Camera body

The camera body's dual communication units address the challenge of reliable data communication with accessories by enabling efficient bidirectional communication, even without specific terminals for receiving information about moving members with indicated communication specifications.

JP2025071318AInactive Publication Date: 2025-05-02NIKON CORP
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Patent Information

Application Number
JP2025028682
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2025-05-02
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing camera systems face challenges in reliable data communication between the camera body and attached accessories, such as interchangeable lenses, due to limitations in communication specifications and terminal configurations.

Method used

The camera body is designed with dual communication units for unidirectional and bidirectional communication with accessories, allowing it to receive communication specifications and independently manage signal output, even without terminals for receiving information about moving members with indicated communication specifications.

Benefits of technology

This solution enables efficient and reliable communication between the camera body and accessories, ensuring proper operation and data exchange, even in scenarios where traditional communication methods may fail.

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Abstract

To provide a camera body capable of proper data communication.SOLUTION: A camera body allows an accessory to be attached and can communicate with the accessory. The camera body includes: a first communication unit that can receive information about a movable mobile member included in the accessory from the accessory according to one or more communication specifications, and performs unidirectional communication from the accessory; and a second communication unit that performs bidirectional communication with the accessory, independent of the first communication unit. The second communication unit receives from the accessory a first value indicating a communication specification of the first communication unit, and the first communication unit receives information about the mobile member from the accessory according to the communication specification indicated by the first value, and does not include a terminal from which signals from the camera body are output.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present invention relates to a camera body. [Background technology]

[0002] Conventionally, there are camera systems in which accessories such as interchangeable lenses can be attached to the camera body, and proper data communication is required between the accessory and the camera body. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2016-85423 A Summary of the Invention

[0004] According to a first aspect, a camera body is capable of attaching an accessory and communicating with the accessory, and is capable of receiving information regarding a movable member that the accessory has from the accessory using one or more communication specifications, and is equipped with a first communication unit that performs one-way communication from the accessory and a second communication unit that performs two-way communication with the accessory independent of the first communication unit, wherein the second communication unit receives a first value from the accessory indicating the communication specification of the first communication unit, and the first communication unit receives information regarding the movable member from the accessory using the communication specification indicated by the first value, and does not have a terminal through which a signal is output from the camera body. [Brief description of the drawings]

[0005] [Figure 1] FIG. 1 illustrates an example of the configuration of a camera according to a first embodiment. [Diagram 2] FIG. 2 is a diagram for explaining command data communication in the camera according to the first embodiment. [Diagram 3]3A and 3B are diagrams illustrating electrical connections between a lens side connection portion and a body side connection portion in the first embodiment. [Figure 4] FIG. 2 is a diagram showing a schematic view of a mount of a camera body as viewed from the interchangeable lens side in the first embodiment. [Diagram 5] FIG. 2 is a diagram showing a schematic view of an interchangeable lens mount as viewed from the camera body side in the first embodiment. [Figure 6] FIG. 2 is a diagram for explaining an example of a generation according to the first embodiment; [Figure 7] FIG. 4 is a diagram showing an example of a generation determined in the camera according to the first embodiment. [Figure 8] FIG. 2 illustrates an example of processing and communication in the camera according to the first embodiment. [Figure 9] 5 is a diagram for explaining an example of a method for calculating a time Δt in the camera according to the first embodiment. FIG. [Figure 10] 4A to 4C are diagrams showing generation information transmitted and received between an interchangeable lens and a camera body in a camera according to a first embodiment, and generation information used in hotline communication. [Figure 11] 13A and 13B are diagrams showing generation information transmitted and received between an interchangeable lens and a camera body in a camera according to a second embodiment, and generation information used in hotline communication. [Figure 12] 13A to 13C are diagrams showing generation information transmitted and received between an interchangeable lens and a camera body in a camera according to a third embodiment, and generation information used in hotline communication. [Figure 13] 13A and 13B are diagrams showing generation information transmitted and received between an interchangeable lens and a camera body in a camera according to a fourth embodiment, and generation information used in hotline communication. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0006] (First embodiment) 1 is a diagram showing an example of the configuration of a camera 1, which is an example of an imaging device according to a first embodiment. The camera 1 is made up of a camera body 2 and an interchangeable lens 3, which is an attachable accessory. As the camera 1 is made up of the camera body 2 and the interchangeable lens 3, it is sometimes called a camera system.

[0007] The camera body 2 is provided with a body side mount section 201 to which the interchangeable lens 3 is attached. The interchangeable lens 3 is provided with a lens side mount section 301 to which the camera body 2 is attached. The lens side mount section 301 and the body side mount section 201 are provided with a lens side connection section 302 and a body side connection section 202, respectively. The lens side connection section 302 and the body side connection section 202 are each provided with a plurality of terminals, such as a terminal for a clock signal, a terminal for a data signal, and a terminal for power supply, which will be described later. The camera body 2 is provided with a battery (not shown) for supplying power to the respective control sections, drive sections, etc., provided in the camera body 2 and the interchangeable lens 3, which will be described later. The interchangeable lens 3 is detachably attached to the body side mount section 201 of the camera body 2 by the lens side mount section 301.

[0008] When the interchangeable lens 3 is attached to the camera body 2, a terminal provided on the body side connection part 202 is electrically connected to a terminal provided on the lens side connection part 302. This enables power to be supplied from the camera body 2 to the interchangeable lens 3 and communication between the camera body 2 and the interchangeable lens 3.

[0009] First, the configuration of the interchangeable lens 3 will be described in detail. The interchangeable lens 3 includes a photographing optical system 31, an aperture diaphragm 32, a lens driving unit 33, a lens position detection unit 34, an aperture driving unit 35, a lens memory 36, and a lens control unit 37. The photographing optical system 31 is illustrated as a single lens for the sake of simplicity, but includes multiple lenses including a focus lens (focus adjustment lens), and forms a subject image on the imaging surface of the imaging element 21 when attached to the camera body 2. For example, the photographing optical system 31 may include a zoom lens that changes the focal length and an anti-vibration lens (shake correction lens) that reduces image blur (camera shake) in addition to the focus lens (focus adjustment lens). In reality, the aperture diaphragm 32 is provided, for example, between the multiple lenses of the photographing optical system 31.

[0010] Each of the lens driver 33 and the aperture driver 35 is, for example, a stepping motor, an ultrasonic motor, a DC motor, or the like. The lens driver 33 controls the driving of the photographing optical system 31. For example, the lens driver 33 moves the focus lens forward and backward in the direction of the optical axis L based on a signal output from the lens controller 37 to change the imaging position of the subject image formed by the photographing optical system 31. The aperture driver 35 drives the aperture diaphragm 32 to change the aperture diameter based on a signal output from the lens controller 37. In addition, when the photographing optical system 31 includes a zoom lens or an anti-vibration lens, the lens driver 33 may be provided with a drive source for the zoom lens or the anti-vibration lens, and may drive the zoom lens or the anti-vibration lens, respectively. In this case, the lens driver 33 moves the zoom lens in the direction of the optical axis L based on a signal output from the lens controller 37. In addition, the lens driver 33 moves the anti-vibration lens in a direction intersecting the optical axis L based on a signal output from the lens controller 37. Furthermore, the lens driving unit 33 and the aperture driving unit 35 may include a driving circuit (such as a driving IC) (not shown) that drives a stepping motor, an ultrasonic motor, a DC motor, or the like.

[0011] The lens position detection unit 34 is composed of, for example, a photointerrupter and an encoder. The photointerrupter detects that a detected portion of the photographing optical system 31 (for example, a support portion of the focus lens, etc.) has passed a reference position (origin position) on the optical axis L, and outputs a detected signal to the lens control unit 37. The lens control unit 37 detects that the focus lens has passed the reference position (origin position) by the signal from the photointerrupter. The encoder uses a so-called linear encoder. The linear encoder generates two or more pulse signals each having a different phase, and detects the amount and direction of movement of the focus lens based on the two or more pulse signals. The detected amount of movement is output to the lens control unit 37 as a pulse signal. Alternatively, a magnetic encoder or the like may be used as the encoder to output a pulse signal according to the absolute position.

[0012] When a stepping motor is used as the lens driving unit 33, an encoder is not used and it is sufficient to simply detect that the original position has been passed by a photointerrupter. In this case, when a detected portion of the photographing optical system 31 (for example, a support portion of the focus lens, etc.) passes the photointerrupter of the lens position detection unit 34, a signal indicating that the photographing optical system 31 has passed the original position is output to the lens control unit 37. In order to drive the photographing optical system 31, a pulse signal corresponding to the amount of lens movement is output from the lens control unit 37 to a driving circuit of the stepping motor of the lens driving unit 33, and a pulse signal corresponding to the amount of lens movement (corresponding to the pulse signal output from the lens control unit 37 to the driving circuit of the lens driving unit 33) is output from the driving circuit of the lens driving unit 33 to the lens control unit 37.

[0013] In addition, when the shooting optical system 31 includes a zoom lens or an anti-vibration lens, the lens position detection unit 34 detects the amount of movement of the zoom lens and the amount of movement of the anti-vibration lens, and generates a signal representing the amount of movement or focal length of the zoom lens, or a signal representing the amount of movement or movement position of the anti-vibration lens.

[0014] The lens control unit 37 is configured with a processor such as a CPU or FPGA, and memories such as a ROM or RAM, and controls each unit of the interchangeable lens 3 based on a control program. The lens control unit 37 drives and controls the photographing optical system 31 and the aperture diaphragm 32 using the lens drive unit 33 and the diaphragm drive unit 35 based on a control signal input from the body control unit 27 of the camera body 2 via the body side connection unit 202 and the lens side connection unit 302. For example, when a control signal indicating the movement direction, movement amount, movement speed, etc. of the focus lens is input from the body control unit 27, the lens control unit 37 sends an instruction to drive and control the lens drive unit 33 based on the control signal.

[0015] Furthermore, the lens control unit 37 detects the positions of the focus lens, zoom lens, etc., and transmits them to the camera body 2. When a stepping motor is used as the lens driving unit 33, the lens control unit 37 transmits the driving amount of the focus lens to the lens driving unit 33. A driving circuit (not shown) of the lens driving unit 33 drives the stepping motor. When the stepping motor is driven, a pulse signal corresponding to the driving amount is output from the driving circuit of the lens driving unit 33 to the lens control unit 37. The lens control unit 37 detects that the focus lens or zoom lens has passed a reference position (origin position) from the output of the photointerrupter of the lens position detection unit 34, and further counts and accumulates pulse signals input from the encoder and pulse signals corresponding to the driving amount of the stepping motor to generate information corresponding to the movement amount of the focus lens (pulse position information). The generated information (pulse position information) corresponding to the amount of movement of the focus lens is transmitted to the camera body 2 by hotline communication, which will be described later.

[0016] The lens memory 36 is composed of, for example, a non-volatile storage medium. Various information related to the interchangeable lens 3 is stored in the lens memory 36. For example, the lens memory 36 stores the focal length and maximum aperture value of the interchangeable lens, and information indicating communication specifications compatible with the interchangeable lens 3 when communicating with the camera body 2. This information indicating the communication specifications is called the generation of the interchangeable lens, which will be described later. The generation may also be called generation information. The generation information of the interchangeable lens 3 is called lens-side generation information. Writing of data to the lens memory 36 and reading of data from the lens memory 36 are controlled by the lens control unit 37. The lens-side generation information may be stored in an internal memory of the lens control unit 37.

[0017] Furthermore, the lens control unit 37 has a first lens communication unit 38 and a second lens communication unit 39. Although details will be described later, the first lens communication unit 38 performs command data communication with the first body communication unit 28 via the lens side connection unit 302 and the body side connection unit 202. The second lens communication unit 39 performs hotline communication with the second body communication unit 29 via the lens side connection unit 302 and the body side connection unit 202.

[0018] Next, a detailed description will be given of the configuration of the camera body 2. The camera body 2 comprises an image sensor 21, a body memory 22, a display unit 23, an operation unit 24, a power supply unit 26, and a body control unit 27. The body control unit 27 is made up of a processor such as a CPU or FPGA, and memories such as a ROM or RAM, and controls each unit of the camera 1 based on a control program.

[0019] The body control unit 27 generates image data by performing a predetermined image processing on the signal output from the image sensor 21. The image processing includes known image processing such as tone conversion processing, color interpolation processing, and edge enhancement processing. The body control unit 27 also generates control signals for controlling the driving of the photographing optical system 31 (the driving of the focus lens, the driving of the zoom lens, and the driving of the vibration reduction lens) and the driving of the aperture diaphragm 32.

[0020] The body control unit 27 also performs processing required for automatic focus adjustment (AF) of the photographing optical system 31. Specifically, the body control unit 27 performs focus detection processing using a phase difference detection method. The image sensor 21 has focus detection pixels that are arranged in place of some of the imaging pixels that output imaging signals, and in which a part of the photoelectric conversion unit in the pixel is shielded by a light-shielding film. The body control unit 27 calculates the defocus amount using a phase difference detection method, using the focus detection signal output from the focus detection pixel. The body control unit 27 outputs a signal related to the calculated defocus amount to the lens control unit 37. The lens control unit 37 drives the focus lens according to the defocus amount. Note that the image sensor 21 may have a configuration in which a single pixel has multiple photoelectric conversion units and includes a pixel for both imaging and focus detection that outputs an imaging signal and a focus detection signal.

[0021] Further, the body control unit 27 can perform focus detection processing by contrast detection method instead of or in addition to the focus detection processing by phase difference detection method. That is, the body control unit 27 sequentially calculates the contrast evaluation value of the subject image based on the signal from the image sensor 21 while moving the focus lens of the photographing optical system 31 in the direction of the optical axis L. The body control unit 27 associates the position of the focus lens with the contrast evaluation value using the position information (pulse position information) of the focus lens transmitted from the interchangeable lens 3. Then, the body control unit 27 calculates the in-focus position of the focus lens. The body control unit 27 outputs a signal corresponding to the calculated in-focus position to the lens control unit 37. The lens control unit 37 moves the focus lens to the in-focus position.

[0022] The power supply unit 26 has a power source and supplies power to the inside of the camera body 2 and the interchangeable lens 3. The power supply unit 26 is connected to the body side connection unit 202 and the body control unit 27. The power supply unit 26 further supplies power to the lens control unit 37 via the body side connection unit 202 and the lens side connection unit 302.

[0023] The imaging element 21 is, for example, a CMOS image sensor or a CCD image sensor. The imaging element 21 receives a light beam that has passed through the photographing optical system 31 and captures an image of a subject. The imaging element 21 has a plurality of pixels, each having a photoelectric conversion unit, arranged in a two-dimensional plane in the row and column directions. The photoelectric conversion unit is, for example, constituted by a photodiode (PD). The imaging element 21 photoelectrically converts the received light to generate a signal, and outputs the generated signal to the body control unit 27.

[0024] The body memory 22 is composed of, for example, a non-volatile storage medium. The body memory 22 stores programs for controlling the camera body 2 and the camera 1. The body memory 22 also stores information indicating the generation of the camera body, which will be described later, i.e., information indicating the communication specifications that the camera body 2 can support when communicating with the interchangeable lens 3. This information indicating the communication specifications is called the generation of the camera body, which will be described later. The generation may also be called generation information. The generation information of the camera body 2 is called body side generation information. Writing data to the body memory 22 and reading data from the body memory 22 are controlled by the body control unit 27. Note that image data may be stored in the body memory 22 or in another storage medium. The body side generation information may also be stored in an internal memory of the body control unit 27.

[0025] The display unit 23 displays an image based on image data, information related to shooting such as a shutter speed and an aperture value, a menu screen, etc. The operation unit 24 includes various setting switches such as a release button and a power switch, and outputs operation signals according to the respective operations to the body control unit 27.

[0026] The body control unit 27 also has a first body communication unit 28 and a second body communication unit 29. As will be described later, the first body communication unit 28 performs command data communication with the first lens communication unit 38 via the body side connection unit 202 and the lens side connection unit 302. The second body communication unit 29 also performs hotline communication with the second lens communication unit 39 via the body side connection unit 202 and the lens side connection unit 302.

[0027] Next, command data communication will be described. The first lens communication unit 38 and the first body communication unit 28 perform full-duplex communication via the respective terminals of the lens side connection unit 302 and the body side connection unit 202. As will be described later with reference to Fig. 2, the first lens communication unit 38 and the first body communication unit 28 transmit and receive four types of signals, for example, a RDY signal, a CLK signal, a DATAB signal, and a DATAL signal.

[0028] The RDY signal is a signal indicating whether communication with the first lens communication unit 38 is possible, and the first lens communication unit 38 switches between a high level (H level) and a low level (L level). The RDY signal is a signal transmitted (output) to the first body communication unit 28. The CLK signal is a camera body side clock signal transmitted from the first body communication unit 28 to the first lens communication unit 38. The DATAB signal is a data signal transmitted from the first body communication unit 28 to the first lens communication unit 38. The DATAL signal is a data signal transmitted from the first lens communication unit 38 to the first body communication unit 28.

[0029] Next, information (commands, data) transmitted and received in command data communication will be described. For example, data on the optical characteristics (maximum F value, aberration, etc.) of the photographing optical system 31, data on the infinity position and close position of the focus lens, lens side generation information, response contents (response data) such as the execution status of initialization in response to an initialization command from the camera body 2 described later, etc. are transmitted from the interchangeable lens 3 to the camera body 2 by the DATAL signal. On the other hand, for example, generation information indicating communication specifications used for hotline communication described later, control commands (commands) and control contents (control data) instructing the driving of the focus lens, anti-vibration lens, and zoom lens of the photographing optical system 31, the driving of the aperture diaphragm 32, lens initialization, etc. are transmitted from the camera body 2 to the interchangeable lens 3 by the DATAB signal.

