This application claims priority to Taiwanese Application No. 097133433, filed Sep. 1, 2008, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The invention relates to a monitoring system, more particularly to an open-loop monitoring system.
2. Description of the Related Art
Referring to
In such a configuration, distortion of the encoded signals can be minimized, thereby ensuring a stable signal transmission. However, when undesired operation of one electronic device 15 occurs, a user cannot determine whether said one electronic device 15 malfunctions or the transmission line 12 is cut off. As a result, after said one electronic device 15 is checked and determined to be normal, a long period of time is required to find an exact position where the transmission line 12 is cut off. Furthermore, each control device 13 is configured to only control operation of the single electronic device 15.
Therefore, an object of the present invention is to provide an open-loop monitoring system that can overcome the aforesaid drawbacks of the prior art.
According to one aspect of the present invention, an open-loop monitoring system comprises:
a host device; and
a plurality of monitoring devices coupled to the host device through a single transmission line such that the host device, the monitoring devices and the transmission line constitute an open-loop structure.
The host device has a coupling end coupled to one end of the transmission line, and includes a signal generating unit coupled to the coupling end, operable to generate encoded signals and outputting the encoded signals through the coupling end to the transmission line.
Each of the monitoring devices includes
The host device further includes a processing unit that includes
According to another aspect of the present invention, an open-loop monitoring system comprises:
a host device; and
a plurality of monitoring devices coupled to the host device through a single transmission line such that the host device, the monitoring devices and the transmission line constitute an open-loop structure, each of the monitoring devices including
The host device has a coupling end coupled to one end of the transmission line, and includes a processing unit that includes
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
Referring to
The host device 3 has a coupling end 33 coupled to one end of the transmission line 5 and includes a signal generating unit 31, a processing unit 32, a display unit 34, and an alarm 35 in this embodiment.
The signal generating unit 31 is coupled to the coupling side 33, is operable to generate encoded signals, and outputs the encoded signals through the coupling end 33 to the transmission line 5. In this embodiment, the encoded signals include audio signals, control signals and monitoring signals. It is noted that the encoded signals are in the form of carrier waves through modulation.
The processing unit 32 includes a demodulator 321 coupled to the coupling end 33, and a processor 322 coupled to the demodulator 321, the display unit 34 and the alarm 35, and adapted to be coupled to a loudspeaker 26.
In this embodiment, each monitoring device 4 includes an audio input port 41, an audio output port 42, a control unit 43, a detecting unit 44, and a plurality of switches 45.
For each monitoring device 4, the audio input port 41 is adapted to be coupled to the microphone 25 that collects sound to generate an audio signal. The audio output port 42 is adapted to be coupled to the loudspeaker 21.
In this embodiment, the control unit 43 includes a demodulator 431 and a controller 432. The demodulator 431 is coupled to the transmission line 5 for receiving and demodulating the encoded signals therefrom, and outputs the encoded signals demodulated thereby. The controller 432 is coupled to the demodulator 431 for receiving the encoded signals therefrom, identifies audio signals, a monitoring signal and a control signal from the encoded signals received thereby, and outputs the audio signals, the monitoring signal and the control signal, wherein the audio signals are outputted to the loudspeaker 21 through the audio output port 42 such that the loudspeaker 21 reproduces the audio signals.
Each switch 45 is adapted to be coupled between a power source 24 and the corresponding second electronic device 23, has a control end 451 coupled to the controller 432 of the control unit 43 for receiving the control signal therefrom, and is operable, in response to the control signal, between an ON-mode, where electric power from the power source 24 is supplied to the corresponding second electronic device 23, and an OFF-mode, where the electric power from the power source 24 is not supplied to the corresponding second electronic device 23.
In this embodiment, the detecting unit 44 includes a detector 441 and a first modulator 442. The detector 441 is coupled to the controller 432 of the control unit 43, the switches 45 and the first electronic devices 22, receives the monitoring signal from the controller 432, detects, in response to the monitoring signal received thereby, whether each first electronic device 22 is activated or deactivated and operation of each switch 45, and generates a detecting output based on a detection result made thereby. The first modulator 442 is coupled to the detector 441, receives the detecting output from the detector 441, modulates the detecting output received thereby so as to generate a reply signal that is associated with states of the first electronic devices 22 and an operating mode of the switches 45 and that is in the form of carrier waves, and transmits the reply signal to the coupling end 33 of the host device 3 through the transmission line 5. It is noted that, in other embodiments, the detecting unit 44 of each monitoring device 4 can automatically detect the first electronic devices 22 coupled thereto regardless of the monitoring signal received thereby.
Each monitoring device 4 further includes a second modulator 46 coupled to the transmission line 5 and the audio input port 41, adapted to receive the audio signal from the microphone 25 through the audio input port 41, modulating the audio signal received thereby to be in the form of carrier waves, and transmitting the audio signal modulated thereby to the coupled end 33 of the host device 3 through the transmission line 5. It is noted that, in other embodiments, the first and second demodulators 442, 46 of each monitoring device 4 can be integrated into a single demodulator.
Thus, the demodulator 321 of the processing unit 32 of the host device 3 receives and demodulates the reply signal and the audio signal from each monitoring device 4, and outputs the reply signal and the audio signal demodulated thereby to the processor 322 such that the processor 322 obtains state information associated with the first electronic devices 22 coupled to each monitoring device 4 and operating mode information associated with the switches 45 of each monitoring device 4 based on the reply signal received thereby. The audio signal received by the processor 322 is reproduced by the loudspeaker 26. Therefore, communication between the host device 3 and the monitoring devices 4 is attained.
The processor 322 of the processing unit 32 of the host device 3 determines whether the transmission line 5 is cut off based on the reply signals demodulated by the demodulator 321, and obtains condition information indicating a section of the transmission line 5 that is discontinuous by analyzing the reply signals when the transmission line 5 is determined to be cut off.
The display unit 34 is controlled by the processor 322 to display the condition information associated with the transmission line 5, and the state information and the operating mode information corresponding to the reply signal from each monitoring device 4 thereon.
The alarm 35 is controlled by the processor 322 to generate an alarm output when the processor 322 determines that the transmission line 5 is cut off.
In sum, due to the presence of the detecting unit 44 of each monitoring device 4, and the alarm 35, cutting off of the transmission line 5 can be promptly detected and a user can be alarmed. Furthermore, the processing unit 32 of the host device 3 can obtain the condition information indicating the discontinuous section of the transmission line 5 when the transmission line 5 is cut off, thereby reducing a time period required for checking and repairing the transmission line 5. Therefore, the open-loop monitoring system of the present invention can effectively monitor operation of the first and second electronic devices 22, 23 coupled to each monitoring device 4 through the condition information, the state information and the operating mode information displayed on the display unit 34.
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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097133433 | Sep 2008 | TW | national |
200820136976.1 | Sep 2008 | CN | national |