This application claims the benefit of Taiwan application Serial No. 104131760, filed Sep. 25, 2015, the subject matter of which is incorporated herein by reference.
Field of the Invention
The invention relates in general to an image capture system and a focusing method thereof, and more particularly to an image capture system having a plurality of image capture units and allowing the image capture units to complete the focusing procedure within a relatively short time and a focusing method thereof.
Description of the Related Art
In recent years, the image capture system is widely used in various electronic products, such as mobile communication devices, tablet computers, notebooks and surveillance systems. However, with the requirements of thinning and microminiaturization for the electronic products, not only the size and specifications of the image capture system are restricted, but also the lenses for some electronic products cannot be interchanged freely by users in order to capture images in multiple field-of-view modes. Moreover, even though allowed to interchange the lenses of the image capture system for the electronic products, the users still need to re-focus for shooting after interchanging the lenses. Such behavior not only takes time, but also diminishes user experiences.
Therefore, it is desired to provide an image capture technique allowing the users to switch to different field-of-view modes for shooting and focus within a relatively short time.
The invention is directed to an image capture system and a focusing method thereof allowing users to switch to different field-of-view modes for shooting and focus within a relatively short time.
According to one aspect of the present invention, an image capture system is provided. The image capture system includes a first image capture unit, a second image capture unit and a controller. The first image capture unit includes a first field of view. The second image capture unit includes a second field of view. A difference between the first field of view and the second field of view is larger than zero or less than zero. The controller determines a second focal position of the second image capture unit in accordance with a first focal position of the first image capture unit.
According to one further aspect of the present invention, an operating method of an image capture system is provided. The image capture system includes a first image capture unit, a second image capture unit and a controller. The first image capture unit includes a first field of view. The second image capture unit includes a second field of view. The operating method includes the following steps. Use the first image capture unit to perform a focusing procedure. During the focusing procedure or after the focusing procedure of the first image capture unit is completed, the controller determines a second focal position of a second lens in accordance with a first focal position of the first image capture unit, wherein a difference between the first field of view and the second field of view is larger than zero or less than zero.
The above and other aspects of the invention will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
Below, exemplary embodiments will be described in detail with reference to accompanying drawings. In addition to these detailed descriptions, the inventive concept may be widely implemented in other embodiments. Any alternatives, modifications and equivalent variations of the embodiments are included within the scope of the present invention which should be according to the appended claims hereinafter. 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 some or all of these specific details. In other instances, well-known steps and elements are not described in detail in order to avoid unnecessary restricts. The same or like elements are designated by the same or like reference numerals in the drawings. It should be particularly noticed that the drawings are to be regard as an illustrative sense. The illustrations may not be necessarily drawn to scale or refer to the actual amount, unless there is an additional description.
The image capture system 100 mainly comprises a first image capture unit 102, a second image capture unit 104, a controller 106, a driver 108 and a memory 110. The first image capture unit 102 comprises a first lens LE1 with a first field of view FOV1 and a first optical axis OX1. The second image capture unit 104 comprises a second lens LE2 with a second field of view FOV2 and a second optical axis OX2. The first lens LE1 and the second lens LE2 may respectively comprise one or more than one lens and/or one or more than one focusing lens group, and the focusing lens group may comprise one or more than one focusing lens. Moreover, the first lens LE1 and the second lens LE2 respectively have an equivalent focal length. The first optical axis OX1 and the second optical axis OX2 may be substantially parallel or intersected with an angle. The memory 110 may be built in the image capture system 100 or may comprise a removable memory card.
In one embodiment, the first field of view FOV1 and the second field of view FOV2 may be unequal. In other words, a difference between the first field of view FOV1 and the second field of view FOV2 is larger than zero or less than zero. In other words, the difference is an absolute value which comes from an angle of the second field of view FOV2 subtracted from an angle of the first field of view FOV1. That is, |(first field of view FOV1)−(second field of view FOV2)|>0.