[0030] Fig. 2 is a diagram for explaining command data communication in the imaging device according to the first embodiment. Fig. 2 shows a schematic example of a timing chart of command data communication between the lens control unit 37 and the body control unit 27, the first lens communication unit 38, and the first body communication unit 28. The first lens communication unit 38 transmits and receives signals to and from the first body communication unit 28 using a RDY signal, a CLK signal, a DATAB signal, and a DATAL signal.

[0031] The signal level of the RDY signal indicates whether or not the first lens communication unit 38 is in a state where communication is possible. When the first lens communication unit 38 is in a state where communication is possible with the first body communication unit 28, the lens control unit 37 sets the signal level of the RDY signal to a low level (L level, for example, a ground voltage or a reference voltage). When the first lens communication unit 38 is in a state where communication is not possible with the first body communication unit 28, the lens control unit 37 sets the signal level of the RDY signal to a high level (H level, for example, a power supply voltage). The first body communication unit 28 detects the signal level of the RDY signal, and the body control unit 27 determines whether or not the first lens communication unit 38 is in a state where communication is possible.

[0032] At time t1 when the RDY signal is at a low level (L level), the first body communication unit 28 outputs (transmits) a clock signal (CLK signal) to the first lens communication unit 38. That is, the first body communication unit 28 switches the signal level of the CLK signal, which was a predetermined voltage (e.g., high level, power supply voltage) until time t1, between a high level and a low level (e.g., ground voltage, reference voltage) at a predetermined cycle after time t1. In addition, in the period from time t1 to time t2, the first body communication unit 28 transmits a command packet 41 by a DATAB signal in synchronization with the rising or falling edge of the CLK signal.

[0033] When the RDY signal is at a high level (H level), the first lens communication unit 38 is not accepting communication, and in this state the first body communication unit 28 does not transmit commands or data to the first lens communication unit 38. In this case, the first body communication unit 28 fixes the signal levels of the CLK signal and the DATAB signal to a predetermined voltage (for example, a high level).

[0034] The lens control unit 37 checks the contents of the command packet 41 input from the first body communication unit 28 using a checksum or the like, and determines whether the command packet 41 has been received normally. If the first lens communication unit 38 has received the command packet 41 normally, the lens control unit 37 sets the RDY signal to high level at time t3. In addition, the lens control unit 37 performs a first process 51 according to the contents of the command packet 41. When the first process 51 is completed, the lens control unit 37 sets the RDY signal to low level at time t4. Note that if the first lens communication unit 38 has not received the command packet 41 normally, the lens control unit 37 keeps the RDY signal at low level and notifies the first body communication unit 28 that the command packet 41 has not been received normally.

[0035] When the first body communication unit 28 detects that the RDY signal has changed from high to low, it starts outputting the CLK signal again at time t5. Furthermore, in the period from time t5 to time t6, the first body communication unit 28 transmits a data packet 42 by a DATAB signal in synchronization with the rising or falling edge of the CLK signal. Furthermore, in the same period from time t5 to time t6, the first lens communication unit 38 transmits a data packet 43 by a DATAL signal in synchronization with the rising or falling edge of the CLK signal input from the first body communication unit 28.

[0036] When the first lens communication unit 38 successfully receives the data packet 42 from the first body communication unit 28, the lens control unit 37 sets the RDY signal to high level at time t7. The lens control unit 37 performs a second process 52 according to the contents of the data packet 42. When the second process 52 is completed, the lens control unit 37 sets the RDY signal to low level at time t8.

[0037] The contents indicated by the command packet 41 and the data packet 42 output from the first body communication unit 28 described above are, for example, a request for initialization of the interchangeable lens 3, a request for specific data, an instruction to drive a driven member (e.g., a focus lens, an aperture diaphragm, etc.) of the photographic optical system 31, an instruction to start hotline communication by the second lens communication unit 39, etc. The lens control unit 37 performs, as the first process 51 or the second process 52, a process of generating the requested specific data, a process of driving a driven member, etc. The lens control unit 37 transmits, as the data packet 43, for example, flag data indicating completion of initialization of the interchangeable lens 3, data indicating optical characteristics, data indicating completion of driving of the instructed driven member, etc.

[0038] Next, hotline communication will be described in detail. The second lens communication unit 39 and the second body communication unit 29 shown in Fig. 1 perform one-way communication from the interchangeable lens 3 to the camera body 2 via the respective terminals of the lens side connection unit 302 and the body side connection unit 202. The second lens communication unit 39 transmits two types of signals, for example, an HCLK signal and an HDATA signal, to the second body communication unit 29.

[0039] The HCLK signal is a clock signal on the interchangeable lens side transmitted from the second lens communication unit 39 to the second body communication unit 29. The HDATA signal is a data signal transmitted from the second lens communication unit 39 to the second body communication unit 29, and is information relating to the lens positions of the focus lens, zoom lens, and anti-vibration lens described above, and information relating to the aperture diameter of the aperture diaphragm 32. The second lens communication unit 39 transmits the HDATA signal to the second body communication unit 29 in synchronization with the periodic rising or falling edges of the HCLK signal. In this way, the second lens communication unit 39 and the second body communication unit 29 perform unidirectional communication in which a clock signal and a data signal are transmitted from the second lens communication unit 39 to the second body communication unit 29.

[0040] The period of the CLK signal used for command data communication is equal to or shorter than the period of the HCLK signal used for hotline communication. The frequency of the CLK signal output from the camera body 2 to the interchangeable lens 3 is, for example, 8 MHz, and the frequency of the HCLK signal output from the interchangeable lens 3 to the camera body 2 is, for example, 2.5 MHz to 8 MHz.

[0041] Next, the electrical connection between the lens side connection unit 302 and the body side connection unit 202 will be described. Fig. 3 is a diagram showing a schematic diagram of the electrical connection between the lens side connection unit 302 and the body side connection unit 202. The body side connection unit 202 has a LDET(B) terminal, a VBAT(B) terminal, a PGND(B) terminal, a V33(B) terminal, a GND(B) terminal, a RDY(B) terminal, a DATAB(B) terminal, a CLK(B) terminal, a DATAL(B) terminal, an HCLK(B) terminal, and an HDATA(B) terminal. These 11 body side terminals in total are collectively referred to as a body side terminal group.

[0042] The LDET(B) terminal is a terminal used for detecting attachment / detachment of the interchangeable lens 3. The LDET(B) terminal is connected to the body control unit 27 via a resistor R2. A power supply V33 supplied from the power supply unit 26 via a resistor R1 is connected between the resistor R2 and the body control unit 27, and the LDET(B) terminal is pulled up. The VBAT(B) terminal, PGND(B) terminal, V33(B) terminal, and GND(B) terminal are terminals of the power supply system on the camera body side connected to the power supply unit 26. In FIG. 3, the direction of the supplied power is indicated by an arrow. The VBAT(B) terminal is a terminal used to supply power (supply power supply voltage) to the drive system of the interchangeable lens 3. The lens drive unit 33 of the interchangeable lens 3 is driven by the power supplied via the VBAT(B) terminal. The voltage applied by the power supply unit 26 to the VBAT(B) terminal is a maximum of about 10V. The PGND(B) terminal is a ground terminal corresponding to the VBAT(B) terminal, and serves as a ground potential (ground) for the power supply voltage of the drive system supplied by the VBAT(B) terminal.

[0043] The V33(B) terminal is a terminal used for supplying power (supplying power supply voltage) to the circuit system of the interchangeable lens 3. The lens control unit 37 and other components are operated by power supplied from the power supply unit 26 via the V33(B) terminal. Each component, such as the lens control unit 37, operates with a smaller voltage and current than the lens drive unit 33. The voltage that the power supply unit 26 applies to the V33(B) terminal is a maximum of approximately 3.3V. The GND(B) terminal is a ground terminal corresponding to the V33(B) terminal, and serves as the ground potential (ground) of the power supply voltage supplied to the circuit system by the V33(B) terminal.

[0044] The RDY(B) terminal, the DATAB(B) terminal, the CLK(B) terminal, the DATAL(B) terminal, the HCLK(B) terminal, and the HDATA(B) terminal are communication terminals connected to the body control unit 27, and transmit and receive the RDY signal, the CLK signal, the DATAB signal, the DATAL signal, the HCLK signal, and the HDATA signal between the corresponding RDY(L) terminal, the DATAB(L) terminal, the CLK(L) terminal, the DATAL(L) terminal, the HCLK(L) terminal, and the HDATA(L) terminal (described later). The RDY(B) terminal, the DATAB(B) terminal, the CLK(B) terminal, and the DATAL(B) terminal are connected to the first body communication unit 28 of the body control unit 27, and are used for command data communication as described above. The HCLK(B) terminal and the HDATA(B) terminal are connected to the second body communication unit 29, and are used for hotline communication as described above. In FIG. 3, the flow of signals is indicated by arrows. The potential of the RDY(B) terminal indicates whether the interchangeable lens 3 is capable of command data communication or not. The DATAB (B) terminal is a terminal through which a signal is output toward the interchangeable lens 3. The CLK (B) terminal is a terminal through which a clock signal from the camera body side is output toward the interchangeable lens 3.

[0045] The DATAL(B) terminal is a terminal to which a data signal from the interchangeable lens 3 is input. The HCLK(B) terminal is a terminal to which the interchangeable lens side clock signal from the interchangeable lens 3 is input. The HDATA(B) terminal is a terminal to which a data signal from the interchangeable lens 3 is input.

[0046] The lens side connection unit 302 has an LDET(L) terminal, a VBAT(L) terminal, a PGND(L) terminal, a V33(L) terminal, a GND(L) terminal, a RDY(L) terminal, a DATAB(L) terminal, a CLK(L) terminal, a DATAL(L) terminal, an HCLK(L) terminal, and an HDATA(L) terminal. These 11 lens side terminals are collectively referred to as the lens side terminal group.

[0047] When the interchangeable lens 3 is attached to the camera body 2, the body side terminal and the lens side terminal are electrically connected as shown by the dashed lines in Fig. 3. Specifically, the LDET(B) terminal is connected to the LDET(L) terminal, the VBAT(B) terminal is connected to the VBAT(L) terminal, the PGND(B) terminal is connected to the PGND(L) terminal, the V33(B) terminal is connected to the V33(L) terminal, the GND(B) terminal is connected to the GND(L) terminal, the RDY(B) terminal is connected to the RDY(L) terminal, the DATAB(B) terminal is connected to the DATAB(L) terminal, the CLK(B) terminal is connected to the CLK(L) terminal, the DATAL(B) terminal is connected to the DATAL(L) terminal, the HCLK(B) terminal is connected to the HCLK(L) terminal, and the HDATA(B) terminal is connected to the HDATA(L) terminal. The role of each lens side terminal corresponds to the role of the body side terminal with which it comes into contact.

[0048] The LDET(L) terminal is grounded via a resistor R3. When the LDET(L) terminal comes into contact with the LDET(B) terminal, the potential of the LDET(B) terminal is pulled down. The VBAT(L) terminal and the PGND(L) terminal are connected to the lens driver 33 and the aperture driver 35 via the lens controller 37. A so-called bypass capacitor C1 is connected between the VBAT(L) terminal and the PGND(L) terminal. The V33(L) terminal and the GND(L) terminal are connected to the lens controller 37. A bypass capacitor C2 is connected between the V33(L) terminal and the GND(L) terminal. The RDY(L) terminal, the DATAB(L) terminal, the CLK(L) terminal, the DATAL(L) terminal, the HCLK(L) terminal, and the HDATA(L) terminal are each connected to the lens controller 37. The RDY(L), DATAB(L), CLK(L), and DATAL(L) terminals are connected to a first lens communication unit 38 of the lens control unit 37 and are used for command data communication as described above. The HCLK(L) and HDATA(L) terminals are connected to a second lens communication unit 39 and are used for hotline communication as described above.

[0049] The communication in which the control contents (control data) from the body control unit 27 and the response contents (response data) from the lens control unit 37 are sent and received in parallel after a control command (command) from the body control unit 27 is sent to the lens control unit 37 of the interchangeable lens 3 is called command data communication. The command data communication is full-duplex communication. The command data communication is performed by digital data communication using the RDY(B) terminal, RDY(L) terminal, DATAB(B) terminal, DATAB(L) terminal, CLK(B) terminal, CLK(L) terminal, DATAL(B) terminal, and DATAL(L) terminal via the first body communication unit 28 and the first lens communication unit 38.

[0050] The body control unit 27 transmits various control commands and control contents to the interchangeable lens 3 by command data communication via the first body communication unit 28 and the first lens communication unit 38, and transmits and receives various information between the interchangeable lens 3 and the interchangeable lens 3 by receiving response contents from the interchangeable lens 3. The control command here is, for example, a transmission command for lens information. The various information received from the interchangeable lens 3 is, for example, model information of the interchangeable lens 3, information indicating optical characteristics such as the focal length of the imaging optical system 31, and the like. The various information transmitted to the interchangeable lens 3 is, for example, control contents such as the driving amount of the lens and model information of the camera body 2, and the like. The control command also includes a driving command for a focus lens (not shown). The lens control unit 37 receives various control commands from the body control unit 27, receives various information from the body control unit 27, and transmits various information to the body control unit 27 by command data communication.

[0051] 4(a) is a diagram showing a schematic view of the mount of the camera body 2 as seen from the interchangeable lens 3 side. The body side mount section 201 has an annular reference surface with a certain width. The body side mount section 201 further has a first body side claw section 129a, a second body side claw section 129b, a third body side claw section 129c, and a fourth body side claw section 129d. In the following description, these four claw sections are collectively referred to as the body side claw sections 129.

[0052] The body side claws 129 are arranged at intervals from each other along the circular opening of the body side mount part 201. As shown in Fig. 4(a), the body side first claw 129a is arranged at the upper right position, the body side second claw 129b at the upper left position, the body side third claw 129c at the lower left position, and the body side fourth claw 129d at the lower right position.

[0053] The circumferential lengths of the first body side claw portion 129a to the fourth body side claw portion 129d are different from one another. Specifically, the first body side claw portion 129a is the longest, the third body side claw portion 129c is the second longest, the fourth body side claw portion 129d is the third longest, and the second body side claw portion 129b is the shortest.

[0054] The body side claw 129 protrudes from the body side mount 201 toward the center of the opening, and there are portions on the circumference of the opening where the body side claw 129 is present and portions where the body side claw 129 is not present. In the following description, the space 140a between the body side first claw 129a and the body side fourth claw 129d on the circumference of the opening of the body side mount 201 is referred to as the body side first insertion / removal portion 140a. Similarly, the space 140b between the body side first claw 129a and the body side second claw 129b is referred to as the body side second insertion / removal portion 140b, the space 140c between the body side second claw 129b and the body side third claw 129c is referred to as the body side third insertion / removal portion 140c, and the space 140d between the body side third claw 129c and the body side fourth claw 129d is referred to as the body side fourth insertion / removal portion 140d. These four body side insertion / removal parts are collectively referred to as body side insertion / removal parts 140.

[0055] A body side connection part 202 is provided inside the opening of the body side mount part 201. The body side connection part 202 has an arc shape corresponding to the shape of the annular body side mount part 201. The body side connection part 202 is arranged in parallel with the opening of the body side mount part 201 at the top of the opening of the body side mount part 201, and is preferably arranged in the center of the top as shown in FIG. 4(a). The body side connection part 202 has a plurality of body side terminals as described above. The body side terminals are arranged in a line in an arc shape on the body side connection part 202 inside the body side mount part 201. The body side terminals are eleven terminals arranged from the right side as shown in FIG. 4(a), including HDATA(B), HCLK(B), DATAL(B), CLK(B), DATAB(B), RDY(B), GND(B), V33(B), PGND(B), VBAT(B), and LDET(B) on the leftmost side. The body side terminals are each a conductive pin. The body side terminals are pushed in the -Z direction (FIG. 1) by a spring or the like (not shown). The -Z direction is the direction toward the interchangeable lens 3 attached to the camera body 2, that is, the direction toward the subject.

[0056] The body side mount part 201 has a hole through which the lock pin 142 passes. The hole through which the lock pin 142 passes is located at the upper right of the body side fourth claw part 129d. That is, on the annular reference plane of the body side mount part 201, the hole of the lock pin 142 is located between the area in which the body side fourth claw part 129d exists within the opening of the body side mount part 201 and the area in which the body side first claw part 129a exists. The lock pin 142 is pressed in the −Z direction (FIG. 1) by a spring or the like (not shown).

[0057] 4B is a schematic diagram of the mount of the camera body 2 with the body side mount section 201 removed, viewed from the interchangeable lens 3 side. A first leaf spring 141a is provided at a position corresponding to the body side first claw 129a (the rear side of the body side first claw 129a in the +Z direction). Similarly, a second leaf spring 141b is provided at a position corresponding to the body side second claw 129b (the rear side of the body side second claw 129b), a third leaf spring 141c is provided at a position corresponding to the body side third claw 129c (the rear side of the body side third claw 129c), and a fourth leaf spring 141d is provided at a position corresponding to the body side fourth claw 129d (the rear side of the body side fourth claw 129d). In the following description, these four leaf springs are collectively referred to as leaf spring 141. The leaf spring 141 presses a lens side claw portion, which will be described later, in the +Z direction (toward the camera body 2).

