Lighting control device, lighting control method, recording medium, and imaging system

The lighting control device and method address the issue of iris and reflection region overlap in eye images by adjusting illumination, enhancing authentication accuracy in iris-based systems.

JP7779319B2Active Publication Date: 2025-12-03NEC CORP
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Patent Information

Application Number
JP2023544849
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-31
Publication Date
2025-12-03
Estimated Expiration
2041-08-31

AI Technical Summary

Technical Problem

Existing authentication systems face challenges in accurately authenticating targets using iris patterns due to overlapping issues between the iris region and reflection regions in eye images, which degrade authentication accuracy.

Method used

A lighting control device and method that detect and control the overlap between iris and reflection regions in eye images by adjusting the illumination mode, including the positioning and intensity of illumination light sources to minimize overlap and enhance iris pattern visibility.

Benefits of technology

The solution improves authentication accuracy by reducing the impact of overlap between iris and reflection regions, enabling more precise iris-based target authentication.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Abstract

An illumination control device 3 comprises: a detection means 311 for detecting, in an eye image IMG_E generated by capturing an image of an eye of an object illuminated with illumination light IL from an illumination device 2, an iris area IA corresponding to an iris of an eye and a reflection area RA corresponding to a reflection image of the illumination light; and an illumination control means 312 for controlling the illumination device on the basis of the state of overlap between the iris area and the reflection area.
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Description

[Technical Field]

[0001] The present disclosure relates to the technical fields of a lighting control device, a lighting control method, a recording medium, and an imaging system that can be used in, for example, an authentication system that authenticates a target using the target's iris. [Background technology]

[0002] An example of an authentication system capable of authenticating a target using an image generated by capturing an image of the target's eye (particularly, the iris) is described in Patent Document 1. Other prior art documents related to this disclosure include Patent Documents 2 to 8. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2002-341406 [Patent Document 2] Japanese Patent Application Publication No. 11-203478 [Patent Document 3] Special Publication No. 2002-514098 [Patent Document 4] Japanese Patent Application Laid-Open No. 2003-308523 [Patent Document 5] International Publication No. 2020 / 009126 Brochure [Patent Document 6] International Publication No. 2020 / 261424 Brochure [Patent Document 7] International Publication No. 2021 / 049428 Brochure [Patent Document 8] Japanese Patent Application Laid-Open No. 2007-319174 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of this disclosure is to provide a lighting control device, a lighting control method, a recording medium, and an imaging system that aim to improve upon the techniques described in prior art documents. [Means for solving the problem]

[0005] One aspect of a lighting control device includes a detection means for detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of the eye of a subject illuminated with illumination light from a lighting device, and a lighting control means for controlling the lighting device based on the state of overlap between the iris region and the reflection region.

[0006] One aspect of the lighting control method includes detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing at least an image of the eye of a subject illuminated with illumination light from a lighting device, and controlling the lighting device based on the state of overlap between the iris region and the reflection region.

[0007] One aspect of the recording medium is a recording medium having recorded thereon a computer program that causes a computer to execute an illumination control method, including detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by at least capturing an image of the eye of a subject illuminated with illumination light from a lighting device, and controlling the lighting device based on the state of overlap between the iris region and the reflection region.

[0008] One aspect of the imaging system includes a right illumination device that emits right illumination light capable of illuminating at least the right eye of a subject, a left illumination device that emits left illumination light capable of illuminating at least the left eye of the subject, and an imaging device that images the right eye illuminated with the right illumination light and the left eye illuminated with the left illumination light, wherein the right illumination device is disposed on the left side of the imaging device as viewed from the front, and the left illumination device is disposed on the right side of the imaging device as viewed from the front, and when the imaging device images the right eye and the left eye, the optical axis of the right illumination device and the optical axis of the left illumination device intersect between the imaging device and the subject. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a block diagram showing the configuration of a lighting control device in the first embodiment. [Figure 2] FIG. 2 is a block diagram showing the configuration of an imaging system according to the second embodiment. [Figure 3] FIG. 3 is a block diagram showing the overall configuration of an authentication system according to the third embodiment. [Figure 4] FIG. 4 is a block diagram showing the configuration of an authentication device in the third embodiment. [Figure 5] FIG. 5 is a flowchart showing the flow of authentication operations performed by the authentication device in the third embodiment. [Figure 6] FIG. 6 shows an example of the iris region and reflection region detected in the eye image. [Figure 7] FIG. 7 shows an example of the iris region and reflection region detected in the eye image. [Figure 8] 8(a) and 8(b) show examples of iris regions and reflection regions detected in an eye image, respectively. [Figure 9] FIG. 9 is a block diagram showing the configuration of an authentication device in the fourth embodiment. [Figure 10] FIG. 10 is a flowchart showing the flow of authentication operations performed by the authentication device in the fourth embodiment. [Figure 11]FIG. 11 is a block diagram showing the configuration of an authentication device in the fifth embodiment. [Figure 12] FIG. 12 is a flowchart showing the flow of authentication operations performed by the authentication device in the fifth embodiment. [Figure 13] 13(a) and 13(b) show examples of iris regions and reflection regions detected in an eye image, respectively. [Figure 14] 14(a) and 14(b) show examples of iris regions and reflection regions detected in an eye image, respectively. [Figure 15] FIG. 15 is a schematic diagram showing how a plurality of eye images are combined. [Figure 16] FIG. 16 is a schematic diagram showing how a plurality of feature amounts extracted from a plurality of eye images are combined. [Figure 17] FIG. 17 is a block diagram showing the overall configuration of an authentication system according to the sixth embodiment. [Figure 18] FIG. 18 shows the positional relationship between a plurality of lighting devices in the sixth embodiment. [Figure 19] FIG. 19 is a flowchart showing the flow of authentication operations performed by the authentication device in the sixth embodiment. [Figure 20] FIG. 20 shows the positional relationship between the illumination ranges of a plurality of lighting devices and the eyes of a target person. [Figure 21] FIG. 21 is a block diagram showing the overall configuration of an authentication system according to the seventh embodiment. [Figure 22] FIG. 22 is a flowchart showing the flow of authentication operations performed by the authentication device in the seventh embodiment. [Figure 23] FIG. 23 is a block diagram showing the overall configuration of an authentication system according to the eighth embodiment. [Figure 24] FIG. 24 is a block diagram showing the configurations of a right lighting device, a left lighting device, an imaging device, and an imaging system in the eighth embodiment. [Figure 25] FIG. 25 is a block diagram showing the configuration of an authentication device in the eighth embodiment. [Figure 26]FIG. 26 is a flowchart showing the flow of authentication operations performed by the authentication device in the eighth embodiment. [Figure 27] FIG. 27 is a block diagram showing the configurations of a right lighting device, a left lighting device, an imaging device, and an imaging system in a comparative example. [Figure 28] Each of Figures 28(a) and 28(b) shows an example of an eye image. [Figure 29] FIG. 29 is a block diagram showing the configuration of an authentication device in the ninth embodiment. [Figure 30] FIG. 30 is a flowchart showing the flow of authentication operations performed by the authentication device in the ninth embodiment. [Figure 31] FIG. 31 is a block diagram showing the configuration of an authentication device in the tenth embodiment. [Figure 32] FIG. 32 is a flowchart showing the flow of authentication operations performed by the authentication device in the tenth embodiment. [Figure 33] FIG. 33 shows eye regions identified within a facial image. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, embodiments of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described with reference to the drawings. (1) First embodiment

[0011] First, a first embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Below, with reference to Fig. 1, the lighting control device, the lighting control method, and the recording medium of the first embodiment will be described using a lighting control device 1000 to which the lighting control device, the lighting control method, and the recording medium of the first embodiment are applied. Fig. 1 is a block diagram showing the configuration of lighting control device 1000 of the first embodiment.

[0012] 1, lighting control device 1000 includes detection unit 1001 and lighting control unit 1002. Detection unit 1001 detects an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in eye image 1004 generated by capturing at least an image of the eye of a target illuminated with illumination light from lighting device 1003. Lighting control unit 1002 controls lighting device 1003 based on the overlap state between the iris region and the reflection region.

[0013] Depending on the overlap state between the iris region and the reflection region in the eye image 1004, the accuracy of target authentication using the iris of the target captured in the eye image 1004 may be degraded. This is because at least a portion of the iris region is hidden by the reflection region. However, the lighting control device 1000 of the first embodiment can control the lighting device 1003 based on the overlap state between the iris region and the reflection region. This allows the lighting control device 1000 to reduce the impact of the overlap between the iris region and the reflection region in the eye image 1004 on authentication accuracy. Therefore, an authentication system using such lighting control device 1000 can reduce the impact of the overlap between the iris region and the reflection region in the eye image 1004 when authenticating a target using the target's iris. In other words, an authentication system using the lighting control device 1000 can authenticate a target using the target's iris with higher accuracy than an authentication system not using the lighting control device 1000. (2) Second embodiment

[0014] Next, a second embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Below, the imaging system in the second embodiment will be described using an imaging system 2000 to which the imaging system in the second embodiment is applied, with reference to Fig. 2. Fig. 2 is a block diagram showing the configuration of the imaging system 2000 in the second embodiment.

[0015] As shown in Fig. 2, the imaging system 2000 includes a right illumination device 2001, a left illumination device 2002, and an imaging device 2003. The right illumination device 2001 emits right illumination light 2004 capable of illuminating at least the right eye of a subject (a person in the example shown in Fig. 2). The left illumination device 2002 emits left illumination light 2005 capable of illuminating at least the left eye of the subject. The imaging device 2003 captures an image of the right eye illuminated with the right illumination light 2004 and the left eye illuminated with the left illumination light 2005.

[0016] Particularly in the second embodiment, the right illumination device 2001 is disposed on the left side of the imaging device 2003 when facing the imaging device 2003 (the -X side in the example shown in FIG. 2). Furthermore, the left illumination device 2002 is disposed on the right side of the imaging device 2003 when facing the imaging device 2003 (the +X side in the example shown in FIG. 2). Furthermore, at the timing when the imaging device 2003 captures images of the right eye and the left eye, an optical axis 2006 of the right illumination device 2001 (for example, the optical axis of an optical system such as a lens included in the right illumination device 2001) and an optical axis 2007 of the left illumination device 2002 (for example, the optical axis of an optical system such as a lens included in the left illumination device 2002) intersect between the imaging device 2003 and the target. The right lighting device 2001 may be disposed in the imaging device 2003. The right lighting device 2001 may be disposed at a position different from that of the imaging device 2003. The right lighting device 2001 may be integrated with the imaging device 2003. The right lighting device 2001 may be disposed separately from the imaging device 2003. The left lighting device 2002 may be disposed in the imaging device 2003. The left lighting device 2002 may be disposed at a position different from that of the imaging device 2003. The left lighting device 2002 may be integrated with the imaging device 2003. Alternatively, the left lighting device 2002 may be disposed separately from the imaging device 2003. When a gate device through which an object can pass is provided, at least one of the right lighting device 2001 and the left lighting device 2002 may be provided in the gate device. When a gate device through which an object can pass is provided, the imaging device 2003 may capture an image of an object passing through the gate device.

[0017] Here, if the subject is wearing glasses, there is a possibility that a reflection area corresponding to a reflected image of illumination light (e.g., at least one of right illumination light, left illumination light, and other illumination light) will overlap with an iris area corresponding to the iris of the eye (e.g., at least one of the right eye and left eye) in the eye image generated by the imaging device. The possibility of such an overlap between the iris area and the reflection area increases as the incident angle of the illumination light to the lens of the glasses covering the eye becomes smaller.

[0018] In the second embodiment, a right illumination device 2001 is disposed on the left side of the imaging device 2003, and an optical axis 2006 of the right illumination device 2001 and an optical axis 2007 of the left illumination device 2002 intersect between the imaging device 2003 and the target. As a result, the angle of incidence of right illumination light 2004 with respect to the right lens of the eyeglasses covering the right eye becomes larger than when the right illumination device 2001 is disposed on the right side of the imaging device 2003 and / or when the optical axes 2006 and 2007 do not intersect. As a result, in an eye image generated by the imaging device by capturing an image of the right eye illuminated with the right illumination light, the iris region corresponding to the iris of the right eye is less likely to overlap with a reflection region corresponding to a reflected image of the right illumination light.

[0019] Similarly, in the second embodiment, the left illumination device 2002 is disposed on the right side of the imaging device 2003, and the optical axis 2006 of the right illumination device 2001 and the optical axis 2007 of the left illumination device 2002 intersect between the imaging device 2003 and the target. As a result, the angle of incidence of the left illumination light 2005 with respect to the left lens of the glasses covering the left eye becomes larger than when the left illumination device 2002 is disposed on the left side of the imaging device 2003 and / or the optical axes 2006 and 2007 do not intersect. As a result, in an eye image generated by the imaging device by capturing an image of the left eye illuminated with the left illumination light, the iris region corresponding to the iris of the left eye is less likely to overlap with the reflection region corresponding to the reflected image of the left illumination light.

[0020] Therefore, imaging system 2000 can reduce the effect on authentication accuracy caused by overlapping between the iris region and the reflection region in the eye image. Therefore, an authentication system using such imaging system 2000 can reduce the effect of overlapping between the iris region and the reflection region in the eye image when authenticating a target using the target's iris. In other words, an authentication system using imaging system 2000 can authenticate a target using the target's iris with higher accuracy than an authentication system not using imaging system 2000. (3) Third embodiment

[0021] Next, a third embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Hereinafter, the lighting control device, the lighting control method, the recording medium, and the imaging system of the third embodiment will be described using an authentication system SYSa to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the second embodiment are applied. (3-1) Overall configuration of the authentication system SYSa

[0022] First, the overall configuration of the authentication system SYSa in the third embodiment will be described with reference to Fig. 3. Fig. 3 is a block diagram showing the overall configuration of the authentication system SYSa in the third embodiment. As shown in FIG. 3, the authentication system SYSa includes an imaging device 1, a lighting device 2, and an authentication device 3.

[0023] The imaging device 1 is capable of capturing an image of at least a portion of a target. The target may include, for example, a person. The target may include an animal other than a person (for example, at least one of mammals such as dogs and cats, birds such as sparrows, reptiles such as snakes, amphibians such as frogs, and fish such as goldfish). The target may include an inanimate object. The inanimate object may include a robot that resembles a person or an animal. In the following description, an example will be described in which the target is a person (hereinafter, this target will be referred to as a "target person").

[0024] The imaging device 1 captures an image of at least a part of a target person, thereby generating a person image IMG in which at least a part of the target person is captured. In the third embodiment, an example will be described in which the imaging device 1 captures an image of the eyes (particularly, eyes including irises) of the target person P, thereby generating an eye image IMG_E in which the eyes (particularly, eyes including irises) of the target person are captured, as the person image IMG.

[0025] The lighting device 2 is capable of emitting illumination light IL. When the imaging device 1 captures an image of the target person, the lighting device 2 illuminates the target person (particularly the eyes) with the emitted illumination light IL. In the third embodiment, the lighting device 2 is capable of changing the illumination mode of the illumination light IL with respect to the eyes of the target person. In the following description, an example will be described in which the lighting device 2 is provided with a plurality of light-emitting elements 21 each capable of emitting illumination light IL in order to change the illumination mode of the illumination light IL with respect to the eyes of the target person. The light-emitting elements 21 are a specific example of a "light emitting unit" in the appendix described later. In this case, the lighting device 2 may change the illumination mode of the illumination light IL with respect to the eyes of the target person by changing at least one of the number and positions of the light-emitting elements 21 that emit the illumination light IL, as will be described in detail later. The lighting device 2 may change the illumination mode of the illumination light IL with respect to the eyes of the target person by changing the angle (in other words, the direction) at which the light-emitting elements 21 emit the illumination light IL. The lighting device 2 may change the intensity of the illumination light IL emitted by the light emitting element 21 to change the illumination state of the illumination light IL on the eyes of the target person.

[0026] When the illumination mode of the illumination light IL on the eyes of the target person changes, the state of the reflected image of the illumination light IL (i.e., the reflected light corresponding to the illumination light IL reflected by the eyes of the target person) that appears in the eye image IMG_E changes. For this reason, as will be described in detail later, the illumination device 2 may be considered to change the state of the reflected image of the illumination light IL that appears in the eye image IMG_E by changing at least one of the number of light-emitting elements 21 that emit the illumination light IL, the positions of the light-emitting elements 21 that emit the illumination light IL, the angles at which the light-emitting elements 21 emit the illumination light IL, and the intensity of the illumination light IL emitted by the light-emitting elements 21.

