EP2243231A1 - Procédé et dispositif pour faire fonctionner un récepteur radio - Google Patents

Procédé et dispositif pour faire fonctionner un récepteur radio

Info

Publication number
EP2243231A1
EP2243231A1 EP09713122A EP09713122A EP2243231A1 EP 2243231 A1 EP2243231 A1 EP 2243231A1 EP 09713122 A EP09713122 A EP 09713122A EP 09713122 A EP09713122 A EP 09713122A EP 2243231 A1 EP2243231 A1 EP 2243231A1
Authority
EP
European Patent Office
Prior art keywords
determined
radio receiver
radio
route
predetermined
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
EP09713122A
Other languages
German (de)
English (en)
Inventor
Peter Kuhlmann
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Aumovio Germany GmbH
Original Assignee
Continental Automotive Technologies GmbH
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Continental Automotive Technologies GmbH filed Critical Continental Automotive Technologies GmbH
Publication of EP2243231A1 publication Critical patent/EP2243231A1/fr
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/20Arrangements for broadcast or distribution of identical information via plural systems
    • H04H20/22Arrangements for broadcast of identical information via plural broadcast systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H60/00Arrangements for broadcast applications with a direct linking to broadcast information or broadcast space-time; Broadcast-related systems
    • H04H60/35Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users
    • H04H60/38Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying broadcast time or space
    • H04H60/41Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying broadcast time or space for identifying broadcast space, i.e. broadcast channels, broadcast stations or broadcast areas
    • H04H60/43Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying broadcast time or space for identifying broadcast space, i.e. broadcast channels, broadcast stations or broadcast areas for identifying broadcast channels
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/12Arrangements for observation, testing or troubleshooting
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H60/00Arrangements for broadcast applications with a direct linking to broadcast information or broadcast space-time; Broadcast-related systems
    • H04H60/35Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users
    • H04H60/49Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying locations
    • H04H60/51Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying locations of receiving stations
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H60/00Arrangements for broadcast applications with a direct linking to broadcast information or broadcast space-time; Broadcast-related systems
    • H04H60/35Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users
    • H04H60/49Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying locations
    • H04H60/53Arrangements for identifying or recognising characteristics with a direct linkage to broadcast information or to broadcast space-time, e.g. for identifying broadcast stations or for identifying users for identifying locations of destinations
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the invention relates to a method and a device for operating a radio receiver.
  • a radio receiver such as a radio, in particular a car radio, or a television, allow in principle a reception of radio programs of different broadcasters.
  • the radio stations broadcast radio programs from different broadcasting stations.
  • the same broadcast program is broadcast by different transmitting stations on different frequencies, in particular carrier frequencies.
  • the broadcast program contained in an ensemble or also broadcast in a conventional broadcast network may also be included in the same or comparable manner in another ensemble, this other ensemble being on a different carrier frequency.
  • An ensemble in this context means the entirety of all programs that are broadcast in a common wave network on a given channel. For a single-frequency network under DAB, such a channel has a bandwidth of 1.5 MHz.
  • the radio receiver outputs the broadcast program without interference if the reception power of the corresponding broadcast station at the position of the radio receiver is greater than or equal to a minimum reception power of the radio receiver.
  • the object underlying the invention is to provide a method and an apparatus for operating a radio receiver, which simply allow a trouble-free radio reception with the radio receiver.
  • the object is solved by the features of the independent claims.
  • Advantageous embodiments are specified in the subclaims.
  • the invention is characterized by a method and a device for operating a radio receiver.
  • a position of the radio receiver is determined.
  • a direction is determined in which the radio receiver moves.
  • the received power of at least one radio station at the predetermined frequency is determined on the basis of the determined position of the radio receiver in the determined direction.
  • the predetermined frequency is further received, if the determined received power starting from the determined position for a predetermined distance in the determined
  • An alternative frequency is automatically set for reception if the determined received power, starting from the determined position for the predetermined distance in the determined direction, is smaller than the predetermined minimum receiving power of the radio receiver.
  • the predetermined minimum receive power can be greater than an actual minimum receive power of the radio receiver.
  • the predefined route may, for example, comprise ninety percent of the total distance for which the received power is checked in the determined direction.
  • the radio propagation prognosis can be determined by means of a radio frequency tion prediction method be created and stored on a storage device of the radio receiver. Alternatively, the radio propagation prediction method may be performed by the radio receiver during the operation of the radio receiver.
  • the predetermined distance represents in this context a predetermined route length.