[0058] FIG. 5 is a diagram showing a schematic view of the mount of the interchangeable lens 3 as seen from the camera body 2 side. The interchangeable lens 3 includes the lens side mount portion 301 and the lens side connection portion 302 described above in FIG. 1. The lens side mount portion 301 has an annular reference surface having a certain width. When the interchangeable lens 3 is attached to the camera body 2, the annular reference surface of the lens side mount portion 301 comes into contact with the annular reference surface of the body side mount portion 201 described above. Furthermore, the lens side mount portion 301 has a cylindrical portion extending in the optical axis direction on its inner circumference. The lens side mount portion 301 has a lens side first claw portion 139a, a lens side second claw portion 139b, a lens side third claw portion 139c, and a lens side fourth claw portion 139d spaced apart from one another along the outer circumference of the cylindrical portion. In the following description, these four claw portions are collectively referred to as the lens side claw portion 139.

[0059] The lens side claws 139 are provided in a direction protruding from the outer periphery of the cylindrical part of the lens side mount part 301 towards the outside of the mount (in a radial direction from the optical axis L). As shown in Fig. 5, the first lens side claw 139a is located at the upper left position, the second lens side claw 139b at the upper right position, the third lens side claw 139c at the lower right position, and the fourth lens side claw 139d at the lower left position. Behind the lens side claws 139 (the reference surface side of the lens side mount part 301), there is a space into which the corresponding body side claws 129 enter when the interchangeable lens 3 is attached to the camera body 2.

[0060] A lens side connection part 302 is provided inside the opening of the lens side mount part 301. The lens side connection part 302 has an arc shape corresponding to the shape of the ring-shaped lens side mount part 301. The lens side connection part 302 is arranged in the upper part of the opening of the lens side mount part 301 in parallel with the opening of the lens side mount part 301, and is preferably arranged in the center of the upper part as shown in FIG. 5. The lens side connection part 302 has a plurality of lens side terminals as described above. The lens side terminals are arranged in a line in an arc shape on the lens side connection part 302 inside the lens side mount part 301. The lens side terminals are arranged in eleven terminals, LDET(L), VBAT(L), PGND(L), V33(L), ​​GND(L), RDY(L), DATAB(L), CLK(L), DATAL(L), HCLK(L), and HDATA(L), from the right side as shown in FIG. 5. The lens side terminals are arranged so that their conductive contact surfaces are exposed in the +Z direction (FIG. 1). The +Z direction is the direction in which subject light that has passed through the photographing optical system 31 travels toward the image sensor 21.

[0061] The lens side mount section 301 has a lock pin receiving section 143. The lock pin receiving section 143 is located at the upper left of the lens side fourth claw section 139d as shown in Fig. 5. In other words, the lock pin receiving section 143 is located between a portion of the lens side mount section 301 corresponding to the lens side first claw section 139a and a portion of the lens side mount section 301 corresponding to the lens side fourth claw section 139d. The lock pin receiving section 143 is a groove into which the lock pin 142 fits when the interchangeable lens 3 is attached to the camera body 2. This groove is provided from the reference plane of the lens side mount section 301 toward the -Z direction (Fig. 1).

[0062] When the interchangeable lens 3 is attached to the camera body 2, the multiple body side terminals come into physical contact with the multiple corresponding lens side terminals. This contact electrically connects the multiple body side terminals and the multiple lens side terminals. In other words, the multiple body side terminals and the multiple lens side terminals are electrically connected to each other.

[0063] (Installing interchangeable lenses) The following describes a method of mounting the interchangeable lens 3 on the camera body 2. When mounting the interchangeable lens 3 on the camera body 2, first, the body side mount section 201 and the lens side mount section 301 are opposed to each other, and the lens side first claw section 139a is aligned with the position of the body side first insertion / removal section 140a, the lens side second claw section 139b is aligned with the position of the body side second insertion / removal section 140b, the lens side third claw section 139c is aligned with the position of the body side third insertion / removal section 140c, and the lens side fourth claw section 139d is aligned with the position of the body side fourth insertion / removal section 140d. Then, the lens side first claw 139a is inserted into the body side first insertion / removal portion 140a, the lens side second claw 139b is inserted into the body side second insertion / removal portion 140b, the lens side third claw 139c is inserted into the body side third insertion / removal portion 140c, and the lens side fourth claw 139d is inserted into the body side fourth insertion / removal portion 140d. At this time, the LDET(L) terminal contacts the CLK(B) terminal, the VBAT(L) terminal contacts the DATAL(B) terminal, the PGND(L) terminal contacts the HCLK(B) terminal, and the V33(L) terminal contacts the HDATA(B) terminal.

[0064] From this state, the interchangeable lens 3 is rotated in the mounting direction 144 shown in Fig. 4(a) and Fig. 5. That is, the body side first claw 129a enters the space behind the lens side first claw 139a, the body side second claw 129b enters the space behind the lens side second claw 139b, the body side third claw 129c enters the space behind the lens side third claw 139c, and the body side fourth claw 129d enters the space behind the lens side fourth claw 139d. At this time, the lens side terminals come into contact with the body side terminals in order. It is to be noted that the camera body 2, rather than the interchangeable lens 3, may be rotated in the opposite direction to the mounting direction 144 shown in Fig. 4(a) and Fig. 5.

[0065] When the lens side claws 139 are inserted into the corresponding body side insertion / removal parts 140 and rotated in the mounting direction 144, for example, the LDET(L) terminal contacts the CLK(B) terminal, DATAB(B) terminal, RDY(B) terminal, GND(B) terminal, V33(B) terminal, PGND(B) terminal, VBAT(B) terminal, and LDET(B) terminal in this order. For example, the VBAT(L) terminal contacts the DATAL(B) terminal, CLK(B) terminal, DATAB(B) terminal, RDY(B) terminal, GND(B) terminal, V33(B) terminal, PGND(B) terminal, and VBAT(B) terminal in this order. For example, the PGND(L) terminal contacts the HCLK(B) terminal, DATAL(B) terminal, CLK(B) terminal, DATAB(B) terminal, RDY(B) terminal, GND(B) terminal, V33(B) terminal, and PGND(B) terminal in this order. For example, the V33(L) terminal contacts the HDATA(B) terminal, HCLK(B) terminal, DATAL(B) terminal, CLK(B) terminal, DATAB(B) terminal, RDY(B) terminal, GND(B) terminal, and V33(B) terminal, in that order. For example, the GND(L) terminal contacts the HDATA(B) terminal, HCLK(B) terminal, DATAL(B) terminal, CLK(B) terminal, DATAB(B) terminal, RDY(B) terminal, and GND(B) terminal, in that order.

[0066] For example, the RDY(L) terminal contacts the HDATA(B) terminal, HCLK(B) terminal, DATAL(B) terminal, CLK(B) terminal, DATAB(B) terminal, and RDY(B) terminal, in that order. For example, the DATAB(L) terminal contacts the HDATA(B) terminal, HCLK(B) terminal, DATAL(B), CLK(B), and DATAB(B) terminal, in that order. For example, the CLK(L) terminal contacts the HDATA(B) terminal, HCLK(B), DATAL(B), and CLK(B) terminal, in that order. For example, the DATAL(L) terminal contacts the HDATA(B) terminal, HCLK(B), and DATAL(B) terminal, in that order. For example, the HCLK(L) terminal contacts the HDATA(B) terminal, HCLK(B), and DATAL(B) terminal, in that order.

[0067] When the interchangeable lens 3 is rotated by a predetermined angle relative to the camera body 2, it reaches a mounting completion position. At the mounting completion position, the corresponding body side claw 129 and lens side claw 139 face each other in the optical axis direction, and the lock pin 142 is pushed in the -Z direction in FIG. 1 and enters the lock pin receiving portion 143. When the lock pin 142 enters the lock pin receiving portion 143, the interchangeable lens 3 cannot be rotated to remove it from the camera body 2. In other words, when the body side claw 129 and the lens side claw 139 reach a predetermined mounting completion position, the relative positions of the body side mount portion 201 and the lens side mount portion 301 are fixed. The lens side claw 139 is pushed toward the body side (in the +Z direction in FIG. 1) by the leaf spring 141. As a result, each of the multiple lens side terminals comes into contact with each of the multiple corresponding body side terminals, and is electrically connected.

[0068] In the following description, the state in which the body side claw 129 and the lens side claw 139 have reached a predetermined mounting completion position is referred to as the mounting completion state. The state in which the lens side claw 139 is rotating from the position inserted into the body side insertion / removal portion 140 to just before the mounting completion position, or the state in which it is rotating from just before the mounting completion position to the insertion position is referred to as the mounting in progress state.

[0069] In the attached state, the signal level of the LDET(B) terminal is pulled up and is at a high level. When the body control unit 27 detects that the signal level of the LDET(B) terminal is at a high level, it determines that the interchangeable lens 3 is not attached. When the interchangeable lens 3 is not attached, the body control unit 27 does not cause the power supply unit 26 to supply power to the VBAT(B) terminal and the V33(B) terminal.

[0070] In the attachment complete state, the signal level of the LDET(B) terminal is pulled down to a low level as described above (FIG. 3). When the body control unit 27 detects that the signal level of the LDET(B) terminal has become low, it determines that the interchangeable lens 3 has been attached. In addition, in the attachment complete state, the lock pin 142 enters the lock pin receiving portion 143, and a lock pin detection switch (not shown) linked to the lock pin 142 is turned on. When the body control unit 27 detects that the signal level of the LDET(B) terminal has become low and that the lock pin detection switch has been turned on, it causes the power supply unit 26 to start supplying power to the V33(B) terminal, that is, to supply the power supply voltage of the circuit system. Note that the camera body 2 does not necessarily have to include a lock pin detection switch. If the camera body 2 does not include a lock pin detection switch, it is sufficient to cause the power supply unit 26 to start supplying power to the V33(B) terminal when it detects that the signal level of the LDET(B) terminal has become low.

[0071] When power supply to the V33(B) terminal is started, a power supply voltage is supplied to the lens control unit 37 of the interchangeable lens 3 through the V33(L) terminal, and the lens control unit 37 starts operating. After starting operation, the lens control unit 37 permits initial communication with the body control unit 27 by command data communication. After the lens control unit 37 permits the initial communication, the body control unit 27 starts the initial communication. The initial communication includes a signal requesting the lens control unit 37 to supply power to the VBAT(L) terminal. When a signal requesting power supply to the VBAT(L) terminal is transmitted from the lens control unit 37 to the body control unit 27, the body control unit 27 supplies a power supply voltage to the VBAT(B) terminal, and initialization processing is performed between the camera body 2 and the interchangeable lens 3. In the initialization processing, information required for various operations of the camera 1, such as a shooting operation and a focus adjustment operation, is exchanged between the camera body 2 and the interchangeable lens 3, and the lens position of the interchangeable lens is moved to a reference position.

[0072] When the user presses an unlock button (not shown) on the camera body 2 in the attachment complete state, the lock pin 142 retracts from the lock pin receiving portion 143. This makes it possible to change the relative positions of the body side mount portion 201 and the lens side mount portion 301. When the user presses an unlock button (not shown), the body control portion 27 turns off a lock pin detection switch linked to the unlock button, causing the power supply portion 26 to stop supplying power to the VBAT(B) terminal and the V33(B) terminal. From this state, when the interchangeable lens 3 is rotated in the direction opposite to the attachment direction 144 shown in FIGS. 4(a) and 5, the lens side terminals come into contact with the body side terminals in the reverse order to that described above.

[0073] It is not necessary to stop the power supply in conjunction with the operation of the unlock button. In this case, when the body control unit 27 detects that the LDET(L) terminal and the LDET(B) terminal are separated due to rotation of the interchangeable lens 3 in the direction opposite to the mounting direction 144 and the signal level of the LDET(B) terminal has changed from low level to high level, the body control unit 27 causes the power supply unit 26 to stop the power supply to the VBAT(B) terminal and the V33(B) terminal. In this way, the number of parts of the camera 1 can be reduced. Also, when it detects that the unlock button is pressed and that the signal level of the LDET(B) terminal has changed from low level to high level, the power supply unit 26 may stop the power supply to the VBAT(B) terminal and the V33(B) terminal. Alternatively, when it is detected that either the unlock button is pressed or the signal level of the LDET(B) terminal has changed from a low level to a high level, the body control unit 27 may cause the power supply unit 26 to stop supplying power to the VBAT(B) terminal and the V33(B) terminal.

[0074] As explained above, when an interchangeable lens is being attached to or removed from a camera body (mounted state), the lens terminals come into contact with body terminals other than the corresponding terminals when attachment is complete. It is desirable for the arrangement of the lens terminals and body terminals to minimize problems caused by contact during attachment and removal.

[0075] In this embodiment, the LDET(B) terminal among the multiple body side terminals is disposed at the very end in the lens mounting direction (arrow 144 in FIG. 4(a)). That is, the arrangement position of the LDET(B) terminal is the leftmost of the group of body side terminals in FIG. 4(a) as described above. The LDET(L) terminal among the multiple lens side terminals is also disposed at the very end in the lens mounting direction (arrow 144 in FIG. 5). That is, the arrangement position of the LDET(L) terminal is the rightmost of the group of lens side terminals in FIG. 5 as described above. Therefore, the LDET(B) terminal does not come into contact with lens side terminals other than the LDET(L) terminal until the mounting of the mounted lens is completed. Therefore, the signal level of the LDET(B) terminal does not erroneously become low level during the process of mounting the interchangeable lens, and the lens mounting is not erroneously recognized.

[0076] In this embodiment, the VBAT(B) terminal is disposed next to the LDET(B) terminal, that is, the second from the front end in the mounting direction. The VBAT(L) terminal is disposed next to the LDET(L) terminal, that is, the second from the front end in the mounting direction. This is done in order to reduce the number of lens-side terminals that the VBAT(B) terminal on the camera body contacts during the lens mounting process. Since the voltage applied to the VBAT(B) terminal is higher than other terminals, if the VBAT(B) terminal contacts a terminal other than the VBAT(L) terminal under a situation in which a high voltage is mistakenly applied to the VBAT(B) terminal due to a malfunction of the camera 1, this high voltage may cause an unexpected load to be applied to the electric circuit in the interchangeable lens. In this embodiment, since the VBAT(B) terminal is disposed next to the LDET(B) terminal, when the interchangeable lens 3 is being mounted, only the LDET(L) terminal contacts the VBAT(B) terminal among the multiple lens-side terminals. The LDET(L) terminal is grounded via a resistor (resistor R3 in Figure 3), so that camera 1 is not affected even if a high voltage is applied from the VBAT(B) terminal.

[0077] In this embodiment, the PGND(B) terminal is disposed next to the VBAT(B) terminal, i.e., the third from the end in the mounting direction. The PGND(L) terminal is disposed next to the VBAT(L) terminal, i.e., the third from the end in the mounting direction. The high voltage supplied from the VBAT(B) terminal is charged in the capacitor C1 connected to the VBAT(L) terminal. When the interchangeable lens 3 is rotated in the removal direction (opposite to the mounting direction 144), the VBAT(L) terminal first comes into contact with the PGND(B) terminal. The charge stored in the capacitor C1 is quickly discharged from the PGND(B) terminal, which is a ground terminal, and does not affect other circuits of the camera 1.

[0078] In this embodiment, the V33(B) terminal is arranged next to the PGND(B) terminal, that is, the fourth terminal from the end in the mounting direction, and the GND(B) terminal is arranged next to that, that is, the fifth terminal from the end. The V33(L) terminal is arranged next to the PGND(L) terminal, that is, the fourth terminal from the end in the mounting direction, and the GND(L) terminal is arranged next to that, that is, the fifth terminal from the end. The voltage supplied from the V33(B) terminal is stored as a charge in the capacitor C2 connected to the V33(L) terminal. When the interchangeable lens 3 is rotated in the removal direction (opposite to the mounting direction 144), the V33(L) terminal first comes into contact with the GND(B) terminal. The charge stored in the capacitor C2 is quickly discharged from the GND(B) terminal, which is a ground terminal, and does not affect other circuits of the camera 1.

[0079] The RDY (B) terminal is placed next to the GND (B) terminal, i.e., the sixth terminal from the top, and next to that, i.e., the seventh terminal from the top, is the DATAB (B) terminal, and next to that, i.e., the eighth terminal from the top, is the CLK (B) terminal, and next to that, i.e., the ninth terminal from the top, is the DATAL (B) terminal, and next to that, i.e., the tenth terminal from the top, is the HCLK (B) terminal, and next to that, at the very back, is the HDATA (B) terminal.

[0080] The RDY (L) terminal is placed next to the GND (L) terminal, i.e., the sixth terminal from the top, and next to that, i.e., the seventh terminal from the top, is the DATAB (L) terminal, and next to that, i.e., the eighth terminal from the top, is the CLK (L) terminal, and next to that, i.e., the ninth terminal from the top, is the DATAL (L) terminal, and next to that, i.e., the tenth terminal from the top, is the HCLK (L) terminal, and next to that, at the very back, is the HDATA (L) terminal.