[0027] The authentication device 3 acquires an eye image IMG_E from the imaging device 1 and performs an authentication operation to authenticate a target person using the eye image IMG_E. In the third embodiment, the authentication device 3 performs an authentication operation to authenticate a target person using the iris pattern of the target person's eye captured in the eye image IMG_E. That is, the authentication device 3 performs an authentication operation related to iris authentication. Specifically, the authentication device 3 determines whether the target person captured in the acquired eye image IMG_E is the same as a person registered in advance (hereinafter referred to as a "registered person") based on the iris pattern captured in the acquired eye image IMG_E. If it is determined that the target person captured in the eye image IMG_E is the same as the registered person, it is determined that authentication of the target person has been successful. On the other hand, if it is determined that the target person captured in the eye image IMG_E is not the same as the registered person, it is determined that authentication of the target person has failed. (3-2) Configuration of authentication device 3 Next, the configuration of the authentication device 3 will be described with reference to Fig. 4. Fig. 4 is a block diagram showing the configuration of the authentication device 3.

[0028] 4, the authentication device 3 includes a calculation device 31, a storage device 32, and a communication device 33. The authentication device 3 may further include an input device 34 and an output device 35. However, the authentication device 3 does not necessarily have to include at least one of the input device 34 and the output device 35. The calculation device 31, the storage device 32, the communication device 33, the input device 34, and the output device 35 may be connected via a data bus 36.

[0029] The arithmetic device 31 includes, for example, at least one of a central processing unit (CPU), a graphics processing unit (GPU), a field programmable gate array (FPGA), a demand-side platform (DSP), and an application specific integrated circuit (ASIC). The arithmetic device 31 reads a computer program. For example, the arithmetic device 31 may read a computer program stored in the storage device 32. For example, the arithmetic device 31 may read a computer program stored in a computer-readable, non-transitory recording medium using a recording medium reading device (not shown) included in the authentication device 3. The arithmetic device 31 may obtain (i.e., download or read) the computer program from a device (not shown) located outside the authentication device 3 via the communication device 33 (or another communication device). The arithmetic device 31 executes the read computer program. As a result, logical functional blocks for executing operations to be performed by the authentication device 3 (for example, the above-mentioned authentication operation) are realized within the arithmetic device 31. That is, the arithmetic device 31 can function as a controller for realizing logical function blocks for executing the operations (in other words, processing) that the authentication device 3 should perform.

[0030] Fig. 4 shows an example of logical functional blocks implemented in the arithmetic device 31 for performing authentication operations. As shown in Fig. 4, implemented in the arithmetic device 31 are an image analysis unit 311 which is a specific example of "detection means" in the appendix described below, an illumination control unit 312 which is a specific example of "illumination control means" in the appendix described below, and an iris authentication unit 313.

[0031] The operations of the image analysis unit 311, the illumination control unit 312, and the iris authentication unit 313 will be described in detail later with reference to FIG. 5 etc., but will be briefly outlined here. The image analysis unit 311 analyzes the eye image IMG_E generated by the imaging device 1. Specifically, the image analysis unit 311 detects an iris area IA (see FIG. 6, described later) corresponding to the iris of the target person within the eye image IMG_E. Furthermore, the image analysis unit 311 detects a reflection area RA (see FIG. 6, described later) corresponding to a reflected image of the illumination light IL within the eye image IMG_E. The illumination control unit 312 controls the illumination device 2 based on the analysis result of the eye image IMG_E by the image analysis unit 311. Specifically, the illumination control unit 312 controls the illumination device 2 based on the overlap state between the iris area IA and the reflection area RA detected by the image analysis unit 311. The iris authentication unit 313 authenticates the target person based on the eye image IMG_E.

[0032] The storage device 32 can store desired data. For example, the storage device 32 may temporarily store a computer program executed by the arithmetic device 31. The storage device 32 may temporarily store data that the arithmetic device 31 temporarily uses when the arithmetic device 31 is executing a computer program. The storage device 32 may store data that the authentication device 3 stores long-term. The storage device 32 may include at least one of a RAM (Random Access Memory), a ROM (Read Only Memory), a hard disk device, a magneto-optical disk device, an SSD (Solid State Drive), and a disk array device. In other words, the storage device 32 may include a non-temporary recording medium.

[0033] The communication device 33 is capable of communicating with devices external to the authentication device 3 via a communication network (not shown). For example, the communication device 33 may be capable of receiving (i.e., acquiring) a person image IMG (specifically, an eye image IMG_E) from the imaging device 1. For example, the communication device 33 may be capable of transmitting an illumination control signal for controlling the illumination device 2 to the illumination device 2.

[0034] The input device 34 is a device that accepts information input to the authentication device 3 from outside the authentication device 3. For example, the input device 34 may include an operation device (for example, at least one of a keyboard, a mouse, and a touch panel) that can be operated by an operator of the authentication device 3. For example, the input device 34 may include a reading device that can read information recorded as data on a recording medium that can be externally attached to the authentication device 3.

[0035] The output device 35 is a device that outputs information to the outside of the authentication device 3. For example, the output device 35 may output information as an image. That is, the output device 35 may include a display device (a so-called display) that can display an image showing the information to be output. For example, the output device 35 may output information as sound. That is, the output device 35 may include an audio device (a so-called speaker) that can output sound. For example, the output device 35 may output information on paper. That is, the output device 35 may include a printing device (a so-called printer) that can print desired information on paper. (3-3) Authentication Operation Performed by Authentication Device 3 Next, the authentication operation performed by the authentication device 3 will be described with reference to Fig. 5. Fig. 5 is a flowchart showing the flow of the authentication operation performed by the authentication device 3.

[0036] As shown in FIG. 5, the lighting control unit 312 controls the lighting device 2 to illuminate the eyes of the target person with illumination light IL (step S11). In particular, in step S11, the lighting control unit 312 may control the lighting device 2 based on default lighting conditions so as to illuminate the eyes of the target person with illumination light IL according to the default lighting conditions. As an example, a lighting condition in which "all of the plurality of light-emitting elements 21 included in the lighting device 2 emit illumination light IL" may be used as the default lighting condition. In this case, the lighting control unit 312 may control the lighting device 2 so that all of the plurality of light-emitting elements 21 included in the lighting device 2 emit illumination light IL. As another example, a lighting condition in which "some of the plurality of light-emitting elements 21 included in the lighting device 2 emit illumination light IL, while other of the plurality of light-emitting elements 21 included in the lighting device 2 do not emit illumination light IL" may be used as the default lighting condition. In this case, the lighting control unit 312 may control the lighting device 2 so that some of the multiple light-emitting elements 21 provided in the lighting device 2 emit illumination light IL and other some of the multiple light-emitting elements 21 provided in the lighting device 2 do not emit illumination light IL.

[0037] Thereafter, the imaging device 1 captures an image of the eyes of the target person. As a result, the imaging device 1 generates an eye image IMG_E. When the imaging device 1 generates the eye image IMG_E, the image analysis unit 311 receives (i.e., acquires) the eye image IMG_E from the imaging device 1 using the communication device 33 (step S12).

[0038] Then, the image analysis unit 311 detects an iris area IA corresponding to the iris of the target person and a reflection area RA corresponding to the reflected image of the illumination light IL in the eye image IMG_E acquired in step S12 (step S13). An example of the iris area IA and reflection area RA detected in the eye image IMG_E is shown in FIG.

[0039] As shown in FIG. 6, the iris region IA may include at least an annular (in other words, donut-shaped) region surrounded by the outer edge (i.e., outer contour) OE of the iris and the inner edge (i.e., inner contour) IE of the iris. Therefore, the image analysis unit 311 may detect the iris region IA by detecting feature points related to the outer edge OE of the iris and feature points related to the inner edge IE of the iris from the eye image IMG_E. The outer edge of the pupil may be used as the inner edge IE of the iris. Also, as shown in FIG. 6, a portion of the iris may be hidden by the eyelid. In this case, the image analysis unit 311 may detect the eyelid edge ER from the eye image IMG_E and, based on the detected eyelid edge ER, delete the portion of the annular iris region IA that is hidden by the eyelid. In this case, the iris region IA may be the region surrounded by the outer edge OE of the iris, the inner edge IE of the iris, and the eyelid edge ER.

[0040] On the other hand, the reflective region RA is a region in which a reflected image of the illumination light IL emitted by the light-emitting element 21 is captured. The characteristics of the reflective region RA are significantly different from the characteristics of the region of the eye image IMG_E excluding the reflective region RA. For this reason, the image analysis unit 311 may detect the reflective region RA based on the characteristics of the eye image IMG_E. For example, the luminance (i.e., brightness) of the reflective region RA is generally higher than the luminance of the region of the eye image IMG_E excluding the reflective region RA. For this reason, the image analysis unit 311 may detect the reflective region RA based on the luminance of the eye image IMG_E. For example, the image analysis unit 311 may detect a group of pixels whose luminance exceeds a predetermined threshold as the reflective region RA. For example, the image analysis unit 311 may detect a group of pixels whose luminance is higher than that of surrounding pixels as the reflective region RA.

[0041] The reflected image of the illumination light IL may include an image formed by the reflected light of the illumination light IL reflected by at least a portion of the target person's eye. For example, the reflected image of the illumination light IL may include an image formed by the reflected light of the illumination light IL reflected by at least one of the cornea and the eyelid. The reflected image of the illumination light IL may include an image formed by the reflected light of the illumination light IL reflected by at least a portion of the eyeglasses worn by the target person. The reflected image of the illumination light IL may include an image formed by the reflected light of the illumination light IL reflected by at least a portion of the contact lenses worn by the target person.

[0042] In the third embodiment, as described above, the lighting device 2 includes a plurality of light-emitting elements 21, and therefore the eyes of the target person are illuminated by a plurality of illumination lights IL emitted by the plurality of light-emitting elements 21. Therefore, there is a possibility that a plurality of reflection images corresponding to the plurality of illumination lights IL are captured in the eye image IMG_E. Therefore, the image analysis unit 311 may detect a plurality of reflection regions RA corresponding to the plurality of illumination lights IL.

[0043] When the lighting device 2 includes a plurality of light-emitting elements 21, the plurality of light-emitting elements 21 may each emit a plurality of lights of illumination IL so that the size of the plurality of reflective areas RA is reduced. For example, as shown in Fig. 6, the plurality of light-emitting elements 21 may each emit a plurality of lights of illumination IL so that each reflective area RA forms a dot pattern with a relatively small size. In order to reduce the size of the reflective area RA, the light-emitting elements 21 may emit the illumination light IL so that the spot diameter of the illumination light IL on an irradiation surface (e.g., the surface of an eye, eyeglasses, or contact lens) onto which the illumination light IL is irradiated is relatively small.

[0044] 5, thereafter, the illumination control unit 312 controls the illumination device 2 based on the iris area IA detected in step S13 and the reflection area RA detected in step S13 (steps S14 to S15). Specifically, the illumination control unit 312 controls the illumination device 2 based on the overlap state between the iris area IA and the reflection area RA.

[0045] To control the illumination device 2, the illumination control unit 312 determines illumination conditions that define the operating state of the illumination device 2 based on the overlap state between the iris region IA and the reflective region RA (step S14). The illumination conditions may include, for example, a condition regarding the number of light-emitting elements 21 that emit illumination light IL. In this case, the illumination control unit 312 may determine the number of light-emitting elements 21 that emit illumination light IL based on the overlap state between the iris region IA and the reflective region RA. The illumination conditions may include, for example, a condition regarding the position of the light-emitting elements 21 that emit illumination light IL. In this case, the illumination control unit 312 may determine the position of the light-emitting element 21 that emits illumination light IL based on the overlap state between the iris region IA and the reflective region RA. In other words, the illumination control unit 312 may determine (in this case, select) at least one light-emitting element 21 that emits illumination light IL from among the multiple light-emitting elements 21 based on the overlap state between the iris region IA and the reflective region RA. The illumination conditions may include, for example, a condition regarding the angle at which the light-emitting element 21 emits the illumination light IL. In this case, the illumination control unit 312 may determine the angle at which the light-emitting element 21 emits the illumination light IL based on the overlap state between the iris region IA and the reflective region RA. The illumination conditions may include, for example, a condition regarding the intensity of the illumination light IL emitted by the light-emitting element 21. In this case, the illumination control unit 312 may determine the intensity of the illumination light IL emitted by the light-emitting element 21 based on the overlap state between the iris region IA and the reflective region RA.

[0046] It should be noted that the illumination mode of the illumination light IL may change when the operating state of the illumination device 2 changes. For this reason, the illumination conditions may be considered to define the illumination mode of the illumination light IL by the illumination device 2.

[0047] 6, when at least one reflective area RA at least partially overlaps with the iris area IA, the iris pattern image is not captured in the portion of the iris area IA where at least one reflective area RA overlaps. Therefore, the iris authentication unit 313 (described later) cannot extract features related to the iris pattern from the portion of the iris area IA where at least one reflective area RA overlaps. As a result, the accuracy of the authentication of the target person by the iris authentication unit 313 (described later) may be reduced.

