Control unit, lens device, imaging apparatus, camera system, control method, and program

JP2024060479A5Pending Publication Date: 2025-10-20CANON KK
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Patent Information

Application Number
JP2022167878
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2022-10-19
Publication Date
2025-10-20

AI Technical Summary

Technical Problem

Existing imaging systems with tilt mechanisms do not effectively utilize the imaging plane phase difference focus detection method for focus detection.

Method used

A control device that acquires a tilt amount and focusable range information using optical information, allowing for appropriate focus detection through an imaging plane phase difference method, even with a tilt mechanism, by adjusting the optical system's tilt and shift amounts.

Benefits of technology

Enables accurate focus detection and improved user operability by adjusting the focusable range based on tilt and shift operations, ensuring proper focus across varying depths and angles.

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Abstract

To provide a control unit that can appropriately execute a focus detection operation of an imaging surface phase difference system when an imaging optical system comprises a tilt mechanism.SOLUTION: A control unit is used for a camera system comprising a lens device including an optical system and an imaging apparatus including an image pick-up device, and the control unit has: a first acquisition unit that acquires a tilt amount for tilting a principal surface of the optical system with respect to an imaging surface of the image pick-up device; and a second acquisition unit that, by using optical information including the tilt amount, acquires focusing capable information related to a focusing capable range in a display unit where focus detection can be performed.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present invention relates to a control device, a lens device, an imaging device, a camera system, a control method, and a program. [Background technology]

[0002] Conventionally, imaging optical systems having a tilt mechanism capable of focusing on an entire surface of a tilted object have been known. Patent Document 1 discloses a configuration for prohibiting focus detection by a phase difference focus detection method in which an image is formed on a phase difference detection sensor by a secondary optical system for focus detection according to the amount of tilt of the photographing lens. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 6-289284 Summary of the Invention [Problem to be solved by the invention]

[0004] However, Patent Document 1 does not disclose focus detection using a phase difference focus detection method that acquires a pair of pupil division signals using focus detection pixels formed on an image sensor, that is, focus detection using a so-called image plane phase difference method.

[0005] An object of the present invention is to provide a control device capable of appropriately performing focus detection using an image plane phase difference method when an imaging optical system has a tilt mechanism. [Means for solving the problem]

[0006] A control device as one aspect of the present invention is a control device used in a camera system equipped with a lens device including an optical system and an imaging device including an image sensor, and is characterized by having a first acquisition unit that acquires a tilt amount for tilting a principal surface of the optical system relative to an imaging surface of the image sensor, and a second acquisition unit that uses optical information including the tilt amount to acquire focusable information regarding a focusable range in which focus detection can be performed on a display unit. Effect of the Invention

[0007] According to the present invention, it is possible to provide a control device capable of appropriately performing focus detection operation using an image plane phase difference method when an imaging optical system has a tilt mechanism. [Brief description of the drawings]

[0008] [Figure 1] 1 is a block diagram of a camera system according to an embodiment of the present invention. [Diagram 2] 1 is an explanatory diagram of the Scheimpflug principle and the angle of light incident on an imaging element. [Diagram 3] 6 is an explanatory diagram of a setting of a movable range associated with TS driving in the first embodiment. FIG. [Figure 4] 11 is a flowchart showing a process for setting a movable range when a TS amount in the first embodiment is designated by a lens operation unit. [Diagram 5] 11 is a flowchart showing a process for setting a movable range when a TS amount is designated by a camera operation unit according to the first embodiment. [Figure 6] 10 is a flowchart showing a process for setting a movable range in a case where focusable information is acquired in the camera body of the first embodiment. [Figure 7] 13 is an explanatory diagram of a setting of a movable range associated with TS driving in the second embodiment. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0009] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the drawings, the same reference numerals are used to refer to the same components, and duplicated descriptions will be omitted.

[0010] 1 is a block diagram of a camera system 10 according to an embodiment of the present invention. The camera system 10 has a camera body (imaging device) 200 and a lens device 100 that is detachable from the camera body 200. Note that the lens device 100 may be configured integrally with the camera body 200.

[0011] The lens device 100 is mechanically and electrically connected to the camera body 200 via a mount (not shown). The lens device 100 receives power from the camera body 200 via an electrical terminal (not shown) provided on the mount. The lens device 100 uses the power received from the camera body 200 to control various actuators (described below) and a lens microcomputer 110. The camera body 200 communicates with the lens device 100 via a camera communication unit 202 provided on the mount, and controls the lens device 100 by transmitting control commands to the lens device 100.

