1. Field of the Invention
The present invention relates to an endoscope system that is equipped with a first image acquisition portion including a first optical system configured to acquire a first image from the front of an insertion portion, and a second image acquisition portion including a second optical system configured to acquire a second image from a radial direction of the insertion portion.
2. Description of the Related Art
Endoscopes are being widely utilized in a medical field and an industrial field in recent years. An endoscope can be used to observe the inside of a subject by inserting an elongated insertion portion into the subject.
Well-known types of endoscopes include a front-view type endoscope in which an observation lens and an illumination lens are provided in a distal end face of a distal end portion that is provided on a distal end side in the longitudinal axis direction (hereunder, referred to simply as “distal end side”) of an insertion portion, and a side-view type endoscope in which an observation lens and an illumination lens are provided at a portion of an outer circumferential face of a distal end portion of an insertion portion.
Furthermore, recently, as disclosed in Japanese Patent Application Laid-Open Publication No. 9-294709, an endoscope system is also known which, in order to widen an observation range inside a subject, includes an endoscope that can simultaneously observe not only a field of view in front of a distal end face of a distal end portion in a first region along a longitudinal axis direction of an insertion portion, but can also observe, in a second region in a radial direction of the distal end portion which is a direction that intersects with the first region, a lateral field of view that is located laterally along an outer circumferential face of the distal end portion.
In the endoscope system according to Japanese Patent Application Laid-Open Publication No. 9-294709, a configuration is disclosed that includes, at the distal end portion of the insertion portion of the endoscope, a front image acquisition portion configured to acquire a front object image, a lateral image acquisition portion configured to acquire a lateral object image, a single image pickup portion having a light-receiving surface on which a front object image is formed and on which a lateral object image is also formed through a prism constituting part of the lateral image acquisition portion, as well as a display portion on which a screen on which a front object image is displayed in a planar manner and a screen on which a lateral object image is displayed in a planar manner are adjacently displayed.
An endoscope system according to one aspect of the present invention includes: an insertion portion configured to be inserted into a subject; a first image acquisition portion that is provided in the insertion portion and that includes a first optical system configured to acquire a first image from in front of the insertion portion along a longitudinal axis direction of the insertion portion; second image acquisition portions provided in the insertion portion, each of which includes a second optical system which has a magnification that is greater than a magnification of the first optical system, the second image acquisition portions being configured to acquire second images from a radial direction of the insertion portion which is a direction that intersects with the longitudinal axis direction of the insertion portion; and an image generation portion configured to, when displaying the first image and the second images on a display portion in a manner in which the second images are caused to be adjacent to both sides of the first image, generate an image signal that expresses perspective by performing image processing that makes a magnification of the second image higher than a magnification of the first image so that an image height of a region toward a side that is away from the first image in the second image gradually increases relative to a region that is adjacent to the first image in the second image.
Embodiments of the present invention are described hereunder with reference to the accompanying drawings. Note that the drawings are schematic ones in which the relationship between the thickness and width of each member, the thickness ratios of the members and the like are different from those of actual members. Naturally, the drawings include portions in which the dimensional relationships and ratios are different from one another.
As illustrated in
A principal part of the endoscope 2 is configured to include an insertion portion 4 configured to be inserted into a subject, an operation portion 3 that is connected to a proximal end in a longitudinal axis direction N (hereunder, referred to simply as “proximal end”) of the insertion portion 4, a universal cord 5 that is extended from the operation portion 3, and a connector 32 provided at an extending end of the universal cord 5.
The peripheral devices 100 include a keyboard 31, a light source apparatus 33, a video processor 34, a connection cable 35 that electrically connects the connector 32 and the video processor 34, and a monitor 36 as a display portion which are placed on a rack 30.
The endoscope 2 and the peripheral devices 100 having the configurations described above are connected to each other by, for example, the connector 32 that is connected to the light source apparatus 33 of the peripheral devices 100.
A bending operation knob 9 is provided in the operation portion 3 of the endoscope 2. The insertion portion 4 of the endoscope 2 includes a distal end portion 6 that is located on the distal end side of the insertion portion 4, a bending portion 7 that is connected to a proximal end of the distal end portion 6, and a flexible tube portion 8 that is connected to a proximal end of the bending portion 7.
