Not Applicable.
Not Applicable.
The present invention relates in general to duplicative terrestrial digital audio broadcasting systems such as an in-band on-channel (IBOC) hybrid digital and analog radio system, and, more specifically, to controlling a data display of a radio receiver to display program data.
A duplicative radio broadcast system simultaneously transmits 1) a primary channel having at least a main program content and preferably including a supplemental data stream, and 2) a backup channel with main program content that is at least a partial duplicate of the main program content in the primary channel but usually without all or part of the supplemental data stream. Certain differences in the backup channel transmission allow it to be received by a receiver under conditions in which the primary channel is unreceivable.
To accomplish a transition from traditional analog AM and FM broadcast radio services to terrestrial digital audio broadcasting (DAB), hybrid systems are being employed so that existing analog receivers can continue to receive the broadcasts while new digital receivers can be used to receive a higher quality digital signal that is simulcast with the analog signal. In the IBOC hybrid system, both the digital and analog signals are contained within the allocated frequency range of a particular broadcasting station. Typically, the analog signal is transmitted in a center portion with the digital signal occupying upper and lower sideband portions within the range.
Due to differences in transmission power levels, propagation, and performance in fringe areas, the coverage area of the analog signal within which a useful signal can be received is typically larger than the coverage area for the digital signal. Because of this difference in coverage area and because not all broadcasting stations will add digital technology at the same time, digital receivers are designed to receive in either a digital mode or an analog mode. A digital receiver uses the digital signal as its primary channel and the analog signal as a backup channel for receiving a particular broadcast. When both a digital and an analog signal are received, the receiver may blend in a continuous manner from the digital signal to the analog signal (i.e., add the signals in relative proportion to their quality) when the quality of the digital signal deteriorates.
Eventually, hybrid IBOC stations may transition to an all digital broadcast while retaining the duplicative nature of the broadcast signal (i.e., both the primary and backup channels are digital). In the all digital duplicative system, the backup channel transmits at a lower effective data rate and can be received during times that (or at a place where) the primary channel is impaired. In order to achieve a lower data rate, all or part of the supplemental data and possibly some portion of the main program content are omitted from the backup channel (e.g., by encoding the main audio program at a lower bit rate).
In addition to improved signal quality, a digital broadcast enables the transmission of supplemental digital data along with the main audio program of a radio broadcast. The supplemental digital data may include program data (PD) which relates to the main audio program or may include auxiliary data services. As used herein, program data includes any program data services such as station identification or conventional program-associated data (PAD) or any other auxiliary data that may be broadcast for providing information to a user of a receiver. When the main audio program includes music selections, for example, conventional PAD may include song title, artist, genre, album, or other song information. Such data is communicated (i.e., displayed) to the radio user on a graphical or text display integrated with the receiver or may be reproduced (i.e., displayed) as spoken audio using a text-to-speech converter. The program data may also include text messages during other broadcast segments such as commercial messages and talk segments.
When the digital signal in the primary channel is impaired or not available for any reason, the radio receiver blends to or entirely switches over to the analog or digital signal in the backup channel. Once a good signal is present again in the primary channel, the receiver will blend back to the primary. When the digital signal is impaired and the backup channel analog signal is utilized, at least a portion of the program data will no longer be received. In prior art radio receivers, data is processed in real time and typically appears in the display only for as long as the data is being received. Thus, when the digital transmission is lost, program data being displayed may disappear even though the main audio program continues to play. A radio listener may see a song title or artist name being displayed at one moment and then have no information or a blank display at the next moment if blend to analog has occurred. However, the radio listener would prefer the data display to be continuous and not be intermittent depending on signal conditions.
The present invention has the advantage that if the reception of the supplemental digital data in the primary channel is impaired for a period of time, the program data can still be displayed to the listener (e.g., by a visual display or by audio reproduction of the program data). Furthermore, data can be buffered and is then available when returning to a station after having tuned off it briefly, thereby saving several seconds to acquire new data to display. Also, the listener may be given the ability to scroll through program data for upcoming and past selections that are stored in a memory.
