The instant disclosure relates to a focusing method and a focusing apparatus, in particular, to a focusing method and a focusing apparatus that are able to focus quickly.
Existing lens modules (such as those of smart phones, tablets, microscopes and barcode readers) generally adapt inactive auto-focusing, and the lens modules in the lens assembly are generally driven by the voice coil actuator (voice coil motor). However, the lens modules employing the voice coil actuators are limited by the design of the driving means and are able to focus only in a limited moving speed. In other words, when the lens modules employing the voice coil actuator exceeds a predetermined speed, the lens module will generate vibration. In addition, the focusing distance of the lens module will be affected by the design of the driving means and has a moving distance limitation.
Furthermore, although there is a liquid lens presented in the market, the liquid lens is not able to perform fine focal length adjustments within the focusing distance.
The problem to be solved in the instant disclosure is to provide a focusing method and a focusing apparatus for focusing quickly.
An exemplary embodiment of the present disclosure provides a focusing method comprising providing a focusing apparatus, the focusing apparatus comprises a liquid lens module and an optical lens module, in which the liquid lens module has a plurality of first predetermined focusing sections, the optical lens module has a plurality of second predetermined focusing sections; adjusting the focus length of the liquid lens module based on an object for focusing the liquid lens module in one of the first predetermined focusing sections as a range of a coarse tuning focus section; and adjusting the focal length of the optical lens module in the coarse tuning focus section for focusing the optical lens module in one of the second predetermined focusing sections as a range of a fine tuning focus section.
Another exemplary embodiment of the present disclosure provides a focusing apparatus comprising a lens device, an image capturing device, a focal length adjustment device and a control device. The liquid lens module comprises a liquid lens unit, an optical lens module and a central axis. The optical lens module is disposed correspondingly to the liquid lens module, in which the optical lens module comprises an optical lens unit. The central axis passes the liquid lens module and the optical lens module. The image capturing device is disposed correspondingly to the lens device. The focal length adjustment device is disposed on the optical lens module or the image capturing device for changing the focal length of the optical lens module. The control device electrically connects to the lens device, the image capturing device and the focal length adjustment device for controlling the focal length of the liquid lens module and the optical lens module.
The advantage of the instant disclosure is that by first utilizing the properties of high moving speed and large displacement of the focal length adjustment of the liquid lens module to roughly focus in a coarse tuning focus section comprising an object, then performing focusing process on the object in the range of the coarse tuning focus section by the optical lens module and utilizing the higher focusing accuracy of the optical lens module to focus the optical lens module in a fine tuning focusing section, a quick focusing process can be performed on the object.
In order to further understand the techniques, means and effects of the instant disclosure, the following detailed descriptions and appended drawings are hereby referred to, such that, and through which, the purposes, features and aspects of the instant disclosure can be thoroughly and concretely appreciated; however, the appended drawings are merely provided for reference and illustration, without any intention to be used for limiting the instant disclosure.
The accompanying drawings are included to provide a further understanding of the instant disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the instant disclosure and, together with the description, serve to explain the principles of the instant disclosure.
Reference will now be made in detail to the exemplary embodiments of the instant disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
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The liquid lens module 11 comprises a liquid lens unit 111 and the liquid lens unit 111 also has a plurality of predetermined focusing sections F1 (as shown in
In the embodiments of the instant disclosure, the image capturing device 2 and the lens device 1 are disposed corresponding to each other. For instance, the optical lens module 12, the liquid lens module 11 and the image capturing device 2 are stacked on each other. In other words, the optical lens module 12 is disposed between the image capturing device 2 and the liquid lens module 11. However, in other embodiments, the liquid lens module 11 can be disposed between the image capturing device 2 and the optical lens module 12.
The control device 4 is electrically connected to the lens device 1, the image capturing device 2 and the focal length adjustment device 3 to control the focal length of the liquid lens module 11 and the optical lens module 12. Specifically, the control device 4 electrically connects to the driving electrode 112 of the liquid lens module 11 for inducing the driving electrode 112 to generate an electric field, thereby adjusting the curvature of the liquid lens unit 111. The control device 4 can also control the focal length adjustment device 3 (referred to as the voice coil motor hereinafter), and the voice coil motor starts to adjust the solid glass in the optical lens module 12 or the image capturing device 2. Therefore, by setting the focal length adjustment device 3, the focal length of the optical lens module 12 can be changed. The imaging of the object is projected on the image capturing device 2 by the liquid lens module 11 and the optical lens module 12.
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Step S100 may further comprise: providing a control device 4, the control device 4 is electrically connected to the image capturing device 2 and the focusing apparatus L for adjusting the focal length of the liquid lens module 11 and the focal length of the optical lens module 12. In addition, the image capturing device 2 can continuously capture the image of the object during the adjustment of the focal length of the liquid lens module 11 and the focal length of optical lens module 12.
The control device 4 also comprises an operation unit (not shown) for judging the image projected on the image capturing device 2 to find out if the current image is clear. In other words, the clarity (resolution) of the image is determined based on the contrast and sharpness of the image (the clarity value on the Y-axis shown in
In addition, step S100 preferably further comprises providing a focal length adjustment device 3. The focal length adjustment device 3 can be disposed on the optical lens module 12 or the image capturing device 2, and the focal length adjustment device 3 is electrically connected to the control device 4. The focal length of the optical lens module 12 can be changed by the control of the control device 4. The specific structures of the lens device 1, the image capturing device 2, the focal length adjustment device 3 and the control device 4 are described in the first embodiment.