In another embodiment, the first field of view FOV1 and the second field of view FOV2 have the angle values respectively selected from any two of the wide-angle range, standard range and telephoto range. In other words, the first field of view FOV1 may be u degrees, and the second field of view FOV2 may be v degrees. If u is a viewing angle within the standard range, v may be a viewing angle within the wide-angle range or the telephoto range, but the present invention is not limited thereto. If u is a viewing angle within the wide-angle range or the telephoto range, v may be a viewing angle within the standard range or the telephoto range, or may be a viewing angle within the standard range or the wide-angle range. Moreover, the wide-angle range may be from 60° to 90°, the standard range may be from 40° to 50°, and/or the telephoto range may be from 2° to 30°. However, the present invention is not limited thereto; u and/or v may also be any other unequal values.
In this embodiment, the first image capture unit 102 further comprises a first image sensor IS1 disposed at an imaging plane of the first lens LE1. The second image capture unit 104 further comprises a second image sensor IS2 disposed at an imaging plane of the second lens LE2. The first image sensor IS1 and/or the second image sensor IS2 may be a charge coupled device (CCD), a complementary metal-oxide semiconductor (CMOS) or any photoelectric element. In another embodiment, the first image sensor IS1 and the second image sensor IS2 may be different types in accordance with the first field of view FOV1 and the second field of view FOV2. For example, the range of the ratio of size of the first image sensor IS1 to the second image sensor IS2 may be between 100% and 50%, and the definition of the ratio of size includes but does not limit to the ratio of total area or the ratio of diagonal length of the first image sensor IS1 and the second image sensor IS2.
In one embodiment, after the focusing procedure of any one of the image capture units, the controller 106 may determine the location of the focusing lens group of another image capture unit(s) in accordance with the focal position of the focused image capture unit. For example, if the first image capture unit 102 completed the focusing procedure, the focusing lens group of the first lens LE1 may be locate at a first focal position p1. The controller 106 may determine a second focal position p2 of the focusing lens group of the second lens LE2 in accordance with a mapping function and the first focal position p1. The first focal position p1 and/or the second focal position p2 may be local parameters set of each focusing lens. The mapping function may include but not limit to at least one Mathematical set, at least one comparing table, at least one equation or at least one operation, or the mapping function may include at least two of the Mathematical set, the comparing table, the equation and the operation.
As shown in
For example, if the mapping function is a comparing table, the corresponding local relation at the first focal position p1 of the first lens LE1 and the second focal position p2 of the second lens LE2 is shown as the following Table 1.
As shown in Table 1, if a s2-meter-distant object shall be captured with the first focal position p2 at x2, the second focal position p2 may be looked up in Table 1 by the controller 106 at y2.
In one embodiment, the mapping function may comprise parameters such as object distance, focal length, image distance, Gaussian imaging formula and/or trigonometric function.
Moreover, in the mapping function, the relation of the first focal position p1 and the second focal position p2 may be one-to-one, one-to-many, many-to-one or many-to-many. In other words, one first focal position p1 may map to one or more second focal positions p2; one or more first focal positions p1 may map to one second focal position p2; or plural first focal positions p1 may map to plural second focal positions p2.
In one embodiment, the controller 106 may have a further confirmation while obtaining several focal positions from a one-to-many mapping function or a many-to-many mapping function, so as to ensure a better focal position. For example, the controller 106 further performs a focusing procedure in shorter range with the several focal positions for obtaining a better focal position.
In another embodiment, the controller 106 and/or the memory 110 may further store other parameters of the first lens LE1 and/or the second lens LE2 including, but not limiting to, equivalent focal length, relative object distance, image distance, viewing angle, etc. In addition, the controller 106 may also determine the first focal position p1 and/or the second focal position p2 in accordance with the above parameters.
Furthermore, the driver 108 may drive the focusing lens groups of the first lens LE1 and the second lens LE2 respectively to the first focal position p1 and the second focal position p2 in accordance with the control signal from the controller 106. The driver 108 may be an actuator.
Moreover, the image capture system 100 may further comprise a control interface 112. The control interface 112 may be a mechanically control interface or an electronically control interface, or a control interface combined with peripheral device. The control interface 112 may include, but not limit to, a touch interface, a button interface, a remote control interface and a wired or wireless interface.