[0012] The camera body 200 has an image sensor 201, a camera communication means 202, a display unit 206, a camera operation unit (operation unit) 207, and a camera microcomputer (control device) 209. The camera microcomputer 209 also has a TS acquisition unit 203, a signal processing unit 204, a camera calculation means 205, and a camera control means 208.

[0013] The image sensor 201 is a photoelectric conversion element such as a CMOS sensor or a CCD sensor, and photoelectrically converts an object image (optical image) formed by the imaging optical system in the lens device 100 to output an electric signal (analog signal). The image sensor 201 can perform focus detection (image sensor phase difference AF) by a phase difference focus detection method, that is, a so-called image sensor phase difference method, in which a pair of pupil division signals is obtained using focus detection pixels formed in the image sensor 201. The analog signal output from the image sensor 201 is converted into a digital signal by an A / D conversion circuit (not shown). The TS acquisition unit 203 acquires a tilt amount for tilting the optical axis of the optical system 101 (the main surface of the optical system 101) with respect to the imaging surface, and a shift amount for moving the optical axis of the optical system 101 in a direction perpendicular to the optical axis. In the following description, the tilt / shift amount is abbreviated as a TS amount. The TS acquisition unit 203 may be configured to acquire at least one of the tilt amount and the shift amount. This also applies to the input unit 105 described later.

[0014] The signal processing unit 204 performs various image processing on the digital signal from the A / D conversion circuit to generate a video signal. The signal processing unit 204 also generates, from the video signal, focus information indicating the contrast state of the subject image, i.e., the focus state of the optical system 101, and luminance information indicating the exposure state. The signal processing unit 204 also outputs the video signal to a display unit 206. The display unit 206 displays the video signal as a live view image used to check the composition, focus state, and the like. Furthermore, the signal processing unit 204 outputs the video signal to a recording processing unit (not shown). The recording processing unit stores the video signal in an external memory or the like as still images or moving image data.

[0015] The camera microcomputer 209 controls the camera body 200 in response to input from an image capture instruction switch and various setting switches included in the camera operation unit 207. The camera communication means 202 transmits a control command in response to the input from the camera operation unit 207 to the lens microcomputer 110.

[0016] The lens device 100 has an optical system (image capturing optical system) 101, a moving means 102, and a detecting means 103. The lens device 100 also has a lens communication means 107, a lens operation unit (operating unit) 108, a storage means 109, and a lens microcomputer (control device) 110. The lens device 100 also has a gyro sensor for detecting the attitude, etc.

[0017] The optical system 10 includes a first shift lens unit 101a and a second shift lens unit 101b. Although not shown in FIG. 1, the optical system 101 includes a focus lens for adjusting the focus, a zoom lens for changing the focal length, an aperture unit for adjusting the amount of light, and an image blur correction lens for correcting image blur. A moving unit 102 moves the lens group of the optical system 101. A detecting unit 103 detects lens information such as position information of each lens constituting the optical system 101. A lens communication unit 107 communicates with the camera body 200. A lens operating unit 108 is operated to specify the TS amount.

[0018] The storage unit 109 stores data (functions or coefficients) indicating the relationship between the optical information of the lens device 100, the tilt amount or shift amount, and focusable information related to the focusable range in which focus detection can be performed on the display unit 206. The focusable information depends on the TS amount, the incident angle of light incident on the imaging surface of the imaging element 201 (incident light angle to the imaging element 201), the performance of the imaging element 201, and the image height (focus frame position). The focusable range corresponds to a range in which focus detection can be performed on the imaging surface of the imaging element 201 by the imaging surface phase difference method. The above data may be stored in a storage unit (not shown) of the camera body 200. The lens calculation unit 104 or the camera calculation unit 205 acquires the incident light angle to the imaging element 201 or the focusable information by using the tilt amount or shift amount and the data stored in the storage unit 109.

[0019] The lens microcomputer 110 has a lens calculation means 104, an input means 105, and a lens control means 106. The lens calculation means 104 calculates focusable information or an incident light angle to the image sensor 201. The input means 105 acquires a TS amount. The lens control means 106 controls the optical system 101 according to the input TS amount.

