicates success of the data transmission and freeing the channel (CH2) for the next frame, and in case of unsuccessful transmission of the data message, forming a data acknowledgement message that indicates failure of the data transmission.;and - transmitting the data acknowledgement message (ARQ) in the subframe (df1) that is the subframe pair for the subframe (uf2) of the first frame (UF1) in the uplink transmission direction (UL).
Independent claims2
39 paragraphs in 5 sections, as filed
FIELD OF THE INVENTION
0001The invention relates to radio systems and particularly to the effective processing of interactive traffic in a radio band.
BACKGROUND OF THE INVENTION
0002In future mobile systems, the proportion of a radio resource to be allocated to different subscribers varies considerably according to the required capacity and the standard of service. The new services offered together with normal speech transmission and the requirements relating to data transmission increase the need for allocating the radio resource more efficiently.
0003A frequency band reserved for a radio system is allocated to users as radio channels in accordance with the selected multiple access technique (Multiple Access). A radio channel is a frequency band employed in a radio connection or a portion of the frequency band separated for example by means of time or a user-specific code. In analogue systems, radio channels are usually frequency channels, whereby a dedicated frequency band is reserved for each radio connection, the frequency band being a part of the frequency resource in the system. This technique is called frequency division multiple access (FDMA). In time division multiple access (TDMA), a time slot is assigned for each radio connection from a common frequency band. Code division multiple access (CDMA) is a multiple access technique implemented by means of a spread spectrum technique wherein radio transmissions employing the same frequency band are coded in such a way that signals for a particular receiver party can be received only at particular receivers.
0004<patcit id="pcit0001" dnum="EP0529859A"><text>EP 0 529 859</text></patcit> discloses an improved radio link architecture that uses separate traffic and signalling channels on a number of RF carriers.
0005A radio system based telecommunication connection can be a simplex or a duplex connection. The simplex connection is a telecommunication connection wherein the user can only either transmit or receive information simultaneously. The duplex connection is a telecommunication connection wherein the user can transmit and receive information simultaneously. A semiduplex connection is a combination of the two aforementioned connections, i.e. a telecommunication connection wherein one party employs the simplex connection and the other party employs the duplex connection.
0006In radio traffic, the duplex connection is often implemented by employing different transmission and reception frequencies (frequency division duplex, FDD). The difference between the transmission frequency and the reception frequency is called a duplex spacing. Most digital mobile communication systems, such as the GSM (Global System for Mobile Communications) and DCS-1800 (Digital Cellular System for 188 MHz) are based upon time division multiple access (TDMA) implemented by a FDD telecommunication connection. New PCS (Personal Communication System) systems implemented in the U.S. will apply a new IS-95 system based upon code division multiple access (CDMA).
0007Another duplexing method is time division duplex (TDD) wherein the signals are transmitted time-interleaved on the same transmission channel. In systems employing frequency division multiple access (FDMA) implemented by a TDD telecommunication connection, for example in the CT2 (Cordless Telephone, 2nd generation), transmission alternates with reception in a frequency band reserved for one subscriber. In systems employing time division multiple access (TDMA) implemented by the TDD connection, such as the DECT (Digital European Cordless Telecommunications), transmission alternate with reception in a frequency-band time slot reserved for one subscriber.
0008In mobile communication systems, the connection between mobile stations and base stations is accomplished through a radio path. A channel from the mobile station to the base station is called an uplink transmission path and, correspondingly, a channel from the base station to the mobile station is called a downlink transmission path.
0009A radio connection is based on successive data frames, the data frames being constructed according to the selected multiple access technique of for example adjacent frequency bands and time periods. The part of the frame which can be unambiguously referred to by means of selected parameters (such as a frame frequency band, a time slot number or a code) is called a frame address. A radio channel is hereinafter taken to mean a data transmission implemented in adjacent frames in one or several determined frame addresses. The properties of the radio channel communication can be affected by allocating the frame addresses. By establishing a radio channel composed of several frame addresses, more data transmission capacity will be obtained for example for the data transmission.