The bending portion 7 is a component that is operated to bend in, for example, the four directions of upward, downward, left and right by the bending operation knob 9 provided in the operation portion 3.
Next, the configuration of the distal end portion 6 will be described using
Further,
As illustrated in
Two light emitting devices 21a and 21b are provided in the distal end face 6s. The two light emitting devices 21a and 21b supply illuminating light to an area in front of the distal end face 6s, and are covered by illumination lenses 41a and 41b, respectively, on the surface thereof. Note that the number of first light emitting devices 21a and 21b is not limited to two. Further, illuminating light may be supplied to the illumination lenses 41a and 41b through a light guide from the light source apparatus 33.
A fluid supply nozzle 51 configured to supply a fluid to the front observation lens 11a of the first image acquisition portion 11 and the illumination lenses 41a and 41b is also provided on the distal end face 6s.
In addition, circumferential observation lenses 12a and 13a (the lens 13a is not illustrated in the drawing) of second image acquisition portions 12 and 13, respectively, that are configured to acquire, from a second region including a region which is different from the first region and which includes a radial direction K of the insertion portion 4 that is a direction that intersects with the longitudinal axis direction N, second object images B and C as second images that are located in the second region are provided at intervals of substantially equal angles, for example, an interval of 180°, along a circumferential direction R of the insertion portion in an outer circumferential face 6g of the distal end portion 6.
Note that the number of circumferential observation lenses is not limited to two, and three or more circumferential observation lenses may be provided in the outer circumferential face 6g at substantially equal angles along the circumferential direction R. That is, the number of second image acquisition portions is not limited to two.
Note that the second image acquisition portions 12 and 13 constitute lateral image acquisition portions configured to acquire second object images B and C of the second region. Further, a part of the first region which the first image acquisition portion 11 observes and a part of the second region which the second image acquisition portions 12 and 13 observe may or may not overlap with each other.
As illustrated in
In addition, as illustrated in
Note that the number of the light emitting devices is not limited to two. Further, illuminating light may be supplied to the illumination lenses 43a and 43b through a light guide from the light source apparatus 33.
A fluid supply nozzle 52 configured to supply fluid to the circumferential observation lens 12a of the second image acquisition portion 12 and the illumination lenses 42a and 42b, and an unshown fluid supply nozzle configured to supply fluid to the circumferential observation lens 13a of the second image acquisition portion 13 and the illumination lenses 43a and 43b are also provided on the outer circumferential face 6g.
Furthermore, as illustrated in
In addition, a second image pickup portion 80b such as a CCD that is electrically connected to the image generation portion 34a, which is described later, is provided inside the distal end portion 6. The second image pickup portion 80b is disposed at an image formation position of the second image acquisition portion 12 so that a second object image B acquired by the second image acquisition portion 12 is formed on a light-receiving surface 80bj and subjected to photoelectric conversion.
Furthermore, a second image pickup portion 80c such as a CCD that is electrically connected to the image generation portion 34a, which is described later, is provided inside the distal end portion 6. The second image pickup portion 80c is disposed at an image formation position of the second image acquisition portion 13 so that a second object image C acquired by the second image acquisition portion 13 is formed on a light-receiving surface 80cj and subjected to photoelectric conversion. The second image pickup portion 80c is a component that is identical to the second image pickup portion 80b.
Further, the second image acquisition portions 12 and 13 are constituted by optical systems which have a larger magnification than an optical system of the first image acquisition portion 11 so that when the second object images B and C are formed on the light-receiving surfaces 80bj and 80cj, respectively, by the second image acquisition portions 12 and 13, as illustrated in
Specifically, the magnification is made to differ between the first image acquisition portion 11 and the second image acquisition portions 12 and 13 by varying the light condensing characteristics, number, and sizes of lenses.