[0081] Next, the effect of noise on the communication line consisting of each body side terminal and each lens side terminal will be described. After the start of communication, hotline communication is a one-way communication in which information is transmitted to the camera body 2, and is performed frequently (repeated in a very short cycle). During hotline communication, the interchangeable lens side clock signal (H clock signal) is sent from the HCLK(L) terminal to the HCLK(B) terminal. Since the clock signal is a signal that repeats high and low levels in a short cycle, it can be a large noise source for other signals. Furthermore, since the interchangeable lens side clock signal (H clock signal) sent from the HCLK(L) terminal to the HCLK(B) terminal is a signal output from the interchangeable lens 3, even if noise is mistakenly carried on the clock signal, the camera body 2 side cannot recognize the noise. In this way, the clock signal (H clock signal) flowing through the HCLK terminal may become a noise source or noise may be carried on the clock signal (H clock signal), which may cause the camera 1 to malfunction. Examples of malfunction include incorrect detection of the attachment of an interchangeable lens and mistakenly determining whether command data communication is possible or not.

[0082] In this embodiment, the HCLK terminal is located away from the VBAT terminal to which a high voltage is applied. The voltage and current of the VBAT terminal, which drives the lens drive unit 33 of the interchangeable lens 3, fluctuates depending on the drive state of the lens drive unit 33, so there is a possibility that the fluctuations in the voltage and current of the VBAT terminal may become noise for other terminals. Therefore, by separating the VBAT terminal from the HCLK terminal, it is possible to prevent noise caused by fluctuations in the voltage and current of the VBAT terminal from affecting the clock signal (H clock signal). In other words, it is possible to prevent noise from being carried over to the clock signal (H clock signal). As described above, the RDY terminal is a terminal used to indicate whether command communication is possible or not. In this embodiment, the HCLK terminal, which can be a noise source, is arranged away from the RDY terminal so as not to be adjacent to it. This makes it possible to prevent noise from the clock signal (H clock signal) from affecting the RDY terminal signal.

[0083] Additionally, the HDATA and DATAL terminals are located on either side of the HCLK terminal. This makes it possible to reduce the impact of noise from the HCLK terminal on terminals other than the HDATA and DATAL terminals. The signals that flow through the HDATA and DATAL terminals fluctuate less than the clock signal (H clock signal). This makes it possible to prevent fluctuations in the clock signal (H clock signal) from affecting terminals other than the HDATA and DATAL terminals.

[0084] Next, as described above, command data communication is communication in which information is sent and received in both directions between the camera body 2 and the interchangeable lens 3. During command data communication, the clock signal (C clock signal) from the camera body is sent from the CLK(B) terminal to the CLK(L) terminal. The clock signal (C clock signal) sent through the CLK terminal can also be a source of noise for the reasons described above. Furthermore, if noise is carried over to the clock signal (C clock signal), an abnormality occurs in command communication. Therefore, in this embodiment, the CLK terminal is located away from the VBAT terminal to which a high voltage is applied. The voltage and current of the VBAT terminal that drives the lens drive unit 33 of the interchangeable lens 3 fluctuates depending on the drive state of the lens drive unit 33, so there is a possibility that the fluctuation in voltage and current of the VBAT terminal may become noise for other terminals. Therefore, by separating the VBAT terminal from the CLK terminal, it is possible to prevent noise from the VBAT terminal from affecting the clock signal (C clock signal). In other words, it is possible to prevent noise from being carried over to the clock signal (C clock signal). In addition, the CLK terminal is placed away from the RDY terminal, which is used to indicate whether command communication is possible or not.

[0085] Furthermore, if the HCLK terminal and the CLK terminal are adjacent to each other, one clock signal may affect the other clock signal and become a noise source. In this embodiment, the DATAL terminal is arranged between the CLK terminal and the HCLK terminal. Furthermore, the DATAB terminal is arranged between the CLK terminal and the RDY terminal. In other words, the DATAL terminal and the DATAB terminal are arranged on both sides of the CLK terminal. This makes it possible to suppress the influence of noise caused by the CLK terminal on the camera 1. This is because the signals flowing through the DATAL terminal and the DATAB terminal fluctuate less than the clock signal (C clock signal), and therefore it is possible to suppress the influence of fluctuations in the clock signal (C clock signal) from extending to terminals other than the DATAL terminal and the DATAB terminal. If the DATAL terminal is placed between the CLK terminal and the HCLK terminal, the signal flowing through the DATAL terminal fluctuates less than the clock signal at the CLK terminal (C clock signal) and the clock signal at the HCLK terminal (H clock signal), so it is possible to prevent fluctuations in the clock signal at the CLK terminal (C clock signal) from affecting the clock signal at the HCLK terminal (H clock signal) and prevent fluctuations in the clock signal at the HCLK terminal (H clock signal) from affecting the clock signal at the CLK terminal (C clock signal).

[0086] As described above, the level of the RDY terminal must be determined in order to communicate command data. That is, since the signal level of the RDY terminal indicates whether or not command data can be communicated, noise has a large effect on the shooting operation. Here, consider a case where the body control unit 27 erroneously recognizes that the command data can be communicated due to noise, even though the command data cannot be communicated. In this case, the lens control unit 37 cannot receive the command data, but the body control unit 27 transmits the command data, and the body control unit 27 erroneously recognizes that control according to the command data is performed on the interchangeable lens 3. However, since the lens control unit 37 cannot accept the command data, control according to the erroneously transmitted command data is not performed. Therefore, the operation of the camera 1 is hindered. Therefore, it is necessary to prevent noise from being carried on the signal of the RDY terminal. In order to prevent noise from being carried on the signal of the RDY terminal, it is desirable to arrange terminals on both sides of the RDY terminal through which a relatively stable signal, that is, a signal with a small change in signal level per unit time, flows. In this embodiment, a GND terminal and a DATAB terminal are arranged on both sides of the RDY terminal. The GND terminal is stable because it is a terminal at ground potential, and the DATAB terminal is also a terminal through which a more stable signal flows than the CLK and HCLK terminals. This makes it possible to suppress the effects of noise on the RDY terminal signal.

[0087] Next, the power (power supply voltage) supplied from the VBAT(B) terminal to the VBAT(L) terminal is used to drive an actuator (such as a stepping motor) of the lens drive unit 33 of the interchangeable lens 3. Therefore, the current flowing through the VBAT terminal varies greatly between when the actuator is driven and when it is not driven. Such current fluctuations become a noise source for signals flowing through other terminals. In this embodiment, the VBAT terminal is located away from the RDY terminal, DATAB terminal, CLK terminal, and DATAL terminal used for command data communication, and the HCLK terminal and HDATA terminal used for hotline communication. Furthermore, the GND terminal, V33 terminal, and PGND terminal are located between the VBAT terminal and the terminals used for these communications. This suppresses the influence of noise caused by fluctuations in the current flowing through the VBAT terminal on data communication.

[0088] The above-described terminal arrangement taking noise into consideration will now be summarized. The RDY pin is placed away from the VBAT pin and the HCLK pin, which are noise sources, so that it is not adjacent to them. This helps to reduce the effects of noise on the RDY pin, which is used to indicate whether command data communication is possible. The HCLK terminal, which is a noise source, is sandwiched between the HDATA and DATAL terminals, and the CLK terminal is sandwiched between the DATAL and DATAB terminals. In other words, from the rear end in the mounting direction, the terminals are arranged as follows: HDATA, HCLK, DATAL, CLK, and DATAB. This reduces the impact of noise caused by the clock signal on the RDY terminal and other terminals.

[0089] Furthermore, in consideration of the effects of noise, the power supply terminals and the terminals used for communication are arranged apart, with the RDY terminal in between. More specifically, the power supply terminals VBAT, PGND, V33, and GND are arranged in that order from the leading edge of the RDY terminal, while the communication terminals DATAB, CLK, DATAL, HCLK, and HDATA are arranged in that order from the trailing edge of the RDY terminal. This makes it possible to reduce the effect of power supply terminals such as the VBAT terminal on terminals used for communication. It also makes it possible to reduce the effect of noise on the RDY terminal from the power supply terminals such as the VBAT terminal and the terminals used for communication such as the HCLK and CLK terminals.

[0090] The HCLK terminal, which sends a clock signal from the interchangeable lens side used for hotline communication, and the CLK terminal, which sends a clock signal from the camera body side used for command data communication, are arranged farther from the VBAT terminal than the CLK terminal. This is because the clock signal sent to the interchangeable lens 3 at the CLK terminal is output by the body control unit 27 via the first body communication unit 28, but the body control unit 27 will erroneously recognize the clock signal sent from the interchangeable lens, which is sent from the interchangeable lens 3 to the camera body 2 via the HCLK(L) terminal via the second lens communication unit 39. For this reason, noise carried on the clock signal from the HCLK terminal has a greater impact on the camera 1.

[0091] The HCLK terminal is located farther away from the VBAT terminal than the GND terminal. Furthermore, a PGND terminal is located between the GND terminal and the VBAT terminal. This makes it possible to shield the HCLK terminal, which sends the clock signal used for hotline communication, from noise originating from the VBAT terminal. The CLK terminal is positioned farther from the VBAT terminal than the GND terminal. Furthermore, a PGND terminal is placed between the GND terminal and the VBAT terminal. This makes it possible to shield the CLK terminal, which sends the clock signal used for command data communication, from noise caused by the VBAT terminal.

[0092] Using the terminal group arranged in this manner, as described above, the interchangeable lens 3 and the camera body 2 perform command and data communication using the RDY signal, the CLK signal, the DATAB signal, and the DATAL signal through the first lens communication unit 38 and the first body communication unit 28. Also, the interchangeable lens 3 and the camera body 2 perform hotline communication using the HCLK signal and the HDATA signal through the second lens communication unit 39 and the second body communication unit 29. Note that the communication path used for command data communication is provided separately from the communication path for hotline communication, and command data communication and hotline communication can be performed in parallel. That is, even if the first lens communication unit 38 is performing command data communication with the first body communication unit 28, the second lens communication unit 39 can arbitrarily perform hotline communication with the second body communication unit 29. Also, even if the second lens communication unit 39 is performing hotline communication with the second body communication unit 29, the first lens communication unit 38 can arbitrarily perform command data communication with the first body communication unit 28.

[0093] (Terminal arrangement considering wear) From here on, contacts of each terminal when attaching or detaching the interchangeable lens 3 to the camera body 2 will be described. When the interchangeable lens 3 is attached to the camera body 2, the body-side terminals come into contact with the lens-side terminals one after another. The same is true when the interchangeable lens 3 is removed from the camera body 2. That is, the body-side terminals, which are pins protruding from the body-side connection part 202, rub against the lens-side terminals, which are exposed conductive contact surfaces, one after another. Since multiple interchangeable lenses are attached to and detached from one camera body, the body-side terminals are more likely to wear out than the lens-side terminals. In particular, the body-side terminals located toward the rear end in the attachment direction of the interchangeable lens 3 are rubbed against a larger number of lens-side terminals and experience more friction. Therefore, the body-side terminals located toward the rear end are more likely to wear out at the tips of the pins than the body-side terminals located toward the front end. Wear of the body-side terminals affects the contact with the lens-side terminals, which may cause data communication to become unstable. In this embodiment, the LDET(B) terminal is located at the very end in the mounting direction, so the LDET(B) terminal is least worn. This ensures good contact between the LDET(B) terminal and the LDET(L) terminal, reducing the possibility of erroneous detection of attachment or detachment of the interchangeable lens 3.

[0094] As described above, in this embodiment, in order to suppress the influence of noise on communication, the CLK(B) terminal and the HCLK(B) terminal are arranged at a position away from the VBAT(B) terminal. That is, the VBAT(B) terminal is arranged second from the front end side in the mounting direction, and the CLK(B) terminal and the HCLK(B) terminal are arranged at the rear end side away from the VBAT(B) terminal. Therefore, the CLK(B) terminal and the HCLK(B) terminal are more likely to wear out than the LDET(B) terminal and the VBAT(B) terminal. In this embodiment, the CLK(B) terminal and the HCLK(B) terminal are arranged close to the body side first claw portion 129a. That is, the CLK(B) terminal and the HCLK(B) terminal are arranged closer to the inner peripheral edge, which is the edge on the inner peripheral side of the body side first claw portion 129a, than the VBAT(B) terminal. In other words, the distance between the CLK(B) terminal and the inner periphery of the body-side first claw 129a is shorter than the distance between the VBAT(B) terminal and the inner periphery of the body-side first claw 129a, and the distance between the HCLK(B) terminal and the inner periphery of the body-side first claw 129a is shorter than the distance between the VBAT(B) terminal and the inner periphery of the body-side first claw 129a. As described above, the first leaf spring 141a is provided on the rear side of the body-side first claw 129a, and the first leaf spring 141a presses the lens-side first claw 139a in the +Z direction (FIG. 1).

[0095] From the viewpoint of the first leaf spring 141a, the distance between the CLK(B) terminal and the first leaf spring 141a and the distance between the HCLK(B) terminal and the first leaf spring 141a are both shorter than the distance between the VBAT(B) terminal and the first leaf spring 141a. The LDET(B) terminal is similar to the VBAT(B) terminal, and the distance between the CLK(B) terminal and the first leaf spring 141a and the distance between the HCLK(B) terminal and the first leaf spring 141a are both shorter than the distance between the LDET(B) terminal and the first leaf spring 141a. As a result, the CLK(B) terminal and the HCLK(B) terminal are pressed against the lens side terminal more strongly than the VBAT(B) terminal and the LDET(B) terminal.

[0096] On the lens side, the CLK(L) terminal and the HCLK(L) terminal are also disposed closer to the inner periphery of the lens-side first claw 139a than the VBAT(L) terminal. In other words, the distance between the CLK(L) terminal and the inner periphery of the lens-side first claw 139a is shorter than the distance between the VBAT(L) terminal and the inner periphery of the lens-side first claw 139a, and the distance between the HCLK(L) terminal and the inner periphery of the lens-side first claw 139a is shorter than the distance between the VBAT(L) terminal and the inner periphery of the lens-side first claw 139a. Therefore, the CLK(L) terminal and the HCLK(L) terminal near the lens-side first claw 139a are pressed against the corresponding body-side terminals by the first leaf spring 141a in the fully attached state.

[0097] Similarly, the LDET(L) terminal is the same as the VBAT(L) terminal, and the distance between the CLK(L) terminal and the first leaf spring 141a and the distance between the HCLK(L) terminal and the first leaf spring 141a in the fully attached state are both shorter than the distance between the LDET(L) terminal and the first leaf spring 141a. As a result, the CLK(L) terminal and the HCLK(L) terminal exert a stronger force on the body side terminal than the LDET(L) terminal in the fully attached state. This allows good contact to be maintained even if the CLK(B) terminal and the HCLK(B) terminal wear out, stabilizing the respective clock signals and enabling stable data communication. For example, even if the camera body 2 or the interchangeable lens 3 receives an impact while the fully attached state is maintained, the contact between the CLK(B) terminal and the CLK(L) terminal and the contact between the HCLK(B) terminal and the HCLK(L) terminal are maintained.

[0098] Even if a part of the lens side first claw 139a is cut out, the whole including the protruding part and the cut out part arranged in the area facing the body side first claw 129a is the lens side first claw. The cut out method may be such that the lens side claw is divided into two or more parts in the circumferential direction, such that a part of the lens side claw is cut out, or such that at least a part of the lens side claw is cut out so that the radial length is shortened. In addition, the circumferential length of the lens side claw may be changed within a range that passes through the corresponding body side insertion / removal part. The same applies to the lens side second claw 139b, the lens side third claw 139c, and the lens side fourth claw 139d. In addition, the radial thickness of the cylindrical part can be changed as appropriate, and may be a shape in which at least a part of the cylindrical part of this embodiment protrudes inward.

[0099] As described above, the CLK(B) terminal and the HCLK(B) terminal are more likely to wear out than the LDET(B) terminal and the VBAT(B) terminal. In this embodiment, the CLK(B) terminal and the HCLK(B) terminal are disposed close to the body-side first claw portion 129a. That is, the CLK(B) terminal and the HCLK(B) terminal are disposed closer to the inner periphery of the body-side first claw portion 129a than the LDET(B) terminal and the VBAT(B) terminal. In other words, the distance between the CLK(B) terminal and the inner periphery of the body-side first claw portion 129a is shorter than the distance between the LDET(B) terminal or the VBAT(B) terminal and the inner periphery of the body-side first claw portion 129a, and the distance between the HCLK(B) terminal and the inner periphery of the body-side first claw portion 129a is shorter than the distance between the LDET(B) terminal or the VBAT(B) terminal and the inner periphery of the body-side first claw portion 129a. As described above, the first leaf spring 141a is located on the back side of the body-side first claw 129a, and the first leaf spring 141a presses the lens-side first claw 139a in the +Z direction (FIG. 1). Even from the perspective of the first leaf spring 141a, the distance between the CLK(B) terminal and the first leaf spring 141a, and the distance between the HCLK(B) terminal and the first leaf spring 141a are both shorter than the distance between the LDET(B) terminal or the VBAT(B) terminal and the first leaf spring 141a.

[0100] On the lens side, the CLK(L) terminal and the HCLK(L) terminal are also disposed closer to the inner peripheral edge of the lens side first claw portion 139a than the LDET(L) terminal and the VBAT(L) terminal. In other words, the distance between the CLK(L) terminal and the inner peripheral edge of the lens side first claw portion 139a is shorter than the distance between the LDET(L) terminal or the VBAT(L) terminal and the inner peripheral edge of the lens side first claw portion 139a, and the distance between the HCLK(L) terminal and the inner peripheral edge of the lens side first claw portion 139a is shorter than the distance between the LDET(L) terminal or the VBAT(L) terminal and the inner peripheral edge of the lens side first claw portion 139a. Therefore, the CLK(L) terminal and the HCLK(L) terminal near the lens side first claw portion 139a are pressed against the corresponding body side terminals by the first leaf spring 141a. As a result, the CLK(B) terminal and HCLK(B) terminal are pressed more strongly against the lens side terminals than the LDET(B) terminal and VBAT(B) terminal. This allows good contact to be maintained even if the CLK(B) terminal and HCLK(B) terminal wear out, ensuring stable communication. Also, for example, even if the camera body 2 or interchangeable lens 3 receives an impact while in the fully attached state, the CLK(B) terminal and HCLK(B) terminal maintain contact with the lens side terminals.