0010An interactive data transmission is a duplex communication where messages in the uplink and downlink transmission paths interact with each other. An example is given here illustrating a channel allocation between the mobile station and the base station. The uplink transmission path is hereinafter referred to as the uplink and the downlink transmission path is referred to as the downlink. The base station informs about free addresses in a message transmitted on a Y channel (Yell) in the downlink direction. A mobile station desiring to establish a connection transmits a random access (RA) message in the uplink direction on a channel selected among the channels indicated to be free by the Y channel, the RA message including the desire to establish a connection. The desired standard of service, i.e. the amount of the resource the connection to be established requires, is also informed in the RA message. The RA message is responded by an access grant (AG) message in the downlink direction, the AG message informing the mobile station about the frame address or frame addresses to be employed in the radio channel to be established.
0011The above described message transmission is accomplished without problems when traffic intensity is low enough, the downlink messages having enough time to react with the previous uplink messages by means of the suitable selection of the frame addresses. The frame becomes full with the increase of traffic, whereby the messages relating to the interactive connection are located within the entire frame matrix and all the message addresses cannot then be selected in a suitable way. Consequently, the downlink messages cannot always be positioned in such frame addresses wherein the messages would have enough time to react with the messages submitted in the previous message in the uplink direction or, on the other hand, where there would be enough time to transmit information useful for all the subsequent frames in the uplink direction. The use of the channel resources in this way is ineffective and radio spectrum is wasted in the implementation of the interactive connection.
0012A similar problem is faced for example with the data transmission originating from the mobile station in connection with acknowledgement messages. A number of frame addresses is allocated to a subscriber for the data transmission. When the data transmission in the uplink direction is completed, the base station sends an acknowledgement message (for example automatic repeat request, ARQ) to the mobile station, the subscriber using the message for detecting whether the data transmission was successful. If the system disconnects the connection immediately after the data transmission and, after disconnecting the connection, receives a message of the data transmission failure, the connection must be re-established. If the system maintains the connection until the positive acknowledgement, an extensive channel allocation must be maintained unnecessarily in connection with the positive acknowledgement, i.e. capacity is wasted in the implementation of the interactive message transmission.
BRIEF DESCRIPTION OF THE INVENTION
0013The object of the present invention is to introduce a method which provides a simple way to avoid the above described problem relating to the use of the channel resource in the implementation of an interactive telecommunication connection.
0014This object is achieved by the method according to claim 1, and the radio system according to claim 3.
0015The invention is based on the idea that the FDD telecommunication connection is improved by providing the connection with two or more TDD dimensions. The general approach of the invention is that the full-duplex frequency band is time-duplexed into two or more sub-bands with a substantially independent interactive communication. Transmissions in different transmission directions in each sub-band occur at different times but a simultaneous transmission in two different sub-bands can occur in different transmission directions. It is an advantage of the invention in the interactive communication that the message is received entirely in one transmission direction before the response is required in a particular sub-band in another transmission direction. On the other hand, the frequency band is utilized for traffic effectively, since it is possible to transmit simultaneously in different sub-bands in reverse transmission directions.
0016In a preferred embodiment of the invention, one FDD frame, hereinafter referred to as a superframe, is composed of at least two subframes that are time-duplexed with respect to the corresponding subframes in the reverse transmission direction. Interactive connection messages are formed on the basis of the previous subframe message or subframe messages in the reverse transmission direction.
0017It is an advantage of the invention that the information needed by the interactive message and transmitted through each subframe can be utilized as a whole during said subframe. The system has then enough time to react with the information transmitted in the previous subframe. This effect can be improved in some systems by locating the messages wisely in the frame. Interactive signalling becomes faster and the utilization of the frequency spectrum becomes substantially more effective compared with prior art solutions.
