In order to clearly show and make better comprehension of these and other features and advantages of the present invention, the present invention will now be described by way of examples, with reference to a preferred embodiment illustrated in the drawings, in which:
With reference to the drawings and in particular to
Also referring to
The tuner 30 is connected to the digital antenna unit 10, in order to select channels and receive a transmission signal S2 from an artificial satellite, a digital TV station, and/or a digital broadcast station through the digital antenna unit 10.
The demodulator 40 is connected to the tuner 30, in order to control the operation of receiving channel for the tuner 30 and demodulate the transmission signal S2 that the tuner 30 receives into a digital video image signal S3 and a signal intensity quality signal S4 for output.
The antenna direction drive unit is connected to the digital antenna unit 10, in order to drive the adjustment of direction and elevation for digital antenna unit 1. The antenna direction drive unit 50 is not limited to any specific type and, in the embodiment illustrated, comprises a direction driver 51 and an elevation angle driver 52. The direction driver 51 drives the adjustment of direction for the digital antenna unit 10, and the elevation angle driver 52 drives the adjustment of elevation angle for the digital antenna unit 10. The direction driver 5 and the elevation angle driver 52 are server motor systems that employ server motors to drive the adjustment of direction and elevation angle for the digital antenna unit 10. Apparently, other equivalent driver units, such as electromagnet based devices or power devices, are also applicable in the present invention.
Also referring to
The secondary controller 60 transmits a drive control signal S6 to the antenna direction driver 50 to control the direction driver 51 and the elevation angle driver 52 of the antenna direction drive unit 50 so as to control the operation of driving the adjustment in direction and elevation angle of the digital antenna unit 10.
The secondary controller 60 is not limited to any specific type and, in the embodiment illustrated, the secondary controller 60 includes a central processor 61, a trafficator access interface 62, a direction driver interface 63, an elevation angle driver interface 64, a demodulator access device 65, and a primary controller connection interface 66. The control processor 61 serves as a processing center for the digital video image signal S3, the direction signal S1, and the signal intensity quality signal S4, and also functions as an output control center for the control signal S5 and the drive control signal S6. The trafficator access interface 62 is connected between the trafficator 20 and the central processor 61 in order to receive, convert, and feed the direction signal S1 from the trafficator 20 into the central processor 61.
The direction driver interface 63 is connected between the direction driver 51 of the antenna direction drive unit 50 and the central processor 61 and the elevation angle driver connects between the elevation angle driver 52 of the antenna direction drive unit 50 and the central processor 61 so that they can use the direction control signal S6 to control the direction driver 51 and elevation angle driver 52 to drive the adjustment of direction and elevation angle for the digital antenna unit 10.
The demodulator access interface 65 is connected between the demodulator 40 and the central processor 61 in order to supply the digital video image signal S3 and signal intensity quality signal S4 from the demodulator 40 to the central processor 61 and to allow the control signal S5 produced by the central processor 61 to be transmitted to the demodulator 40.
The primary controller connection interface 66 is connected to the central processor 61 in order to output a teleview image data D1 that is converted from the digital video image signal S3 by the central processor 61, the signal intensity quality signal S4, and the direction signal S1. The primary controller connection interface 66 is not limited to any specific type and examples include an USB interface, an IEEE1394 interface, a PCI Express interface, and a wireless transmission interface, as well as other equivalent device known in the related field of art.
The primary controller 70 is connected to the Internet 200, a storage device 300, and the secondary controller 60. The primary controller 70 that are connected to the Internet 200 and the storage device 300 receive, from the Internet 200, data of optimum direction and elevation angle of the antenna for receiving signals from a transmission terminal, such as an artificial satellite, a digital video TV station, and a digital broadcasting station, for controlling the direction and elevation angle of the digital antenna unit 10. The storage device 300 stores video data recording and saving the data of optimum direction and elevation angle for the digital antenna unit 10. The storage device 300 is not limited to any specific type and can be a storage medium of for example a USB-interfaced portable storage device, an IDE-interfaced hard disk drive, and a readable/writable optic disk drive.