  • a route is determined, along which the radio receiver moves. Based on the radio propagation prognosis, the received power of at least one radio station at the predetermined frequency is determined on the basis of the determined position of the radio receiver along the determined route. The predetermined frequency is further received if the determined received power is at least for a predetermined subsection of the determined route greater than or equal to the predetermined minimum receiving power of the radio receiver. The alternative frequency is automatically set to receive, if the received power has been determined for the given reception
  • the route can be determined, for example, by means of a navigation device.
  • the navigation device may include the radio receiver.
  • the radio receiver may comprise the navigation device or the radio receiver and the navigation device may be coupled together.
  • the subsection of the route may, for example, comprise ninety percent of the route checked by means of the radio propagation prognosis. sen.
  • the route may be determined additionally or alternatively to the direction.
  • the radio propagation prognosis for a predefined area about the determined route and / or the predefined route in the determined direction is determined. This makes it possible to take into account scatters that occur in the given area and have an effect on the determined route or for the given route in the determined direction when generating the radio propagation prognosis.
  • the alternative frequency is determined on the basis of the radio propagation prognosis such that the received power on the alternative frequency is greater than or equal to the predetermined minimum reception power of the radio receiver on the basis of the determined position for the predetermined distance in the determined direction.
  • the alternative frequency based on the radio propagation prediction can be determined so that the received power on the alternative frequency at least along the subsection of the determined route is greater than or equal to the predetermined minimum receive power of the radio receiver. This contributes to not unnecessarily switching over to the alternative frequency and only switching to the alternative frequency if interference-free reception is preferably possible, at least for the major part of the predetermined route or the route ahead.
  • the radio propagation prognosis is performed by the radio receiver. This enables interference-free reception of the broadcast program even outside of areas for which the radio propagation prediction is known or if there is no radio propagation prognosis.
  • FIG. 1 shows a first embodiment of a radio receiver
  • FIG. 2 shows a second embodiment of the radio receiver
  • Figure 3 is a flow chart of a program for operating the radio receiver.
  • a radio receiver 2 (FIG. 1) comprises a position determination device 4, a radio propagation prediction database 6, a computing unit 8, a memory device 10 and an input / output device 12.
  • the radio receiver 2 comprises, for example, a television set and / or a radio, in particular a television set Located in a motor vehicle, or a car radio or a portable TV or a portable radio.
  • the input / output device 12 makes it possible to set a predetermined frequency of a broadcasting station of a broadcasting station. Further, the input / output device 12 allows the display of the set frequency and / or the set radio station.
  • the position determination device 4 makes it possible to determine a current position POS (FIG. 3) of the radio receiver 2.
  • the position determination device 4 determines the current position POS of the radio receiver 2, for example by evaluating transit times of broadcast signals from different transmitting stations, for example from three different transmitting stations. If the geographic location of the relevant broadcasters is known, For example, because these are broadcast by the corresponding broadcasters or because they are stored in a broadcast station database 16 ( Figure 2), the current position POS of the radio receiver 2 by forming the geographic intersection of the determined from the maturities distances between the radio receiver. 2 and the three different transmitting stations are determined.
  • the positioning device 4 may comprise a GPS receiver.
  • the position POS of the radio receiver 2 can be determined by means of dead reckoning.
  • radio propagation prediction database 6 preferably data of a radio propagation prognosis are stored.
  • a radio propagation prediction method for generating the radio propagation prediction can be performed outside of the radio receiver 2 and the finished radio propagation prognosis can then be stored in the radio propagation prediction database 6. If the radio propagation prediction method is performed outside the radio receiver 2, the radio propagation prediction may be transmitted by means of a data service of a broadcasting station.
  • the radio receiver 2 has a terrain database 14 and the broadcast transmitter database 16 (FIG. 2). This makes it possible to process the radio propagation prediction method by means of the radio receiver 2.
  • the terrain database is a terrain master database.
  • the terrain master database includes data of geographic locations of the earth's surface in the grid having a mesh size of, for example, one square kilometer.
  • the balancer database may have a smaller or larger mesh size.
  • the resolution of the raster may be predetermined depending on a storage capacity of the terrain database 14.
  • the geographic positions of the earth's surface preferably include terrain elevation data above normal zero, for example, based on the WGS84 Earth ellipsoid.
  • development data may be stored in the terrain database 14.
  • the development data can for example be stored in identification levels.
  • a first identifier stands for a built-up area
  • a second identifier for a forest area a third identifier for an open area and / or a fourth identifier for a body of water, for example a river, a lake or a larger body of water.
  • the terrain database 14 may include road information, in particular a road map.
  • information about a planned route ROUTE can be stored in the terrain database 14.
  • the corresponding terrain data can also be obtained dynamically from a navigation system or be received dynamically by the radio transmitter, for example via a data service of the corresponding radio transmitter.
  • an open area of the same height can be assumed as a simplification.