0018For example the allocation of free channels in the downlink direction in association with the channel allocation is based upon the information within the entire previous uplink frame. The frame addresses detected to be free on the basis of the previous uplink subframe are informed in the downlink subframe by means of virtual time-duplexing according to the invention. The system has then enough time to take into account all the random access messages from the previous uplink subframe and to inform about the free channels on the basis of this information in the next corresponding downlink subframe. This allows the mobile stations to have the channel allocation information for use in the next subframe, i.e. they are given access to the channels considerably faster than before. In the prior art solution, a Y channel message in the downlink direction cannot respond to all the uplink frame messages, whereby the corresponding allocation message can be delayed by at least one frame.
0019The time-dependent separation of messages transmitted in different transmission directions provides many benefits which are dealt with in more detail in connection with the detailed description of the embodiments of the invention. It is obvious, however, that the invention provides a substantial improvement in the implementation of the radio connection through the data frames.
LIST OF FIGURES
0020The invention will be described in more detail with reference to the accompanying figures, in which <ul id="ul0001" list-style="none" compact="compact"><li><figref idref="f0001">Figure 1</figref> illustrates a frame structure and channels of a radio interface,</li><li><figref idref="f0001">Figures 2</figref> and <figref idref="f0002">3</figref> illustrate uplink and downlink radio bands, their frame division and two different interactive traffic situations,</li><li><figref idref="f0002">Figure 4</figref> shows a frame structure in uplink and downlink bands according to the primary embodiment of the invention,</li><li><figref idref="f0002">Figure 5</figref> illustrates interactive communication in association with a frame structure as shown in <figref idref="f0002">Figure 4</figref>,</li><li><figref idref="f0003">Figure 6</figref> illustrates a data transmission acknowledgement in association with a frame structure as shown in <figref idref="f0002">Figure 4</figref>, and</li><li><figref idref="f0003">Figure 7</figref> illustrates interactive communication in the case where the superframe of the invention is composed of three subframes.</li></ul>
DETAILED DESCRIPTION OF THE INVENTION
0021In the following, the invention is described in more detail in association with TDMA multiple access technique, the invention, however, not being restricted to this technique. The application of the invention within the scope of the specification and claims of the invention in other multiple access techniques, such as CDMA, is obvious to those skilled in the art. The concepts channel and frame are then applied according to the principles of the multiple access technique to be used.
0022<figref idref="f0001">Figure 1</figref> illustrates a radio interface based on data frames and traffic channel allocation in a frame system. In TDMA multiple access technique, a y-direction drawn in <figref idref="f0001">Figure 1</figref> shows frequency differentiation, i.e. each overlapping y level (y1, y2, y3) illustrates one frequency segment. Correspondingly, an x-direction drawn in <figref idref="f0001">Figure 1</figref> shows time differentiation, i.e. each adjacent x level (x1, x2, x3, x4) illustrates one time slot. A radio channel can be unambiguously identified by an address (for example x3, y2) addressing one rectangle in a frame shown in <figref idref="f0001">Figure 1</figref>. A channel is composed of information transmitted in a determined frame address of one frame or successive frames (F1, F2, F3, F4).
0023The frame in <figref idref="f0001">Figure 1</figref> shows a data frame associated with a substantially one transmission direction. A reverse transmission direction is composed of a structurally identical frame in another frequency segment. <figref idref="f0001">Figure 2</figref> illustrates channel arrangement for one frequency band (one layer in the y-direction in <figref idref="f0001">Figure 1</figref>) in the uplink and downlink directions (UL and DL respectively). A duplex frequency spacing (dF) exists between the UL band separated from the uplink frame and the DL band separated from the downlink frame and, in prior art solutions, the downlink frames have been delayed by some time slots (dT) compared with the uplink frames. For example in the GSM system, the duplex spacing is 45 MHz and the numbering of downlink frame time slots is delayed by three time slots compared with the uplink frames.
0024An interactive radio connection is a duplex data transmission where a message submitted in one transmission direction affects the corresponding message transmitted in the reverse transmission direction. Signalling of a mobile station and a base station during the channel allocation and different types of acknowledgement messages in the data transmission are given as examples of interactive connections.