In one aspect of the invention, a method provides program data in association with a main audio program to a receiver of a duplicative radio broadcasting system wherein a duplicative broadcast includes a primary channel and a backup channel in a predetermined frequency allocation. Both the primary channel and the backup channel transmit the main audio program, and the primary channel transmits program data not included in the backup channel. The receiver includes an audio output for reproducing the main audio program and a display for displaying the program data. The method includes recurrently compiling a program event list of the program data corresponding to a current program event and a plurality of upcoming program events. The program event list is recurrently transmitted within the primary channel. The receiver recurrently recovers the program event list and stores the program data in a memory. The program data of the current program event is displayed. The audio output is blended from the primary channel to the backup channel in response to detection of a impaired primary channel. The display is updated to show program data of one of the upcoming program events from the memory during impairment of said program data in said primary channel.
The present invention defines a “program event” during any particular broadcast as any event that lasts for some finite duration such as a song, commercial, talk segment, or test tone, for which particular program data is to be displayed. A program event may also include an event for which no program data is to be displayed (i.e., a blank display). The broadcaster transmits digital data comprising a program event list which encapsulates the program data with event descriptors, including a program event number (PEN), a program event type (PET), a program event duration (PED), and an event remaining time (ERT), for example. By broadcasting data for multiple program events, the radio receiver can receive and store information about current, past, and upcoming broadcast material and utilize the data for presentation on the display.
Referring to
Referring to
A main microcontroller 36 coordinates operation of the radio receiver and receives digital data from DSP 33. A memory 37 stores a program event list to be displayed on graphics/text display 21. Memory 37 may be integrated with microcontroller 36 or may be comprised of a separate memory device. Control elements 38 are connected to microcontroller 36 for providing user input.
DSP 33 includes a down converter 40 (e.g., a synchronous mixer) for generating a zero IF signal. Using bandpass filtering within down converter 40, the analog transmission portion of the IF signal is coupled to a demodulator 41 for detecting the amplitude modulated signal and providing the recovered main audio program signal to a blend circuit 42. The digital portions of the IF signal are provided to an orthogonal frequency division multiplexing (OFDM) detector 43 for providing the digital signals from all the digital sub-channels to a data processor 44. The digital version of the main audio program is provided from data processor 44 through a delay block 45 to blend circuit 42. The delay is necessary to realign the analog and digital signals because the analog signal is broadcast in time diversity (i.e., with a delay).
Data processor 44 monitors the signal quality of the received digital signal in order to control blend circuit 42. For example, a data error rate of the digital signal may be monitored and compared with a predetermined threshold (e.g., a 10% bit error rate) to detect a impaired digital signal. As long as digital reception is not impaired, program data is delivered to microcontroller 36.
In one preferred embodiment of the invention, only program event numbers and program data are broadcast. In such an embodiment, automatic updating of the display is not possible during times that digital data is not received, but the user can scroll from a current event to upcoming events and can typically determine the correct program data for the main audio program currently playing. Scrolling can be controlled by the operator using manual control elements on the radio bezel or using spoken commands when a receiver is equipped with voice recognition, for example.
In enhanced embodiments, timing information (e.g., the PED and/or the ERT) is provided for automatic updating of the display.
The PEN may be comprised of 4 bits for defining up to 16 program events. The PET may also comprise 4 bits for defining up to 16 event types such as song, commercial, talk segment, talk program, test message, or blank time. The PED and ERT may each be comprised of 3 bytes of 8 bits each for representing duration and remaining time in milliseconds (or any other desired unit). A broadcaster tracks their playlist and other scheduled content in order to generate and schedule program events with the specified PEN's, PET's and PED's. This would be relatively straightforward for most events such as songs and commercials since their time lengths are already known in advance. ERT would be updated during broadcast of the current program event on a regular basis, such as about once per second. During transmission of data for multiple program events, an interleave scheme is preferably used in order to provide a relatively large amount of information while insuring that information concerning the current program event is available without significant delay. For example, program events could be broadcast according to their PEN in an order of 1, 2, 1, 3, 1, 4, and so on. The specific program events for inclusion in a program event list at any particular moment may be determined based on 1) the events occurring during a predetermined time interval (e.g., the next fifteen minutes of program content), or 2) a predetermined number of upcoming program events (e.g., the next eight events).
