This application claims priority to Chinese Application Serial Number 201810171162.X, filed Mar. 1, 2018, which is herein incorporated by reference.
The present disclosure relates to a positioning system and a positioning method. More particularly, the present disclosure relates to a positioning system and a positioning method using a microphone array.
People are inevitable to lose items in their daily life. In order to find the lost items, lots of time and effort are usually spent. However, even though the time and effort are spent, it is not always possible to find lost items.
In response to the above situation, there are many anti-lost or lost-and-found products on the market. However, the anti-lost or lost-and-found products currently available on the market have a considerable error in locating items to be found. As a result, not only do users of the anti-lost or lost-and-found products spend money on those products, but the lost items also can not be quickly and efficiently found.
For the foregoing reasons, there is a need to solve the above-mentioned problems by providing a positioning system and a positioning method, which the industry is eager to achieve.
The summary aims to provide a brief description of the disclosure so as to provide a basic understanding to the reader. This summary is not an extensive overview of the disclosure and it does not identify key/critical elements of the present disclosure or delineate the scope of the present disclosure. Its sole purpose is to present some concepts disclosed herein in a simplified form as a prelude to the more detailed description that is presented later.
A positioning system is provided. The positioning system comprises a radio frequency device, a microphone array, and a calculation device. The radio frequency device is configured to transmit a radio frequency signal to an external device for pairing with the external device. The microphone array is configured to receive an audio signal transmitted from the external device after the positioning system is paired with the external device. The calculation device is configured to calculate a direction from the positioning system to the external device based on a time interval of the audio signal received by the microphone array, and configured to calculate a distance between the positioning system and the external device based on the audio signal transmitted by the external device after pairing. The calculation device positions a location of the external device according to the direction and the distance.
The present disclosure provides a positioning system. The positioning system comprises a radio frequency device, a first microphone array, a second microphone array, and a calculation device. The radio frequency device is configured to transmit a radio frequency signal to an external device. The first microphone array is disposed on one side of the positioning system and configured to receive an audio signal transmitted from the external device after the radio frequency signal is transmitted. The second microphone array is disposed on another side of the positioning system and configured to receive the audio signal transmitted from the external device after the radio frequency signal is transmitted. The calculation device is configured to calculate first orientation information from the positioning system to the external device based on a first time interval of the audio signal received by the first microphone array, and configured to calculate second orientation information from the positioning system to the external device based on a second time interval of the audio signal received by the second microphone array. The calculation device positions a location of the external device based on the first orientation information and the second orientation information.
The present disclosure further provides a positioning method. The positioning method comprises the following steps: transmitting a radio frequency signal to an external device by a radio frequency device of a positioning system for pairing with the external device; receiving an audio signal transmitted from the external device by a microphone array of the positioning system after the positioning system is paired with the external device; calculating a direction from the positioning system to the external device based on a time interval of the audio signal received by the microphone array; calculating a distance between the positioning system and the external device based on the audio signal transmitted by the external device after pairing; and positioning a location of the external device according to the direction and the distance.
Therefore, the embodiments of the present disclosure provide a positioning system and a positioning method that is able to quickly, conveniently, and accurately locate the items to be found based on technical content of the present disclosure.
Many of the attendant features will be more readily appreciated as the same becomes better understood by reference to the following detailed description considered in connection with the accompanying drawings.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention. In the drawings,
According to the usual mode of operation, various features and elements in the figures have not been drawn to scale, which are drawn to the best way to present specific features and elements related to the present disclosure. In addition, among the different figures, the same or similar element symbols refer to similar elements/components.
To make the contents of the present disclosure more thorough and complete, the following illustrative description is given with regard to the implementation aspects and embodiments of the present disclosure, which is not intended to limit the scope of the present disclosure. The features of the embodiments and the steps of the method and their sequences that constitute and implement the embodiments are described. However, other embodiments may be used to achieve the same or equivalent functions and step sequences.
Unless otherwise defined herein, scientific and technical terminologies employed in the present disclosure shall have the meanings that are commonly understood and used by one of ordinary skill in the art. Unless otherwise required by context, it will be understood that singular terms shall include plural forms of the same and plural terms shall include the singular. Specifically, as used herein and in the claims, the singular forms “a” and “an” include the plural reference unless the context clearly indicates otherwise.
As used herein, “couple” refers to direct physical contact or electrical contact or indirect physical contact or electrical contact between two or more elements. Or it can also refer to reciprocal operations or actions between two or more elements.