0025In future mobile communication systems, the use of interactive connections will most likely dramatically increase. In the new systems, a channel is not reserved subscriber-specifically for the whole session (for example a call), but the channel is allocated to the subscriber for the time periods during which there is an actual need for the data transmission (for example speech or data transmission). In that case, channel allocation takes place before each data transmission transaction.
0026An interactive radio connection is illustrated in <figref idref="f0001">Figure 2</figref> by a circle in a UL frame representing an interactive message and by a triangle in a DL frame representing the corresponding message. The interactive data transmission is composed of successive circles and triangles, the circle being a response to the triangle, the triangle being a response to the circle etc. When the system is not heavily loaded, the interactive message transmission is successful by means of an appropriate selection of frame addresses, and the interactive message can be established in both transmission directions on the basis of the received messages. When the frame begins to fill up because of the increasing communication or a greater amount of time slots reserved for the subscriber, the situation becomes more complicated.
0027<figref idref="f0002">Figure 3</figref> illustrates a situation where the interactive message in the downlink direction (marked with a triangle) shown in <figref idref="f0001">Figure 2</figref> is composed on the basis of the messages submitted in the entire uplink frame. Such a situation exists for example in connection with an access grant (AG) message given in said DL frame. The base station informs about free addresses in a Y channel message in the downlink direction. A mobile station desiring to establish a connection in the uplink direction selects a channel which has been informed to be free and sends a random access (RA) message in the uplink direction on said channel informing in the message about its desire to establish a connection. The random access message is responded by the access grant (AG) message in the downlink direction informing the mobile station about the frame address or the frame addresses to be used on the radio channel to be established.
0028The frame will become full with the increase of communication, i.e. messages associated with the interactive connection are located within the entire frame matrix. Consequently, the downlink messages have no time to react with the uplink messages submitted in the previous message, and, on the other hand, they have no time to transmit the information to be utilized in the uplink frame. Using the channel resources in such a way is ineffective and radio spectrum is wasted in the establishment of the interactive connection.
0029It is to be noted that only the parameters essential for the invention will be described herein. Thus, although for example timing advance is not dealt with in this connection, all the specifications relating to a normal transmission must be taken into account in the final solution.
0030<figref idref="f0002">Figure 4</figref> illustrates a radio connection based upon uplink and downlink superframes. Each superframe consists of 24 separate frame addresses being divided into two subframes f1 and f2 which both comprise 12 frame addresses. The transmission of the UL and DL superframes is timed in such a way that the transmission occurs simultaneously, i.e. the delay between different transmission directions is zero. The subframes uf1/df2 and uf2/df1 in the superframes usf and dfs are time-duplexed in such a way that the subframe transmissions occur at different times.
0031In the channel allocation, free channels for the subframe uf2 of the UL superframe UF1 are notified on the Y channel of the subframe df1 in the DL superframe DF1 and, correspondingly, free channels for the next subframe uf1 of the UL superframe UF2 are notified on the Y channel of the subframe df2 in the DL superframe DF1.
0032It is assumed that a mobile station listens to the Y channel in the subframe df1 of the DL superframe DF1. The mobile station selects a free channel submitted on the Y channel, such as CH1, and sends a random access (RA) message on the free channel CH1 being selected in the subframe uf2 of the UL superframe UF1. A base station responds by an access grant (AG) message in the subframe df1 of the DL superframe DF2. The AG message informs the mobile station that the channel CH1 (marked in <figref idref="f0002">Figure 4</figref> with a black square) has been reserved for it from the next subframe. The mobile station starts transmitting on the channel CH1 in the subframe uf2 of the UL superframe UF2. Since CH1 is now allocated to said mobile station, it is no longer announced through the Y channel in the subframe df1 of the DL superframe DF2. In the above description, the channel allocation takes place by means of the subframe pair df1 and df2. A similar separate channel allocation can occur simultaneously (but in reverse phase) by means of another subframe pair df2 and uf1. It is possible that the same mobile station participates in the channel allocation in both subframe pairs.