Conversely, the first image acquisition portion 11 is constituted by an optical system which has a smaller magnification than the optical systems of the second image acquisition portions 12 and 13 so that when the first object image A is formed on the light-receiving surface 80aj by the first image acquisition portion 11, as illustrated in
As illustrated in
The image generation portion 34a is configured to perform image processing on the first object image A acquired by the first image pickup portion 80a and the second object images B and C acquired by the second image pickup portions 80b and 80c to generate image signals, and to output the image signals to the image output portion 34b.
The image output portion 34b is configured to generate signals for displaying images on the monitor 36 based on the image signals generated by the image generation portion 34a.
Further, as illustrated in
In this case, as described above, because the second image acquisition portions 12 and 13 are constituted by optical systems which have a larger magnification than the optical system of the first image acquisition portion 11, as illustrated by dashed lines in
By this means, even when the first object image A and second object images B and C are displayed in a planar manner on the respective screens 36a to 36c, it is easy for an operator who is observing the monitor 36 to get a sense of perspective within the subject by the second object images B and C that are lateral images being displayed in a larger size than the first object image A that is a front image.
Note that, to make it easier for the operator to get a greater sense of perspective, when generating image signals the image generation portion 34a may perform image processing on the first object image A so that, as illustrated by chain double-dashed lines in
In addition, the image generation portion 34a may perform image processing so that a display magnification at which areas in the second object images B and C that are adjacent to the first object image A are displayed is the same as a display magnification at which the first object image A is displayed.
Further, in conjunction with the image processing, the image generation portion 34a may perform processing that reduces an unnatural feeling by performing boundary processing that smoothly connects sections at which the first object image and the second object images are adjoining or the like.
Thus, in the present embodiment, on the monitor 36, the second object images B and C that are lateral images of the object that are displayed on the screens 36b and 36c are displayed in a larger size than the first object image A that is a front image of the object that is displayed on the screen 36a.
It is also described above that the image generation portion 34a may perform image processing with respect to the second object images B and C that are displayed on the screens 36b and 36c so that the display magnification at which the regions BF and CF that are away from the first object image A are displayed is higher than a display magnification at which the regions BN and CN that are adjacent to the first object image A are displayed.
Thus, because the display magnification at which the second object images B and C are displayed is larger than the display magnification at which the first object image is displayed, it is easier than heretofore for an operator who observes the first object image A and the second object images B and C which are displayed in a planar manner on the screens 36a to 36c of the monitor 36 to get a sense of perspective within the subject.
Further, by forming the second image acquisition portions 12 and 13 by using optical systems which have a larger magnification than the optical system of the first image acquisition portion 11 and performing image processing to make a display magnification at which regions of the second object images B and C that are away from the first object image A are displayed larger than a display magnification at which regions where the second object images B and C and the first object image A are adjacent are displayed, when displaying the first object image A and the second object images B and C on the monitor 36, the regions of the second object images B and C that are away from the first object image A are displayed with a larger display magnification than the display magnification for the regions at which the second object images B and C and the first object image A are adjacent.
Further, by displaying the first object image A on the screen 36a so that the magnification thereof increases in stages (gradually) from the center of the screen 36a towards the respective screens 36b and 36c, and also displaying the second object images B and C on the screens 36b and 36c so that the magnification increases in stages (gradually) from the regions BN and CN toward the regions BF and CF, respectively, it is not only easier for the operator to get a sense of perspective, but the operator can also obtain a sensation as though the operator is actually looking inside a lumen from a two-dimensional video, and therefore the observability improves, and consequently the operability of the endoscope 2 is also enhanced.
In addition, because the second object images B and C that are displayed on the screens 36b and 36c are clearly displayed without any distortion, the observability of the lateral field of view also improves, and consequently the operability of the endoscope 2 is also enhanced.
As described above, the endoscope system 1 can be provided that has a configuration that facilitates observation of object images from multiple field of view directions even when the object images are displayed in a planarly adjacent manner on the monitor 36, and that improves operability.
Hereunder, a modification is described using
As illustrated in
Such an index may also be displayed so as to extend outward at the circumference of the second object images B and C, or an index that extends as far as portions at which the second object images B and C are disposed may be displayed so as to overlap with the second object images B and C. A configuration may also be adopted in which an index is provided only in the second object images B and C or at the circumference of the second object images B and C.