[0020] The lens device 100 provides the TS amount to the input means 105 according to the operation amount of the lens operation unit 108. The lens operation unit 108 may be, for example, an electronic monitor, a rotary dial, or an ON / OFF switch, and may be any operation member that allows the user to input the TS amount or select the degree of the TS amount from multiple levels (large, medium, small, etc.). The TS amount may be determined by the user operating the camera operation unit 207. The input means 105 transmits the acquired TS amount to the lens control means 106. The lens control means 106 calculates a control amount for achieving a desired TS amount, and moves the first shift lens unit 101a and the second shift lens unit 101b independently of each other in a direction including a component perpendicular to the optical axis direction via the moving means 102. By moving the multiple shift lens units in this manner, an image plane tilt is generated by decentering the lens, and tilt driving and shift driving (TS driving) can be realized.

[0021] Here, the Scheimpflug principle and the angle of incident light to the image sensor 201 will be described with reference to Fig. 2. Fig. 2 is an explanatory diagram of the Scheimpflug principle and the angle of incident light to the image sensor 201. When the principal surface of the optical system 101 or the image sensor 201 is tilted, the in-focus range on the subject side is determined according to the Scheimpflug principle.

[0022] Fig. 2(a) shows an object plane 302a in focus when the principal plane 301a of the optical system 101 is not tilted with respect to the imaging plane 300a. Fig. 2(b) shows an object plane 302b in focus when the principal plane 301b of the optical system 101 is tilted with respect to the imaging plane 300b, with the principal point of the optical system 101 as the center of rotation (axis of rotation). Fig. 2(c) shows an example of light incident on the imaging plane 300b in Fig. 2(b).

[0023] As shown in FIG. 2(b), the Scheimpflug principle is that when the imaging plane 300b and the principal plane 301b of the optical system intersect at a point on a line, the subject plane 302b also passes through the same intersection point. In addition, if the center of rotation is located in front of or behind the principal point of the optical system 101, the optical axis changes, causing a composition shift. In this case as well, the Scheimpflug principle applies. Furthermore, as shown in FIG. 2(c), if the principal plane 301b of the optical system 101 is tilted, the angle of light incident on the imaging element 201 changes. Depending on the performance of the imaging element 201, the reliability of the imaging plane phase difference AF may decrease due to the influence of the angle of light incident on the imaging element 201, and focusing may not be possible.

[0024] When the subject to be photographed has depth, it is possible to focus from the front to the back of the subject by tilting the subject plane to follow the depth. When focusing on a deep part with a lens that does not have a tilt mechanism, it is common to narrow the aperture to deepen the depth of field, but with a tilt lens, it is possible to focus on the depth by tilting even if the aperture is open. Conversely, it is also possible to make the subject plane intersect with the subject's depth direction at an angle close to a right angle by tilting the main surface of the optical system 101 in the opposite direction to the inclination of the subject with depth. In this case, the range in focus can be made extremely narrow, so a diorama-like image can be obtained.

[0025] In this embodiment, the lens apparatus 100 realizes the TS drive by decentering the lens. However, the lens apparatus 100 may have a tilt mechanism that moves the lens barrel of the lens apparatus 100 itself to realize the TS drive. EXAMPLES

[0026] In this embodiment, when the focusable information or the angle of light incident on the image sensor 201 changes due to TS driving, the range within which the focus frame displayed on the display unit 206 can be moved (movable range) is set (changed).

[0027] FIG. 3 is an explanatory diagram of the setting of the movable range associated with TS driving. FIG. 3(a) shows the focusing frame 400a and the movable range 401a displayed on the display unit 206 when the principal surface of the optical system 101 is not tilted with respect to the imaging surface. FIG. 3(b) shows the focusing frame 400b and the movable range 401b displayed on the display unit 206 when the principal surface of the optical system 101 is tilted with respect to the imaging surface. In this embodiment, the movable range 401b is set to be the same as the focusable range. FIG. 3(b) also shows the non-focusable range (restricted range) 402b in which the focusing frame 400b cannot move (the movement of the focusing frame 400b is restricted), the revolving amount 403b, and the tilt amount 404b. The revolving amount is the amount of rotation around the optical axis, and is the direction in which tilt and shift are performed. The movable range 401b and the unfocusable range 402b can be obtained from the focusable information, and are shown as examples of ideal ranges in FIG.