Based on the optimum direction and elevation angle of the digital antenna unit 10 obtained from the Internet 200 and/or the storage device 300, the primary controller 70 sends out an antenna control signal S7 to the secondary controller 60 and receives the teleview image data D1, the signal intensity quality signal S4, and the direction signal S1 from the secondary controller 60, and converts the teleview image data D1, the signal intensity quality signal S4, and the direction signal S1 into digital video format, for example image data, signal intensity quality data, and direction data in MPEG2 format, stored in the storage device 300.
Referring to
The secondary controller access interface 74 is connected to the central processor 71 and the primary controller connection interface 66 of the secondary controller 60 in order to receive the teleview image data D1, the signal intensity quality signal S4, and the direction signal S1 from the secondary controller 60 and output the antenna control signal S7 to the secondary controller 60. The secondary controller access interface 74 is not limited to any specific type and can be, for example, a USB interface, an IEEE1394 interface, a PCI_E interface, and a wireless transmitting interface. Other equivalent devices are also considered within the scope of the present invention.
Referring to
Step 410: retrieving data of transmission terminal through the Internet, which is carried out by the primary controller 70 retrieving, through the Internet 200, optimum antenna direction and elevation angle for the transmission terminal of an artificial satellite, a digital TV station, and a digital broadcasting station;
Step 420: accessing storage device to obtain data of transmission signal, wherein the primary controller 70 retrieves data of optimum direction and elevation angle of an antenna receiving signals from a transmission terminal, such as an artificial satellite, a digital TV station, and a digital broadcasting station, which is stored in the storage device 300;
Step 430: retrieving data of trafficator, wherein the trafficator 20 retrieves the direction signal S1 that contains the actual direction and elevation angle of the digital antenna unit 10;
Step 440: setting direction and elevation angle drivers, wherein the primary controller 70, based on the optimum direction and elevation angle for antenna receiving signals from transmission terminal of for example an artificial satellite, a digital TV station, and a digital broadcasting station and the direction signal S1 that are obtained in Steps 410, 420, 430, carries out calculation to provide the antenna control signal S7 to the secondary controller 60, and wherein the secondary controller 60 controls the direction driver 51 and the elevation angle driver 52 of the antenna direction driver unit 50 in order to set the direction and the elevation angle adjustments for the digital antenna unit 10;
Step 450: selecting receiving channel, wherein the secondary controller 60 controls the demodulator 40, and the demodulator 40 in turn controls the tuner 30 to select the desired digital video or broadcasting channel;
Step 460: determining quality of signal, wherein the quality of signal received is inspected, and when good quality of signal is ensured, the process goes to Step 470; otherwise, the process goes back to Step 430;
Step 470: monitoring quality of signal, wherein the demodulator 40, based on the intensity of signal received by the digital antenna unit 10 from the transmission signal, supplies the signal intensity quality signal S4 to the secondary controller 60, and the secondary controller 60 in turn sends the signal intensity quality signal S4 to the primary controller 70 in which the signal is converted into data of signal intensity for monitoring;
Step 480: determining quality of signal, wherein the quality of signal received is inspected, and when good quality of signal is ensured, the process goes to Step 470; otherwise, the process goes back to Step 430; and
Step 490: demodulator and tuner feeding back signal quality, wherein the demodulator 40 and the tuner 30, based on the signal intensity received by the digital antenna unit 10 from the transmission terminal, supplies the signal intensity quality signal S4 to the secondary controller 60, and the secondary controller 60 in turn sends the signal intensity quality signal S4 to the primary controller 70 in which the signal is converted into data of signal intensity for feedback.
Steps 410 to 490 of the process described in
With reference to
The automatic feedback adjustment device for digital antenna described herein with reference to
Number | Date | Country | Kind |
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095205625 | Apr 2006 | TW | national |