[0101] In this embodiment, the CLK(B) terminal and the HCLK(B) terminal are also close to the body-side fourth claw 129d. That is, the CLK(B) terminal and the HCLK(B) terminal are disposed closer to the body-side fourth claw 129d than the VBAT(B) terminal and the LDET(B) terminal. In other words, the distance between the CLK(B) terminal and the body-side fourth claw 129d is shorter than the distance between the VBAT(B) terminal or the LDET(B) terminal and the body-side fourth claw 129d, and the distance between the HCLK(B) terminal and the body-side fourth claw 129d is shorter than the distance between the VBAT(B) terminal or the LDET(B) terminal and the body-side fourth claw 129d. As described above, the fourth leaf spring 141d is provided on the back side of the body-side fourth claw 129d, and the fourth leaf spring 141d presses the lens-side fourth claw 139d in the +Z direction (FIG. 1). Therefore, the CLK(B) terminal and the HCLK(B) terminal near the lens side fourth claw portion 139d are pressed more stably and strongly against the lens side terminals by the first leaf spring 141a and the fourth leaf spring 141d than the VBAT(B) terminal and the LDET(B) terminal.

[0102] The distance between the CLK(B) terminal and the body-side first claw 129a (the same applies to the body-side fourth claw 129d, but will be omitted below) refers to the linear distance between one end of the body-side first claw 129a and the CLK(B) terminal, and may be defined as the linear distance between the other end of the body-side first claw 129a and the CLK(B) terminal. Alternatively, the distance between the CLK(B) terminal and the body-side first claw 129a may be defined as the linear distance between the CLK(B) terminal and the intermediate position of the body-side first claw 129a in the circumferential direction of the body-side mount part 201. The distance between the other body-side terminals, such as the HCLK(B) terminal, the VBAT(B) terminal, and the LDET(B) terminal, and the body-side first claw 129a is also a linear distance. The distance between the first leaf spring 141a (fourth leaf spring 141d) and the body-side terminal is also a linear distance.

[0103] The distance between the CLK(B) terminal and the body-side first claw 129a (the same applies to the body-side fourth claw 129d, but will be omitted below) may be defined as an arc-shaped distance between one end of the body-side first claw 129a and the CLK(B) terminal in the circumferential direction of the body-side mount 201, or may be defined as an arc-shaped distance between the other end of the body-side first claw 129a and the CLK(B) terminal. Alternatively, the distance between the CLK(B) terminal and the body-side first claw 129a may be defined as an arc-shaped distance between the middle position of the body-side first claw 129a in the circumferential direction of the body-side mount 201 and the CLK(B) terminal. The distance between other body-side terminals, such as the HCLK(B) terminal, the VBAT(B) terminal, and the LDET(B) terminal, and the body-side first claw 129a may also be defined as an arc-shaped distance. The distance between the first leaf spring 141a (fourth leaf spring 141d) and the body side terminal may also be defined as an arc-shaped distance.

[0104] The above description is for the camera body 2, but the same is true for the interchangeable lens 3. In this embodiment, the CLK(L) terminal and the HCLK(L) terminal are disposed close to the lens side first claw portion 139a. That is, the CLK(L) terminal and the HCLK(L) terminal are disposed closer to the lens side first claw portion 139a than the VBAT(L) terminal and the LDET(L) terminal. In other words, the distance between the CLK(L) terminal and the lens side first claw portion 139a is shorter than the distance between the VBAT(L) terminal or the LDET(L) terminal and the lens side first claw portion 139a, and the distance between the HCLK(L) terminal and the lens side first claw portion 139a is shorter than the distance between the VBAT(L) terminal or the LDET(L) terminal and the lens side first claw portion 139a. The lens side first claw portion 139a is pressed in the +Z direction (FIG. 1) by the body side first leaf spring 141a. Therefore, similarly to the above, the CLK(L) terminal and HCLK(L) terminal near the first lens-side claw portion 139a are pressed by the first leaf spring 141a more strongly against the body-side terminal than the VBAT(L) terminal or LDET(L) terminal.

[0105] 4(a), in this embodiment, the CLK(B) terminal and the HCLK(B) terminal are disposed inside a sector (within a range of an angle of 50) formed by the center position of the opening of the body side mount section 201 (i.e., the position of the optical axis L of the interchangeable lens 3) and the arc-shaped body side first claw section 129a. Alternatively, the CLK(B) terminal and the HCLK(B) terminal are disposed inside a triangular area formed by the center position of the opening of the body side mount section 201 (i.e., the position of the optical axis L of the interchangeable lens 3) and both ends on the inner periphery side of the body side first claw section 129a. Therefore, the body side first claw portion 129a does not exist on the extension line of the dashed dotted line 151 connecting the center position of the opening of the body side mount portion 201 and the LDET(B) terminal, but the body side first claw portion 129a exists on the extension line of the dashed dotted line 152 connecting the center position of the opening of the body side mount portion 201 and the HCLK(B) terminal, and the body side first claw portion 129a exists on the extension line of the dashed dotted line 153 connecting the center position of the opening of the body side mount portion 201 and the CLK(B) terminal. As a result, in the fully attached state, the CLK(B) terminal and the HCLK(B) terminal are pressed more strongly against the corresponding lens side terminals than the LDET(B) terminal.

[0106] 5, the CLK(L) terminal and the HCLK(L) terminal are disposed within a sector (within a range of an angle of 60) formed by the center position of the opening of the lens side mount section 301 (i.e., the position of the optical axis L of the interchangeable lens 3) and the arc-shaped lens side first claw section 139a. Alternatively, the CLK(L) terminal and the HCLK(L) terminal are disposed within a triangular area formed by the center position of the opening of the lens side mount section 301 (i.e., the position of the optical axis L of the interchangeable lens 3) and both ends on the outer periphery side of the lens side first claw section 139a. Therefore, the lens side first claw 139a does not exist on the extension of the dashed line 161 connecting the center position of the opening of the lens side mount unit 301 and the LDET(L) terminal, but the lens side first claw 139a exists on the extension of the dashed line 162 connecting the center position of the opening of the lens side mount unit 301 and the HCLK(L) terminal, and the lens side first claw 139a exists on the extension of the dashed line 163 connecting the center position of the opening of the lens side mount unit 301 and the CLK(L) terminal. As a result, in the fully attached state, the CLK(L) terminal and the HCLK(L) terminal contact the corresponding body side terminal more stably than the LDET(L) terminal. In other words, the CLK(L) terminal and the HCLK(L) terminal are pressed against the body side terminal with a stronger force than the LDET(L) terminal. Therefore, even if the tips of the CLK(B) terminal and the HCLK(B) terminal become worn, communication of clock signals between the camera body 2 and the interchangeable lens 3 is performed stably.

[0107] In this embodiment, the CLK(B) terminal, CLK(L) terminal, HCLK(B) terminal, and HCLK(L) terminal have been described, but the same is true for the other communication terminals, the HDATA(B) terminal, the HDATA(L) terminal, the DATAL(B) terminal, the DATAL(L) terminal, the DATAB(B) terminal, and the DATAB(L) terminal. That is, the HDATA(B) terminal, the DATAL(B) terminal, and the DATAB(B) terminal are disposed closer to the body side first claw portion 129a and the first leaf spring 141a than the LDET(B) terminal and the VBAT(B) terminal (the distance is shorter). In this way, the HDATA(B) terminal, the DATAL(B) terminal, and the DATAB(B) terminal are pressed more strongly against the lens side terminal than the VBAT(B) terminal and the LDET(B) terminal, and can maintain good contact with the lens side terminal. Also, the HDATA(L), DATAL(L), and DATAB(L) terminals are disposed closer to the lens side first claw portion 139a than the LDET(L) and VBAT(L) terminals (the distance is shorter). As a result, the HDATA(L), DATAL(L), and DATAB(L) terminals are pressed more strongly against the body side terminals than the VBAT(L) and LDET(L) terminals, and can maintain good contact with the lens side terminals.

[0108] A value indicating the communication specifications of the hotline communication is transmitted and received between the interchangeable lens 3 and the camera body 2 by command data communication. This value is called a generation. This value of the generation is sometimes called generation information. The generation is usually an integer equal to or greater than 0, but may be a decimal. The generation may also be called a grade. FIG. 6 is an explanatory diagram showing an example of a generation. The generation indicates different communication specifications. This communication specification may also be called a communication system, a communication method, or a communication standard. This communication specification has at least one item related to communication. In the example shown in FIG. 6, the communication specification has three items related to communication: the communication speed of the hotline communication, the communication interval of the hotline communication, and the number of data transmitted in the hotline communication. The communication specification indicated by the generation is not limited to having the above three items, and may have any one or two items selected from the three items.

[0109] By using the generation, different generations such as the 1st to 4th generations can be indicated. The communication specifications indicated differ depending on the generation. Here, the values ​​of some items of the communication specifications indicated may be the same between different generations. A generation with a larger number is called a higher generation (grade). For example, the 4th generation is a higher generation (grade) than the 3rd generation. The generation may also indicate other specifications in addition to the communication specifications. In the example shown in FIG. 6, the generation indicates the specifications of the sampling interval for data generation in addition to the communication specifications. In addition to the above examples, the generation may also indicate specifications related to the functions and capabilities of image stabilization, for example.

[0110] Here, the communication speed is the communication speed (clock frequency) of data communicated by hotline communication, that is, the speed at which data is transferred from the second lens communication unit 39 to the second body communication unit 29. The communication interval is the time interval at which data is transferred by hotline communication. Examples of data transmitted from the interchangeable lens 3 to the camera body 2 by hotline communication include information on the drive of the focus lens (information on the position of the focus lens, etc.), information on the drive of the anti-shake lens (information on the position of the anti-shake lens, etc.), information on the zoom lens (information on the state of the zoom lens, focal length information, etc.), information on the drive of the aperture diaphragm 32 (information on the F-number, etc.), etc. The sampling interval is the time interval at which data to be transmitted by hotline communication is sampled. For example, it is the interval at which the lens control unit 37 samples a pulse signal generated by the lens position detection unit 34.

[0111] In the example shown in Figure 6, the communication specifications indicated by the first generation have a communication speed of V1 (units, for example, MHz), a communication interval of T1 (units, for example, msec), and the amount of data is N1 (an integer). For example, as the generation progresses (grade increases), the communication speed becomes faster, the communication interval becomes shorter, and the amount of data increases. That is, in the communication specifications indicated by the second generation, the communication speed is V2, which is faster than V1, the communication interval is T2, which is shorter than T1, and the amount of data is N2, which is greater than N1.

[0112] In the third-generation communication specification, the communication speed is V3, which is faster than V2, the communication interval is T3, which is shorter than T2, and the number of data is N3, which is greater than N2. In the fourth-generation communication specification, the communication speed is V4, which is faster than V3, the communication interval is T4, which is shorter than T3, and the number of data is N4, which is greater than N3. Each of V1 to V4, T1 to T4, and N1 to N4 may be a predetermined fixed value or a value within a predetermined range. For example, the communication speed V1 may be a predetermined fixed value (e.g., 2.5 MHz) or a predetermined communication speed range v1 to v2 (e.g., 2 to 8 MHz). The communication interval T1 may be a predetermined unique value (e.g., 1 msec) or a predetermined communication interval range (e.g., 0.5 to 2 msec).

[0113] As described above, examples of data transmitted by hotline communication include information on the driving of the focus lens, the driving of the anti-vibration lens, the driving of the aperture diaphragm, and the state of the zoom lens. For example, when the number of data is N1, the data transmitted by hotline communication is information on the driving of the focus lens. When the number of data is N2, in addition to information on the driving of the focus lens, information on the driving of the anti-vibration lens is also transmitted by hotline communication. When the number of data is N3, in addition to information on the driving of the focus lens and information on the driving of the anti-vibration lens, information on the driving of the aperture diaphragm 32 is also transmitted by hotline communication. When the number of data is N4, in addition to information on the driving of the focus lens, information on the driving of the anti-vibration lens, and information on the driving of the aperture diaphragm 32, information on the state of the zoom lens is also transmitted by hotline communication.

[0114] In the example shown in FIG. 6, the number of pieces of data transmitted by hotline communication, which is indicated by the generation, has been described as being included in the communication specifications. However, this number of pieces of data may not be included in the communication specifications, and may be indicated by the generation separately from the communication specifications. Also, in the above example, the generation has been described as indicating the number of pieces of data. However, the generation may indicate the data transmitted by hotline communication. For example, the generation may indicate data transmitted by hotline communication, such as information regarding the drive of the focus lens (information regarding the position of the focus lens, etc.), information regarding the drive of the anti-vibration lens (information regarding the position of the anti-vibration lens, etc.), information regarding the zoom lens (information regarding the state of the zoom lens, focal length information, etc.), and information regarding the drive of the aperture diaphragm 32 (information regarding the F-number, etc.).

[0115] 6, the sampling interval in the first generation specification is S1 (unit: msec, for example). In the second generation specification, the sampling interval is S2, which is shorter than S1, in the third generation specification, the sampling interval is S3, which is shorter than S2, and in the fourth generation specification, the sampling interval is S4, which is shorter than S3. Here, S1 to S4 may be predetermined fixed values ​​or may be values ​​within a predetermined range.

[0116] It is not necessary for the values ​​of all items of the communication specifications and other specifications to change as the generation (class) changes from the 1st to the 4th generation, and the values ​​of one or more items may be changed. For example, the communication speed may become faster as the generation progresses, but the communication interval and the number of data may not change. As described above, each generation of hotline communication may indicate the specifications of the sampling interval and the specifications regarding the function and capability of image stabilization in addition to the communication specifications. In this case, the value of only one item of the communication specifications may be changed as the generation changes, or the values ​​of two or three items of the communication specifications may be changed. Furthermore, the specifications of the sampling interval and the specifications regarding the function and capability of image stabilization in addition to the communication specifications may be changed as the generation changes.

[0117] Next, the relationship between the communication specifications indicated by the generations and the interchangeable lens 3 and camera body 2 will be described. An interchangeable lens 3 and a camera body 2 capable of hotline communication with the communication specifications indicated by the first generation will be referred to as a first-generation interchangeable lens 3 and a first-generation camera body 2, respectively. Furthermore, an interchangeable lens 3 and a camera body 2 capable of hotline communication with the communication specifications indicated by the second generation will be referred to as a second-generation interchangeable lens 3 and a second-generation camera body 2, respectively. Similarly, an interchangeable lens 3 and a camera body 2 capable of hotline communication with the communication specifications indicated by the third generation will be referred to as a third-generation interchangeable lens 3 and a third-generation camera body 2, respectively. An interchangeable lens 3 and a camera body 2 capable of hotline communication with the communication specifications indicated by the fourth generation will be referred to as a fourth-generation interchangeable lens 3 and a fourth-generation camera body 2, respectively.

[0118] In this embodiment, multiple interchangeable lenses and multiple camera bodies each having a function capable of communicating using a common communication specification called "communication specifications indicated by the first generation" are collectively referred to as "first generation interchangeable lenses" and "first generation camera bodies." The same applies to second, third, and fourth generations. The "communication specifications indicated by the first generation" may also be referred to as "first communication specifications." The "first generation interchangeable lenses" and "first generation camera bodies" may also be referred to as "first interchangeable lenses" and "first camera bodies," respectively.

[0119] In addition, the interchangeable lens 3 and the camera body 2 that are compatible with the communication specifications indicated by each generation can also perform hotline communication according to the communication specifications indicated by the previous generation (the generation with a smaller number, the lower grade). In other words, the first generation interchangeable lens 3 and the first generation camera body 2 both perform hotline communication according to the communication specifications indicated by the first generation, but the second generation interchangeable lens 3 and the camera body 2 can support not only the communication specifications indicated by the second generation but also the communication specifications indicated by the first generation. In addition, the third generation interchangeable lens 3 and the camera body 2 can support the communication specifications indicated by the first to third generations, respectively, and the fourth generation interchangeable lens 3 and the camera body 2 can support the communication specifications indicated by the first to fourth generations, respectively. If a fourth generation interchangeable lens 3 is combined with a third generation camera body 2, hotline communication can be performed according to any of the common communication specifications indicated by the third generation, the communication specifications indicated by the second generation, or the communication specifications indicated by the first generation. However, since the camera body 2 does not support the communication specifications indicated by the fourth generation, hotline communication according to the communication specifications indicated by the fourth generation cannot be performed, or hotline communication will not be started.

[0120] Fig. 7 is a table explaining the generations indicating the communication specifications used when performing hotline communication when a first to fourth generation interchangeable lens 3 is combined with a first to fourth generation camera body 2. Fig. 7 shows the generations of camera bodies 2 on the horizontal axis and the generations of interchangeable lenses 3 on the vertical axis, and explains the generations indicating the communication specifications for hotline communication for each combination. As shown below, it is preferable to perform hotline communication using the communication specifications indicated by the highest generation (the generation with the largest number, the highest generation, the highest grade) possible when the interchangeable lens 3 and the camera body 2 are combined. However, hotline communication may also be performed using the communication specifications indicated by a lower generation rather than the highest generation. When a first-generation interchangeable lens 3 is attached to a first-generation to fourth-generation camera body 2, hotline communication is performed according to the communication specifications specified by the first generation in all cases.