[0028] The process of setting the movable range in this embodiment will be described below. Fig. 4 is a flowchart showing the process of setting the movable range when the TS amount is designated by the lens operation unit 108. This flow starts when the lens operation unit 108 is operated by the user.

[0029] In step S 101 , the lens microcomputer 110 acquires the TS amount from the input means 105 .

[0030] In step S 102 , the lens microcomputer 110 acquires the lens information from the detection means 103 .

[0031] In step S103, the lens control means 106 acquires a control amount of the moving means 102 for moving the first shift lens unit 101a and the second shift lens unit 101b so as to realize the input TS amount. The lens control means 106 acquires the control amount using the lens information acquired in step S102 and the optical information of the lens device 100 stored in the storage means 109.

[0032] In step S104, the lens control means 106 moves the lens group (the first shift lens unit 101a and the second shift lens unit 101b) of the optical system 101 via the movement means 102 based on the control amount acquired in step S103.

[0033] In step S105, the lens calculation means 104 first acquires the lens information and the optical information including the TS amount stored in the storage means 109. That is, the lens calculation means 104 functions as a first acquisition unit that acquires the TS amount. Next, the lens calculation means 104 acquires the focusable information using the lens information and the optical information including the TS amount. That is, the lens calculation means 104 functions as a second acquisition unit that acquires the focusable information. Here, the lens information or the optical information includes the zoom position (focal length), the focus position (subject distance), the aperture position (F value), and the position of the rotation axis of the optical system 101, but is not limited to these.

[0034] In step S106, the lens calculation unit 104 transmits the obtained focus possible information to the camera microcomputer 209 via the lens communication unit 107 and the camera communication unit 202.

[0035] In step S201, the camera calculation means 205 acquires focus possible information.

[0036] In step S202, the camera calculation means 205 acquires the movable range based on the focusable information.

[0037] In step S203, the camera calculation means 205 determines whether the current position of the focusing frame is outside the movable range. If it is determined that the current position of the focusing frame is outside the movable range, the camera microcomputer 209 executes the process of step S204. If it is determined that the current position of the focusing frame is not outside the movable range, that is, if it is determined that the current position of the focusing frame is within the movable range, the camera microcomputer 209 ends this flow.

[0038] In step S 204 , the camera microcomputer 209 changes the position of the focusing frame displayed on the display unit 206 based on the movable range acquired by the camera calculation means 205 .

[0039] 5 is a flowchart showing a process for setting a movable range when the TS amount is designated by the camera operation unit 207. This flow starts when the camera operation unit 207 is operated by the user.

[0040] In step S 211 , the camera microcomputer 209 acquires the amount of TS according to the operation of the camera operation unit 207 .

[0041] In step S212, the camera microcomputer 209 transmits the TS amount to the lens control means 106 via the camera communication means 202 and the lens communication means 107.

[0042] The processes in steps S213 to S216 are similar to those in steps S201 to S204 in FIG. 4, respectively, and therefore will not be described.

[0043] In step S 111 , the lens microcomputer 110 acquires the TS amount from the camera microcomputer 209 .

[0044] The processes in steps S112 to S116 are similar to those in steps S102 to S106 in FIG. 4, respectively, and therefore will not be described.

[0045] FIG. 6 is a flow chart showing the process of setting the movable range when focusable information is acquired by the camera body 200.

[0046] In step S 121 , the lens microcomputer 110 acquires the TS amount from the camera microcomputer 209 .

[0047] The process of step S122 is similar to the process of step S102 in FIG. 4, and therefore a description thereof will be omitted.

[0048] In step S123, the lens microcomputer 110 transmits the lens information acquired in step S122 to the camera microcomputer 209 via the lens communication unit 107 and the camera communication unit 202.

[0049] The processes in steps S124 and S125 are similar to those in steps S103 and S104 in FIG. 4, respectively, and therefore will not be described.

[0050] In step S 221 , the camera microcomputer 209 acquires the amount of TS according to the operation of the camera operation unit 207 by the user or the amount of TS acquired by the TS acquisition unit 203 .

[0051] In step S222, the camera microcomputer 209 transmits the TS amount acquired in step S221 to the lens microcomputer 110 via the camera communication unit 202 and the lens communication unit 107.

[0052] In step S223, the camera microcomputer 209 acquires the lens information from the lens microcomputer 110.

[0053] In step S224, the camera calculation means 205 acquires focus feasibility information using the lens information and the TS amount.