As for operation, the radio frequency device 110 is configured to transmit a radio frequency signal to the external device 200 for pairing with the external device 200. For example, the radio frequency device 110 in the positioning system 100 is able to communicate and pair with the radio frequency device 210 in the external device 200 bidirectionally to facilitate the external device 200 to accurately respond in a real-time manner when the positioning system 100 transmits a positioning/distance measuring request subsequently. A description of detailed operations is provided as follows.
In addition, the microphone array 130 is configured to receive an audio signal transmitted from the external device 200 after the positioning system 100 is paired with the external device 200. For example, after the microphone array 130 is paired with the external device 200, the positioning system 100 may transmit the distance measuring signal to the external device 200 according to user requirements (such as a lost-and-found requirement). The external device 200 will return the audio signal to the positioning system 100 once receiving the distance measuring signal. Then, the calculation device 120 of the positioning system 100 calculates a distance based on the audio signal. In some embodiments, the external device 200 returns the audio signal to the positioning system 100 at a first distance measuring time after receiving the distance measuring signal. After that, the positioning system 100 receives the audio signal at a second distance measuring time. In this manner, the distance can be accurately calculated by the calculation device 120 based on a difference between the first distance measuring time and the second distance measuring time. In other words, after the calculation device 120 obtains a time point at which the external device 200 returns the audio signal and recognizes a time point at which the positioning system 100 receives the audio signal, the calculation device 120 can calculate a distance between the positioning system and the external device based on a time interval between the above two time points.
Additionally, the calculation device 120 is configured to calculate a direction from the positioning system 100 to the external device 200 based on a time interval of the audio signal received by the microphone array 130. In this manner, the calculation device 120 can position a location of the external device 200 based on the direction from the positioning system 100 to the external device 200 and the distance between the positioning system 100 and the external device 200 after the calculation device 120 calculates the direction and the distance.
In one embodiment, the audio signal transmitted by the external device 200 may be an ultrasonic wave, but the present disclosure is not limited in this regard. Any wave that is able to be transmitted/emitted from the external device 200 and propagated by air or some other medium and received by the positioning system 100 is within the scope of the present disclosure.
A description is provided with reference to
If equation 1 is further rearranged, an angle ϕ between the external device 200 and the microphone is obtained. See the following equation:
As shown in equation 2, in some embodiments, angles between the external device 200 and various microphones (acoustic incident angles) can be respectively calculated by using the various microphones. Then, an incident direction of the audio signal V (such as an ultrasonic wave) transmitted from the external device 200 can be calculated through the plurality of angles. In addition, through the above distance measuring method, the positioning system 100 calculates the distance between the positioning system 100 and the external device 200. As a result, the location of the external device 200 can be accurately obtained with the direction and distance.
For example, the positioning system 100 may be used for anti-lost/lost-and-found applications. A user can place the external device 200 within an easily lost item, for example, the external device 200 may be placed inside a bag. Once the bag is lost/undetectable by the naked eye, pairing/bidirectional communication with the external device 200 can be performed through the positioning system 100. The external device 200 thus returns the ultrasonic wave, and the positioning system 100 then calculates the orientation and distance based on the ultrasonic wave to position an accurate location of the bag. In this manner, the bag can be quickly, conveniently, and accurately located. However, the present disclosure is not limited to the above embodiment. The external device 200 according to the present disclosure may be placed or embedded in various items, and the positioning system 100 may be embedded in various devices. For example, the positioning system 100 may be embedded in a mobile phone, and an application (APP) of the mobile phone cooperates with the positioning system 100 to search for items and displays the search results on a screen of the mobile phone, so that the user can quickly, conveniently, and accurately locate the items to be searched for. Or, the positioning system 100 and the external device 200 may be respectively embedded in different mobile phones to facilitate the use of one mobile phone to find another mobile phone. Or, the positioning system 100 and the external device 200 may be respectively embedded in a computer and a mobile phone to facilitate the use of the computer to find the mobile phone. Or, other similar configuration methods are within the scope of the present disclosure.