[0048] Therefore, in the third embodiment, the illumination control unit 312 may determine the illumination conditions based on the state of overlap between the iris area IA and the reflection area RA so as to reduce the effect that the overlap between the iris area IA and the reflection area RA has on the accuracy of authentication of the target person by the iris authentication unit 313. For example, the illumination control unit 312 may determine the illumination conditions so as to reduce the amount of deterioration in the accuracy of authentication of the target person by the iris authentication unit 313 caused by the overlap between the iris area IA and the reflection area RA. For example, the illumination control unit 312 may determine the illumination conditions so that the accuracy of authentication of the target person by the iris authentication unit 313 does not deteriorate due to the overlap between the iris area IA and the reflection area RA. As an example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions related to the number of light-emitting elements 21 that emit illumination light IL) so as to reduce the number of light-emitting elements 21 that emit illumination light IL when the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is large (for example, larger than a predetermined area threshold). In this case, since the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced, the influence that the overlap between the iris area IA and the reflection area RA has on the authentication accuracy of the target person by the iris authentication unit 313 is reduced. As another example of a method for determining the illumination conditions, when the number of reflective areas RA overlapping with the iris area IA is large (for example, larger than a predetermined number threshold), the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions related to the number of light-emitting elements 21 that emit illumination light IL) so as to reduce the number of light-emitting elements 21 that emit illumination light IL. In this case, since the number of reflective areas RA overlapping with the iris area IA is reduced, the influence that the overlap between the iris area IA and the reflective areas RA has on the authentication accuracy of the target person by the iris authentication unit 313 is reduced. As another example of a method for determining the illumination conditions, when the luminance of the reflective area RA overlapping with the iris area IA is high (for example, greater than a predetermined luminance threshold), the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions related to the number of light-emitting elements 21 that emit illumination light IL) so as to reduce the number of light-emitting elements 21 that emit illumination light IL. In this case, since the number of reflective areas RA overlapping with the iris area IA is reduced, the influence that the overlap between the iris area IA and the reflective area RA has on the accuracy of authentication of the target person by the iris authentication unit 313 is reduced. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions relating to the position of the light-emitting element 21 that emits the illumination light IL) so that the position of the light-emitting element 21 that illuminates the iris with the illumination light IL is changed when the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is large. In this case, the illumination control unit 312 may change the position of the light-emitting element 21 that illuminates the iris with the illumination light IL so that the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced. As a result, the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced, thereby reducing the impact that the overlap between the iris area IA and the reflection area RA has on the accuracy of the iris authentication unit 313 in authenticating the target person. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, illumination conditions related to the positions of the light-emitting elements 21 that emit illumination light IL) so that the positions of the light-emitting elements 21 that illuminate the iris with illumination light IL are changed when there are many reflection areas RA that overlap with the iris area IA. In this case, the illumination control unit 312 may change the positions of the light-emitting elements 21 that illuminate the iris with illumination light IL so that the number of reflection areas RA that overlap with the iris area IA is reduced. As a result, the area of ​​the overlapping area where the iris area IA and the reflection areas RA overlap is reduced, thereby reducing the impact that the overlap between the iris area IA and the reflection areas RA has on the accuracy of authentication of the target person by the iris authentication unit 313. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, illumination conditions related to the position of the light-emitting element 21 emitting the illumination light IL) so that the position of the light-emitting element 21 illuminating the iris with the illumination light IL is changed when the luminance of the reflection area RA overlapping the iris area IA is high. In this case, the illumination control unit 312 may change the position of the light-emitting element 21 illuminating the iris with the illumination light IL so that the luminance of the reflection area RA overlapping the iris area IA is lower. The higher the luminance of the reflection area RA, the higher the possibility that the reflection area RA will be in a blown-out highlight state in the eye image IMG_E. Therefore, the higher the luminance of the reflection area RA, the lower the possibility that feature quantities related to the iris pattern can be extracted from the portion of the iris area IA overlapping with at least one reflection area RA. Conversely, the lower the luminance of the reflection area RA, the higher the possibility that feature quantities related to the iris pattern can be extracted from the portion of the iris area IA overlapping with at least one reflection area RA. Typically, the illumination control unit 312 may change the position of the light-emitting element 21 that illuminates the iris with the illumination light IL so that the luminance of the reflective area RA that overlaps with the iris area IA decreases, thereby causing the reflective area RA to disappear. As a result, the area of ​​the overlapping area where the iris area IA and the reflective area RA overlap becomes smaller, and therefore the impact that the overlap between the iris area IA and the reflective area RA has on the accuracy of authentication of the target person by the iris authentication unit 313 is reduced. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions related to the angle at which the light-emitting element 21 emits the illumination light IL) so that, when the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is large, the angle at which the light-emitting element 21, which emits the illumination light IL to illuminate the eyes of the target person, emits the illumination light IL is changed. In this case, the illumination control unit 312 may change the angle at which the light-emitting element 21 emits the illumination light IL so that the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced. As a result, the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced, thereby reducing the impact that the overlap between the iris area IA and the reflection area RA has on the accuracy of the target person authentication by the iris authentication unit 313. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions related to the angle at which the light-emitting element 21 emits the illumination light IL) so that, when there are many reflective areas RA overlapping with the iris area IA, the angle at which the light-emitting element 21, which emits the illumination light IL to illuminate the eyes of the target person, emits the illumination light IL is changed. In this case, the illumination control unit 312 may change the angle at which the light-emitting element 21 emits the illumination light IL so that the number of reflective areas RA overlapping with the iris area IA is reduced. As a result, the number of reflective areas RA overlapping with the iris area IA is reduced, thereby reducing the impact that the overlap between the iris area IA and the reflective areas RA has on the accuracy of the target person authentication by the iris authentication unit 313. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, the illumination conditions related to the angle at which the light-emitting element 21 emits the illumination light IL) so that, when the luminance of the reflective area RA overlapping with the iris area IA is high, the angle at which the light-emitting element 21 emits the illumination light IL to illuminate the eyes of the target person is changed. In this case, the illumination control unit 312 may change the angle at which the light-emitting element 21 emits the illumination light IL so that the luminance of the reflective area RA overlapping with the iris area IA is reduced. As a result, the area of ​​the overlapping area where the iris area IA and the reflective area RA overlap is reduced, thereby reducing the impact that the overlap between the iris area IA and the reflective area RA has on the accuracy of the target person authentication by the iris authentication unit 313. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, illumination conditions related to the intensity of the illumination light IL emitted by the light-emitting element 21) so that the intensity of the illumination light IL illuminating the eyes of the target person is changed when the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is large. In this case, the illumination control unit 312 may change the intensity of the illumination light IL emitted by the light-emitting element 21 so that the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced. For example, the illumination control unit 312 may change the intensity of the illumination light IL emitted by the light-emitting element 21 so that the intensity of the illumination light IL illuminating the eyes (particularly the iris) of the target person is reduced. As a result, a reflected image is less likely to be formed compared to when the intensity of the illumination light IL remains high. Therefore, because the area of ​​the overlapping area where the iris area IA and the reflection area RA overlap is reduced, the impact of the overlap between the iris area IA and the reflection area RA on the accuracy of the target person authentication by the iris authentication unit 313 is reduced. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, illumination conditions related to the intensity of the illumination light IL emitted by the light-emitting element 21) so that the intensity of the illumination light IL illuminating the eyes of the target person changes when there are many reflective areas RA overlapping with the iris area IA. In this case, the illumination control unit 312 may change the intensity of the illumination light IL emitted by the light-emitting element 21 so that the number of reflective areas RA overlapping with the iris area IA decreases. For example, the illumination control unit 312 may change the intensity of the illumination light IL emitted by the light-emitting element 21 so that the intensity of the illumination light IL illuminating the eyes (particularly the iris) of the target person decreases. As a result, a reflected image is less likely to be formed compared to when the intensity of the illumination light IL remains high. Therefore, because the number of reflective areas RA overlapping with the iris area IA decreases, the impact of the overlap between the iris area IA and the reflective areas RA on the accuracy of the target person authentication by the iris authentication unit 313 is reduced. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions (particularly, illumination conditions related to the intensity of the illumination light IL emitted by the light-emitting element 21) so that the intensity of the illumination light IL illuminating the eyes of the target person is changed when the luminance of the reflective area RA overlapping with the iris area IA is high. In this case, the illumination control unit 312 may change the intensity of the illumination light IL emitted by the light-emitting element 21 so that the luminance of the reflective area RA overlapping with the iris area IA is reduced. As a result, the area of ​​the overlapping area where the iris area IA and the reflective area RA overlap is reduced, thereby reducing the impact that the overlap between the iris area IA and the reflective area RA has on the accuracy of the target person authentication by the iris authentication unit 313.

[0049] As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions so that the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap is smaller than when all of the multiple light-emitting elements 21 included in the illumination device 2 emit illumination light IL (or when default illumination conditions are used, the same applies below). For example, when the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap is large, the illumination control unit 312 may determine the illumination conditions so that the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap is smaller than when all of the multiple light-emitting elements 21 included in the illumination device 2 emit illumination light IL. For example, when the number of reflective regions RA overlapping with the iris region IA is large, the illumination control unit 312 may determine the illumination conditions so that the number of reflective regions RA overlapping with the iris region IA is smaller (as a result, the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap is smaller) than when all of the multiple light-emitting elements 21 included in the illumination device 2 emit illumination light IL. For example, the lighting control unit 312 may determine the lighting conditions so that when the brightness of the reflective area RA overlapping with the iris area IA is high, the brightness of the reflective area RA overlapping with the iris area IA is lower (as a result, the area of ​​the overlapping area where the iris area IA and the reflective area RA overlap is smaller) compared to when all of the multiple light-emitting elements 21 provided in the lighting device 2 emit illumination light IL.

[0050] Here, as an example of a method for determining illumination conditions so as to reduce the area of ​​the overlapping region where the iris region IA and the reflection region RA overlap, an example will be described with reference to FIG. 7 , in which illumination conditions are determined so as to reduce the number of reflection regions RA overlapping the iris region IA compared to when all of the multiple light-emitting elements 21 emit illumination light IL. The left side of FIG. 7 shows reflection regions RA detected when all of the multiple light-emitting elements 21 emit illumination light IL, and the right side of FIG. 7 shows reflection regions RA detected when illumination conditions determined so as to reduce the number of reflection regions RA overlapping the iris region IA are used. FIG. 7 shows an example in which, when all of the multiple light-emitting elements 21 emit illumination light IL, three reflection regions RA#2, RA#3, and RA#5 out of six reflection regions RA#1 to RA#6 overlap the iris region IA. In this case, the illumination control unit 312 may determine illumination conditions so that the number of reflection regions RA overlapping the iris region IA is less than three. Fig. 7 shows an example in which illumination conditions are determined so that only one reflection region RA#3 of the six reflection regions RA#1 to RA#6 overlaps with the iris region IA. In other words, Fig. 7 shows an example in which illumination conditions are determined so that two of the three reflection regions RA#2, RA#3, and RA#5 that overlap with the iris region IA when all of the multiple light-emitting elements 21 emit illumination light IL, RA#2 and RA#5, do not overlap with the iris region IA. In this case, the fewer the number of reflection regions RA that overlap with the iris region IA, the smaller the area of ​​the overlapping region where the iris region IA and the reflection region RA overlap.

[0051] Alternatively, for example, the illumination control unit 312 may determine the illumination conditions so that no reflection area RA overlaps with the iris area IA (that is, the number of reflection areas RA overlapping with the iris area IA is reduced to zero.) In the example shown in Fig. 7, the illumination control unit 312 may determine the illumination conditions so that all of the three reflection areas RA#2, RA#3, and RA#5 that overlap with the iris area IA when all of the multiple light-emitting elements 21 emit illumination light IL no longer overlap with the iris area IA.

[0052] To realize a state in which a reflection area RA that overlaps the iris area IA no longer overlaps the iris area IA, the illumination control unit 312 may determine illumination conditions such that a single illumination light IL forming the reflection area RA is not irradiated onto the target person. Specifically, because the multiple reflection areas RA correspond to multiple illumination lights IL, respectively, as described above, the illumination control unit 312 can identify a single light-emitting element 21 that emits a single illumination light IL that forms a single reflection area RA. In this case, the illumination control unit 312 may generate, as an illumination condition, a condition in which "a single light-emitting element 21 that forms a reflection area RA that overlaps the iris area IA does not emit a single illumination light IL." In the example shown in FIG. 7, the illumination control unit 312 may generate, as an illumination condition, a condition in which "two light-emitting elements 21 corresponding to the two reflection areas RA#2 and RA#5, respectively, do not emit illumination light IL."

[0053] Note that when the illumination condition in which "all of the plurality of light-emitting elements 21 provided in the illumination device 2 emit illumination light IL" is used as the default illumination condition, there is a high possibility that all of the plurality of reflection areas RA that the illumination device 2 may form will appear in the eye image IMG_E. Therefore, in this case, the illumination control unit 312 can appropriately determine the illumination condition so as to reduce the number of reflection areas RA that overlap the iris region IA. On the other hand, when the illumination condition in which "some of the plurality of light-emitting elements 21 provided in the illumination device 2 emit illumination light IL (other some of the plurality of light-emitting elements 21 do not emit illumination light IL)" is used as the default illumination condition, there is a possibility that some of the plurality of reflection areas RA that the illumination device 2 may form will appear in the eye image IMG_E, while other some of the plurality of reflection areas RA that the illumination device 2 may form will not appear in the eye image IMG_E. As a result, there is a possibility that the illumination control unit 312 cannot determine the illumination condition so as to reduce the number of reflection areas RA that overlap the iris region IA simply by detecting the reflection areas RA that are actually reflected in the eye image IMG_E. This is because simply detecting the reflection area RA that is actually captured in the eye image IMG_E does not allow the illumination control unit 312 to determine the illumination conditions taking into account the reflection area RA that may be formed by the illumination device 2 but is not captured in the eye image IMG_E. Therefore, the illumination control unit 312 may estimate the position of the reflection area RA that is not detected in the eye image IMG_E (i.e., another part of the multiple reflection areas RA that may be formed by the illumination device 2) based on the position of the reflection area RA detected in the eye image IMG_E (i.e., a part of the multiple reflection areas RA that may be formed by the illumination device 2). For example, the illumination control unit 312 may estimate the position of the reflection area RA that is not detected in the eye image IMG_E based on the positional relationship between the multiple light-emitting elements 21, the positional relationship between the multiple light-emitting elements 21 and the target person (typically, the positional relationship between the multiple light-emitting elements 21 and the position where the target person would be located when the imaging device 1 captures the target person), and the position of the reflection area RA detected in the eye image IMG_E.Thereafter, the illumination control unit 312 may determine the illumination conditions based on the actual detection result of the position of the reflective region RA detected in the eye image IMG_E and the estimated position of the reflective region RA not detected in the eye image IMG_E. As a result, the illumination control unit 312 can determine the illumination conditions by taking into account all of the multiple reflective regions RA that the illumination device 2 may form, even if some of the multiple reflective regions RA that the illumination device 2 may form are not captured in the eye image IMG_E.

[0054] As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions so that the multiple reflective regions RA are distributed in a specific distribution pattern in the eye image IMG_E. For example, when the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap is large, the illumination control unit 312 may determine the illumination conditions so that the multiple reflective regions RA are distributed in a specific distribution pattern in the eye image IMG_E. For example, when the number of reflective regions RA overlapping with the iris region IA is large, the illumination control unit 312 may determine the illumination conditions so that the multiple reflective regions RA are distributed in a specific distribution pattern in the eye image IMG_E. For example, when the luminance of the reflective regions RA overlapping with the iris region IA is high, the illumination control unit 312 may determine the illumination conditions so that the multiple reflective regions RA are distributed in a specific distribution pattern in the eye image IMG_E.

[0055] 7(a), the illumination control unit 312 may determine the illumination conditions so that the plurality of reflective regions RA are distributed in a random distribution pattern in the eye image IMG_E. That is, the illumination control unit 312 may determine the illumination conditions so that the plurality of reflective regions RA are distributed randomly in the eye image IMG_E. In other words, the illumination control unit 312 may determine the illumination conditions so that the plurality of reflective regions RA form a random noise pattern (e.g., a dot pattern) in the eye image IMG_E.

[0056] 7(b), the illumination control unit 312 may determine the illumination conditions so that the plurality of reflective regions RA are distributed at regular intervals in the eye image IMG_E. That is, the illumination control unit 312 may determine the illumination conditions so that the plurality of reflective regions RA are distributed in a periodic distribution pattern in the eye image IMG_E. As an example, the illumination control unit 312 may determine the illumination conditions so that the plurality of reflective regions RA are distributed in a two-dimensional matrix in the eye image IMG_E. As another example of a method for determining the illumination conditions, the illumination control unit 312 may determine the illumination conditions so that at least one of the multiple reflective areas RA in the multiple eye images IMG_E generated as time-series data by the imaging device 1 blinks at specific time intervals. For example, the luminance (i.e., brightness) of the reflective area RA in the eye image IMG_E depends on the intensity of the illumination light IL that forms the reflective area RA. Typically, the higher the intensity of the illumination light IL, the higher the luminance of the reflective area RA formed by the illumination light IL. For this reason, the illumination control unit 312 may determine the illumination conditions so that the intensity of at least one illumination light IL that forms at least one reflective area RA repeatedly increases and decreases at specific time intervals. In this case, the luminance of the reflective area RA in the multiple eye images IMG_E repeatedly increases and decreases at specific time intervals, and therefore the reflective area RA can be considered to blink.

[0057] Referring again to FIG. 5, the lighting control unit 312 then controls the lighting device 2 based on the lighting conditions determined in step S14 so as to illuminate the eyes of the target person with illumination light IL in accordance with the lighting conditions determined in step S14 (step S15).

[0058] Thereafter, the imaging device 1 captures an image of the eyes of the target person. As a result, the imaging device 1 generates an eye image IMG_E. When the imaging device 1 generates the eye image IMG_E, the iris authentication unit 313 receives (i.e., acquires) the eye image IMG_E from the imaging device 1 using the communication device 33 (step S16).

[0059] The eye image IMG_E acquired by the image analysis unit 311 in step S12 and the eye image IMG_E acquired by the iris authentication unit 313 in step S16 may be generated by different imaging devices.

[0060] Thereafter, the iris authentication unit 313 authenticates the target person based on the eye image IMG_E acquired in step S16 (step S17). Specifically, the iris authentication unit 313 detects the iris area IA based on the eye image IMG_E. Note that the operation of the iris authentication unit 313 to detect the iris area IA may be the same as the operation of the image analysis unit 311 to detect the iris area IA in step S13 described above. Thereafter, the iris authentication unit 313 extracts feature amounts related to the iris pattern from the iris area IA. Thereafter, the iris authentication unit 313 authenticates the target person by comparing the extracted feature amounts with the iris feature amounts of the registered person.