[0121] When a second-generation interchangeable lens 3 is attached to a first- to fourth-generation camera body 2, hotline communication is performed with the first-generation camera body 2 according to the communication specifications specified by the first generation, and hotline communication is performed with the second- to fourth-generation camera bodies 2 according to the communication specifications specified by the second generation.

[0122] When a third-generation interchangeable lens 3 is attached to a first- to fourth-generation camera body 2, the following occurs: the third-generation interchangeable lens 3 performs hotline communication with a first-generation camera body 2 according to the communication specifications indicated by the first generation, with a second-generation camera body 2 according to the communication specifications indicated by the second generation, and with a third- to fourth-generation camera body 2 according to the communication specifications indicated by the third generation. Note that a third-generation interchangeable lens 3 may communicate with a second-generation camera body 2 according to the communication specifications indicated by the first generation, which is the lower generation (the generation with the smallest number, the previous generation) rather than the highest generation (the generation with the largest number, the highest generation, the highest grade), and may communicate with a third-generation camera body 2 and a fourth-generation camera body 2 according to the communication specifications indicated by the first or second generation.

[0123] When a fourth-generation interchangeable lens 3 is attached to a first- to fourth-generation camera body 2, the following occurs: The fourth-generation interchangeable lens 3 performs hotline communication with the first-generation camera body 2 according to the communication specifications indicated by the first generation, and with the second-generation camera body 2 according to the communication specifications indicated by the second generation. Furthermore, the fourth-generation interchangeable lens 3 performs hotline communication with the third-generation camera body 2 according to the communication specifications indicated by the third generation, and with the fourth-generation camera body 2 according to the communication specifications indicated by the fourth generation. The fourth-generation interchangeable lens 3 may communicate with a second-generation camera body 2 according to the communication specifications indicated by the first generation, and may communicate with a third-generation camera body 2 according to the communication specifications indicated by the first or second generation. Also, the fourth-generation camera body 2 may communicate with a fourth-generation camera body 2 according to the communication specifications indicated by the first, second or third generation.

[0124] Next, we will explain the generation information that is transmitted from the interchangeable lens 3 to the camera body 2 and conversely, from the camera body 2 to the interchangeable lens 3 in command data communication. In command data communication, data indicating lens side generation information "1", "2", "3", or "4", for example, is transmitted from the interchangeable lens 3 to the camera body 2. The lens side generation information "1", "2", "3", or "4" indicates that the interchangeable lens 3 is the first generation, second generation, third generation, or fourth generation, respectively.

[0125] Note that lens-side generation information being first generation indicates that the interchangeable lens 3 is compatible with the communication specifications indicated by the first generation. Similarly, lens-side generation information being second generation indicates that the interchangeable lens 3 is compatible with both the communication specifications indicated by the first generation and the communication specifications indicated by the second generation. Lens-side generation information being third generation indicates that the interchangeable lens 3 is compatible with the communication specifications indicated by the three generations, first generation, second generation, and third generation, and lens-side generation information being fourth generation indicates that the interchangeable lens 3 is compatible with the communication specifications indicated by the four generations, first generation, second generation, third generation, and fourth generation.

[0126] Furthermore, the generation information transmitted from the camera body 2 to the interchangeable lens 3, as will be described later, is determined by the camera body 2 based on the lens-side generation information and the body-side generation information, and indicates the generation indicating the communication specifications used when hotline communication is performed between the camera body 2 and the interchangeable lens 3 attached to the camera body 2. In command data communication, for example, generation information "1", "2", "3", or "4" is transmitted from the camera body 2 to the interchangeable lens 3. The generation information "1", "2", "3", or "4" indicates that the communication specifications used when hotline communication is performed are indicated by the first generation, second generation, third generation, or fourth generation, respectively.

[0127] For example, when second generation information (second generation) is sent from an interchangeable lens 3 that only supports up to the second generation to a camera body 2 that only supports up to the second generation, the camera body 2 also supports up to the same generation (second generation) and therefore sends the highest generation, the second generation, to the interchangeable lens 3. Sending this same generation information (second generation) from the camera body 2 to the interchangeable lens 3 indicates that the camera body 2 is requesting the interchangeable lens 3 to use the communication specifications indicated by the same generation (second generation).

[0128] Also, for example, when an interchangeable lens 3 that is compatible only up to the third generation is attached to a camera body 2 of a higher generation, the fourth generation, generation information of the third generation is transmitted from the interchangeable lens 3 to the camera body 2, and the camera body 2 transmits generation information of the highest generation common to the camera body 2 and the interchangeable lens 3, in this case the third generation, which is a lower generation (lower) than its own generation (fourth generation), to the interchangeable lens 3. This generation information of the lower generation (third generation) transmitted from the camera body 2 requests the interchangeable lens 3 to perform hotline communication in accordance with the communication specifications indicated by the third generation, which is the highest generation compatible with the interchangeable lens 3.

[0129] Furthermore, for example, when an interchangeable lens 3 that is compatible with up to the fourth generation is attached to a camera body 2 of the third generation, which is the lower generation, generation information of the fourth generation is transmitted from the interchangeable lens 3 to the camera body 2, but since the camera body 2 does not support the communication specifications indicated by the fourth generation, it transmits its own highest generation, the third generation, to the interchangeable lens 3. This generation information of a lower generation (third generation) for the interchangeable lens 3 transmitted from the camera body 2 requests the interchangeable lens 3 to perform hotline communication in accordance with the communication specifications indicated by the third generation, which is the highest generation supported by the camera body 2.

[0130] As described above, the generation indicates different communication specifications. The communication specifications have at least one item related to communication, such as the communication speed of hotline communication, the communication interval of hotline communication, and the number of data transmitted in hotline communication. The generation information indicates the communication specifications with which the interchangeable lens and the camera body can communicate via hotline communication.

[0131] A method for determining the generation indicating the communication specifications used in hotline communication between the interchangeable lens 3 and the camera body 2 will be specifically described below. When the interchangeable lens 3 is attached to the camera body 2, initialization communication is started between the interchangeable lens 3 and the camera body 2 using command data communication. When a command requesting transmission of lens-side generation information is transmitted from the camera body 2 to the interchangeable lens 3 during the initialization communication, the first lens communication unit 38 transmits the lens-side generation information stored in the lens memory 36 to the first body communication unit 28 by command data communication. The body control unit 27 acquires generation information of the attached interchangeable lens 3 via the first body communication unit 28, and grasps the generation indicating the communication specifications compatible with the interchangeable lens 3. For example, when the generation information of the interchangeable lens 3 is "3" representing the third generation, the body control unit 27 recognizes that the interchangeable lens 3 is capable of hotline communication according to the communication specifications indicated by the first generation, second generation, and third generation.

[0132] Then, the body control unit 27 determines the generation indicating the communication specifications when hotline communication is performed based on the lens-side generation information and the body-side generation information as follows: The highest generation common to the generations indicating the communication specifications compatible with the interchangeable lens 3 and the camera body 2 is determined as the generation indicating the communication specifications for hotline communication. For example, if the lens-side generation information transmitted from the interchangeable lens 3 as described above is "3", that is, the interchangeable lens 3 is capable of hotline communication with the communication specifications indicated by the first, second, and third generations, and the body-side generation information is "4" indicating the fourth generation, the camera body 2 is capable of hotline communication with the communication specifications indicated by the first, second, third, and fourth generations, so the third generation, which is the highest generation common to the generations common to the interchangeable lens 3 and the camera body 2, is selected.

[0133] In this way, the body control unit 27 selects the highest generation common to the generation indicating the communication specifications supported by the interchangeable lens 3 and the generation indicating the communication specifications supported by the camera body 2, as shown in Fig. 7. Then, the body control unit 27 transmits the determined generation information to the first lens communication unit 38 via the first body communication unit 28. In addition, the body control unit 27 controls (sets) each unit of the camera body 2 according to the communication specifications indicated by the determined generation. This enables the camera body 2 to perform hotline communication with the attached interchangeable lens 3 in accordance with the communication specifications indicated by the determined generation.

[0134] Hotline communication begins when a command and data including generation information used for hotline communication is transmitted from the camera body 2 to the interchangeable lens 3 through command data communication. Specifically, when a command for setting up hotline communication is transmitted from the camera body 2 to the interchangeable lens 3, the generation information is also transmitted together with the command as a data packet. When starting hotline communication, the lens control unit 37 sets and controls each unit of the interchangeable lens 3 so that hotline communication is possible according to the communication specifications indicated by the generation information determined by the camera body 2, i.e., the generation information acquired from the camera body 2 via the first lens communication unit 38. This enables the interchangeable lens 3 to execute hotline communication with the camera body 2 according to the communication specifications indicated by the generation determined by the camera body 2. In this way, when a command to set up hotline communication and generation information of the first generation or higher are transmitted from the camera body 2 to the interchangeable lens 3, hotline communication is initiated from the interchangeable lens 3. In other words, hotline communication is initiated when the camera body 2 transmits to the interchangeable lens 3 a command to set up hotline communication and generation information (a value indicating the generation information) indicating the communication specifications to be used for hotline communication.

[0135] The body control unit 27 may select a communication specification different from the communication specification indicated by the highest generation among the generations compatible with both the interchangeable lens 3 and the camera body 2. For example, if adopting the communication specification indicated by the highest generation causes interference between the communication frequency and the drive frequency of the image sensor or the like, this interference can be avoided by adopting the communication specification indicated by a lower generation.

[0136] Thus, in this embodiment, the interchangeable lens 3 transmits a generation indicating a communication specification having items such as a communication speed and a communication interval to the camera body 2 as lens-side generation information. By receiving the lens-side generation information, the camera body 2 can grasp the communication specification (communication speed, etc.) that the interchangeable lens 3 can support. Compared to a case where the interchangeable lens 3 notifies the camera body 2 of the communication speed, communication interval, etc. that it can support by individually communicating multiple times, the lens-side generation information is transmitted from the interchangeable lens 3 to the camera body 2, so that the amount of data is reduced, and the communication time and the number of communications can be shortened. In addition, when the communication speed, communication interval, etc. that the interchangeable lens 3 can support are individually transmitted from the interchangeable lens 3 to the camera body 2, the camera body 2 needs to check whether there is a contradiction in the communication speed, communication interval, etc. transmitted from the interchangeable lens 3. However, in this embodiment, since the generation (generation information) indicates a communication specification (communication speed, communication interval, etc.) that is not contradictory, the body control unit 27 does not need to check for a contradiction in the communication speed, communication interval, etc. received from the interchangeable lens 3.

[0137] In the above explanation, the first generation, second generation, third generation, and fourth generation have been used as examples of generation information, but the generation information is not limited to these and may be fifth generation or higher generation information.

[0138] Also, the value of the generation information can be "0". The value of the generation information "0" is not used to determine the generation indicating the communication specifications used in hotline communication between the camera body 2 and the interchangeable lens 3 and start communication, but is used to not perform hotline communication or to stop hotline communication that has already started. Even if the lens is a manual focus lens that does not support autofocus, if the position of the focus lens can be detected, the detected focus lens position may be transmitted to the camera body 2 by hotline communication. However, for example, in a manual focus lens that does not have a mechanism for detecting the position of the focus lens, there is no need to transmit the focus lens position from the interchangeable lens 3 to the camera body 2 in the first place, and there is no need to perform hotline communication to transmit the focus lens position. If there is no need to transmit information other than the focus lens position to the camera body 2, there is no need to perform hotline communication between the interchangeable lens 3 and the camera body 2. Therefore, when an interchangeable lens 3 that does not support hotline communication and does not require such hotline communication is attached to the camera body 2, the value of the generation information "0" is transmitted from the interchangeable lens 3 to the camera body 2. In response, the camera body 2 sends a command to set up hotline communication together with a data packet indicating generation information with the value "0" to the interchangeable lens 3. When the interchangeable lens 3 receives the data packet "0", hotline communication with the camera body 2 does not start.

[0139] Also, the camera body 2 can end hotline communication by sending the generation information value "0" to the interchangeable lens 3. Hotline communication started between the camera body 2 and the interchangeable lens 3 may be ended when the power is turned off by operating the power switch of the camera body 2, when the power is turned off due to no operation for a certain period of time (also called a hibernation state or sleep state), in image playback mode, or when a menu is displayed. When ending hotline communication, the camera body 2 sends the value "0" to the interchangeable lens 3 as a command to set up hotline communication and a data packet indicating generation information. The interchangeable lens 3 starts hotline communication when it receives generation information values ​​"1" to "4" from the camera body 2 by command data communication, and ends hotline communication when it receives generation information value "0" from the camera body 2 by command data communication. Note that the parameter of the generation information that does not start communication or the parameter of the generation information that stops communication is not limited to "0" and may be a specific value such as "99".

[0140] In this way, a value (integers) equal to or greater than "0" can be used as the generation information. When an integer equal to or greater than "1" is sent from the interchangeable lens 3 to the camera body 2 as generation information, the camera body 2 determines a generation indicating the communication specifications with which the camera body 2 can communicate, and the interchangeable lens 3 begins hotline communication by receiving from the camera body 2 a command to set up hotline communication and the generation information equal to or greater than "1" that the camera body 2 has determined. Furthermore, when the interchangeable lens 3 sends "0" as the generation information to the camera body 2, the camera body 2 recognizes that the interchangeable lens 3 is an interchangeable lens that does not perform hotline communication, and the camera body 2 sends "0" as the generation information to the interchangeable lens 3. The interchangeable lens 3 does not start hotline communication upon receiving a command to set up hotline communication and the generation information that is "0" from the camera body 2. Note that when the interchangeable lens 3 sends "0" as the generation information to the camera body 2, the camera body 2 does not need to send "0" to the interchangeable lens 3, and does not need to send a command to set up hotline communication either.

[0141] Furthermore, after the interchangeable lens 3 receives a command to set up hotline communication from the camera body 2 and generation information that has been determined by the camera body 2 and is "1" or greater, and starts hotline communication, when the interchangeable lens 3 receives a command to set up hotline communication from the camera body 2 and generation information that is "0", the interchangeable lens 3 stops the hotline communication. In this way, when not conducting hotline communication, or when stopping hotline communication that has already started, the interchangeable lens 3 only needs to receive a command to set up hotline communication and generation information that is "0" from the camera body 2, so there is no need for a dedicated command to stop hotline communication. This makes it possible to reduce the number of commands. Also, since the same command can be used to start and stop hotline communication, control is simplified. The transmission of generation information from the camera body 2 to the interchangeable lens 3 not only transmits generation information indicating the communication specifications to be used for hotline communication, but also indicates, by being sent after a command to set up hotline communication, whether to start hotline communication, whether not to start hotline communication, or whether to stop hotline communication that has already been started.

[0142] FIG. 8 is a diagram showing an example of hotline communication performed according to the determination of generation information in the camera 1, which is an imaging device according to the first embodiment. In FIG. 8, a case where a focus lens is driven as a lens will be described. FIG. 8(a) shows a schematic diagram of a change in the actual position (L1) of the focus lens in the optical axis direction over time, FIG. 8(b) shows a pulse signal output from the encoder of the lens position detection unit 34 in response to the movement of the focus lens, FIG. 8(c) shows the sampling of the pulse signal by the lens control unit 37, FIG. 8(d) shows command data communication (CD1 to CD3) and hotline communication (HL1 to HL6) between the camera body 2 and the interchangeable lens 3, and FIG. 8(e) shows a schematic diagram of a change in the position (L2) of the focus lens over time when the position (pulse position) of the focus lens is restored in the camera body 2 based on the integrated value (pulse position information) of the pulse signal received in the hotline communication. In FIG. 8, the horizontal axis of (a) to (e) is a common time axis.

[0143] The curve L1 in FIG. 8(a) shows a schematic representation of the change in the position of the focus lens over time, with the horizontal axis representing time and the vertical axis representing the position of the focus lens in the direction of the optical axis L. FIG. 8(b) shows the pulse signal output from the encoder of the lens position detector 34 described above. The number of these pulse signals corresponds to the amount of movement of the focus lens, and is a pulse signal that is generated each time the focus lens is driven and moves a certain amount, and is generated more frequently when the change in the position of the focus lens is large. In other words, the higher the moving speed of the focus lens, the higher the frequency of generation of the pulse signal per unit time. The lens controller 37 accumulates the above-mentioned pulse signals and generates the pulse position information of the focus lens (the position of the focus lens represented by the accumulated number of pulses), which is transmitted from the interchangeable lens 3 to the camera body 2 by each hotline communication. The pulse signal in FIG. 8(b) may be a pulse signal output from the driving circuit of the lens driver 33. Curve L2 in Figure 8(e) shows a schematic representation of the change over time in the position of the focus lens reproduced in the camera body 2 based on the pulse position information received in each hotline communication, with the horizontal axis representing time and the vertical axis representing the position of the focus lens along the optical axis L.

[0144] As described above, command data communication and hotline communication are carried out using different communication paths, but in Fig. 8(d) command data communication (CD1-CD3) and hotline communication (HL1-HL6) are shown together. Command data communication (CD1-CD3) is indicated by a dashed double-headed arrow, and hotline communication (HL1-HL6) is indicated by a solid arrow. Command data communication is two-way communication between the camera body 2 and the interchangeable lens 3, and hotline communication is communication from the interchangeable lens 3 to the camera body 2.