[0054] The processes in steps S225 to S227 are similar to those in steps S202 to S204 in FIG. 4, respectively, and therefore will not be described.

[0055] As described above, according to the configuration of this embodiment, the movable range is changed according to the change in focusability information caused by TS driving. This allows the user to easily focus on the intended subject within the movable range, improving the user's operability and making it possible to prevent a state in which focusing is not possible. The changed movable range may be displayed on the display unit 206.

[0056] In this embodiment, the camera calculation means 205 functions as a setting unit that sets the movable range, but the lens calculation means 104 may function as the setting unit. EXAMPLES

[0057] In the first embodiment, the movable range is the same as the focusable range, but in the present embodiment, a case will be described in which the movable range is a part of the focusable range.

[0058] In this embodiment, only the setting of the movable range associated with the TS drive, which is different from embodiment 1, will be described. The other configurations are the same as in embodiment 1, so the description will be omitted.

[0059] FIG. 7 is an explanatory diagram of the setting of the movable range associated with the TS drive. FIG. 7(a) shows the focusing frame 500a and the movable range 501a displayed on the display unit 206 when the principal surface of the optical system 101 is not tilted with respect to the imaging surface. FIG. 7(b) shows the focusing frame 500b and the movable range 501b displayed on the display unit 206 when the principal surface of the optical system 101 is tilted with respect to the imaging surface. FIG. 7(b) also shows the first unfocusable range 502b and the second unfocusable range 503b. Here, the first unfocusable range 502b is equivalent to the unfocusable range 402b in FIG. 3(b) and is an ideal range obtained from the focusability information. The second unfocusable range 503b is a range arbitrarily determined outside the first unfocusable range 502b, and may be determined from within an area of ​​the display unit 206 that has been equally divided, for example. The first unfocusable range 502b and the second unfocusable range 503b are the restricted ranges in which the focusing frame 500b of this embodiment cannot move (the movement of the focusing frame 500a is restricted). Note that Fig. 7B shows an example in which the second unfocusable range 503b is determined so that the movable range 501b outside the first unfocusable range 502b becomes the maximum rectangle.

[0060] The process of setting the movable range in this embodiment will be described below. Note that the process up to obtaining the focusable information using the TS amount is the same as in the first embodiment, so the description will be omitted.

[0061] The camera calculation means 205 acquires the movable range based on the focusable information. At this time, the movable range may be arbitrarily set as long as it is within an ideal range. The camera microcomputer 209 changes the position of the focusing frame displayed on the display unit 206 based on the movable range acquired by the camera calculation means 205.

[0062] As described above, according to the configuration of this embodiment, the movable range is changed according to the change in focusability information caused by TS driving. This allows the user to easily focus on the intended subject within the movable range, improving the user's operability and making it possible to prevent a state in which focusing is not possible. The changed movable range may be displayed on the display unit 206. (Other Examples) The present invention can also be realized by a process in which a program for implementing one or more of the functions of the above-mentioned embodiments is supplied to a system or device via a network or a storage medium, and one or more processors in a computer of the system or device read and execute the program. The present invention can also be realized by a circuit (e.g., ASIC) that implements one or more of the functions.