According to this configuration, because the sense of perspective achieved in the first object image A is further strengthened, the observability and operability of the operator improves further. Note that the other effects are the same as in the present embodiment that is described above.
Hereunder, another modification is described using
Further,
In the foregoing present embodiment, it is described that the first image pickup portion 80a configured to acquire the first object image A and the image pickup portions 80b and 80c configured to acquire the second object images B are provided separately inside the distal end portion 6.
Further, it is described that, on the monitor 36, the screen 36a on which the first object image A is displayed and the screens 36b and 36c on which the second object image B is displayed are separate to each other.
Regardless of the foregoing description, the first object image A and the second object image B may be acquired by the same image pickup portion, and may also be displayed within the same screen. Hereunder, this configuration is described using
As illustrated in
Further, as illustrated in
In the observation optical system 115, a first image acquisition portion 111 is provided that is configured to acquire, from a first region that includes a region which is substantially parallel to the longitudinal axis direction N and which is more forward than the distal end face 6s, a first object image D (see
Note that the first image acquisition portion 111 constitutes a front image acquisition portion that is configured to acquire the first object image D of the first region.
Further, as illustrated in
Note that, as illustrated in
Note that the second image acquisition portion 112 constitutes a lateral image acquisition portion that is configured to acquire the second object image E of the second region.
Further, the circumferential observation lens 112a constituting the second image acquisition portion 112 also serves as the first image acquisition portion 111.
Further, on the outer circumferential face 110g of the cylindrical portion 110, two illumination lenses 122a and 122b are provided at rearward positions relative to the circumferential observation lens 112a. The illumination lenses 122a and 122b are configured to supply an illuminating light that is transmitted through a light guide 172 from the light source apparatus 33, in the radial direction K. Note that the number of illumination lenses 122 is not limited to two.
Further, as illustrated in
In a distal end face 118s of the support portion 118, an illumination lens 121 is provided that is configured to supply an illuminating light transmitted through a light guide 171 from the light source apparatus 33 to an area in front of the distal end face 118s. Further, on the distal end face 118s, a fluid supply nozzle 151 is provided that is configured to supply a fluid toward the front observation lens 111a and the illumination lens 121.
A fluid supply nozzle 152 configured to supply a fluid toward the circumferential observation lens 112a is also provided on an outer circumferential face 118g of the support portion 118.
In addition, a distal end of a treatment instrument insertion channel 117 opens to the distal end face 6s of the distal end portion 6. Further, an illumination lens 123 that is configured to supply, to an area in front of the distal end face 6s, an illuminating light that is transmitted through a light guide 173 from the light source apparatus 33 is provided in the distal end face 6s.
In the cylindrical portion 110, as illustrated in
Further, as illustrated in
As illustrated in
Note that, since a configuration for forming the first object image D at the image pickup portion 180 through the first image acquisition portion 111 and a configuration for forming the second object image E at the image pickup portion 180 through the second image acquisition portion 112 are well-known, a detailed description thereof is omitted here.
Further, similarly to the present embodiment described above, the image pickup portion 180 is electrically connected to the image generation portion 34a.
The image generation portion 34a is configured to subject the first object image D and the second object image E that are acquired by the image pickup portion 180 to image processing to generate image signals, and to output the image signals to the image output portion 34b.
The image output portion 34b is configured to generate signals for displaying images on the monitor 36 based on the image signals generated by the image generation portion 34a.
Further, as illustrated in
In this case, because, as described above, the observation optical system 115 is configured so that a display magnification at which the second object image E obtained by the second image acquisition portion 112 is displayed is larger than a display magnification at which the first object image D obtained by the first image acquisition portion 111 is displayed, as illustrated by dashed lines in
By this means, even when the first object image D and the second object image E are displayed in a planar manner on the same screen 36d, it is easy for an operator who is observing the monitor 36 to get a sense of perspective as a result of the second object image E that is a lateral image being displayed in a larger size than the first object image D that is a front image.