[0061] The iris authentication unit 313 may detect a reflection area RA from the eye image IMG_E and perform a removal process to remove the detected reflection area RA from the eye image IMG_E. Here, as described above, if the illumination conditions are determined so that multiple reflection areas RA in the eye image IMG_E form a random noise pattern, the multiple reflection areas RA detected by the iris authentication unit 313 are likely to form a random noise pattern. In this case, the iris authentication unit 313 can relatively easily remove the reflection area RA corresponding to noise by performing a simple process for removing noise (for example, a process using a median filter). Therefore, the processing load of the iris authentication unit 313 can be reduced compared to when the multiple reflection areas RA do not form a random noise pattern.

[0062] The iris authentication unit 313 may detect a reflection area RA from the eye image IMG_E and perform an interpolation process to interpolate the detected reflection area RA. For example, the iris authentication unit 313 may perform an interpolation process to interpolate the reflection area RA using an area surrounding the reflection area RA (for example, the iris area IA). Here, as described above, if the illumination conditions are determined so that multiple reflection areas RA are distributed at regular intervals within the eye image IMG_E, it is highly likely that the multiple reflection areas RA detected by the iris authentication unit 313 are distributed at regular intervals. In this case, the iris authentication unit 313 can relatively easily interpolate the reflection area RA by performing an existing process for interpolating an image (for example, a demosaicing process). (3-4) Technical Effects of the Authentication System SYSa

[0063] As described above, the authentication device 3 of the third embodiment controls the illumination device 2 based on the overlap state between the iris area IA and the reflection area RA in the eye image IMG_E. As a result, the authentication device 3 can reduce the impact of the overlap between the iris area IA and the reflection area RA in the eye image IMG_E on authentication accuracy, compared to an authentication device of a comparative example that does not consider the overlap state between the iris area IA and the reflection area RA. Therefore, the authentication device 3 (authentication system SYSa) can authenticate a target person with higher accuracy, compared to an authentication device of a comparative example that does not consider the overlap state between the iris area IA and the reflection area RA (authentication system of a comparative example). Note that when the authentication device 3 controls the illumination device 2, the authentication device 3 may be referred to as an illumination control device.

[0064] Furthermore, the authentication device 3 can determine illumination conditions including at least one of the number of light-emitting elements 21 that emit illumination light IL and the positions of the light-emitting elements 21 that emit illumination light IL, based on the overlap state between the iris area IA and the reflection area RA in the eye image IMG_E. Therefore, the illumination device 2 can illuminate the eyes of the target person with illumination light IL in accordance with the determined illumination conditions. As a result, the authentication device 3 (authentication system SYSa) can authenticate the target person with higher accuracy than an authentication device of a comparative example (authentication system of a comparative example) in which the illumination conditions are not determined based on the overlap state between the iris area IA and the reflection area RA.

[0065] Furthermore, the authentication device 3 can determine illumination conditions such that the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap is smaller, the number of reflective regions RA overlapping with the iris region IA is smaller, and / or the luminance of the reflective region RA overlapping with the iris region IA is lower, compared to when all of the multiple light-emitting elements 21 included in the illumination device 2 emit illumination light IL. Here, as described above, the authentication device 3 cannot extract iris pattern feature quantities from the portion of the iris region IA where at least one reflective region RA overlaps. In this case, the smaller the area of ​​the overlapping region where the iris region IA and the reflective region RA overlap, the fewer the number of reflective regions RA overlapping with the iris region IA, and / or the lower the luminance of the reflective region RA overlapping with the iris region IA, the smaller the area of ​​the region in the iris region IA from which iris pattern feature quantities cannot be extracted. Therefore, the authentication device 3 can extract a relatively large number of iris pattern feature quantities. As a result, the authentication device 3 (authentication system SYSa) can authenticate the target person with higher accuracy compared to a comparative example authentication device (comparative example authentication system) that does not take into account the overlap state between the iris area IA and the reflection area RA.

[0066] Furthermore, the authentication device 3 can determine the illumination conditions so that the multiple reflective areas RA form a random noise pattern in the eye image IMG_E. In this case, the authentication device 3 can reduce the processing load of the removal process for removing the reflective areas RA as noise, compared to when the multiple reflective areas RA do not form a random noise pattern.

[0067] Furthermore, the authentication device 3 can determine the illumination conditions so that the plurality of reflective areas RA are distributed at regular intervals in the eye image IMG_E. In this case, the authentication device 3 can reduce the processing load of the interpolation process for interpolating the reflective areas RA compared to when the plurality of reflective areas RA are not distributed at regular intervals. (4) Fourth embodiment

[0068] Next, a fourth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. The following describes the lighting control device, the lighting control method, the recording medium, and the imaging system of the fourth embodiment, using an authentication system SYSb to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the fourth embodiment are applied. (4-1) Configuration of authentication system SYSb

[0069] The authentication system SYSb differs from the above-described authentication system SYSa in that it includes an authentication device 3b instead of the authentication device 3. Other features of the authentication system SYSb may be the same as other features of the authentication system SYSa. The authentication device 3b in the fourth embodiment will be described below with reference to FIG. 9. FIG. 9 is a block diagram showing the configuration of the authentication device 3b in the fourth embodiment. In the following description, components that have already been described will be assigned the same reference numerals and detailed description thereof will be omitted.

[0070] 9, authentication device 3b differs from the above-described authentication device 3 in that it includes an illumination control unit 312b instead of illumination control unit 312. Other features of authentication device 3b may be the same as other features of authentication device 3. Illumination control unit 312b differs from illumination control unit 312 in that it determines intensity conditions, which will be described later, in addition to illumination conditions. Other features of illumination control unit 312b may be the same as other features of illumination control unit 312. (4-2) Authentication Operation Performed by Authentication Device 3b

[0071] Next, the authentication operation performed by the authentication device 3b will be described with reference to Fig. 10. Fig. 10 is a flowchart showing the flow of the authentication operation performed by the authentication device 3b. Note that the same step numbers are used for processes that have already been described, and detailed descriptions thereof will be omitted.

[0072] 10, in the fourth embodiment, as in the third embodiment, the authentication device 3b performs the processes from step S11 to step S14. That is, the illumination control unit 312b controls the illumination device 2 to illuminate the eyes of the target person with illumination light IL (step S11). The image analysis unit 311 receives (i.e., acquires) the eye image IMG_E from the imaging device 1 (step S12). The image analysis unit 311 detects the iris area IA and the reflection area RA (step S13). The illumination control unit 312b determines the illumination conditions based on the iris area IA and the reflection area RA (step S14).

[0073] Depending on the lighting conditions determined in step S14, the illumination intensity with which the illumination device 2 illuminates the target person may differ from the target intensity set for properly capturing an image of the target person. The illumination intensity refers to the overall intensity of the illumination device 2. For example, if the illumination device 2 illuminates the target person with multiple illumination lights IL, the illumination intensity may refer to the intensity of the single light when the multiple illumination lights IL are considered to be a single light. For example, if the number of light-emitting elements 21 emitting illumination light IL is reduced so as to reduce the number of reflection areas RA overlapping the iris area IA, the illumination intensity may fall short of the target intensity. In this case, the luminance of the iris area IA in the eye image IMG_E may differ from the desired luminance. As a result, the accuracy of the iris authentication unit 313 in authenticating the target person may be reduced compared to when the luminance of the iris area IA in the eye image IMG_E is the desired luminance.

[0074] Therefore, the illumination control unit 312b determines the illumination conditions based on the iris area IA and the reflection area RA, and then determines the intensity conditions related to the illumination intensity so that the illumination intensity becomes the target intensity (step S21b). In other words, the illumination control unit 312b determines the intensity conditions so that the illumination intensity is maintained constant regardless of differences in the illumination conditions (step S21b).

[0075] The intensity condition may include, for example, a condition regarding the intensity of the illumination light IL emitted by at least one light-emitting element 21. In this case, the illumination control unit 312b may determine the intensity of the illumination light IL emitted by at least one light-emitting element 21 so that the illumination intensity becomes a target intensity. If the intensity of the illumination light IL emitted by at least one light-emitting element 21 becomes lower, the illumination intensity also becomes lower. In other words, if the intensity of the illumination light IL emitted by at least one light-emitting element 21 becomes higher, the illumination intensity also becomes higher. The intensity condition may also include, for example, a condition regarding the number of light-emitting elements 21 that emit the illumination light IL. In this case, the illumination control unit 312b may determine the number of light-emitting elements 21 that emit the illumination light IL so that the illumination intensity becomes a target intensity. If the number of light-emitting elements 21 that emit the illumination light IL becomes smaller, the illumination intensity becomes lower. In other words, if the number of light-emitting elements 21 that emit the illumination light IL becomes larger, the illumination intensity becomes higher. The intensity condition may also include, for example, a condition regarding the position of the light-emitting elements 21 that emit the illumination light IL. In this case, the illumination control unit 312b may determine the position of the light emitting element 21 that emits the illumination light IL so that the illumination intensity becomes the target intensity.

[0076] As in the case of determining the illumination conditions, the illumination control unit 312b may determine the intensity conditions so that the illumination intensity is a target intensity while reducing the area of ​​the overlapping region where the iris region IA and the reflection region RA overlap. For example, when the illumination intensity is lower than the target intensity, the illumination control unit 312b typically determines the intensity conditions so that the illumination intensity is increased. In this case, methods for increasing the illumination intensity include increasing the intensity of the illumination light IL emitted by at least one light-emitting element 21 and increasing the number of light-emitting elements 21 that emit the illumination light IL. However, increasing the number of light-emitting elements 21 that emit the illumination light IL may increase the number of reflection regions RA that overlap with the iris region IA (resulting in a larger area of ​​the overlapping region where the iris region IA and the reflection region RA overlap). Therefore, the illumination control unit 312b may preferentially use the method of increasing the intensity of the illumination light IL emitted by at least one light-emitting element 21 over the method of increasing the number of light-emitting elements 21 that emit the illumination light IL. On the other hand, for example, when the illumination intensity is higher than the target intensity, the illumination control unit 312b typically determines the intensity conditions so as to lower the illumination intensity. In this case, methods for lowering the illumination intensity include lowering the intensity of the illumination light IL emitted by at least one light-emitting element 21 and reducing the number of light-emitting elements 21 that emit the illumination light IL. In this case, reducing the number of light-emitting elements 21 that emit the illumination light IL may reduce the number of reflection areas RA that overlap with the iris region IA (resulting in a smaller area of ​​the overlapping area where the iris region IA and the reflection region RA overlap). Therefore, the illumination control unit 312b may preferentially use the method of reducing the number of light-emitting elements 21 that emit the illumination light IL over the method of lowering the intensity of the illumination light IL emitted by at least one light-emitting element 21 as a method for lowering the illumination intensity. As a result, the illumination control unit 312b can determine the intensity conditions so as to reduce the area of ​​the overlapping area where the iris region IA and the reflection region RA overlap while maintaining the illumination intensity at the target intensity. When determining at least one of the intensity conditions and the illumination conditions, the illumination control unit 312b may preferentially use a method of reducing the number of light-emitting elements 21 that emit illumination light IL rather than a method of changing the positions of the light-emitting elements 21 that emit illumination light IL. As a result, the area of ​​the overlapping region where the iris region IA and the reflection region RA overlap is likely to be reduced. This makes it possible to more appropriately reduce the impact of the overlap between the iris region IA and the reflection region RA in the eye image IMG_E on authentication accuracy.

[0077] The target intensity may be a fixed value. Alternatively, the target intensity may be a variable value. For example, the illumination control unit 312b may change the target intensity. As an example, the illumination control unit 312b may change the target intensity based on the distance from the image capture device 1 to the target person (or the distance from the lighting device 2 to the target person, which is essentially the position of the target person). Specifically, the longer the distance from the image capture device 1 to the target person (or the distance from the lighting device 2 to the target person), the more attenuated the illumination light IL reaches the target person. Therefore, the longer the distance from the image capture device 1 to the target person (or the distance from the lighting device 2 to the target person), the more the target person is illuminated with illumination light IL of relatively low intensity. Therefore, the illumination control unit 312b may change the target intensity so that the longer the distance from the image capture device 1 to the target person (or the distance from the lighting device 2 to the target person) is. As another example, the illumination control unit 312b may change the target intensity based on the moving speed of the target person. Specifically, since the distance from the image capture device 1 to the target person changes (typically becomes shorter) as the target person moves, the optimal value of the target intensity may change as the target person moves. For this reason, the illumination control unit 312 may change the target intensity so that it gradually decreases as the target person moves. Here, when the target person is approaching the image capture device 1 at a relatively fast moving speed, the rate at which the distance from the image capture device 1 to the target person decreases is relatively faster than when the target person is approaching the image capture device 1 at a relatively slow moving speed. For this reason, the illumination control unit 312b may change the target intensity so that the rate at which the target intensity decreases increases as the moving speed of the target person increases. In other words, the illumination control unit 312b may change the target intensity so that the rate at which the target intensity decreases decreases as the moving speed of the target person decreases. As another example, the illumination control unit 312b may change the target intensity based on the appearance of the target person. Specifically, the reflectance of the illumination light IL may differ depending on the eye color (or skin color, etc.) of the target person.Therefore, while light with a relatively high intensity may propagate from one person's iris toward the imaging device, light with a relatively low intensity may propagate from another person's iris toward the imaging device. As a result, the brightness of the iris region IA in the eye image IMG_E may vary depending on the appearance of the target person. Therefore, the illumination control unit 312b may change the target intensity so that the brightness of the iris region IA in the eye image IMG_E becomes the desired brightness regardless of differences in the appearance of the target person.

[0078] Thereafter, in the fourth embodiment, as in the third embodiment, the illumination control unit 312b controls the illumination device 2 to illuminate the eyes of the target person with illumination light IL according to the determined illumination conditions (step S15b). However, in step S15b, the illumination control unit 312b controls the illumination device 2 to illuminate the eyes of the target person with illumination light IL according to the illumination conditions determined in step S14 as well as the intensity conditions determined in step S21b (step S15b). Thereafter, in the fourth embodiment, as in the third embodiment, the authentication device 3b performs the processes from step S16 to step S17. That is, the iris authentication unit 313 receives (i.e., acquires) an eye image IMG_E from the imaging device 1 (step S16). The iris authentication unit 313 authenticates the target person based on the acquired eye image IMG_E (step S17).

[0079] As described above, the authentication device 3b of the fourth embodiment can determine the intensity conditions in addition to the illumination conditions. Therefore, when the imaging device 1 captures an image of a target person, the illumination intensity becomes the target intensity regardless of differences in the illumination conditions (i.e., the illumination intensity is maintained constant). Therefore, regardless of differences in the illumination conditions, the brightness of the iris region IA in the eye image IMG_E becomes the desired brightness. As a result, the authentication device 3b can authenticate the target person with higher accuracy than when the brightness of the iris region IA in the eye image IMG_E is not the desired brightness.

[0080] In particular, in the fourth embodiment, the authentication device 3b can determine the strength condition based on at least one of the position of the target person and the appearance of the target person. That is, the authentication device 3b can determine the strength condition suitable for each target person. As a result, the authentication device 3b can authenticate the target person with higher accuracy than when the target person is authenticated without considering the position and appearance of the target person. (5) Fifth embodiment

[0081] Next, a fifth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Hereinafter, the lighting control device, the lighting control method, the recording medium, and the imaging system of the fifth embodiment will be described using an authentication system SYSc to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the fifth embodiment are applied. (5-1) Configuration of the authentication system SYSc

[0082] The authentication system SYSc differs from the above-described authentication system SYSa in that it includes an authentication device 3c instead of the authentication device 3. Other features of the authentication system SYSc may be the same as other features of the authentication system SYSa. The authentication device 3c in the fifth embodiment will be described below with reference to FIG. 11. FIG. 11 is a block diagram showing the configuration of the authentication device 3c in the fifth embodiment.

[0083] As shown in FIG. 11 , authentication device 3c differs from the above-described authentication device 3 in that it includes an illumination control unit 312c and an iris authentication unit 313c instead of illumination control unit 312 and iris authentication unit 313. Other features of authentication device 3c may be the same as other features of authentication device 3. Unlike illumination control unit 312, illumination control unit 312c changes illumination conditions each time imaging device 1 captures an image of a target person. Other features of illumination control unit 312c may be the same as other features of illumination control unit 312. Unlike iris authentication unit 313, iris authentication unit 313c differs from iris authentication unit 313 in that it authenticates a target person based on multiple eye images IMG_E. Other features of iris authentication unit 313c may be the same as other features of iris authentication unit 313. (5-2) Authentication Operation Performed by Authentication Device 3c Next, the authentication operation performed by the authentication device 3c will be described with reference to Fig. 12. Fig. 12 is a flowchart showing the flow of the authentication operation performed by the authentication device 3c.