[0145] In command data communication CD1, the lens control unit 37 of the interchangeable lens 3 transmits lens side generation information of the interchangeable lens 3 via the first lens communication unit 38 to the first body communication unit 28 of the camera body 2. When the lens side generation information of the interchangeable lens 3 is received by the first body communication unit 28, the body control unit 27 of the camera body 2 determines the generation indicating the communication specifications for performing hotline communication as described above, based on the lens side generation information and the body side generation information possessed by the camera body 2 itself.

[0146] In command data communication CD2, the first body communication unit 28 transmits a command packet and a data packet requesting the setting of hotline communication to the first lens communication unit 38. This data packet includes generation information indicating the communication specifications determined by the body control unit 27. When the first lens communication unit 38 receives the command packet and the data packet requesting the setting of hotline communication, the lens control unit 37 performs processing to set and control each unit of the interchangeable lens 3 so that communication is possible according to the communication specifications indicated by the generation information included in the data packet. In the command data communication CD2, information corresponding to a time lag Δt, which will be described later, is transmitted from the interchangeable lens 3 to the camera body 2.

[0147] 8(c), the lens control unit 37, which has received a command packet and a data packet (command data communication CD2) requesting the setting of hotline communication, starts sampling the pulse signal from the lens position detection unit 34 at time t1. By sampling (counting) the pulse signal, the lens control unit 37 becomes capable of generating information on the integrated value of the pulse signal sampled within the sampling time. The second lens communication unit 39 becomes capable of transmitting to the camera body 2 the integrated value (pulse position information) of the pulse signal from the origin position detected by the photointerrupter. Alternatively, sampling of the pulse signal may be performed before time t1, and after CD2 is received, pulse position information may be transmitted to the camera body 2 from time t1.

[0148] The first body communication unit 28 transmits a signal (drive command) instructing to drive the focus lens as command data communication CD3 to the first lens communication unit 38. The lens control unit 37 starts moving the focus lens based on this drive command.

[0149] As shown in FIG. 8(c), the lens control unit 37 samples (counts) the pulse signal output from the lens position detection unit 34 at a sampling interval that conforms to the sampling interval specifications indicated by the determined generation. The lens control unit 37 first samples the pulse signal output from the lens position detection unit 34 from time t1 to time t2, and generates pulse position information by accumulating the pulse signals. After time t2, the lens control unit 37 samples the pulse signal output from the lens position detection unit 34 at a sampling interval that conforms to the sampling interval specifications indicated by the determined generation. As described above, the lens control unit 37 continues sampling the pulse signal until it receives the value "0" of the generation information that instructs it to end the hotline communication.

[0150] In hotline communication HL1, the second lens communication unit 39 transmits the integrated value of the pulse signal sampled between time t1 and time t2 (in the example of FIG. 8, the integrated value of the pulse signal is 1) to the second body communication unit 29 as pulse position information.

[0151] In hotline communication HL2, the second lens communication unit 39 transmits pulse position information represented by the number of pulses (in the example of FIG. 8, the number of pulses is 3 pulses) obtained by adding together the integrated value of the pulse signals sampled from time t1 to time t2 (in the example of FIG. 8, the number of pulses is 1 pulse) and the integrated value of the pulse signals sampled from time t2 to time t3 (in the example of FIG. 8, the number of pulses is 2 pulses), to the second body communication unit 29. In hotline communications HL3, HL4, HL5, HL6, etc., the second lens communication unit 39 transmits to the second body communication unit 29 pulse position information represented by the number of pulses obtained by adding each number of pulses sampled in periods t3 to t4, t4 to t5, t5 to t6, t6 to t7, etc. to the integrated number of pulses sampled previously. Note that each hotline communication by the second lens communication unit 39 and the second body communication unit 29 is performed at the communication speed and communication interval of the communication specifications indicated by the generation determined by the body control unit 27 as described above. In this embodiment, the communication speed is 2.5 MHz and the communication interval is 1 msec. In other words, HL1, HL2, HL3, HL4, HL5, HL6... are transmitted from the lens control unit 37 to the body control unit 27 every 1 msec in synchronization with a clock frequency of 2.5 MHz.

[0152] As described above, the interval from time t1 to time t2, the interval from time t2 to time t3, the interval from time t3 to time t4, the interval from time t4 to time t5, the interval from time t5 to time t6, and the interval from time t6 to time t7 are sampling intervals according to the sampling interval specifications indicated by the determined generations. Furthermore, the interval between hotline communications HL1-HL2, between hotline communications HL2-HL3, between hotline communications HL3-HL4, between hotline communications HL4-HL5, and between hotline communications HL5-HL6 are communication intervals of the communication specifications indicated by the determined generations. In this embodiment, the sampling interval and the communication interval are the same time interval. Of course, the sampling interval and the communication interval may be different intervals from each other. For example, the communication interval may be twice the sampling interval.

[0153] Pulse position information represented by the integrated number of pulse signals repeatedly received by the second body communication unit 29 at each communication interval is sequentially stored in the body memory 22 of the camera body 2. The pulse position information is transferred to the body memory 22 by, for example, DMA (Direct Memory Access). The body control unit 27 refers to the pulse position information stored in the body memory 22 at any timing (for example, the timing when a vertical synchronization signal of the image sensor is output. In FIG. 8, it is time ta between time t6 and time t7), and calculates the time when each pulse position information was generated in the interchangeable lens 3 (times t2 to t6 on the interchangeable lens side) by a method described later. The body control unit 27 associates each pulse position information with the generation time of the pulse position information, thereby grasping the position of the focus lens at each time, as shown by the curve L2 in FIG. 8(e). It should be noted that the position information repeatedly received by the second body communication unit 29 at each communication interval is not limited to pulse position information represented by the accumulated number of pulse signals. The second body communication unit 29 may receive pulse signals sampled by the lens control unit 37 of the interchangeable lens 3 within a sampling period, and the body control unit 27 may accumulate the pulse signals to generate pulse position information of the lens.

[0154] The pulse position information associated with the generation time is used, for example, in the above-mentioned phase difference AF. The body control unit 27 calculates the defocus amount using the focus detection signal output from the image sensor 21 as described above. The body control unit 27 generates a signal instructing the driving of the focus lens based on the calculated defocus amount, and outputs the generated drive instruction signal (drive command) to the lens control unit 37 by command data communication. The lens control unit 37 drives and controls the focus lens, and transmits pulse position information to the body control unit 27. The body control unit 27 grasps the position of the focus lens at each time based on the pulse position information, and checks how far the focus lens has moved relative to the movement amount (defocus amount) of the focus lens instructed to the lens control unit 37.

[0155] Moreover, the pulse position information associated with the generation time can be used for the contrast AF described above. The body control unit 27 associates the pulse position information of the focus lens with the contrast evaluation value based on the generation time of the pulse position information and the generation time of the signal of the image sensor 21 used to calculate the contrast evaluation value. This allows the body control unit 27 to grasp the position of the focus lens and the contrast evaluation value at each time. The body control unit 27 calculates the pulse position of the focus lens at which the contrast evaluation value is at its peak as the in-focus position. Then, the body control unit 27 generates a signal to instruct driving of the focus lens based on the calculated in-focus position, and outputs the generated drive instruction signal (drive command) to the lens control unit 37 by command data communication. The lens control unit 37 performs drive control to move the focus lens to the in-focus position, and performs focus adjustment.

[0156] Here, regarding the lens position restored and generated by the camera body 2, a deviation that can occur due to differences in the clock timing between the camera body 2 and the interchangeable lens 3 will be described. The camera body 2 and the interchangeable lens 3 operate using separate clocks. That is, the camera body 2 generates a clock within the camera body 2 that the camera body itself uses, and the interchangeable lens 3 independently generates a clock within the interchangeable lens 3 that the interchangeable lens itself uses. The frequency of the clock within the camera body 2 and the frequency of the clock within the interchangeable lens 3 may be the same or different. If the camera body 2 and the interchangeable lens 3 generate clocks with the same frequency and the clock timing (rising and falling edges) are completely synchronized, the camera body 2 can know the time when the signal generated by the interchangeable lens 3 was generated. However, if the clock timing of the camera body 2 and the interchangeable lens 3, that is, the clock frequency or the rising and falling edges of the clock, are different, the camera body 2 cannot accurately know the time when the interchangeable lens 3 generated the signal, and a time deviation occurs between the actual lens position and the lens position restored and generated by the camera body 2.

[0157] In the following, a method will be described in which the camera body 2 calculates the time (times t2 to t6 on the interchangeable lens side) at which the interchangeable lens 3 generated pulse position information (integrated value of pulse signal) when the clock timings of the camera body 2 and the interchangeable lens 3 are different. As described above with reference to Figs. 8(b) to (d), the pulse position information is generated by the lens control unit 37 sampling a pulse signal from the lens position detection unit 34 or the lens driving unit 33 at a predetermined cycle. The sampling of the pulse signal by the lens control unit 37 is performed according to a clock signal used inside the interchangeable lens 3 (hereinafter referred to as a lens clock signal). That is, in Fig. 8, the times t2, t3, t4, t5, t6, t7, ... at which the pulse signal is sampled and the integrated value of the pulse signal is generated are synchronized with the rising or falling edge of the lens clock signal. This lens clock signal is a clock signal different from the CLK signal supplied from the camera body 2.

[0158] The body control unit 27 grasps the time when sampling of the pulse signal is started based on the time when command data communication CD2 for setting up hotline communication, for example. In order for the body control unit 27 to grasp the time when the lens control unit 37 generated the integrated value of the pulse signal based on the time of command data communication CD2, the lens control unit 37 calculates the time from the time of command data communication CD2 to the time t1 when sampling of the pulse signal is started (the delay time Δt shown in FIG. 8(d)) by a method described later. The lens control unit 37 transmits information corresponding to the calculated delay time Δt to the camera body 2 by command data communication CD2.

[0159] The body control unit 27 of the camera body 2 acquires information corresponding to the delay time Δt from the interchangeable lens 3, and uses the delay time Δt to calculate the generation time of the pulse position information, which is the integrated value of the pulse signal from the transmission time of the command data communication CD2. In this way, the body control unit 27 calculates the generation time of the pulse position information based on the transmission time of the command data communication CD2.

[0160] Fig. 9 is a diagram for explaining an example of a method for calculating the delay time Δt in the imaging device according to the first embodiment. Note that times t-1, t0, t1, and t2 in Fig. 9 correspond to times t-1, t0, t1, and t2 in Fig. 8, respectively. A command packet 44 and a data packet 45 are a command packet and a data packet transmitted from the camera body 2 to the interchangeable lens 3 by command data communication CD2 shown in Fig. 8. The command packet 44 is a signal that instructs the setting of hotline communication, and the data packet 45 is a signal that includes generation information determined by the camera body 2.

[0161] The trigger signal that latches the pulse signals shown at times t-1, t1, and t2 in Fig. 9 is a trigger signal that is repeatedly generated at a predetermined period S based on the lens clock signal output by the lens control unit 37 of the interchangeable lens 3. The predetermined period S is the sampling interval in Fig. 8(c), which is the sampling interval described in Fig. 6 and is indicated by the generation information. The lens control unit 37 uses this trigger signal to sample (latch) the pulse signal from the lens position detection unit 34 or the lens driving unit 33 at the sampling interval S.

[0162] Here, a method for calculating the time lag Δt will be described. As a premise, when the interchangeable lens 3 is attached to the camera body 2 and power supply from the camera body 2 starts, the lens control unit 37 latches the pulse signal at a sampling interval S according to the specifications that the lens control unit 37 can handle. FIG. 9 shows the time from time t-1 of the latch immediately before command data communication CD2 is performed. After the lens control unit 37 normally receives the command packet 44 of the command data communication CD2 and sets the RDY signal to a high level, it sets the RDY signal to a low level at time t0. The lens control unit 37 detects the time from time t-1 to time t0, and calculates the above-mentioned time lag Δt by subtracting the time from time t-1 to time t0 from the period S from time t-1 to time t1. Specifically, the lens control unit 37 detects the time from time t-1 to time t0 by counting the lens clock signal during the period from time t-1 to the falling edge of the RDY signal using an internal counter circuit or the like. Then, the lens control unit 37 outputs information indicating the deviation time Δt to the body control unit 27 by command data communication CD2.

[0163] Furthermore, when the lens control unit 37 receives the data packet 45, it transitions the RDY signal from low level to high level. As described above, the data packet 45 includes generation information, and the lens control unit 37 starts hotline communication according to the communication specifications indicated by the generation determined by the camera body 2. Furthermore, the lens control unit 37 generates a trigger signal at a sampling interval S according to the sampling interval specifications indicated by the determined generation, and performs sampling processing of the pulse signal (see FIG. 8). The lens control unit 37 counts the pulse signals of the lens position detection unit 34 or the lens driving unit 33 generated during the interval S from time t1 to time t2. The number of sampled pulse signals is transmitted from the interchangeable lens 3 to the camera body 2 in hotline communication HL1 in FIG. 8.

[0164] The body control unit 27 acquires information indicating the delay time Δt from the lens control unit 37 through the command data communication CD2. The body control unit 27 calculates the generation time of the pulse position information, that is, the time when the pulse signal output from the encoder of the lens position detection unit 34 or the lens driving unit 33 was sampled, based on the delay time Δt and the sampling interval S. For example, the body control unit 27 calculates (determines) the time t0+Δt+S obtained by adding the delay time Δt and the sampling interval S to the falling time t0 of the RDY signal as the generation time t2 of the pulse position information. In addition, the body control unit 27 calculates the generation times t3, t4, t5, and t6 of the pulse position information as t2+S, t2+2S, t2+3S, and t2+4S, respectively.

[0165] In this embodiment, the camera body 2 acquires a time lag Δt relating to the time when pulse position information obtained by integrating pulse signals is generated, and calculates focus lens position information using the time lag Δt. This makes it possible to reduce the time delay between the focus lens position calculated and restored by the camera body 2 and the actual focus lens position in the interchangeable lens 3. Below, it will be explained how the time lag between the restored focus lens position and the actual focus lens position is reduced (the time lag Δt, which is the cause of the delay, is canceled) in comparison with a comparative example.

[0166] In the comparative example, the position of the focus lens is calculated without acquiring an accurate time lag Δt. Since the body control unit 27 does not receive an accurate time lag Δt from the lens control unit 37, the body control unit 27 calculates the generation time of the lens position information using a fixed value corresponding to the time lag instead. However, since the lens position information is generated using a trigger signal (a signal based on a lens clock signal used inside the interchangeable lens 3) that is asynchronous with the clock signal (CLK signal) from the camera body 2, the time lag changes according to the timing at which a command instructing the setting of hotline communication is transmitted from the camera body 2 (the falling edge timing of the RDY signal in the embodiment shown in FIG. 9). As a result, if the time lag is set to a fixed value, an error occurs when associating the pulse position information with the generation time, and a difference occurs between the actual position of the focus lens and the calculated position. Note that a clock signal (HCLK signal) for hotline communication is generated based on the lens clock signal, and is output from the interchangeable lens 3 to the camera body 2.

[0167] In this embodiment, the focus lens position is restored using the time lag Δt between the timing when the command signal is transmitted and the timing when the lens control unit 37 actually measures (samples) the pulse signal, so that the time lag between the restored focus lens position and the actual focus lens position is reduced. As a result, for example, it is possible to suppress the occurrence of an error when determining the position of the focus lens to be the in-focus position in autofocus.

[0168] Fig. 10 is an explanatory diagram of generation information transmitted from the interchangeable lens 3 to the camera body 2 of the camera of the first embodiment, generation information transmitted from the camera body 2 to the interchangeable lens 3, and generation information indicating communication specifications used when data is transmitted by hotline communication from the interchangeable lens 3. CD1 and CD2 shown in Fig. 10 indicate command data communication as in Fig. 8, and HL indicates hotline communication.

[0169] The fourth generation interchangeable lens 3 and camera body 2 of the camera of the first embodiment are also capable of performing hotline communication according to the communication specifications indicated by the previous generation (the generation with the smaller number, the lower grade), and are therefore compatible with the communication specifications indicated by the first to fourth generations, respectively. As shown in FIG. 10, in command data communication CD1, the first lens communication unit 38 of the interchangeable lens 3 transmits "4" as lens-side generation information to the first body communication unit 28 by command data communication. The body control unit 27 receives the transmitted lens-side generation information "4" via the first body communication unit 28. The body control unit 27 of the fourth-generation camera body 2 determines the fourth generation, which is the highest generation common to the interchangeable lens 3 and the camera body 2, as the generation indicating the communication specifications of the hotline communication. Then, the body control unit 27 transmits the determined generation information "4" of the fourth generation to the first lens communication unit 38 via the first body communication unit 28. Thereafter, the interchangeable lens 3 transmits data to the camera body 2 by hotline communication in accordance with the communication specifications indicated by the fourth generation.