  • the radio transmitter database 16 are preferably data relating to the radio systems of the transmitting stations, carrier frequencies of the transmitting stations, services of the transmitting stations, antenna diagrams of the transmitting stations, which are representative of a directivity of the antenna with respect to the transmission maximum, the geographical coordinates of the transmitting stations and / or the Height of the transmitting antennas of the transmitting stations over the terrain height to be stored.
  • the data of the broadcast transmitter database 16 can also be obtained dynamically from a navigation system or from the data service of the corresponding radio transmitter.
  • a receiver sensitivity which is indicated by a minimum receive power P_MIN of the radio receiver 2 is preferably stored on the memory device 10. Furthermore, internal cable losses and a reception antenna gain, which is representative of the directivity of the corresponding antenna in the elevation, and / or a receiving antenna diagram, in particular horizontally or vertically, can be stored on the memory device 10.
  • a program (FIG. 3) for operating the radio receiver 2 is preferably stored on the memory device 10.
  • the purpose of the program is to enable radio interference to be as smooth as possible by means of the radio receiver, especially when it is being moved.
  • the program is preferably executed by the arithmetic unit 8, which can also be referred to as a device for operating the radio receiver 2.
  • the program is preferably started in a step S1 in which variables are initialized, for example when the radio receiver 2 is switched on.
  • the current position POS is preferably determined with the position determination device 4.
  • a direction DIR is determined in which the radio receiver 2 is expected to move on the basis of the determined position POS.
  • the direction DIR can be determined, for example, depending on the position POS on the basis of the road map. For example, at a Driving on a highway assume that between two exits the direction DIR changes only slightly. Alternatively or additionally, the direction DIR can be extrapolated depending on two or more positions POS ascertained one after the other.
  • a route ROUTE which the radio receiver 2 is expected to follow can be determined in the step S4. This is advantageous in particular when the radio receiver 2 is arranged in a motor vehicle and is coupled to a navigation device, is comprised by the navigation device or comprises the navigation device. Then the route ROUTE can be easily retrieved from the navigation device.
  • a received power P_REC of at least one radio transmitter is determined on the basis of the current position POS in the determined direction DIR and / or optionally along the determined route ROUTE.
  • the arithmetic unit 8 makes a preselection of possible transmitting stations, of which a reception is to be expected at the current position POS in the determined direction DIR or along the determined route ROUTE, which for the most part is preferably greater than the minimum receiving frequency. For this purpose, for example, starting from different positions along the determined direction DIR or along the determined route ROUTE, a distance to different transmitting stations can be determined by means of the data in the broadcasting station database 16. Then, for example, in the preselection only
  • Transmission stations are considered, the distance is less than a maximum distance to the corresponding positions in the determined direction DIR or along the determined route ROUTE.
  • a DAB radio network in the L band at 1.5 GHz, only the transmitting stations can be taken into account in the pre-selection whose distance is less than a maximum distance of 100 kilometers.
  • the radio propagation prognosis can be created for all transmitting stations in the preselection on the basis of the data of the terrain database 14 and of the radio transmitter database 16.
  • a terrain section in the determined direction DIR and / or along the determined route ROUTE is laid by the transmitting station to the individual positions in the determined direction DIR and / or along the determined route ROUTE.
  • the radio propagation forecast can also be taken into account in a given area around the terrain intersection. This makes it possible to take into account scatters in the terrain, for example of buildings and / or mountains near the terrain in the prediction of the radio propagation.
  • the road map can also be taken into account when selecting the terrain.
  • the radio propagation prediction can be created outside the radio receiver 2 and stored on the radio propagation prediction database 6.
  • a step S6 it is checked whether the determined received power P REC for a given distance in the determined direction DIR and / or for a predefined partial section of the route ROUTE is smaller than the minimum received power P_MIN.
  • the predetermined minimum receive power P MIN can be greater than an actual minimum receive power of the radio receiver 2. This helps ensure trouble-free reception.
  • the predetermined distance may, for example, comprise ninety percent of the distance for which the received power P REC was determined in the determined direction DIR. Furthermore, the
  • Part of the route ROUTE for example, comprise ninety percent of the route ROUTE. Furthermore, the route or the subsection can be connected together or divided into sub-sections or sub-sections. If the condition of step S6 is satisfied, the processing is continued in step S8. If the condition of step S6 is not satisfied, then the processing is continued in a step S7 and the set frequency is retained for reception.
  • an alternative frequency ALT_FREQ is determined as a function of the determined position POS, the determined direction DIR and / or optionally the determined route ROUTE.
  • the alternative frequency ATL_FREQ is preferably determined such that the broadcast program can be received on the alternative frequency ALT_FREQ for the predefined route along the determined direction DIR and / or for the predefined subsection of the route ROUTE at least with the minimum received power P MIN.
  • a step S9 the alternative frequency ALT_FREQ is set for reception.
  • the program can be ended.
  • the program is executed regularly during the operation of the radio receiver 2.