0033Interactive acknowledgement messages (Y, AG) occur in each subframe of a superframe, preferably in the middle of the subframe, whereby the system has enough time to react with the messages. Traffic channels (such as CH1) occur only once in one superframe, i.e. in the present example only in the subframe uf2. In the present example, two connection layers are formed in the frame structure for the interactive messages, one of which is composed of the subframe uf1 of the UL superframes and the subframe df2 of the DL superframes, and correspondingly, the other is composed of the subframe uf2 of the UL superframes and the subframe df1 of the DL superframes. <figref idref="f0002">Figure 5</figref> illustrates the connection layers which are formed in the frame structure. In <figref idref="f0002">Figure 5</figref>, solid arrows illustrate interactive communication at a connection level df1-uf2, and dashed arrows illustrate communication at a connection level df2-uf1. It is possible that the same mobile station participates in communication at both connection levels.
0034The allocation situation for each UL subframe is already known in the previous DL subframe and the interactive message concerning each frame address can be transmitted before the next transmission of the frame address in the superframe. For example in the example in <figref idref="f0002">Figure 4</figref>, the AG message relating to the RA message submitted in the channel CH1 in the subframe of the superframe UF1 is already submitted in the subframe df1 of the superframe DF2, whereby communication on the channel CH1 can already start in the subframe uf2 of the superframe UF2, the subframe uf2 being the frame wherein the channel CH1 occurs next.
0035Time-duplexing the connection layer ensures that the information submitted on the Y channel always contains exact information about the free channels in the next subframe. In addition, one AG message in the downlink direction can be employed for responding to all the RA messages at the same connection layer and the AG message can be transmitted to the mobile station before the allocated frame address or allocated frame addresses occur next time in the superframe.
0036A corresponding example can be presented regarding the aforementioned data transmission acknowledgement. The example is illustrated in <figref idref="f0003">Figure 6</figref>. A channel CH2 composed of two UL-frame frame addresses has been reserved for a subscriber for the data transmission. When the data transmission is completed in the subframe uf2 of the superframe UF1, the connection is maintained and the mobile station waits for an ARQ acknowledgement message from the base station. In the case of a successful data transmission, the base station gives the acknowledgement message in the subframe df1 of a DL superframe DF2 and at the same time informs in a Y message that the frame addresses allocated to the channel CH2 are free. In the case of an unsuccessful data transmission, the base station sends a message informing about a transmission failure in the subframe df1 of the superframe DF2, whereby the mobile station can continue transmission on the channel CH2. In both cases, interactive information can be transmitted before the actual traffic channels occur next time in the superframe.
0037Interactive acknowledgement messages are preferably placed in the middle of the frame, whereby the system is given enough time to react with the information submitted in the previous subframe. If more time is needed in the processing of the messages in the UL and DL directions, as is the case in the systems based on COMA multiple access technique where the duration of the message comprises the entire frame cycle, the superframe can be composed of more than one subframes. <figref idref="f0003">Figure 7</figref> illustrates the solution of the invention in the case of three subframes (connection layers). The first connection layer is composed of subframes uf1 and df3, the second connection layer is composed of subframes uf2 and df3, and the third connection layer is composed of subframes uf3 and df1. Reaction time has been increased in the case presented in <figref idref="f0003">Figure 7</figref> by delaying the uplink transmission with respect to the downlink transmission by half a frame cycle.
0038The principles of the invention can also be applied in the conventional time division duplex TDD where the signals in different directions are transmitted interleaved in time on the same transmission channel. In accordance with the invention, the frame in both directions can be composed of two or more subframes, the subframes in turn forming one or more connection layers.