[0170] According to the above-described embodiment, the following advantageous effects can be obtained. (1) The interchangeable lens 3 transmits generation information indicating the communication specifications of the hotline communication to the camera body 2 by command data communication. In this manner, the camera body 2 can ascertain the communication specifications (communication speed, etc.) that the interchangeable lens 3 can support by referring to the generation information transmitted from the interchangeable lens 3 by command data communication. This allows proper communication between the camera body 2 and the interchangeable lens 3. In addition, the amount of data transmitted from the interchangeable lens 3 to the camera body 2 can be reduced compared to the case where data transmitted by hotline communication, such as data on communication speed and communication interval, information on the drive of the focus lens (information on the position of the focus lens, etc.), and information on the drive of the anti-vibration lens (information on the position of the anti-vibration lens, etc.), is individually transmitted from the interchangeable lens 3 to the camera body 2, and the communication time and number of communications required to determine the communication specifications between the interchangeable lens 3 and the camera body 2 can be shortened. Here, the number of values ​​of the generation information is less than the number of all combinations of the communication specifications and data indicated by the generation information. Furthermore, when the communication specifications (communication speed, communication interval, etc.) and sampling interval specifications indicated in the generation information are individually transmitted from the interchangeable lens 3 to the camera body 2, it is necessary for the camera body 2 to check whether there are any contradictions in the individual pieces of information. In this embodiment, since consistent communication specifications (communication speed, communication interval, etc.) and sampling interval specifications are set and stored as generation information indicating these specifications, once the generation information is received, there is no need for the camera body 2 to check whether there are any contradictions. Furthermore, in accordance with the communication specifications indicated by the generation determined by the camera body 2, the interchangeable lens 3 transmits information (lens position information) about the driven member (such as the focus lens) generated by the generation unit (lens control unit 37) to the camera body 2 via hotline communication. Therefore, position information about the driven member, such as the focus lens, can be transmitted at high speed from the interchangeable lens 3 to the camera body 2 using hotline communication, thereby speeding up the autofocus operation.

[0171] (2) The interchangeable lens 3 includes a lens control unit 37 that repeatedly generates information (lens pulse position information) about a driven member (such as a focus lens), transmits the information to the camera body 2, calculates a delay time Δt from the time a signal instructing the start of communication is received from the camera body 2 until the lens control unit 37 generates information about the driven member, and transmits the delay time Δt to the camera body 2. As a result, the camera body 2 can grasp the position of the focus lens at each time by using the lens pulse position information and the delay time Δt. Also, in this embodiment, the camera body 2 restores and generates the position of the focus lens using the delay time Δt. As a result, it is possible to reduce the error between the focus lens position restored by the camera body 2 and the actual focus lens position in the interchangeable lens 3.

[0172] (3) The CLK terminal is positioned farther from the VBAT terminal than the GND terminal. Furthermore, a PGND terminal is placed between the GND terminal and the VBAT terminal. This makes it possible to shield the CLK terminal, which sends the clock signal used in command data communication, from noise caused by the VBAT terminal, and thus makes it possible to carry out command data communication stably. This allows generation information to be transmitted and received reliably between the camera body 2 and the interchangeable lens 3.

[0173] (Second embodiment) Next, a camera according to a second embodiment will be described. Descriptions of configurations common to the first embodiment will be omitted. The camera according to the second embodiment is configured to transmit generation information lower than the highest generation that the camera body 2 can support to the interchangeable lens 3 in a specific situation. FIG. 11 is an explanatory diagram of generation information transmitted from the interchangeable lens 3 to the camera body 2, generation information transmitted from the camera body 2 to the interchangeable lens 3, and generation information indicating communication specifications used when data is transmitted from the interchangeable lens 3 by hotline communication in the camera according to the second embodiment. CD1 and CD2 shown in FIG. 11 indicate command data communication as in FIG. 8, and HL indicates hotline communication.

[0174] In the camera of the second embodiment, for example, the fourth-generation interchangeable lens 3 and camera body 2 shown in Fig. 11 can also perform hotline communication according to the communication specifications indicated by the previous generation (the generation with a smaller number, the lower grade), and therefore can support the communication specifications indicated by the first to fourth generations. As shown in Fig. 11, in command data communication CD1, the first lens communication unit 38 of the interchangeable lens 3 transmits "4" as the lens-side generation information to the first body communication unit 28 by command data communication. The body control unit 27 receives the transmitted lens-side generation information "4" via the first body communication unit 28.

[0175] In the camera of the second embodiment, for example, in a situation where the remaining charge of the battery provided in the camera body 2 is low, the camera operates at a lower generation with less power consumption, so the body control unit 27 of the fourth-generation camera body 2 transmits generation information "3", for example, indicating the third generation, which is lower than the fourth generation, which is the highest generation common to the interchangeable lens 3 and the camera body 2, to the first lens communication unit 38 via the first body communication unit 28. The lens control unit 37 of the interchangeable lens 3 receives the generation information "3" via the first lens communication unit 38, and then, according to the communication specification indicated by the third generation, the interchangeable lens 3 transmits data to the camera body 2 by hotline communication. Other operations of the camera of the second embodiment are the same as those described using FIG. 8 and FIG. 9. The body control unit 27 of the camera body 2 may select an arbitrary communication specification from the communication specifications compatible with the camera body 2, and transmit generation information indicating the selected communication specification to the first lens communication unit 38 via the first body communication unit 28. In this case, the body control unit 27 of the camera body 2 may select any communication specification from among the communication specifications that the camera can support, without recognizing whether the generation information to be transmitted is a generation common to the interchangeable lens 3 and the camera body 2, or regardless of whether the generation information is a generation common to the interchangeable lens 3 and the camera body 2.

[0176] The camera of the second embodiment operates at a lower generation with less power consumption in certain situations, such as when the battery in the camera body 2 has little charge remaining, so it transmits generation information that is lower than the highest generation that the camera body 2 can support to the interchangeable lens 3, and the interchangeable lens 3 transmits data to the camera body 2 via hotline communication in accordance with the communication specifications indicated in the generation information received from the camera body 2. This enables the camera of the second embodiment to operate at a generation with less power consumption in certain situations.

[0177] (Third embodiment) Next, a camera according to a third embodiment will be described. Descriptions of configurations common to the first embodiment will be omitted. In the camera according to the third embodiment, in a specific situation, the camera body 2 transmits generation information that is lower than the highest generation that the camera body 2 can support to the interchangeable lens 3, and when the generation information received from the camera body 2 differs from the generation information transmitted from the interchangeable lens 3 to the camera body 2, the interchangeable lens 3 transmits data to the camera body 2 via hotline communication in accordance with the communication specifications indicated by the generation information transmitted from the interchangeable lens 3 to the camera body 2.

[0178] Fig. 12 is an explanatory diagram of generation information transmitted from the interchangeable lens 3 to the camera body 2 of the camera of the third embodiment, generation information transmitted from the camera body 2 to the interchangeable lens 3, and generation information indicating communication specifications used when data is transmitted by hotline communication from the interchangeable lens 3. CD1 and CD2 shown in Fig. 12 indicate command data communication as in Fig. 8, and HL indicates hotline communication.

[0179] In the camera of the third embodiment, for example, the fourth-generation interchangeable lens 3 and camera body 2 shown in Fig. 12 can also perform hotline communication according to the communication specifications indicated by the previous generation (the generation with a smaller number, the lower grade), and are therefore compatible with the communication specifications indicated by the first to fourth generations. As shown in Fig. 12, in command data communication CD1, the first lens communication unit 38 of the interchangeable lens 3 transmits "4" as the lens-side generation information to the first body communication unit 28 by command data communication. The body control unit 27 receives the transmitted lens-side generation information "4" via the first body communication unit 28.

[0180] In the camera of the third embodiment, as in the camera of the second embodiment, in a situation where the remaining charge of the battery of the camera body 2 is low, for example, the body control unit 27 of the fourth-generation camera body 2 transmits generation information "3", for example, the third generation, which is lower than the fourth generation that is the highest generation that the camera body 2 can support, to the first lens communication unit 38 via the first body communication unit 28. The lens control unit 37 of the interchangeable lens 3 receives the generation information "3" via the first lens communication unit 38. Note that the body control unit 27 of the camera body 2 may select an arbitrary communication specification from the communication specifications that the camera body 2 can support, and transmit generation information indicating the selected communication specification to the first lens communication unit 38 via the first body communication unit 28. In this case, the body control unit 27 of the camera body 2 may select any communication specification from among the communication specifications that the camera can support, without recognizing whether the generation information to be transmitted is a generation common to the interchangeable lens 3 and the camera body 2, or regardless of whether the generation information is a generation common to the interchangeable lens 3 and the camera body 2.

[0181] Here, the generation information "3" that the interchangeable lens 3 receives from the camera body 2 is different from the generation information "4" that the interchangeable lens 3 transmits to the camera body 2. In such a case, the interchangeable lens 3 of the camera of the third embodiment transmits data to the camera body 2 via hotline communication in accordance with the communication specifications indicated by the fourth generation, which is the highest generation that the interchangeable lens 3 can support. Other operations of the camera of the third embodiment are similar to those described using Figures 8 and 9.

[0182] Thus, in the camera of the third embodiment, when the generation information received from the camera body 2 differs from the generation information transmitted from the interchangeable lens 3 to the camera body 2, the interchangeable lens 3 transmits data to the camera body 2 via hotline communication in accordance with the communication specifications indicated by the fourth generation transmitted from the interchangeable lens 3 to the camera body 2. This makes it possible to take advantage of the performance of the interchangeable lens 3, for example by performing operations such as faster focus adjustment.

[0183] (Fourth embodiment) Next, a camera of the fourth embodiment will be described. Descriptions of configurations common to the first embodiment will be omitted. In the camera of the fourth embodiment, as in the camera of the third embodiment, in a specific situation, the camera body 2 transmits generation information lower than the highest generation that the camera body 2 can support to the interchangeable lens 3, and when the generation information received from the camera body 2 differs from the highest generation information that the interchangeable lens 3 can support, the interchangeable lens 3 transmits data to the camera body 2 by hotline communication according to the communication specifications indicated by the generation that the interchangeable lens 3 can support.

[0184] Fig. 13 is an explanatory diagram of generation information transmitted from the interchangeable lens 3 to the camera body 2 in the camera of the fourth embodiment, generation information transmitted from the camera body 2 to the interchangeable lens 3, and generation information indicating communication specifications used when data is transmitted by hotline communication from the interchangeable lens 3. CD1 and CD2 shown in Fig. 13 indicate command data communication as in Fig. 8, and HL indicates hotline communication.

[0185] In the camera of the fourth embodiment, the camera body 2 is also capable of hotline communication according to the communication specifications indicated by the previous generation (the generation with a smaller number, the lower grade), so for example, in the example shown in Fig. 13, the fourth-generation camera body 2 is capable of hotline communication according to the communication specifications indicated by the first to fourth generations. In contrast, the interchangeable lens 3 is capable of hotline communication only according to the communication specifications indicated by one generation, and is not capable of hotline communication according to the communication specifications indicated by the previous generation (the generation with a smaller number, the lower grade). In the example shown in Fig. 13, the interchangeable lens 3 is only capable of hotline communication according to the communication specifications indicated by the fourth generation, and is not capable of hotline communication according to the communication specifications indicated by the first to third generations.

[0186] 13, in command data communication CD1 in the camera of the fourth embodiment, the first lens communication unit 38 of the interchangeable lens 3 transmits "4" as the lens side generation information to the first body communication unit 28 by command data communication. The body control unit 27 receives the transmitted lens side generation information "4" via the first body communication unit 28.

[0187] In the camera of the fourth embodiment, for example, in a situation where the remaining charge of the battery provided in the camera body 2 is low, in order to perform hotline communication using a communication specification indicated by a lower generation with less power consumption, the body control unit 27 of the fourth-generation camera body 2 transmits generation information "3", for example, indicating the third generation, which is lower than the fourth generation, which is the highest generation compatible with the camera body 2, to the first lens communication unit 38 via the first body communication unit 28. The lens control unit 37 of the interchangeable lens 3 receives the generation information "3" via the first lens communication unit 38. Note that the body control unit 27 of the camera body 2 may select an arbitrary communication specification from among the communication specifications compatible with the camera body 2, and transmit generation information indicating the selected communication specification to the first lens communication unit 38 via the first body communication unit 28. At that time, the body control unit 27 of the camera body 2 may select an arbitrary communication specification from among the communication specifications compatible with the camera, without recognizing whether the transmitted generation information is a generation common to the interchangeable lens 3 and the camera body 2, or regardless of whether the generation information is a generation common to the interchangeable lens 3 and the camera body 2.

[0188] Here, the generation information "3" that the interchangeable lens 3 receives from the camera body 2 is different from the generation information "4" that the interchangeable lens 3 is compatible with. In such a case, the interchangeable lens 3 of the camera of the fourth embodiment transmits data to the camera body 2 via hotline communication in accordance with the communication specifications indicated by the fourth generation that the interchangeable lens 3 is compatible with. Other operations of the camera of the fourth embodiment are similar to those described using Figures 8 and 9.

[0189] Thus, in the camera of the fourth embodiment, when the generation information received from the camera body 2 differs from the generation information that the interchangeable lens 3 can support, the interchangeable lens 3 transmits data to the camera body 2 via hotline communication in accordance with the communication specifications indicated by the generation information that the interchangeable lens 3 can support. This makes it possible to take advantage of the performance of the interchangeable lens 3, for example by performing operations such as faster focus adjustment. Furthermore, even if the interchangeable lens 3 is compatible with only one generation, it is possible to transmit data to the camera body 2 via hotline communication.

[0190] The following modifications are also within the scope of the present invention, and one or more of the modifications may be combined with the above-described embodiment.

[0191] (Variation 1) In the above-described embodiment, an example has been described in which full-duplex communication is performed as command and data communication between the first lens communication unit 38 and the first body communication unit 28. However, the first lens communication unit 38 and the first body communication unit 28 may be configured to perform half-duplex communication as command and data communication.

[0192] (Variation 2) In the embodiment described above, an example has been described in which the lens control unit 37 calculates the time from time t0 to time t1 in Fig. 9 as the delay time Δt, and the body control unit 27 calculates the generation time of the lens position information using the delay time Δt calculated by the lens control unit 37. However, the lens control unit 37 may calculate the time from time t0 to time t2 in Fig. 9 (delay time Δt2) and output the delay time Δt2 to the camera body 2. In this case, the body control unit 27 calculates the generation time of the lens position information using the delay time Δt2.

[0193] For example, the body control unit 27 calculates (determines) time t0+Δt2, which is the sum of the fall time t0 of the RDY signal and the delay time Δt2, as the generation time t2 of the lens position information. In addition, the body control unit 27 calculates the generation times t3, t4, t5, and t6 of the lens position information as t2+S, t2+2S, t2+3S, and t2+4S, respectively.

[0194] (Variation 3) In the embodiment described above, the lens control unit 37 has the first lens communication unit 38 and the second lens communication unit 39, but these may not be provided separately and may be communicated by a single lens communication unit. Also, the body control unit 27 has the first body communication unit 28 and the second body communication unit 29, but these may not be provided separately and may be communicated by a single body communication unit.

[0195] (Variation 4) In the above embodiment, the interchangeable lens of the camera is taken as an example of the accessory, but the accessory is not limited to the interchangeable lens. For example, a teleconverter, a wide converter, a close-up ring, etc., which are attached between the camera body and the interchangeable lens and change the focal length of the interchangeable lens, may be used. Alternatively, the present invention may be applied to a mount adapter that allows an accessory including an interchangeable lens of another mount standard to be attached to the mount standard of the camera body described above. In other words, the present invention may be applied to any accessory that is attached to the mount of the camera body and used. In that case, the lens side terminal group, the lens side claw portion 139, the first and second lens communication units 38, 39, etc. correspond to the accessory side terminal group, the accessory side protrusion, the accessory side communication unit, etc. of each accessory. In the above embodiment, the accessories are attachable to a camera body, but the above camera body may be a mount adapter that allows an interchangeable lens of the above mount standard to be attached to a camera body that has a different mount standard than the above, and the above accessory may be attached to the mount adapter.

[0196] (Variation 5) In the above-described embodiment, the interchangeable lens 3 transmits information to the camera body 2 at the communication interval of the communication specification indicated by the determined generation. However, the interchangeable lens 3 does not necessarily have to transmit data at every communication interval of the communication specification indicated by the determined generation. The communication interval at which the interchangeable lens 3 transmits may be an integer multiple of the communication interval of the communication specification indicated by the determined generation, for example, twice the communication interval of the communication specification indicated by the determined generation. In that case, the camera body 2 can receive all data transmitted from the interchangeable lens 3 at twice the communication interval of the communication specification indicated by the determined generation. Of course, the data may be transmitted irregularly, not periodically, as long as the generated data is synchronized with the communication interval of the communication specification indicated by the determined generation, instead of at twice the communication interval. Alternatively, the communication interval at which the interchangeable lens 3 transmits data may be three times the communication interval of the communication specification indicated by the determined generation.

[0197] Although various embodiments and modifications have been described above, the present invention is not limited to these. The above-described embodiments and modifications may be combined. Furthermore, other aspects that are conceivable within the scope of the technical idea of ​​the present invention are also included in the scope of the present invention. [Explanation of symbols]

[0198] REFERENCE SIGNS LIST 1... camera (camera system), 2... camera body, 3... interchangeable lens, 27... body control unit, 28... first body communication unit, 29... second body communication unit, 37... lens control unit, 38... first lens communication unit, 39... second lens communication unit

Claims

[Claim 1] a camera body to which an accessory can be attached and which can communicate with the accessory, the camera body being capable of receiving information from the accessory regarding a movable member that the accessory includes in accordance with one or more communication specifications, and a first communication unit that performs one-way communication from the accessory; a second communication unit that performs bidirectional communication with the accessory independently of the first communication unit; Equipped with the second communication unit receives a first value indicating a communication specification of the first communication unit from the accessory; The first communication unit receives information about the movable member from the accessory in a communication specification indicated by the first value, and the camera body does not have a terminal through which a signal is output from the camera body.

Citation Information

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