Landscapes

  • Engineering & Computer Science (AREA)
  • Signal Processing (AREA)
  • Navigation (AREA)
  • Circuits Of Receivers In General (AREA)

Abstract

Lors du fonctionnement d'un récepteur radio (2), on détermine une position (POS) du récepteur radio (2). De plus, on détermine une direction (DIR) dans laquelle se déplace le récepteur radio (2). A l'aide d'un pronostic de propagation des ondes radio, on détermine, en partant de la position déterminée (POS) du récepteur radio (2), une puissance de réception (P_REC) d'au moins un émetteur radio à une fréquence prédéfinie dans la direction déterminée (DIR). La fréquence prédéfinie continuera à être reçue si la puissance de réception déterminée (P_REC) est, en partant de la position déterminée (POS), pour une distance prédéfinie dans la direction déterminée (DIR), supérieure ou égale à une puissance minimale de réception prédéfinie (P_MIN) du récepteur radio (2). Une fréquence de rechange (ALT_ FREQ) est automatiquement réglée pour la réception si la puissance de réception déterminée (P_REC) est, en partant de la position déterminée (POS), pour la distance prédéfinie dans la direction déterminée (DIR), inférieure à la puissance minimale de réception prédéfinie (P_MIN) du récepteur radio (2).
EP09713122A 2008-02-19 2009-01-20 Procédé et dispositif pour faire fonctionner un récepteur radio Ceased EP2243231A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102008009879A DE102008009879A1 (de) 2008-02-19 2008-02-19 Verfahren und Vorrichtung zum Betreiben eines Rundfunkempfängers
PCT/EP2009/050591 WO2009103581A1 (fr) 2008-02-19 2009-01-20 Procédé et dispositif pour faire fonctionner un récepteur radio

Publications (1)

Publication Number Publication Date
EP2243231A1 true EP2243231A1 (fr) 2010-10-27

Family

ID=40473927

Family Applications (1)

Application Number Title Priority Date Filing Date
EP09713122A Ceased EP2243231A1 (fr) 2008-02-19 2009-01-20 Procédé et dispositif pour faire fonctionner un récepteur radio

Country Status (3)

Country Link
EP (1) EP2243231A1 (fr)
DE (1) DE102008009879A1 (fr)
WO (1) WO2009103581A1 (fr)

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ATE106638T1 (de) * 1986-12-19 1994-06-15 Telefunken Fernseh & Rundfunk Verfahren zum übertragen und/oder zum empfangsseitigen auswerten zusätzlicher informationen innerhalb eines rundfunksignals.
JPH05183391A (ja) * 1991-12-27 1993-07-23 Tokyo Cosmos Electric Co Ltd 放送受信機
CA2181437C (fr) * 1994-01-19 2005-03-01 Heinz Gerhauser Procede pour determiner les signaux radio pouvant etre recus dans un systeme radio
ES2218810T3 (es) * 1997-02-04 2004-11-16 Atx Europe Gmbh Procedimiento para la transmision de informaciones de trafico y dispositivos para realaizar el procedimiento.
US7313375B2 (en) * 2002-05-02 2007-12-25 Lucent Technologies Inc. Follow-me broadcast reception method and system
JP3891174B2 (ja) * 2003-12-08 2007-03-14 株式会社日立製作所 制御方法
EP1865608A4 (fr) * 2005-03-31 2012-08-01 Pioneer Corp Dispositif de commande de reception; dispositif de reception, dispositif de reproduction; procede de commande de reception, progamme correspondant et support d'enregistrement contenant le progamme
JP4600312B2 (ja) * 2005-06-07 2010-12-15 株式会社デンソー 車両用放送受信機の制御装置
DE102006045904B4 (de) * 2006-09-28 2020-08-06 Intel Deutschland Gmbh Verfahren zum Bereitstellen einer Information über die erwartete Empfangsqualität bei einem mobilen Funkempfangsgerät

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO2009103581A1 *

Also Published As

Publication number Publication date
WO2009103581A1 (fr) 2009-08-27
DE102008009879A1 (de) 2009-08-27

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