[0063] The disclosure of this embodiment includes the following configurations and methods. (Configuration 1) A control device used in a camera system including a lens device including an optical system and an imaging device including an imaging element, a first acquisition unit that acquires a tilt amount for tilting a principal plane of the optical system with respect to an imaging surface of the imaging element; and a second acquisition unit that acquires focusable information related to a focusable range in which focus detection can be performed on a display unit, using optical information including the tilt amount. (Configuration 2) 2. The control device according to configuration 1, wherein the optical information includes a shift amount for moving a principal plane of the optical system in a direction perpendicular to an optical axis of the optical system. (Configuration 3) 3. The control device according to configuration 1 or 2, wherein the optical information includes an angle of incidence of light incident on the imaging surface. (Configuration 4) The control device according to any one of configurations 1 to 3, further comprising a setting unit that uses the focusability information to set a limit range within which movement of the focus frame on the display unit is limited. (Configuration 5) 5. The control device according to configuration 4, wherein the setting unit uses the limited range to set a movable range within which the focusing frame displayed on the display unit can be moved. (Configuration 6) 6. The control device according to configuration 4 or 5, wherein the movable range is at least a part of the focusable range. (Configuration 7) The control device according to any one of configurations 1 to 3, further comprising a setting unit that uses the focusability information to set a movable range within which the focus frame displayed on the display unit can be moved. (Configuration 8) The control device according to any one of configurations 1 to 7, wherein the focusable range corresponds to a range in which focus detection can be performed on the imaging surface by an imaging surface phase difference method. (Configuration 9) A control device according to any one of configurations 1 to 8; and an optical system. (Configuration 10) 10. The lens apparatus according to claim 9, further comprising an operation unit for setting a tilt amount for tilting a principal plane of the optical system with respect to an imaging surface of the imaging element. (Configuration 11) The lens device is configured to be detachably attached to an imaging device, 11. The lens device according to configuration 9 or 10, wherein the focusability information is transmitted from the lens device to the imaging device. (Configuration 12) A control device according to any one of configurations 1 to 8; An imaging element; and a display unit that displays a focus frame. (Configuration 13) 13. The imaging apparatus according to configuration 12, further comprising an operation unit for setting a tilt amount for tilting a principal plane of the optical system with respect to an imaging surface of the image sensor. (Configuration 14) A control device according to any one of configurations 1 to 8; An optical system; An imaging element; and a display unit that displays a focus frame. (Method 1) A control method for use in a camera system including a lens device including an optical system and an imaging device including an imaging element, comprising: acquiring a tilt amount for tilting a principal plane of the optical system with respect to an imaging surface of the image sensor; and acquiring focusable information relating to a focusable range in which focus detection can be performed on a display unit, using optical information including the tilt amount. (Configuration 15) A program for causing a computer to execute the control method according to method 1.

[0064] Although the preferred embodiments of the present invention have been described above, the present invention is not limited to these embodiments, and various modifications and changes are possible within the scope of the gist of the present invention. [Explanation of symbols]

[0065] 100 Interchangeable lenses (lens devices) 101 Optical system 104 Lens calculation means (first acquisition unit, second acquisition unit) 110 Lens microcomputer (control means) 200 Camera body (imaging device) 201 Image sensor 205 Camera calculation means (first acquisition unit, second acquisition unit) 209 Camera microcomputer (control device) 10 Camera System

Claims

1. A control device used in an imaging system including an optical system, an imaging element, and a display unit, a first acquisition unit that acquires first information regarding a tilt amount when tilting a principal plane of the optical system with respect to an imaging surface of the imaging element; and a second acquisition unit that uses the first information to acquire second information regarding a focusable range on the display unit that corresponds to a range in which focus detection can be performed on the imaging surface.

2. The control device according to claim 1 , wherein the second acquisition unit acquires the second information using third information relating to a shift amount when the principal surface is moved in a direction perpendicular to an optical axis of the optical system.

3. 3 . The control device according to claim 1 , wherein the second acquisition unit acquires the second information using fourth information relating to an incident angle of light with respect to the imaging surface. 4 .

4. 3. The control device according to claim 1, further comprising a setting unit that uses the second information to set a limit range within which movement of the focusing frame on the display unit is limited.

5. The control device according to claim 4 , wherein the setting unit uses the limited range to set a movable range within which the focusing frame can be moved on the display unit.

6. 6. The control device according to claim 5, wherein the movable range is at least a part of the focusable range.

7. 3. The control device according to claim 1, further comprising a setting unit that uses the second information to set a movable range within which the focusing frame on the display unit can be moved.

8. The control device according to claim 1 or 2; a lens device comprising the optical system;

9. 9. The lens device according to claim 8, further comprising an operation unit for setting the tilt amount.

10. A lens device as described in claim 8, characterized in that it is detachable from an imaging device.

11. A lens device as described in Claim 10, characterized in that the second information is transmitted to the imaging device.

12. The control device according to claim 1 or 2; An imaging device comprising the imaging element and the display unit.

13. 12. The imaging apparatus according to claim 11, further comprising an operation unit for setting the tilt amount.

14. The lens device according to claim 8 ; An imaging system comprising the imaging element and the display unit.

15. A control method used in an imaging system including an optical system, an imaging element, and a display unit, acquiring first information regarding a tilt amount when tilting a principal plane of the optical system with respect to an imaging surface of the imaging element; and using the first information, acquiring second information regarding a focusable range on the display unit corresponding to a range in which focus detection can be performed on the imaging surface.

16. A program causing a computer to execute the control method according to claim 15.