0039The drawings and the related description are only intended to illustrate the inventive idea. The details of the solution and the frame structure of the invention may vary within the scope of the claims. Although the invention has been described in association with the system based on TDMA multiple access technique by using messages relating to channel allocation as an example, the described solution presented in the invention can also be employed in association with other radio systems using interactive messages.
Contents5
3 sheets
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Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| GB2281470A | Cites | United Kingdom | Opposition |
| WO9639749A1 | Cites | World Intellectual Property Organization (WIPO) | Opposition |
| EP0529859A | Cites | European Patent Office (EPO) | – |
| WO9639749A1 | Cites | World Intellectual Property Organization (WIPO) | – |
| GB2281470A1 | Cites | United Kingdom | – |
| JIM TOMCIK/ FRANK QUICK: 'Positive Frame Acknowledgement for Radio Link Protocol', 17-21 July 1995, QUEBEC CITY | Non-patent | – | – |
| 'TIA/EIA Interim Standard', vol. IS-95, May 1995, TELECOMM.IND.ASSOC., ARLINGTON, VA 22201 article 'Mobile Station-Base Station Compatibility Standard for Dual-Mode Wideband Spread Spectrum Cellular System' | Non-patent | – | – |
| JIM TOMCIK/ FRANK QUICK: "Positive Frame Acknowledgement for Radio Link Protocol", 17 July 1995, QUEBEC CITY | Non-patent | – | Opposition |
| "TIA/EIA Interim Standard", vol. IS-95, May 1995, TELECOMM.IND.ASSOC., ARLINGTON, VA 22201, article "Mobile Station-Base Station Compatibility Standard for Dual-Mode Wideband Spread Spectrum Cellular System" | Non-patent | – | Opposition |
20 members in 9 offices
Priority claims3
| Document | Office | Kind | Date |
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| 965299 | Finland | – | |
| 965299 | Finland | A | |
| 9700833 | Finland | W |
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| Document | Office | Kind | |
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| FI965299L | Finland | L | |
| WO9832236A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU5323898A | Australia | A | |
| EP0956654A1 | European Patent Office (EPO) | A1 | |
| FI105371B | Finland | B | |
| JP2001507896A | Japan | A | |
| US6747966B1 | United States of America | B1 | |
| EP0956654B1 | European Patent Office (EPO) | B1 | |
| AT365999T | Austria | T | |
| ATE365999T1 | Austria | T1 | |
| DE69737868D1 | Germany | D1 | |
| EP1819063A1 | European Patent Office (EPO) | A1 | |
| DE69737868T2 | Germany | T2 | |
| USRE41178E | United States of America | E | |
| EP0956654B2This record | European Patent Office (EPO) | B2 | |
| EP1819063B1 | European Patent Office (EPO) | B1 | |
| ES2394221T3 | Spain | T3 | |
| USRE44089E | United States of America | E | |
| DE69737868T3 | Germany | T3 |
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| Application deemed to be withdrawn (deleted)WithdrawnD18D | D18D | EP | |
| Title (correction)RADIO SYSTEM AND METHOD FOR DUPLEX OPERATIONRTI1 | RTI1 | EP | |
| Application deemed to be withdrawnWithdrawn18D | 18D | EP | |
| First examination report despatched17Q | 17Q | EP | |
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Numbers
- Publication
- 0956654
- Application
- 979502119
Titles3
- German
- Funksystem und -Verfahren mit Duplexbetrieb
- English
- Radio system and method for duplex operation
- French
- Système radio et procédé de communication duplex
Classification
- CPC, 3
- H04J4/00
- H04B1/56
- H04L1/18
- IPC, 8
- H04B1 50
- H04J4 00
- H04L5 16
- H04B1 56
- H04B7 26
- H04L1 18
- H04W16 02
- H04W24 04
Designated states18
- Contracting states, 18
- Austria
- Belgium
- Switzerland
- Germany
- Denmark
- Spain
- Finland
- France
- United Kingdom
- Greece
- Ireland
- Italy
- Liechtenstein
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Portugal
- Sweden