[0084] As shown in FIG. 12, in the fifth embodiment, similarly to the third embodiment, the authentication device 3c performs the processes from step S11 to step S16. That is, the illumination control unit 312c controls the illumination device 2 to illuminate the eyes of the target person with illumination light IL (step S11). The image analysis unit 311 receives (i.e., acquires) the eye image IMG_E from the imaging device 1 (step S12). The image analysis unit 311 detects the iris area IA and the reflection area RA (step S13). The illumination control unit 312c determines the illumination conditions based on the iris area IA and the reflection area RA (step S14). The illumination control unit 312c controls the illumination device 2 to illuminate the eyes of the target person with illumination light IL according to the determined illumination conditions (step S15). The iris authentication unit 313c receives (i.e., acquires) the eye image IMG_E from the imaging device 1 (step S16).

[0085] After that, the image analysis unit 311 detects the iris area IA and the reflection area RA in the eye image IMG_E acquired in step S16 (step S32c).

[0086] Thereafter, the illumination control unit 312c changes the illumination conditions based on the iris region IA detected in step S32c and the reflection region RA detected in step S32c so as to change the relative position of the reflection region RA with respect to the iris region IA (step S33c). In particular, the illumination control unit 312c may change the illumination conditions so as to change the relative position of the reflection region RA overlapping the iris region IA with respect to the iris region IA. For example, FIG. 13(a) shows an example of the iris region IA and reflection region RA detected in step S32c of FIG. 12. In the example shown in FIG. 13(a), two reflection regions RA are located at positions P111 and P112, respectively, within the iris region IA. In this case, as shown in FIG. 13(b), the illumination control unit 312b may change the illumination conditions so that the two reflection regions RA are located at positions P113 and P114, respectively, different from positions P111 and P112 within the iris region IA.

[0087] The illumination control unit 312c may change the illumination conditions related to the position of the light-emitting element 21 that emits the illumination light IL, thereby changing the illumination conditions so as to change the relative position of the reflection area RA with respect to the iris area IA. When the position of the light-emitting element 21 that emits the illumination light IL changes, the position of the reflection area RA in the eye image IMG_E changes. Therefore, the illumination control unit 312c can relatively easily change the illumination conditions so as to change the relative position of the reflection area RA with respect to the iris area IA.

[0088] However, if the target person's eyes are moving, even if the position of the light-emitting element 21 that emits the illumination light IL changes (i.e., the position of the reflection area RA in the eye image IMG_E changes), the relative position of the reflection area RA with respect to the iris area IA may not change. This is because the position of the iris area IA in the eye image IMG_E may change in accordance with the target person's eye movement. For this reason, the illumination control unit 312c may predict the target person's eye movement and change the illumination conditions so that the relative position of the reflection area RA with respect to the iris area IA changes in accordance with the predicted eye movement. In this case, the illumination control unit 312 may have a function to predict the target person's eye movement in addition to a function to change the illumination conditions. Note that an example of a method for predicting the movement of an object is an existing method (e.g., a method using optical flow, etc.). For example, FIG. 14(a) shows an example of the iris area IA and the reflection area RA detected in step S32c of FIG. 12. In the example shown in Fig. 14(a), two reflective areas RA are located at positions P121 and P122, respectively, within the iris area IA. In this case, as shown in Fig. 14(b), the illumination control unit 312b may change the illumination conditions so that the two reflective areas RA are located at positions P123 and P124, respectively, different from positions P121 and P122, within the iris area IA.

[0089] 12, thereafter, the illumination control unit 312c controls the illumination device 2 based on the illumination conditions changed in step S33c so as to illuminate the eyes of the target person with illumination light IL in accordance with the illumination conditions changed in step S33c (step S34c). Thereafter, the iris authentication unit 313c receives (i.e., acquires) eye images IMG_E from the imaging device 1 (step S16). Thereafter, the processes from step S32c to step S34c and step S16 are repeated until the iris authentication unit 313c acquires a desired number of eye images IMG_E (step S16).

[0090] Thereafter, the iris authentication unit 313c authenticates the target person based on the multiple eye images IMG_E acquired in step S16 (step S17c). Here, an example of the multiple eye images IMG_E acquired in step S16 is shown on the left side of FIG. 15. As shown in FIG. 15, due to the change in illumination conditions described above, the relative position of the reflection region RA with respect to the iris region IA in the eye image IMG_E acquired the first time is different from the relative position of the reflection region RA with respect to the iris region IA in the eye image IMG_E acquired the second time. Therefore, the portion of the iris region IA in the eye image IMG_E acquired the first time that is overlapped with the reflection region RA can be interpolated with the portion of the iris region IA in the eye image IMG_E acquired the second time that is not overlapped with the reflection region RA. For this reason, the iris authentication unit 313c may combine multiple eye images IMG_E so that missing portions of the iris region IA of one eye image IMG_E (i.e., portions where the reflection regions RA overlap) are filled in with non-missing portions of the iris regions of the other eye images IMG_E (i.e., portions where the reflection regions RA do not overlap). As a result, an eye image IMG_E with fewer missing portions of the iris region IA is obtained, as shown on the right side of FIG. 15. In other words, an eye image IMG_E equivalent to an image obtained by combining the non-missing portions of multiple eye images IMG_E is obtained. The iris authentication unit 313c authenticates the target person based on the eye image IMG_E with fewer missing portions of the iris region IA (i.e., eye image IMG_E equivalent to an image obtained by combining the non-missing portions of multiple eye images IMG_E).

[0091] Alternatively, as shown in FIG. 16, the iris authentication unit 313c may combine multiple feature amounts extracted from the multiple eye images IMG_E, in addition to or instead of combining multiple eye images IMG_E. In this case, the iris authentication unit 313c may also combine multiple feature amounts so that missing portions of the feature amount extracted from one eye image IMG_E (i.e., feature amounts that could not be extracted due to the reflection area RA) are interpolated with feature amounts extracted from the other eye images IMG_E. As a result, a feature amount with fewer missing portions is obtained, as shown on the right side of FIG. 16. In other words, a feature amount obtained by combining multiple feature amounts extracted from the multiple eye images IMG_E is obtained. The iris authentication unit 313c may authenticate the target person based on the feature amount with fewer missing portions.

[0092] As described above, in the fifth embodiment, the authentication device 3c can control the lighting device 2 to change the lighting conditions. As a result, the lighting device 2 illuminates the eyes of the target person with lighting light based on one lighting condition, and then illuminates the eyes of the target person with lighting light based on another lighting condition different from the one lighting condition. As a result, the authentication device 3c can authenticate the target person using a plurality of eye images IMG_E acquired using a plurality of different lighting conditions. As a result, the authentication device 3c can authenticate the target person with higher accuracy than when the target person is authenticated using a single eye image IMG_E.

[0093] Furthermore, in the fifth embodiment, the authentication device 3c can change the lighting conditions so that the relative position of the reflection area RA with respect to the iris area IA changes. That is, the authentication device 3c can change the lighting conditions so that the relative position of the reflection area RA with respect to the iris area IA changes. Therefore, as described above, the missing portion of the iris area IA of the first eye image IMG_E (i.e., the portion hidden by the reflection area RA) can be interpolated with the non-missing portion of the iris area IA of the other eye image IMG_E (i.e., the portion not hidden by the reflection area RA). As a result, the authentication device 3c can authenticate the target person with higher accuracy compared to when the lighting conditions are not changed so that the relative position of the reflection area RA with respect to the iris area IA changes.

[0094] Furthermore, in the fifth embodiment, the authentication device 3c can authenticate the target person using the non-missing portions of the multiple eye images IMG_E (i.e., the portions where the reflection areas RA do not overlap). Therefore, the authentication device 3c can essentially authenticate the target person using the eye images IMG_E with relatively few missing portions. As a result, the authentication device 3c can authenticate the target person with higher accuracy.

[0095] Furthermore, in the fifth embodiment, the authentication device 3c predicts the eye movement of the target person and can change the illumination conditions so that the relative position of the reflective area RA with respect to the iris area IA changes in accordance with the predicted eye movement. As a result, even if the target person's eyes move, the authentication device 3c can change the illumination conditions so that the relative position of the reflective area RA with respect to the iris area IA changes.

[0096] The authentication system SYSb in the above-described fourth embodiment may employ components specific to the fifth embodiment. The components specific to the fifth embodiment may include components related to the illumination control unit 312c and the iris authentication unit 313c. (6) Sixth embodiment

[0097] Next, a sixth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Hereinafter, the sixth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described using an authentication system SYSd to which the sixth embodiment of the lighting control device, the lighting control method, the recording medium, and the imaging system are applied. (6-1) Configuration of the authentication system SYSd

[0098] First, the configuration of the authentication system SYSd in the sixth embodiment will be described with reference to Fig. 17. Fig. 17 is a block diagram showing the configuration of the authentication system SYSd in the sixth embodiment.

[0099] As shown in Fig. 17, the authentication system SYSd differs from the above-described authentication system SYSa in that it includes a plurality of lighting devices 2. In the example shown in Fig. 17, the authentication system SYSd includes n (where n is a constant indicating an integer greater than or equal to 2) lighting devices 2 (specifically, lighting device 2#1 to lighting device 2#n). Other features of the authentication system SYSd may be the same as other features of the authentication system SYSa.

[0100] As shown in Fig. 18, the multiple lighting devices 2 are arranged so that the multiple lighting ranges that the multiple lighting devices 2 respectively illuminate with illumination light IL are at least partially different in the vertical direction. In the example shown in Fig. 18, the multiple lighting devices 2 are arranged so that the lighting range of lighting device 2#2 is located below the lighting range of lighting device 2#1, the lighting range of lighting device 2#3 is located below the lighting range of lighting device 2#2, ..., and the lighting range of lighting device 2#n is located below the lighting range of lighting device 2#n-1. Note that, because each of the lighting devices 2#1 to 2#n is the same as the lighting device 2 described above, each of the lighting devices 2#1 to 2#n includes multiple light-emitting elements 21, just like the lighting device 2. (6-2) Authentication Operation in the Sixth Embodiment

[0101] Next, the authentication operation in the sixth embodiment will be described with reference to Fig. 19. Fig. 19 is a flowchart showing the flow of the authentication operation in the sixth embodiment.

[0102] 19, the illumination control unit 312d acquires a facial image IMG_F generated by capturing an image of the face of the target person (step S41d). For example, if the imaging device 1 is capable of generating the facial image IMG_F by capturing an image of the face of the target person, the illumination control unit 312 may receive (i.e., acquire) the facial image IMG_F from the imaging device 1 using the communication device 33. For example, if an imaging device other than the imaging device 1 is capable of generating the facial image IMG_F by capturing an image of the face of the target person, the illumination control unit 312 may receive (i.e., acquire) the facial image IMG_F from the other imaging device using the communication device 33.

[0103] Thereafter, the lighting control unit 312d identifies the position of the target person's eyes based on the face image IMG_F acquired in step S41d (step S42d). Specifically, the lighting control unit 312d identifies the position of the target person's eyes in the vertical direction (i.e., height).

[0104] Thereafter, the lighting control unit 312d selects at least one lighting device 2 that will actually emit illumination light IL from among the multiple lighting devices 2 based on the eye positions identified in step S42d (step S43d). Specifically, the lighting control unit 312d selects at least one lighting device 2 that can illuminate the eyes located at the positions identified in step S42d with illumination light IL. In other words, the lighting control unit 312d selects at least one lighting device 2 whose illumination range includes the eyes located at the positions identified in step S42d. For example, FIG. 20 shows an example in which the illumination range of lighting device 2#2 includes the eyes of the target person. In this case, the lighting control unit 312d may select lighting device 2#2 in step S43d.

[0105] As a result, in the sixth embodiment, at least one lighting device 2 selected in step S43d illuminates the eyes of the target person with illumination light IL, while at least one lighting device 2 not selected in step S43d does not need to illuminate the eyes of the target person with illumination light IL. Thereafter, in the sixth embodiment, as in the third embodiment, the authentication device 3d performs the processes from step S11 to step S17.

[0106] As described above, the authentication system SYSd of the sixth embodiment can select at least one lighting device 2 that illuminates the eyes of the target person with illumination light IL according to the position (height) of the target person's eyes. Therefore, the authentication system SYSd can appropriately illuminate the eyes of the target person with illumination light IL regardless of differences in the position (height) of the target person's eyes.

[0107] At least one of the authentication systems SYSb in the fourth embodiment to SYSc in the fifth embodiment may employ components specific to the sixth embodiment. The components specific to the sixth embodiment may include components related to a plurality of lighting devices 2. (7) Seventh embodiment

[0108] Next, a seventh embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Hereinafter, the lighting control device, the lighting control method, the recording medium, and the imaging system of the seventh embodiment will be described using an authentication system SYSe to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the seventh embodiment are applied. (7-1) Configuration of the authentication system SYSe

[0109] First, the configuration of the authentication system SYSe in the seventh embodiment will be described with reference to Fig. 21. Fig. 21 is a block diagram showing the configuration of the authentication system SYSe in the seventh embodiment.

[0110] 21, the authentication system SYSe differs from the above-described authentication system SYSa in that it includes a moving device 4e that can move the lighting device 2. The moving device 4e may include a power source such as an actuator, and may move the lighting device 2 using the force generated by the power source. Other features of the authentication system SYSe may be the same as other features of the authentication system SYSa. (7-2) Authentication Operation in the Seventh Embodiment

[0111] Next, the authentication operation in the seventh embodiment will be described with reference to Fig. 22. Fig. 22 is a flowchart showing the flow of the authentication operation in the seventh embodiment. As shown in FIG. 22, in the seventh embodiment, similarly to the third embodiment, the authentication device 3 performs the processes from step S11 to step S14.

[0112] Thereafter, the illumination control unit 312 controls the moving unit 4e to move the illumination device 2 based on the iris area IA and the reflection area RA (step S54e). In this case, the illumination control unit 312 may move the illumination device 2 to achieve the same purpose as when determining the illumination conditions. For example, the illumination control unit 312 may move the illumination device 2 to reduce the impact of the overlap between the iris area IA and the reflection area RA on authentication accuracy. The illumination control unit 312 may move the illumination device 2 to reduce the degree of degradation in authentication accuracy caused by the overlap between the iris area IA and the reflection area RA. For example, the illumination control unit 312 may move the illumination device 2 to prevent degradation in authentication accuracy caused by the overlap between the iris area IA and the reflection area RA. For example, the illumination control unit 312 may move the illumination device 2 to reduce the area of ​​the overlap between the iris area IA and the reflection area RA compared to before the illumination device 2 was moved. For example, the illumination control unit 312 may move the illumination device 2 so that no reflective area RA overlaps with the iris area IA. For example, the illumination control unit 312 may move the illumination device 2 so that multiple reflective areas RA are distributed in a specific distribution pattern within the eye image IMG_E. For example, if the impact of overlap between the iris region IA and the reflection region RA on authentication accuracy can be reduced by having the illumination device 2 illuminate the target person with illumination light IL from a position higher than the current position, the illumination control unit 312 may move the illumination device 2 upward. For example, if the impact of overlap between the iris region IA and the reflection region RA on authentication accuracy can be reduced by having the illumination device 2 illuminate the target person with illumination light IL from a position lower than the current position, the illumination control unit 312 may move the illumination device 2 downward. For example, if the impact of overlap between the iris region IA and the reflection region RA on authentication accuracy can be reduced by having the illumination device 2 illuminate the target person with illumination light IL from a position to the right of the current position, the illumination control unit 312 may move the illumination device 2 to the right. For example, if the impact of overlap between the iris region IA and the reflection region RA on authentication accuracy can be reduced by having the illumination device 2 illuminate the target person with illumination light IL from a position to the left of the current position, the illumination control unit 312 may move the illumination device 2 to the left. Alternatively, the lighting control unit 312 may move the lighting device 2 in accordance with the movement of the target person. For example, the lighting control unit 312 may move the lighting device 2 at a speed that matches the movement speed of the target person and in the same movement direction as the movement direction of the target person so that the positional relationship between the target person and the lighting device 2 is maintained (i.e., remains unchanged). As an example, the lighting control unit 312 may move the lighting device 2 at a speed that matches the movement speed of the target person and in the same movement direction as the movement direction of the target person so that the lighting device 2 is positioned to the side of the moving target person. Note that an example of the operation of moving the lighting device 2 at a speed that matches the movement speed of the target person is an operation of moving the lighting device 2 at the same movement speed as the movement speed of the target person. An example of the operation of moving the lighting device 2 at a speed that matches the movement speed of the target person is an operation of moving the lighting device 2 at a speed that increases as the movement speed of the target person increases. In other words, an example of an operation of moving the lighting device 2 at a moving speed that matches the moving speed of the target person is an operation of moving the lighting device 2 at a moving speed that becomes slower as the moving speed of the target person slows. In this case, if the target person is moving relatively fast, the lighting device 2 also moves relatively fast. Similarly, if the target person is moving relatively slow (for example, moving slowly), the lighting device 2 also moves relatively fast (for example, moving slowly).