The image with correct focus can be obtained by the control device 4 judging the focal length of the liquid lens module 11 and the focal length of the optical lens module 12. In other words, if the edges of the image significantly change, i.e., the differences between the gray scale values and the gradient values of the adjacent pixels become larger, the captured image is a clear image. Based on the above properties, the resolution value information for the judging standard can be obtained by processing of the control device 4 based on the image captured by the image capturing device 2. In addition, for example, in the embodiments of the instant disclosure, the control device 4 can be a microcontroller unit (MCU). However, the instant disclosure is not limited thereto. In addition, the control device 4 can control the focusing distance of the liquid lens module 11 and the optical lens module 12 when judging the clarity of the image.
Next, as shown in step S102, the focal length of the liquid lens module 11 is adjusted for focusing the liquid lens module 11 in the range of a coarse tuning focus section R. Specifically, as shown in
Specifically, as shown in step S1021, general focusing techniques can be divided into two types, the open loop type and the close loop type. In the second embodiment, the focusing method is an open loop type, i.e., using a laser distance meter, infrared distance meter, radar, sonic or supersonic wave to detect the distance between the object and the focusing apparatus L (for example, by a look up table), then performing focusing based on the above distance (please refer to step S1022). The close loop process will be described in the third embodiment.
Next, as shown in step S1022, locating the object in the coarse tuning focus section R by adjusting the focal length of the liquid lens module 11 based on the distance between the object and the focusing apparatus L obtained in step S1021. Specifically, the focal length of the liquid lens module 11 can be changed by the control device 4, and the liquid lens module 11 can focus in one of the first predetermined focus sections F1 as the range of the coarse tuning focus section R for locating the object in the coarse tuning focus section R. In other words, the coarse tuning focus section R is the first predetermined focus section F1 having the image of the object with best image resolution in the plurality of first predetermined focus sections F1.
As shown in
Next, as shown in step s104, focusing the optical lens module 12 in the range of a fine tuning focus section D by adjusting the focal length of the optical lens module 12. Specifically, the liquid lens module 11 is focused on a first predetermined focus section F1 having the image of the object with the best image resolution, i.e., the coarse tuning focus section R. Next, the focal length of the optical lens module 12 can be adjusted in the coarse tuning focus section R to focus in one of the second predetermined focus sections F2 as the range of a fine tuning focusing section D, thereby locating the object in the fine tuning focus section D. In other words, the fine tuning focus section D is the focusing section with correct focus, i.e., the fine tuning focus section D is a second predetermined focus section F2 having the image of the object with the best image resolution.
Furthermore, preferably, in order to focus the optical lens module 12 at one of the second predetermined focus sections F2 as a fine tuning focus section D, i.e., to focus the optical lens module 12 on the object for obtaining the image of the object with best image resolution, in step S104, the image of the object can be continuously captured in the step of adjusting the focal length of the optical lens module 12 to judge whether the object is located in the fine tuning focus section D. The optical lens module 12 is able to locate the object in the fine tuning focus section D by being driven by the focal length adjustment device 3 and the calculation results obtained by the image projected on the image capturing device 2 carried out by the control device 4.
Therefore, the control device 4 determines whether the step S106 can be carried out based on the fact that whether the object is located in the fine tuning focus section D. When the object is located in the fine tuning focus section D, the step S106 can be performed. When the object is not located in the fine tuning focus section D, the control device 4 continues to perform the focusing process of the optical lens module 12 on the object until the optical lens module 12 is focused in the range of a fine tuning focus section D.
As shown in step S106: capturing the image of the object. For instance, since the optical lens module 12 is focused on the object, the object can be captured for obtaining the image thereof. However, step S106 is an optional step and can be omitted in some embodiments based on user requirements.
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Specifically, as shown in
Next, as shown in step S1022′, adjusting the focal length of the liquid lens module 11 based on the result of the focusing distance scanning of the plurality of first predetermined focus sections F1 for focusing the liquid lens module 11 in the range of the coarse tuning focus section R. In other words, the liquid lens module 11 can focus in the coarse tuning focus section R based on the calculation of the control device 4, and then performing the follow-up steps.
The calculation of the control device 4 can determine whether the object is located in the coarse tuning focus section R, and when the object is located in the coarse tuning focus section R, the control device 4 performs the step of adjusting the focal length of the optical lens module 12, and when the object is not located in the coarse tuning focus section R, the control device 4 continues to adjust the liquid lens module 11 to perform scanning on the plurality of first predetermined focus sections F1.
In summary, the focusing apparatus L and the focusing method thereof provided by the embodiments of the instant disclosure first utilize the property of fast-moving and large displacement during focal length adjustment (fast focus surface adjustment of about <10 ms) of the liquid lens module 11 to perform long-distance movement for roughly focusing in the coarse tuning focus section R comprising the object.
Subsequently, the optical lens module 12 performs the focusing process on the object in the coarse tuning focus section R and the more accurate focusing property of the optical lens module 12 is used to focus the optical lens module 12 in the fine tuning focus section D. Therefore, by sequentially employing the liquid lens module 11 and the optical lens module 12, the instant disclosure can focus on the object quickly. In other words, the instant disclosure first quickly moves the liquid lens module 11 to the coarse tuning focus section R and hence, the optical lens module 12 only has to perform a small distance movement in the coarse tuning focus section R. Accordingly, the displacement of the optical lens module 12 of the focal length adjustment device 3 is smaller and can avoid the vibration of the optical lens module 12, and the moving speed of the optical lens module 12 can be faster.
The above-mentioned descriptions represent merely the exemplary embodiment of the present disclosure, without any intention to limit the scope of the instant disclosure thereto. Various equivalent changes, alterations or modifications based on the claims of the instant disclosure are all consequently viewed as being embraced by the scope of the instant disclosure.