A description is provided with reference to
Under the preset condition of
X
2
+Z
2=tan(α)2Y2 eq(3)
X
2
+Y
2=tan (β)2Z2 eq(4)
Subtract equation 3 from equation 4 to obtain the following equation:
Y
2
−Z
2=tan(β)2Z2−tan(α)2Y2 eq(5)
Rearrange equation 5 to obtain the following equation:
(1+tan(α)2)Y2=(1+tan(β)2)Z2 eq(6)
The equations of straight line can be derived from the above equation 6:
Additionally, in other embodiments, a polar coordinate solution can be adopted. The equation is as follows:
Rearrange equation 9 to obtain the following equation:
γ=(√{square root over (1+tan(α)2)})Y eq(10)
Continue using the polar coordinate solution, the equation is as follows:
The equation for another polar coordinate solution is as follows:
However, the present disclosure is not limited to the above embodiment, which is only used to illustrate an example of one of the implementation methods of the present disclosure. Any variations of the above parameters, such as angle, cone, direction, etc., without departing from the scope or spirit of the present disclosure are within the scope of the present disclosure.
Z=0 eq (13)
X
2
+Z
2=tan(α)2Y2 eq(14)
Substitute equation 13 into equation 14 to obtain the following equation:
X
2=tan(α)2Y2 eq(15)
Rearrange equation 15 to obtain the equation of straight line:
X=tan(α)Y eq(16)
Z=0 eq 17
Y=0 eq 18
Under the condition that both equation 17 and equation 18 are satisfied, the external device 200 is located on the X axis.
As for operation, the microphone arrays 130, 140 are configured to receive the audio signal transmitted from the external device 200. The calculation device 120 calculates first orientation information from the positioning system 100 to the external device 200 based on a first time interval of the audio signal received by the microphone array 130. In addition, the calculation device 120 calculates second orientation information from the positioning system 100 to the external device 200 based on a second time interval of the audio signal received by the microphone array 140. Since the basic calculation method of the orientation information (including angles) has been described in the embodiment shown
A description is provided with reference to
For example, the first orientation information and the second orientation information comprise the first orientation angle 81, the second orientation angle θ2, and the distance d between the microphone array 130 and the microphone array 140. As shown in
Similarly, the microphone array 140 in
In some embodiments, as shown in
Step 1100: A radio frequency device of a positioning system is used to transmit a radio frequency signal to an external device for pairing with the external device;
Step 1200: A microphone array of the positioning system is used to receive an audio signal transmitted from the external device after the positioning system is paired with the external device;
Step 1300: A direction from the positioning system to the external device is calculated based on a time interval of the audio signal received by the microphone array;
Step 1400: A distance between the positioning system and the external device is calculated based on the audio signal transmitted by the external device after pairing; and
Step 1500: A location of the external device is positioned based on the direction and the distance.
In order to facilitate the understanding of the positioning method 1000 according to the embodiment of the present disclosure, a description is provided with reference to
In addition, in step 1300, the calculation device 120 may be used to calculate a direction from the positioning system 100 to the external device 200 based on a time interval of the audio signal received by the microphone array 130. In step 1400, the calculation device 120 may be used to calculate a distance between the positioning system 100 and the external device 200 based on the audio signal transmitted by the external device 200 after pairing. In step 1500, the calculation device 120 may be used to position a location of the external device 200 based on the direction and the distance.
In another embodiment, a description is provided with reference to
In still another embodiment, a description is provided with reference to
In yet another embodiment, in the above step 1400, the step of calculating the distance between the positioning system 100 and the external device 200 comprises: The positioning system 100 may be used to transmit a distance measuring signal to the external device 200 after the positioning system 100 is paired with the external device 200, and the external device 200 returns the audio signal to the positioning system 100 at a first distance measuring time after receiving the distance measuring signal. The positioning system 100 may be used to receive the audio signal at a second distance measuring time. The calculation device 120 may be used to calculate the distance between the positioning system 100 and the external device 200 based on the first distance measuring time and the second distance measuring time.
It is understood from the embodiments of the present disclosure that application of the present disclosure has the following advantages. The positioning system and positioning method according to the embodiments of the present disclosure adopt the microphone array to accurately locate the direction of the item to be found. In addition to that, the radio frequency device is used to transmit a radio frequency signal to the external device for pairing with the external device. The distance to the item to be found is thus obtained. As a result, the positioning system and positioning method according to the embodiments of the present disclosure can quickly, conveniently, and accurately locate the external device (may be placed/embedded in the item to be found in advance to facilitate locating the item). In addition to that, the positioning system and positioning method according to the embodiments of the present disclosure further adopt two microphone arrays. By using the originally known distance between the two microphone arrays and the individual orientation information calculated from the two microphone arrays (such as the included angles respectively between the two microphone arrays and the external device), the triangle theorem is employed to quickly, conveniently, and accurately locate the external device (may be placed/embedded in the item to be found in advance).
Although the present invention has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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201810171162.X | Mar 2018 | CN | national |