[0113] Note that, when the illumination device 2 moves, the illumination control unit 312 does not need to determine the illumination conditions based on the iris area IA and the reflection area RA in step S14. For example, if the impact of overlap between the iris area IA and the reflection area RA on authentication accuracy can be sufficiently reduced by moving the illumination device 2, the illumination control unit 312 does not need to determine the illumination conditions based on the iris area IA and the reflection area RA in step S14. In this case, default illumination conditions may be used. Thereafter, in the seventh embodiment, similarly to the third embodiment, the authentication device 3 performs the processes from step S11 to step S17.

[0114] As described above, the authentication system SYSe of the seventh embodiment can move the illumination device 2 in addition to or instead of determining the illumination conditions. Therefore, even if determining the illumination conditions alone is not enough to sufficiently reduce the impact of the overlap between the iris area IA and the reflective area RA on the authentication accuracy of the target person, the authentication system SYSe can reduce the impact of the overlap between the iris area IA and the reflective area RA on the authentication accuracy by moving the illumination device 2. Alternatively, the authentication system SYSe can reduce the impact of the overlap between the iris area IA and the reflective area RA on the authentication accuracy by moving the illumination device 2 without determining the illumination conditions.

[0115] Note that the operation of moving the lighting device 2 is equivalent to the operation of changing the positional relationship between the lighting device 2 and the target person. In this case, the positional relationship between the lighting device 2 and the target person can be changed by moving the target person relative to the lighting device 2, in addition to or instead of moving the lighting device 2. For this reason, the lighting control unit 312 may use the output device 35 to output information to the target person, based on the iris area IA and the reflection area RA, to prompt the target person to move relative to the lighting device 2. In this case, the lighting control unit 312 may output information for moving the target person to achieve the same purpose as in determining the lighting conditions. As a result, by moving the target person, the authentication system SYSe can reduce the impact of overlap between the iris area IA and the reflection area RA on authentication accuracy.

[0116] Furthermore, at least one of the authentication systems SYSb in the fourth embodiment to SYSd in the sixth embodiment may employ components specific to the seventh embodiment. The components specific to the seventh embodiment may include components related to the movement of the lighting device 2. (8) Eighth embodiment

[0117] Next, an eighth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. Below, the lighting control device, the lighting control method, the recording medium, and the imaging system of the eighth embodiment will be described using an authentication system SYSf to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the eighth embodiment are applied. (8-1) Configuration of the authentication system SYSf

[0118] First, the configuration of the authentication system SYSf in the eighth embodiment will be described with reference to Fig. 23. Fig. 23 is a block diagram showing the configuration of the authentication system SYSf in the eighth embodiment.

[0119] 23, the authentication system SYSf includes an imaging device 1, a right lighting device 2fR, a left lighting device 2fL, and an authentication device 3f. Note that a system including the imaging device 1, the right lighting device 2fR, and the left lighting device 2fL may be referred to as an imaging system.

[0120] The right lighting device 2fR, like the lighting device 2, can illuminate the target person (especially the eyes) with illumination light IL. However, it is sufficient that the right lighting device 2fR can illuminate at least the right eye of the target person with illumination light IL. In other words, the right lighting device 2fR does not have to be able to illuminate the left eye of the target person with illumination light IL. However, the right lighting device 2fR may be able to illuminate the left eye of the target person with illumination light IL.

[0121] The left illumination device 2fL, like the illumination device 2, can illuminate the target person (especially the eyes) with illumination light IL. However, it is sufficient that the left illumination device 2fL can illuminate at least the left eye of the target person with illumination light IL. In other words, the left illumination device 2fL does not have to be able to illuminate the right eye of the target person with illumination light IL. However, the left illumination device 2fL may be able to illuminate the right eye of the target person with illumination light IL.

[0122] In the following description, the illumination light IL emitted by the right illumination device 2fR will be referred to as "illumination light ILR," and the illumination light IL emitted by the left illumination device 2fL will be referred to as "illumination light ILL," to distinguish between the two.

[0123] In the eighth embodiment, the imaging device 1, the right lighting device 2fR, and the left lighting device 2fL are arranged in the arrangement shown in Fig. 24. Specifically, as shown in Fig. 24, the right lighting device 2fR is arranged on the left side of the imaging device 1 when facing the imaging device 1 (the -X side in the example shown in Fig. 24). In other words, the right lighting device 2fR is arranged on the left side of the imaging device 1 when viewed from the target person whose image is captured by the imaging device 1 (the -X side in the example shown in Fig. 23). On the other hand, the left lighting device 2fL is arranged on the right side of the imaging device 1 when facing the imaging device 1 (the +X side in the example shown in Fig. 23). In other words, the left lighting device 2fL is arranged on the right side of the imaging device 1 when viewed from the target person whose image is captured by the imaging device 1 (the +X side in the example shown in Fig. 24). Furthermore, at the timing when the imaging device 1 captures the right and left eyes, the optical axis AXR of the right lighting device 2fR (e.g., the optical axis of the optical system such as a lens provided in the right lighting device 2fR) and the optical axis AXL of the left lighting device 2fL (e.g., the optical axis of the optical system such as a lens provided in the left lighting device 2fL) intersect between the imaging device 1 and the target person. The right lighting device 2fR may be disposed in the imaging device 1. The right lighting device 2fR may be disposed in a position different from the imaging device 1. The right lighting device 2fR may be integrated with the imaging device 1. The right lighting device 2fR may be disposed separately and independently from the imaging device 1. The left lighting device 2fL may be disposed in the imaging device 1. The left lighting device 2fL may be disposed in a position different from the imaging device 1. The left lighting device 2fL may be integrated with the imaging device 1. Alternatively, the left lighting device 2fL may be disposed separately and independently from the imaging device 1. When a gate device through which the target person can pass is provided, at least one of the right lighting device 2fR and the left lighting device 2fL may be provided in the gate device. When a gate device through which the target person can pass is provided, the imaging device 1 may capture an image of a target passing through the gate device. The gate device may include, for example, a gate (e.g., a flapper gate) that is in an open state when the target person is permitted to pass through the gate device and is in a closed state when the target person is not permitted to pass through the gate device.

[0124] Like the authentication device 3, the authentication device 3f acquires an eye image IMG_E from the imaging device 1 and performs an authentication operation to authenticate a target person using the eye image IMG_E. However, the authentication operation performed by the authentication device 3f is partially different from the authentication operation performed by the authentication device 3. Specifically, the authentication device 3f authenticates a target person using both an eye image IMG_E generated by the imaging device 1 capturing an image of the target person illuminated with illumination light ILR by the right lighting device 2fR, and an eye image IMG_E generated by the imaging device 1 capturing an image of the target person illuminated with illumination light ILL by the left lighting device 2fL. However, the authentication device 3f may authenticate a target person using either the eye image IMG_E generated by the imaging device 1 capturing an image of the target person illuminated with illumination light ILR by the right lighting device 2fR, or the eye image IMG_E generated by the imaging device 1 capturing an image of the target person illuminated with illumination light ILL by the left lighting device 2fL.

[0125] The configuration of such an authentication device 3f is shown in Fig. 25. As shown in Fig. 25, the authentication device 3f differs from the authentication device 3 in that it does not need to include an image analysis unit 311. Furthermore, the authentication device 3f differs from the authentication device 3 in that it includes an illumination control unit 312f and an iris authentication unit 313f instead of the illumination control unit 312 and the iris authentication unit 313. Other features of the authentication device 3f may be the same as other features of the authentication device 3. (8-2) Authentication operation performed by the authentication device 3f Next, the authentication operation performed by the authentication device 3f will be described with reference to Fig. 26. Fig. 26 is a flowchart showing the flow of the authentication operation performed by the authentication device 3f.

[0126] 26, the lighting control unit 312f controls the right lighting device 2fR and the left lighting device 2fL so that either one of the right lighting device 2fR or the left lighting device 2fL illuminates the eyes of the target person with illumination light IL (step S61f). In the example shown in FIG. 26, in step S61f, the lighting control unit 312f controls the right lighting device 2fR and the left lighting device 2fL so that the right lighting device 2fR illuminates the eyes of the target person with illumination light ILR. In other words, the lighting control unit 312f controls the right lighting device 2fR so that the right lighting device 2fR illuminates the eyes of the target person (particularly, at least the right eye) with illumination light ILR, and controls the left lighting device 2fL so that the left lighting device 2fL does not illuminate the eyes of the target person with illumination light ILL. In other words, the illumination control unit 312f controls the right illumination device 2fR so that it emits illumination light ILR, and controls the left illumination device 2fL so that it does not emit illumination light ILL.

[0127] Thereafter, the imaging device 1 captures an image of the target person's eyes. In this case, the target person's eyes (particularly, the right eye) are illuminated by the illumination light ILR emitted from the right illumination device 2fR. Therefore, the imaging device 1 captures at least the target person's eyes (particularly, the right eye) illuminated by the illumination light ILR. As a result, the imaging device 1 generates an eye image IMG_E. That is, the imaging device 1 generates an eye image IMG_E in which the target person's eyes (particularly, the right eye) illuminated by the illumination light ILR are captured. Note that in the eighth embodiment, the eye image IMG_E in which the target person's eyes (particularly, the right eye) illuminated by the illumination light ILR are captured is referred to as an "eye image IMG_ER" as necessary. When the imaging device 1 generates the eye image IMG_ER, the iris authentication unit 313f receives (i.e., acquires) the eye image IMG_ER from the imaging device 1 using the communication device 33 (step S62f).

[0128] Thereafter, the lighting control unit 312f controls the right lighting device 2fR and the left lighting device 2fL so that the other of the right lighting device 2fR and the left lighting device 2fL illuminates the eyes of the target person with illumination light IL (step S63f). In the example shown in FIG. 26, in step S63f, the lighting control unit 312f controls the right lighting device 2fR and the left lighting device 2fL so that the left lighting device 2fL illuminates the eyes of the target person with illumination light ILL. In other words, the lighting control unit 312f controls the left lighting device 2fL so that the left lighting device 2fL illuminates the eyes of the target person (particularly, at least the left eye) with illumination light ILL, and controls the right lighting device 2fR so that the right lighting device 2fR does not illuminate the eyes of the target person with illumination light ILR. In other words, the lighting control unit 312f controls the left lighting device 2fL so that the left lighting device 2fL emits illumination light ILL, and controls the right lighting device 2fR so that the right lighting device 2fR does not emit illumination light ILR.

[0129] Thereafter, the imaging device 1 captures an image of the target person's eyes. In this case, the target person's eyes (particularly, the left eye) are illuminated by the illumination light ILL emitted from the left illumination device 2fL. Therefore, the imaging device 1 captures at least the target person's eyes (particularly, the left eye) illuminated by the illumination light ILL. As a result, the imaging device 1 generates an eye image IMG_E. That is, the imaging device 1 generates an eye image IMG_E in which the target person's eyes (particularly, the left eye) illuminated by the illumination light ILL are captured. Note that in the eighth embodiment, the eye image IMG_E in which the target person's eyes (particularly, the left eye) illuminated by the illumination light ILL are captured is referred to as an "eye image IMG_EL" as needed. When the imaging device 1 generates the eye image IMG_EL, the iris authentication unit 313f receives (i.e., acquires) the eye image IMG_EL from the imaging device 1 using the communication device 33 (step S64f).

[0130] Thereafter, the iris authentication unit 313f authenticates the target person based on the eye image IMG_ER acquired in step S62f and the eye image IMG_EL acquired in step S64f (step S65f). Specifically, the iris authentication unit 313f detects an iris area IA (hereinafter referred to as an "iris area IAR" as needed) corresponding to the iris of the target person's right eye in the eye image IMG_ER acquired in step S62f. Furthermore, the iris authentication unit 313f detects an iris area IA (hereinafter referred to as an "iris area IAL" as needed) corresponding to the iris of the target person's left eye in the eye image IMG_EL acquired in step S64f. Note that the operation of the iris authentication unit 313f to detect the iris area IA may be the same as the operation of the iris authentication unit 313 to detect the iris area IA described above. Then, the iris authentication unit 313f extracts features related to the iris pattern from the iris area IAR of the eye image IMG_ER and the iris area IAL of the eye image IMG_EL. Then, the iris authentication unit 313f compares the extracted features with the iris features of the registered person to authenticate the target person. (8-3) Technical effects of the authentication system SYSf

[0131] The authentication system SYSf of the eighth embodiment can reduce the effect on authentication accuracy caused by overlapping of the iris area IA and the reflective area RA. In particular, when the target person is wearing glasses, the authentication system SYSf can reduce the effect on authentication accuracy caused by overlapping of the iris area IA and the reflective area RA. The reason for this will be explained below.

[0132] First, when the target person is wearing glasses, the iris region IA is more likely to overlap with the reflection region RA in the eye image IMG_E generated by the imaging device 1 than when the target person is not wearing glasses. This is because the illumination light IL for illuminating the target person is reflected by the glasses (for example, by the lenses of the glasses). The smaller the incident angle θ (see FIGS. 24 and 27) of the illumination light IL with respect to the lenses of the glasses covering the eyes, the higher the possibility that the iris region IA and the reflection region RA will overlap. In other words, the closer the incident mode of the illumination light with respect to the lenses of the glasses covering the eyes is to perpendicular incidence, the higher the possibility that the iris region IA and the reflection region RA will overlap.

[0133] In the eighth embodiment, the right lighting device 2fR is disposed on the left side of the imaging device 1, and the optical axis AXR of the right lighting device 2fR and the optical axis AXL of the left lighting device 2fL intersect between the imaging device 1 and the target person. As a result, compared to a case where the right lighting device 2fR is disposed on the right side of the imaging device 1 and / or the optical axis AXR and the optical axis AXL do not intersect (see FIG. 27), the incident angle θ of the illumination light ILR with respect to the right lens of the glasses covering the right eye becomes larger as shown in FIG. 24. As a result, as shown in FIG. 28(a) showing the eye image IMG_ER, the reflection area RA corresponding to the reflected image of the illumination light ILR is less likely to overlap the iris area IAR corresponding to the iris of the right eye in the eye image IMG_ER.

[0134] Similarly, in the eighth embodiment, the left lighting device 2fL is disposed on the right side of the image capture device 1, and the optical axis AXR of the right lighting device 2fR and the optical axis AXL of the left lighting device 2fL intersect between the image capture device 1 and the target person. As a result, compared to a case where the left lighting device 2fL is disposed on the left side of the image capture device 1 and / or the optical axis AXR and the optical axis AXL do not intersect (see FIG. 27), the incident angle θ of the illumination light ILL with respect to the left lens of the glasses covering the left eye becomes larger as shown in FIG. 24. As a result, as shown in FIG. 28(b) showing the eye image IMG_EL, the reflection area RA corresponding to the reflected image of the illumination light ILR is less likely to overlap the iris area IAL corresponding to the iris of the left eye in the eye image IMG_EL.

[0135] Therefore, in an environment where the right illumination device 2fR is illuminating the target person with illumination light ILR but the left illumination device 2fL is not illuminating the target person with illumination light ILL, the imaging device 1 can generate an eye image IMG_ER in which the reflection area RA does not overlap the iris area IAR. Similarly, in an environment where the left illumination device 2fL is illuminating the target person with illumination light ILL but the right illumination device 2fR is not illuminating the target person with illumination light ILR, the imaging device 1 can generate an eye image IMG_EL in which the reflection area RA does not overlap the iris area IAL.

