This non-provisional application claims priority under 35 U.S.C. ยง119(a) on Patent Application No(s). 102136866 filed in Taiwan, R.O.C. on Oct. 11, 2013, the entire contents of which are hereby incorporated by reference.
The disclosure relates to a measuring device and more particularly to a measuring device determining its output according to its input.
Most household measuring devices on the market measure only one kind of data and can not measure and record complex physiological phenomena and even provide relative suggestions to users in real time. For example, many products for measuring blood pressure or pulsation on the market only determine whether the user's blood pressure or pulsation is too high or low. However, it can not only use the measuring result of the blood pressure or the pulsation to diagnose other cardiovascular diseases and respiratory diseases. Thus, doctors always use the measurement result of a stethoscope to diagnose such diseases.
Generally, it must need skilled operators to properly operate such a stethoscope and determine the relation between the recorded sounds and diseases by using the measurement result of the stethoscope. Therefore, it may be difficult for an unskilled operator to operate a stethoscope to measure his or her own health states properly, and can even damage his or her eardrums if it is operated improperly
According to an embodiment, a measuring device includes an audio collection module, an audio player module and a switch module. The audio player module electrically connects to the audio collection module, and the switch module electrically connects to the audio player module. The audio collection module collects sounds to generate an audio signal. The audio player module plays the audio signal. The switch module sets an enabling signal for controlling the audio player module. The enabling signal is set to be at either a first state or a second state different from the first state. When the enabling signal is at the first state, the audio player module plays the audio signal under a first output mode. When the enabling signal is at the second state, the audio player module plays the audio signal under a second output mode different from the first output mode.
The present invention will become more fully understood from the detailed description given hereinbelow along with the accompanying drawings which are for illustration only, thus are not limitative of the present invention, and wherein:
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawings.
The disclosure provides a measuring device which can collect and record heart sounds or breathing sounds when the measuring device is pressed, and thus the measuring device can be applicative to an electric stethoscope. The operation of such an electric stethoscope can refer to general medical staffs' operational habit, whereby unskilled or skilled operators can operate this electric stethoscope. Moreover, this electric stethoscope can be set to operate under a specific operation mode for playing audio signals under, or to operate under another specific operation mode for changing the volume of audio signals, whereby the disclosure can protect operators from causing damage to their eardrums.
As shown in
The audio collection module 11 can collect sounds to generate audio signals. In particular embodiments, the audio signal includes a first sub-band signal, e.g. an audio signal having a frequency range between 200 and 2000 Hz, and a second sub-band signal, e.g. an audio signal having a frequency range between 20 and 1000 Hz. Specifically, refer to
In particular embodiments, refer to
The audio player module 13 can plays the audio signals. In particular embodiments, the audio player module 13 can include one or more digital-to-analog converters (DACs), and a number of bits accessed by the audio player module 13 is equal to a number of bits of the digital audio signal outputted by the audio collection module 11. As an example and not by way of limitation, when the audio signal outputted by the audio collection module 11 has 8 bits, the audio player module 13 will be an 8-bit DAC. As an example and not by way of limitation, the audio player module 13 can be a serial or parallel DAC, and the input of the audio player module 13 can correspond to the output of the audio collection module 11. Moreover, the audio player module 13 can further include one or more audio output ports (e.g. 3.5 millimeter earphone jacks) for connecting to external audio players.
The switch module 15 can set an enabling signal for controlling the audio player module 13. As an example and not by way of limitation, the enabling signal is at either a first state or a second state different from the first state. When the enabling signal is at the first state, the audio player module 13 plays the audio signal under a first output mode, and when the enabling signal is at the second state, the audio player module 13 plays the audio signal under a second output mode different from the first output mode. As an example and not by way of limitation, the first output mode indicates that the audio signal will be played at a relatively lower volume, and the second output mode indicates that the audio signal will be played at relatively higher volume. As another example and not by way of limitation, the first output mode indicates that the audio signal will be played with a fixed volume, and the second output mode indicates that the volume of the played audio signal can be changed.
Refer to
As another example and not by way of limitation, the switch module 15 in
In an embodiment, refer to
Moreover, the measuring device can further include a storage module 19 electrically connecting to the processing module 17. When the enabling signal is at the second state, the processing module 17 stores the processed audio signal in the storage module 19. Thus, the stored audio signals can be read out then. In some embodiments, the audio player module 13 can connect to the processing module 17 or the storage module 19. As an example and not by way of limitation, the first output mode indicates that the audio signal will be played at a constant volume, and the second output mode indicates that the audio signal will not be played but stored in the storage module 19 directly or through the processing module 17.
As an example and not by way of limitation, the audio collection module 11 can include an ADC whose output has (M+N) bits, where M and N are integers larger than 1. As an example and not by way of limitation, the ADC includes a high bit collection unit 112 processing M high-level bits, and a low bit collection unit 114 processing N low-level bits, where the high-level bits indicate the bits closest to the most significant bit (MSB) in a (M+N)-bit binary number and the low-level bits indicate the bits closest to the least significant bit (LSB) in the binary number. If the enabling signal is at the first state, only the high bit collection unit 112 is enabled, where the M high-level bits of the (M+N) bits will be outputted and the N low-level bits of the (M+N) bits will be ignored or blocked. Herein,
N high-level bits of the (M+N) bits inputting into the audio player module 13 will become low, and M low-level bits in the (M+N) bits will become high as the same as the M high-level bits outputted by the audio collection module 11. Thus, the operator can listen to the sound of the audio signal at the current volume. On the other hand, if the enabling signal is at the second state, both of the high bit collection unit 112 and the low bit collection unit 114 are enabled, where all the (M+N) bits will be outputted from the audio collection module 11. Herein, the (M+N) bits inputting into the audio player module 13 respectively correspond to the (M+N) bits outputted by the audio collection module 11. Thus, the operator can listen to more details of the audio signal.
In an embodiment, the measuring device can further include a volume adjustment module 21 which electrically connects to the audio player module 13 and can change the volume of audio signals according to a modulation signal. If the enabling signal is at the first state, the volume adjustment module 21 will be disabled, where the output volume can not be changed via the volume adjustment module 21. If the enabling signal is at the second state, the volume adjustment module 21 will be enabled, where the output volume can be changed via the volume adjustment module 21. Therefore, it can protect operators from causing damage to their eardrums by setting the volume too high or collecting sounds with too high volume when the enabling signal is at the first state (i.e. the measuring device has not been pressed).
As set forth above, the disclosure can either allow operators to increase the volume of the audio signal played, or play the audio signal at a fixed relative lower volume, so as to protect the operators from causing damage to their eardrums.
Number | Date | Country | Kind |
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102136866 | Oct 2013 | TW | national |