In one embodiment, when the first lens LE1 has performed the focusing procedure, then the controller 106 asks the driver 108 to drive the focusing lens group of the second lens LE2 to the second focal position p2 in accordance with the mapping function and the finally first focal position p1. In another embodiment, while the first lens LE1 performs the focusing procedure, the controller 106 simultaneously asks the driver 108 to drive the focusing lens group of the second lens LE2 to the temporary second focal position p2 in accordance with the mapping function and the temporary first focal position p1 immediately. On the contrary, if the second lens LE2 performs the focusing procedure, the controller 106 may also let the focusing lens group of the first lens LE1 be driven to the finally/temporary first focal position p1 in accordance with the mapping function and the finally/temporary second focal position p2.
In another embodiment, under the premise of shooting by the first image capture unit 102, if a user or the image capture system 100 shall switch to the second image capture unit 104 for shooting, the controller 106 asks the driver 108 to drive the focusing lens group of the second lens LE2 to the second focal position p2 in accordance with the mapping function and the current first focal position p1. Conversely, it may also switch to the first image capture unit 102 from the second image capture unit 104 for shooting, and the driver 108 drives the first lens LE1 to the first focal position p1 in accordance with the mapping function and the current second focal position p2.
In other words, during the focusing procedure and/or the shooting process, the controller 106 may let the first image capture unit 102/the second image capture unit 104 actuate synchronously in accordance with the second focal position p2/the first focal position p1. Alternatively, after the focusing procedure or the shooting process of one image capture unit and/or the switching from one image capture module to the other image capture unit, the other image capture unit may be driven to its focal position.
After focusing procedure with one of the lenses LE1′-LEN′, the controller 106 may determine the focal positions of the other lenses in accordance with the focal position of the focused lens and the mapping function. Afterwards, the driver 108 may drive at least one focusing lens group of the other lenses to its focal position. In one embodiment, the controller 106 may also let the driver 108 drive the focusing lens group of the designated lens to its focal position in accordance with a signal from a control interface 112.
In contrast with
Moreover, the driver 410 may drive the optical switch 406 in accordance with the controller 106 or the command from the control interface (not shown), and the light beam that passed through the first lens LE1 or the second lens LE2 is imaged on the image sensor IS. Specifically, the optical switch 406 mainly comprises a first reflector M1 and a second reflector M2. At least one direction of the reflecting surface of the first reflector M1 and the second reflector M2 may be changed by the driver 410. The first reflector M1 and the second reflector M2 may be a prism or a plane mirror respectively, but the present invention in not limited thereto.
As shown in
Then refer to
After the focusing procedure with the first image capture unit 102 (or the second image capture unit 104), the controller 106 may compute and/or determine the second focal position p2 (or the first focal position p1) in accordance with the first focal position p1 (or the second focal position p2) and the mapping function.
As shown in
Referring to
In another embodiment, if the image sensor IS shall receive the light beam that passed through the second lens LE2, the locations and/or the angles of the first reflector M1 and/or the second reflector M2 may get to be changed respectively. Further, an angle θ2′ may exist between the reflecting surface of the second reflector M2 and the second optical axis OX2, and the angle θ1′ between the reflecting surface of the first reflector M1 and the first optical axis OX1 may be detach from the specific angle of θ1′ (i.e., the original value of the angle θ1′ may be changed).
After the focusing procedure with the first image capture unit 102 or the second image capture unit 104, the controller 106 may determine the second focal position p2 or the first focal position p1 in accordance with the focused first focal position p1 or the focused second focal position p2, and the driver 510 drives the focusing lens group. Wherein the driver may be driven by a command from the controller 106.
As shown in
After the specific time point ts, the second image capture unit 104 replaces the first image capture unit 102 to capture, and the second image capture unit 104 captures the image frame F2 at the second focal position p2. In this imaging period, the second lens LE2 has been located at the second focal position p2.
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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104131760 | Sep 2015 | TW | national |