[0136] On the other hand, in an environment where the right lighting device 2fR is illuminating the target person with illumination light ILR but the left lighting device 2fL is not illuminating the target person with illumination light ILL, the angle of incidence of the illumination light ILR on the left lens of the glasses covering the left eye may not be sufficiently large. Therefore, as shown in FIG. 28(a), in the eye image IMG_ER, the reflection area RA may overlap with the iris area IAL, which corresponds to the iris of the left eye. Similarly, in an environment where the left lighting device 2fL is illuminating the target person with illumination light ILL but the right lighting device 2fR is not illuminating the target person with illumination light ILR, the angle of incidence of the illumination light ILL on the right lens of the glasses covering the right eye may not be sufficiently large. Therefore, as shown in FIG. 28(b), in the eye image IMG_EL, the reflection area RA exists in the iris area IAR, which corresponds to the iris of the right eye. In consideration of this, in the eighth embodiment, the iris authentication unit 313f extracts feature amounts related to the iris pattern from the iris region IAR in the eye image IMG_ER that is unlikely to overlap the reflection region RA, but does not have to extract feature amounts related to the iris pattern from the iris region IAL that may overlap the reflection region RA. Similarly, the iris authentication unit 313f extracts feature amounts related to the iris pattern from the iris region IAL in the eye image IMG_EL that is unlikely to overlap the reflection region RA, but does not have to extract feature amounts related to the iris pattern from the iris region IAR that may overlap the reflection region RA. Thereafter, the iris authentication unit 313 authenticates the target person using the feature amounts extracted from the iris region IAR of the eye image IMG_ER and the feature amounts extracted from the iris region IAL of the eye image IMG_EL. In other words, the iris authentication unit 313 authenticates the target person without using the feature amount extracted from the iris region IAL of the eye image IMG_ER, which may be overlapped with the reflection region RA, and the feature amount extracted from the iris region IAR of the eye image IMG_EL, which may be overlapped with the reflection region RA. Therefore, the iris authentication unit 313 can authenticate the target person with higher accuracy compared to when the target person is authenticated using the feature amount extracted from the iris region IA, which may be overlapped with the reflection region RA. However, the iris authentication unit 313 may authenticate the target person using either the feature extracted from the iris region IAR of the eye image IMG_ER or the feature extracted from the iris region IAL of the eye image IMG_EL. In other words, the iris authentication unit 313 does not have to authenticate the target person using both the feature extracted from the iris region IAR of the eye image IMG_ER and the feature extracted from the iris region IAL of the eye image IMG_EL. Even in this case, the iris authentication unit 313 can authenticate the target person with a reasonably high degree of accuracy. The authentication device 3f may perform an authentication operation related to face authentication in addition to an authentication operation related to iris authentication. The authentication operation related to face authentication may include an operation of acquiring a face image IMG_F (see the sixth embodiment) generated by capturing an image of the face of the target person, and determining whether the target person captured in the acquired face image IMG_F is the same as a registered person based on facial feature points (feature amounts) of the target person captured in the face image IMG_F. In this case, the authentication device 3f may perform the authentication operation related to face authentication before, after, or in parallel with the authentication operation related to iris authentication. This is not limited to the eighth embodiment, but also applies to at least one of the first to seventh embodiments and the ninth and tenth embodiments described below. When an authentication operation related to iris authentication is performed after an authentication operation related to face authentication, the authentication device 3f may control the illumination intensity when generating the eye image IMG_E based on the result of face authentication. For example, the authentication device 3f may set (e.g., change) a threshold Th corresponding to the tolerance of the size of the overlapping area where the iris area IA and the reflection area RA overlap based on the result of face authentication. Here, when the threshold Th is used, the authentication device 3f may typically set the illumination conditions of the right illumination device 2fR and the left illumination device 2fL (e.g., the number of light-emitting elements 21 emitting illumination light IL described in the third embodiment, etc.) so that the size of the overlapping area is smaller than the threshold Th. Alternatively, the authentication device 3f may output information prompting the target person to move so that the size of the overlapping area is smaller than the threshold Th. In this case, the smaller the threshold Th, the smaller the overlapping area where the iris area IA and the reflection area RA overlap, and therefore the authentication device 3f can authenticate the target person by iris authentication with higher accuracy. Conversely, the larger the threshold Th, the more overlap between the iris area IA and the reflection area RA is tolerated, reducing the burden of setting the illumination conditions for the right illumination device 2fR and the left illumination device 2fL. Under these conditions, if face authentication fails, it is preferable to prioritize reliable authentication of the target person through iris authentication, since the target person has not yet been authenticated. Therefore, the authentication device 3f may set a smaller threshold Th when face authentication fails compared to when face authentication is successful. As a result, the imaging device 1 can capture the target person's eyes in an appropriate imaging environment (i.e., an environment in which the overlapping area between the iris area IA and the reflection area RA is small), thereby generating an eye image IMG_E in which the target person's iris is properly captured. As a result, the authentication device 3f can more reliably determine whether the target person is the same as the registered person by performing iris authentication. Conversely, if face authentication is successful, since the target person has already been authenticated by face authentication, no major problem will arise even if reducing the burden of setting the illumination conditions of the right illumination device 2fR and the left illumination device 2fL for iris authentication takes priority over improving the accuracy of authentication of the target person. Therefore, the authentication device 3f may set the threshold value Th to be larger when face authentication is successful than when face authentication is unsuccessful.

[0137] At least one of the right illumination device 2fR and the left illumination device 2fL may be able to change the illumination mode of the illumination light IL directed at the eyes of the target person, similar to the above-described illumination device 2. At least one of the right illumination device 2fR and the left illumination device 2fL may include a plurality of light-emitting elements 21, similar to the above-described illumination device 2. In this case, the authentication device 3f may include an image analysis unit 311 that detects the iris area IA and the reflection area RA. Furthermore, the illumination control unit 312f may determine the illumination conditions based on the iris area IA and the reflection area RA, similar to the above-described illumination control unit 312.

[0138] Furthermore, at least one of the authentication systems SYSa in the third embodiment to SYSe in the seventh embodiment described above may employ components specific to the eighth embodiment. The components specific to the eighth embodiment may include components related to the right lighting device 2fR and the left lighting device 2fL. (9) Ninth embodiment

[0139] Next, a ninth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. The following describes the lighting control device, the lighting control method, the recording medium, and the imaging system of the ninth embodiment, using an authentication system SYSg to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the ninth embodiment are applied. (9-1) Configuration of the authentication system SYSg

[0140] The authentication system SYSg differs from the above-described authentication system SYSf in that it includes an authentication device 3g instead of the authentication device 3f. Other features of the authentication system SYSg may be the same as other features of the authentication system SYSf. Hereinafter, the authentication device 3g in the ninth embodiment will be described with reference to Fig. 29. Fig. 29 is a block diagram showing the configuration of the authentication device 3g in the ninth embodiment.

[0141] As shown in FIG. 29, the authentication device 3g differs from the above-described authentication device 3f in that it includes an illumination control unit 312g instead of the illumination control unit 312f. Other features of the authentication device 3g may be the same as other features of the authentication device 3f. The illumination control unit 312g differs from the illumination control unit 312f in that it controls the right illumination device 2fR and the left illumination device 2fL so that both the right illumination device 2fR and the left illumination device 2fL illuminate the eyes of the target person with illumination light IL. Other features of the illumination control unit 312g may be the same as other features of the illumination control unit 312f. (9-2) Authentication Operation Performed by the Authentication Device 3g Next, the authentication operation performed by the authentication device 3g will be described with reference to Fig. 30. Fig. 30 is a flowchart showing the flow of the authentication operation performed by the authentication device 3g.

[0142] 30, the lighting control unit 312g controls the right lighting device 2fR and the left lighting device 2fL so that both the right lighting device 2fR and the left lighting device 2fL illuminate the eyes of the target person with illumination light IL (step S71g). That is, the lighting control unit 312g controls the right lighting device 2fR so that the right lighting device 2fR illuminates the eyes of the target person with illumination light ILR, and controls the left lighting device 2fL so that the left lighting device 2fL illuminates the eyes of the target person with illumination light ILL. In other words, the lighting control unit 312f controls the right lighting device 2fR so that the right lighting device 2fR emits illumination light ILR, and controls the left lighting device 2fL so that the left lighting device 2fL emits illumination light ILL.

[0143] Thereafter, the imaging device 1 captures an image of the target person's eyes (in this case, both the right eye and the left eye). As a result, the imaging device 1 generates an eye image IMG_E. That is, the imaging device 1 generates an eye image IMG_E in which the target person's eyes (in this case, both the right eye and the left eye) illuminated by the illumination light ILR and the illumination light ILL are captured. In the ninth embodiment, the eye image IMG_E in which the target person's eyes (in this case, both the right eye and the left eye) illuminated by the illumination light ILR and the illumination light ILL are captured is referred to as an "eye image IMG_EB" as needed. When the imaging device 1 generates the eye image IMG_EB, the illumination control unit 312g receives (i.e., acquires) the eye image IMG_EB from the imaging device 1 using the communication device 33 (step S72g).

[0144] Thereafter, the illumination control unit 312g determines whether the quality of the iris reflected in the eye image IMG_EB is good (step S73g). For example, the illumination control unit 312g may detect an iris region IA and a reflection region RA in the eye image IMG_EB and determine whether the proportion of the overlapping region where the iris region IA and the reflection region RA overlap with respect to the iris region IA is equal to or less than the upper tolerance limit. In this case, the illumination control unit 312g may determine that the quality of the iris reflected in the eye image IMG_EB is good if the proportion of the overlapping region where the iris region IA and the reflection region RA overlap with respect to the iris region IA is equal to or less than the upper tolerance limit. For example, the illumination control unit 312g may detect an iris region IA in the eye image IMG_EB and determine whether a feature amount related to the iris pattern can be extracted from the detected iris region IA. In this case, the illumination control unit 312g may determine that the quality of the iris reflected in the eye image IMG_EB is good if a feature amount related to the iris pattern can be extracted from the iris area IA. For example, the illumination control unit 312g may determine whether or not the target person can be authenticated using the eye image IMG_EB. In this case, the illumination control unit 312g may determine that the quality of the iris reflected in the eye image IMG_EB is good if the target person can be authenticated using the eye image IMG_EB.

[0145] If the result of the determination in step S73g is that the iris quality is not good (step S73g: No), it is assumed that there is a high possibility that the reflection area RA overlaps the iris area IA to such an extent that it adversely affects the authentication accuracy of the target person. Therefore, in this case, the authentication device 3g performs the operations of steps S61f to S64f described above, as in the eighth embodiment. As a result, the iris authentication unit 313f acquires an eye image IMG_ER in which the reflection area RA does not overlap the iris area IAR, and an eye image IMG_EL in which the reflection area RA does not overlap the iris area IAL. Thereafter, the iris authentication unit 313f performs the operation of step S65f described above. That is, the iris authentication unit 313f authenticates the target person using feature amounts related to the iris pattern extracted from the iris area IAR of the eye image IMG_ER and the iris area IAL of the eye image IMG_EL. However, as described above in the eighth embodiment, the authentication device 3f may authenticate the target person using either one of the features related to the iris pattern extracted from the iris region IAR of the eye image IMG_ER and the iris region IAL of the eye image IMG_EL.

[0146] On the other hand, if the result of the determination in step S73g is that the iris quality is good (step S73g: Yes), it is assumed that the iris authentication unit 313f can authenticate the target person using the eye image IMG_EB (that is, it is possible to extract iris features from the eye image IMG_EB to the extent that the target person can be authenticated). In other words, it is assumed that the iris authentication unit 313f can authenticate the target person without newly acquiring eye images IMG_ER and IMG_EL. Therefore, in this case, the authentication device 3g does not need to perform the operations from step S61f to step S64f described above. In this case, the iris authentication unit 313f may authenticate the target person using features related to the iris pattern extracted from at least one of the iris areas IAR and IAL of the eye image IMG_EB (step S65f).

[0147] As described above, the authentication system SYSg of the ninth embodiment does not necessarily have to generate the eye images IMG_ER and IMG_EL. This reduces the time required to authenticate a target person compared to when the eye images IMG_ER and IMG_EL are always generated.

[0148] Specifically, as described above, when the eyes of a target person are illuminated by illumination light ILR and illumination light ILL, there is a possibility that, in the eye image IMG_EB, the reflection area RA of the illumination light ILR overlaps with the iris area IAL corresponding to the iris of the left eye and / or the reflection area RA of the illumination light ILL overlaps with the iris area IAR corresponding to the iris of the right eye. For this reason, the authentication system SYSg typically generates separate eye images IMG_ER and IMG_EL, in which the reflection area RA does not overlap with the iris area IAR. However, due to some factors, there may be cases in which, in the eye image IMG_EB, the reflection area RA of the illumination light ILR does not overlap with the iris area IAL, and the reflection area RA of the illumination light ILL does not overlap with the iris area IAR. Alternatively, there may be cases in which, in the eye image IMG_EB, the reflection area RA of the illumination light ILR overlaps with the iris area IAL, but the reflection area RA of the illumination light ILL does not overlap with the iris area IAR. Alternatively, in the eye image IMG_EB, the reflection area RA of the illumination light ILR may not overlap the iris area IAL, while the reflection area RA of the illumination light ILL may overlap the iris area IAR. In this case, the quality of the iris is assumed to be good because the reflection area RA of the illumination light ILR and the reflection area RA of the illumination light ILL do not overlap at least one of the iris areas IAR and IAL in the eye image IMG_EB. Therefore, in this case, the authentication system SYSg does not need to generate eye images IMG_ER and IMG_EL separately from the eye image IMG_EB. As a result, the number of times the eye image IMG_E is generated is reduced compared to when the eye images IMG_ER and IMG_EL are always generated. This allows the authentication system SYSg to shorten the time required to authenticate the target person. (10) Tenth embodiment

[0149] Next, a tenth embodiment of a lighting control device, a lighting control method, a recording medium, and an imaging system will be described. The following describes the lighting control device, the lighting control method, the recording medium, and the imaging system of the tenth embodiment, using an authentication system SYSh to which the lighting control device, the lighting control method, the recording medium, and the imaging system of the tenth embodiment are applied. (10-1) Configuration of the authentication system SYSh

[0150] The authentication system SYSh differs from the above-described authentication system SYSf in that it includes an authentication device 3h instead of the authentication device 3f. Other features of the authentication system SYSh may be the same as other features of the authentication system SYSf. Hereinafter, the authentication device 3h in the tenth embodiment will be described with reference to Fig. 31. Fig. 31 is a block diagram showing the configuration of the authentication device 3h in the tenth embodiment.

[0151] As shown in Fig. 31, authentication device 3h differs from authentication device 3f described above in that it includes illumination control unit 312h instead of illumination control unit 312f. Other features of authentication device 3h may be the same as other features of authentication device 3f. Illumination control unit 312h differs from illumination control unit 312f in that it is capable of adjusting the illumination intensity with which illumination device 2 illuminates the target person so that the luminance of eye area EA (see Fig. 33 described later) in face image IMG_F becomes a target luminance. Other features of illumination control unit 312h may be the same as other features of illumination control unit 312f. (10-2) Authentication operation performed by the authentication device 3h Next, the authentication operation performed by the authentication device 3h will be described with reference to Fig. 32. Fig. 32 is a flowchart showing the flow of the authentication operation performed by the authentication device 3h.

[0152] 32, the illumination control unit 312h acquires a facial image IMG_F generated by capturing an image of the face of the target person (step S91h). For example, if the imaging device 1 is capable of generating the facial image IMG_F by capturing an image of the face of the target person, the illumination control unit 312h may receive (i.e., acquire) the facial image IMG_F from the imaging device 1 using the communication device 33. For example, if an imaging device other than the imaging device 1 is capable of generating the facial image IMG_F by capturing an image of the face of the target person, the illumination control unit 312h may receive (i.e., acquire) the facial image IMG_F from the other imaging device using the communication device 33.