A preferred method of the present invention is shown in greater detail in
When step 52 detects impaired data, a check is made in step 56 to determine whether a program event list (PEL) is stored in memory. If not, then the display of program data fails, and a return is made to step 52 in order to continue checking for valid data. If a PEL was previously stored, then program data of a current program event is displayed from memory in step 57. During data display, the user is allowed to scroll through program data in the program event list in step 58. In a preferred embodiment wherein time information is included in the program event list, the end of a current program event is estimated in step 59 and the display is updated to the next program event when an amount of time has elapsed equal to the event remaining time of the current event when the digital data transmission was lost. A check is made in step 60 to determine whether received data continues to be impaired. If so, then a return is made to step 58. Otherwise, a return is made to step 53 for receiving the now unimpaired data.
When an expired ERT is detected in step 63, then the PENs of each event in the stored program event list are decremented in step 65 (and the entry for the old PEN #1 may be retained as a past event or discarded). Program data of the new current program event after decrementing (e.g., new PEN #1) is displayed in step 66. The program event list is preferably resynchronized in step 67, allowing the receiver to re-align the incoming program event list from the primary data channel in time with the decremented list.
Referring to
The protocol or format used for broadcasting a program event list may be comprised of any conventional data transmission technique. The program event can be inserted in the IBOC data stream as global or local indicators. If inserted globally, they may reside in the main header of a standard data message, for example. If inserted locally, they can reside either in the header or data portion for a data packet, such as an ID3 tag.
Several message protocols for transmitting a program event list are shown in
As shown in
Other alternatives include 1) embedding the PEN and PET data in an extended ID3 header and using the TIME and TLEN frames to transmit PED and ERT data, respectively, and 2) defining a new data format altogether.
The broadcasting of a program event list including program data allows a radio receiver to handle data display in a more robust fashion. Data for a current program event is displayed while data for future upcoming program events and past events are stored in memory. The storage of a program event list allows the radio receiver to provide functions that are very useful to the listener, such as “look-ahead” or “look-back”, and the display of data for periods of time when the digital signal is not available. In addition, an intelligent scrolling function may be provided wherein a search of the program event list is performed based on a characteristic identified by the listener. For example, the listener can skip through upcoming events seeing only those events matching a certain criteria such as a selected program event type. The listener can provide search characteristics, such as a desired PET or specified text in the PAD (e.g., a desired genre or artist), using the manual controls or voice commands, for example.
In an all digital broadcast, the digital backup channel may in some instances include a subset of the program data that is broadcast in the primary channel. When the receiver blends to the backup channel, the stored program event list and the currently received data from the backup channel can both supply program data for display to the user of the receiver. For example, the backup channel may include a program event list with a smaller number of entries or a PEL having just a subset of the data fields. Updates to the ERT may be transmitted less frequently in the backup channel.
It is also possible that a hybrid broadcast could include subsets of the program data in the backup channel. For example, the backup channel could provide program data using a signal that is modulated differently than the primary channel and doesn't interfere with the main audio program in the backup. In this case, the program data in the backup channel could also duplicate some of the program data found in the primary channel, possibly at the same or at a lesser data rate. The receiver would demodulate and decode data from the backup channel using appropriate means, determine the types of program data available, and control display of the program data in a manner similar to that described for an all-digital broadcast with program data in the backup channel.
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Number | Date | Country | |
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20040192191 A1 | Sep 2004 | US |