[0153] Thereafter, the illumination control unit 312h identifies an eye area EA, which is an area of ​​a predetermined shape including the eyes of the target person in the face image IMG_F, based on the face image IMG_F acquired in step S91h (step S92h). An example of the eye area EA is shown in FIG. 33. As shown in FIG. 33, the eye area EA may be a rectangular area including the eyes. The eye area EA may be a rectangular area including the eyes and areas near the eyes. The size of the eye area EA may be determined according to the size of the eyes.

[0154] Thereafter, the lighting control unit 312h calculates the luminance of the eye area EA as the calculated luminance, and adjusts the lighting intensity with which the lighting device 2 illuminates the target person based on the calculated luminance of the eye area EA and a target luminance that is preset as a target value for the luminance of the eye area EA in the eye image IMG_E (step S93h). Specifically, the lighting control unit 312h adjusts the lighting intensity by setting a target value for lighting intensity based on the calculated luminance and the target luminance. For example, if the calculated luminance is higher than the target luminance, it is assumed that the current lighting intensity is higher than the ideal intensity. Therefore, in this case, the lighting control unit 312h may adjust the lighting intensity to lower the current lighting intensity. Typically, the lighting control unit 312h may adjust the lighting intensity to lower the current lighting intensity by setting a new target value for lighting intensity lower than the current lighting intensity. On the other hand, for example, if the calculated luminance is lower than the target luminance, it is assumed that the current lighting intensity is lower than the ideal intensity. Therefore, in this case, the lighting control unit 312h may adjust the lighting intensity to increase the current lighting intensity. Typically, the illumination control unit 312h may adjust the illumination intensity so that the current illumination intensity is increased by setting a new target value of the illumination intensity higher than the current illumination intensity. In this case, the illumination control unit 312h may adjust the illumination intensity using the formula "new target value of the illumination intensity = (target brightness / calculated brightness) × current illumination intensity." Thereafter, the authentication device 3h performs the same operations as the authentication device 3f described above, from step S61f to step S65f.

[0155] As described above, in the tenth embodiment, the authentication device 3h can adjust the illumination intensity so that the luminance of the eye region EA of the face image IMG_F becomes the target luminance. As a result, the luminance of the iris region IA of the eye image IMG_E becomes the desired luminance according to the target luminance. Therefore, the authentication device 3h can authenticate the target person using the eye image IMG_E in which the luminance of the iris region IA becomes the desired luminance. Therefore, the authentication device 3h can authenticate the target person with higher accuracy than when the target person is authenticated using the eye image IMG_E in which the luminance of the iris region IA does not become the target luminance.

[0156] In addition, when adjusting the illumination intensity, the illumination control unit 312h may adjust the illumination intensity so that the luminance of the iris region IA of the eye image IMG_EL acquired under a first illumination environment in which the right illumination device 2fR illuminates the target person with illumination light ILR while the left illumination device 2fL does not illuminate the target person with illumination light ILL, the luminance of the iris region IA of the eye image IMG_EL acquired under a second illumination environment in which the left illumination device 2fL illuminates the target person with illumination light ILL while the right illumination device 2fR does not illuminate the target person with illumination light ILR, and the luminance of the iris region IA of the eye image IMG_EB acquired under a third illumination environment in which the right illumination device 2fR illuminates the target person with illumination light ILR and the left illumination device 2fL illuminates the target person with illumination light ILL are the same. In this case, the illumination control unit 312h may set the target illumination intensity for the first illumination environment by performing steps S91h to S93h described above under the first illumination environment, set the target illumination intensity for the second illumination environment by performing steps S91h to S93h described above under the second illumination environment, and set the target illumination intensity for the third illumination environment by performing steps S91h to S93h described above under the third illumination environment. As a result, the luminance of the iris region IA of the eye image IMG_EB is maintained constant regardless of differences in the illumination environment. Therefore, the authentication device 3h can authenticate the target person with higher accuracy than when the luminance of the iris region IA of the eye image IMG_EB varies depending on the illumination environment.

[0157] At least one of the authentication systems SYSa in the third embodiment to SYSe in the seventh embodiment described above may employ components specific to the tenth embodiment. The components specific to the tenth embodiment may include components related to adjustment of illumination intensity. (11) Supplementary Note The following additional notes are provided regarding the above-described embodiment. [Appendix 1] a detection means for detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of the eye of a target illuminated with illumination light from a lighting device; an illumination control means for controlling the illumination device based on the overlap state between the iris area and the reflection area; A lighting control device comprising: [Appendix 2] the illumination device includes a plurality of light emitting units each capable of emitting the illumination light, The illumination control means determines illumination conditions including at least one of the number of the light emitting units that emit the illumination light, the positions of the light emitting units that emit the illumination light, the angles at which the light emitting units emit the illumination light, and the intensity of the illumination light emitted by the light emitting units, based on the overlap state, and controls the illumination device based on the determined illumination conditions. 10. The lighting control device of claim 1. [Appendix 3] The illumination control means controls the illumination device so as to reduce an area of ​​an overlapping region where the iris region and the reflective region overlap. 3. The lighting control device according to claim 1 or 2. [Appendix 4] The illumination control means controls the illumination device so that the reflective areas are distributed in a specific distribution pattern. 4. A lighting control device according to any one of claims 1 to 3. [Appendix 5] The lighting control means controls the lighting device so that the reflective area blinks at specific time intervals. 5. A lighting control device according to any one of claims 1 to 4. [Appendix 6] the illumination device includes a plurality of light emitting units each capable of emitting the illumination light, The illumination control means determines intensity conditions including at least one of the number and positions of the light emitting units that emit the illumination light based on at least one of the position, appearance, and moving speed of the object, and controls the illumination device based on the determined intensity conditions. 6. A lighting control device according to any one of appendices 1 to 5. [Appendix 7] The illumination control means controls the illumination device so that the eye is illuminated with the illumination light based on a first illumination condition, and then the eye is illuminated with the illumination light based on a second illumination condition different from the first illumination condition. 7. A lighting control device according to any one of claims 1 to 6. [Appendix 8] The illumination control means determines the first and second illumination conditions so that a position of the reflection region relative to the iris region in a first eye image generated by capturing an image of the eye illuminated with the illumination light based on the first illumination condition differs from a position of the reflection region relative to the iris region in a second eye image generated by capturing an image of the eye illuminated with the illumination light based on the second illumination condition. 8. The lighting control device of claim 7. [Appendix 9] The illumination control means predicts the eye movement and determines the first and second illumination conditions based on the predicted eye movement. 9. The lighting control device of claim 8. [Appendix 10] The target is authenticated using a region of the iris region included in the first eye image where the reflection region does not overlap and a region of the iris region included in the second eye image where the reflection region does not overlap. 10. The lighting control device according to claim 8 or 9. [Appendix 11] The lighting control means moves the lighting device based on the overlap state. 11. A lighting control device according to any one of claims 1 to 10. [Appendix 12] The present invention further includes an output unit that outputs, to the object, information prompting the object to move relative to the lighting device based on the overlap state. 12. A lighting control device according to any one of claims 1 to 11. [Appendix 13] detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of at least the eye of a target illuminated with illumination light from a lighting device; controlling the lighting device based on an overlap state between the iris area and the reflective area; A lighting control method comprising: [Appendix 14] On the computer, detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of at least the eye of a target illuminated with illumination light from a lighting device; controlling the lighting device based on an overlap state between the iris area and the reflective area; A recording medium on which a computer program for executing a lighting control method including the steps of: [Appendix 15] a right illumination device that emits right illumination light capable of illuminating at least the right eye of the subject; a left lighting device that emits left lighting light capable of illuminating at least the left eye of the subject; an imaging device that images the right eye illuminated by the right illumination light and the left eye illuminated by the left illumination light; Equipped with the right illumination device is disposed on the left side of the imaging device when facing the imaging device, the left illumination device is disposed on the right side of the imaging device as viewed from the front, When the imaging device captures the right eye and the left eye, the optical axis of the right lighting device and the optical axis of the left lighting device intersect between the imaging device and the target. Imaging system. [Appendix 16] the imaging device captures an image of the right eye under a first lighting environment in which the right lighting device emits the right illumination light while the left lighting device does not emit the left illumination light; The imaging device captures an image of the left eye under a second lighting environment in which the left lighting device emits the left lighting light while the right lighting device does not emit the right lighting light. 16. The imaging system of claim 15. [Appendix 17] The subject is authenticated based on information about the iris of the right eye captured in a first eye image generated by the imaging device capturing an image of the right eye under the first lighting environment, and information about the iris of the left eye captured in a second eye image generated by the imaging device capturing an image of the left eye under the second lighting environment. 17. The imaging system of claim 16. [Appendix 18] the imaging device captures images of both the right eye and the left eye under a third lighting environment in which the right lighting device emits the right lighting light and the left lighting device emits the left lighting light; The imaging device (i) images the right eye under the first lighting environment and the left eye under the second lighting environment when the quality of the iris of the right eye and the iris of the left eye captured in a third eye image generated by the imaging device capturing images of both the right eye and the left eye under the third lighting environment does not satisfy a desired condition, and (ii) does not image the right eye under the first lighting environment and does not image the left eye under the second lighting environment when the quality satisfies the desired condition. 18. The imaging system according to claim 16 or 17. [Appendix 19] The right illumination device and the left illumination device emit the right illumination light and the left illumination light, respectively, so that the brightness of the iris of the right eye in a first eye image generated by the imaging device capturing an image of the right eye under the first illumination environment, the brightness of the iris of the left eye in a second eye image generated by the imaging device capturing an image of the left eye under the second illumination environment, and the brightness of the iris of the right eye and the left eye in a third eye image generated by the imaging device capturing an image of both the right eye and the left eye under a third illumination environment in which the right illumination device emits the right illumination light and the left illumination device emits the left illumination light are the same. 19. An imaging system according to any one of claims 16 to 18.

[0158] At least some of the constituent elements of each of the above-described embodiments can be appropriately combined with at least some of the other constituent elements of each of the above-described embodiments. Some of the constituent elements of each of the above-described embodiments may not be used. Furthermore, to the extent permitted by law, the disclosures of all documents (e.g., published patent applications) cited in this disclosure are incorporated by reference as part of the description of this disclosure.

[0159] This disclosure may be modified as appropriate within the scope of the claims and the technical idea that can be read from the entire specification. The lighting control device, lighting control method, recording medium, and imaging system that incorporate such modifications are also included in the technical idea of ​​this disclosure. [Explanation of symbols]

[0160] 1000 Lighting control device 1001 Detector 1002 Lighting control unit 1003 Lighting equipment 1004 Eye Images 2000 Imaging System 2001 Right lighting device 2002 Left lighting device 2003 Imaging device 2004 Right Light 2005 Left lighting 2006, 2007 Optical axis SYSa, SYSb, SYSc, SYSd, SYSe, SYSf, SYSg, and SYSh authentication systems 1. Imaging device 2. Lighting equipment 2fR Right lighting device 2fL left lighting device 21 Light-emitting element 3, 3b, 3c, 3d, 3f, 3g, 3h authentication device 311 Image Analysis Unit 312, 312b, 312c, 312d, 312f, 312g, 312h Lighting control unit 313, 313c, 313f Iris Recognition Unit IMG_E, IMG_ER, IMG_EL, IMG_EB Eye images IL, ILR, ILL lighting AXR, AXL optical axis IA, IAR, IAL (Iridescent Domain) RA Reflection Field

Claims

1. a detection means for detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of the eye of a target illuminated with illumination light from a lighting device; an illumination control means for controlling the illumination device based on an overlap state between the iris region and the reflection region, which predicts a movement of the eye, determines the first and second illumination conditions based on the predicted movement so that a position of the reflection region relative to the iris region in a first eye image generated by capturing an image of the eye illuminated with the illumination light based on a first illumination condition differs from a position of the reflection region relative to the iris region in a second eye image generated by capturing an image of the eye illuminated with the illumination light based on a second illumination condition different from the first illumination condition, and controls the illumination device to illuminate the eye with the illumination light based on the first illumination condition and then illuminate the eye with the illumination light based on the second illumination condition; an output means for outputting information to the object prompting the object to move relative to the lighting device based on the overlapping state; A lighting control device comprising:

2. the illumination device includes a plurality of light emitting units each capable of emitting the illumination light, The illumination control means determines, based on the overlap state, illumination conditions including at least one of the number of the light emitting units that emit the illumination light, the positions of the light emitting units that emit the illumination light, the angles at which the light emitting units emit the illumination light, and the intensity of the illumination light emitted by the light emitting units, and controls the illumination device based on the determined illumination conditions. The lighting control device according to claim 1 .

3. The illumination control means controls the illumination device so as to reduce an area of ​​an overlapping region where the iris region and the reflective region overlap. The lighting control device according to claim 1 or 2.

4. The illumination control means controls the illumination device so that the reflective areas are distributed in a specific distribution pattern. The lighting control device according to any one of claims 1 to 3.

5. The lighting control means controls the lighting device so that the reflective area blinks at specific time intervals. The lighting control device according to any one of claims 1 to 4.

6. the illumination device includes a plurality of light emitting units each capable of emitting the illumination light, The illumination control means determines intensity conditions including at least one of the number and positions of the light emitting units that emit the illumination light based on at least one of the position, appearance, and moving speed of the object, and controls the illumination device based on the determined intensity conditions. The lighting control device according to any one of claims 1 to 5.

7. detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of at least the eye of a target illuminated with illumination light from a lighting device; controlling the lighting device based on an overlap state between the iris region and the reflection region, predicting a movement of the eye, determining the first and second lighting conditions based on the predicted movement so that a position of the reflection region relative to the iris region in a first eye image generated by capturing an image of the eye illuminated with the illumination light based on a first lighting condition differs from a position of the reflection region relative to the iris region in a second eye image generated by capturing an image of the eye illuminated with the illumination light based on a second lighting condition different from the first lighting condition, and controlling the lighting device to illuminate the eye with the illumination light based on the first lighting condition and then illuminate the eye with the illumination light based on the second lighting condition; outputting information to the object to prompt the object to move relative to the lighting device based on the overlapping state; A lighting control method comprising:

8. On the computer, detecting an iris region corresponding to the iris of the eye and a reflection region corresponding to a reflected image of the illumination light in an eye image generated by capturing an image of at least the eye of a target illuminated with illumination light from a lighting device; controlling the lighting device based on an overlap state between the iris region and the reflection region, predicting a movement of the eye, determining the first and second lighting conditions based on the predicted movement so that a position of the reflection region relative to the iris region in a first eye image generated by capturing an image of the eye illuminated with the illumination light based on a first lighting condition differs from a position of the reflection region relative to the iris region in a second eye image generated by capturing an image of the eye illuminated with the illumination light based on a second lighting condition different from the first lighting condition, and controlling the lighting device to illuminate the eye with the illumination light based on the first lighting condition and then illuminate the eye with the illumination light based on the second lighting condition; outputting information to the object to prompt the object to move relative to the lighting device based on the overlapping state; A computer program for causing execution of a lighting control method including:

9. a right illumination device that emits right illumination light capable of illuminating at least the right eye of the subject; a left lighting device that emits left lighting light capable of illuminating at least the left eye of the subject; an imaging device that images the right eye illuminated by the right illumination light and the left eye illuminated by the left illumination light; Equipped with the right illumination device is disposed on the left side of the imaging device when facing the imaging device, the left illumination device is disposed on the right side of the imaging device as viewed from the front, an optical axis of the right lighting device and an optical axis of the left lighting device intersect between the imaging device and the target at a timing when the imaging device captures an image of the right eye and the left eye; the imaging device captures an image of the right eye under a first lighting environment in which the right lighting device emits the right illumination light while the left lighting device does not emit the left illumination light; the imaging device captures an image of the left eye under a second lighting environment in which the left lighting device emits the left illumination light while the right lighting device does not emit the right illumination light; the imaging device captures images of both the right eye and the left eye under a third lighting environment in which the right lighting device emits the right lighting light and the left lighting device emits the left lighting light; The imaging device (i) images the right eye under the first lighting environment and the left eye under the second lighting environment when the quality of the iris of the right eye and the iris of the left eye captured in a third eye image generated by the imaging device capturing images of both the right eye and the left eye under the third lighting environment does not satisfy a desired condition, and (ii) does not image the right eye under the first lighting environment and does not image the left eye under the second lighting environment when the quality satisfies the desired condition. Imaging system.

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