Note that, to make it easy for the operator to get a greater sense of perspective, when generating image signals, the image generation portion 34a may perform image processing on the first object image D so that, as illustrated by chain double-dashed lines in
In addition, the image generation portion 34a may perform image processing so that a display magnification at which an area in the second object image E that is adjacent to the first object image D is displayed is the same as a display magnification at which the first object image D is displayed. Note that the remaining configuration is the same as in the present embodiment that is described above.
It has been described that in this configuration which acquires the first object image D and the second object image E by means of the single image pickup portion 180 and displays the first object image D and the second object image E on the same screen 36d on the monitor 36 also, the second object image E that is a lateral image of an object is displayed on the screen 36d on the monitor 36 in a larger size than the size at which the first object image D that is a front image of the object is displayed.
Further, it has been described that the image generation portion 34a performs image processing so that, in the second object image E that is displayed on the screen 36d, the display magnification at which the region EF which is away from the first object image D is displayed is larger than the display magnification at which the region EN which is adjacent to the first object image D is displayed.
Therefore, similarly to the present embodiment that is described above, by making the display magnification at which the second object image E is displayed larger than the display magnification at which the first object image D is displayed, it is easier than heretofore for an operator who observes the first object image D and the second object image E which are displayed in a planar manner on the screen 36d of the monitor 36 to get a sense of perspective within the subject.
Further, similarly to the present embodiment, by displaying the first object image D on the screen 36d so that the magnification thereof increases in stages (gradually) from the center of the screen 36d toward the outer circumference thereof, and also displaying the second object image E on the screen 36d so that the magnification increases in stages (gradually) from the region EN toward the region EF, it is not only easier for the operator to get a sense of perspective, but the operator can also obtain a sensation as though the operator is actually looking inside a lumen from a two-dimensional video, and therefore the observability improves, and consequently the operability of the endoscope 2 is also enhanced. Hence, similar effects as in the present embodiment that is described above can be obtained.
Further, by forming the second image acquisition portion 112 by means of an optical system which has a larger magnification than the optical system of the first image acquisition portion 111 and performing image processing to make a display magnification at which a region of the second object image E that is a region which is away from the first object image D is displayed larger than a display magnification at which regions where the second object image E and the first object image D are adjacent are displayed, when displaying the first object image D and the second object image E on the monitor 36, the region of the second object image E that is away from the first object image D is displayed with a larger display magnification than the display magnification for the regions at which the second object image E and the first object image D are adjacent.
The configuration of the endoscope system of the second embodiment differs from the configuration of the endoscope system of the first embodiment as illustrated in
Hence, only the aforementioned difference between the first embodiment and the present embodiment will be described, and components that are the same as components of the first embodiment are denoted by the same reference characters and a description of such components will not be repeated.
In the foregoing first embodiment it is described that the second image acquisition portions 12 and 13 are constituted by optical systems with respect to which a magnification is larger than a magnification of the optical system of the first image acquisition portion 11 so that, when forming the second object images B and C on the light-receiving surfaces 80bj and 80cj, respectively, as illustrated in
Regardless of the foregoing description, in the present embodiment the light condensing characteristics, number and sizes of lenses constituting the first image acquisition portion 11 and of lenses constituting the second image acquisition portions 12 and 13 are made the same, and as illustrated in
According to this configuration, as illustrated in
Further, as illustrated in
In addition, similarly to the first embodiment that is described above, when generating image signals the image generation portion 34a may perform image processing on the first object image A so that a display magnification at which the first object image A is displayed increases in stages (gradually) from the center of the screen 36a toward the outer circumferential side of the screen 36a, or may perform image processing on the second object images B and C so that a display magnification at which regions BF and CF of the second object images B and C which are regions that are away from the first object image A are displayed is higher than a display magnification at which regions BN and CN of the second object images B and C which are regions that are adjacent to the first object image A are displayed. More specifically, the image generation portion 34a may perform image processing so that the magnification increases in stages (gradually) from the regions BN and CN toward the regions BF and CF, respectively.
In addition, the image generation portion 34a may perform image processing so that a display magnification at which areas in the second object images B and C which are areas that are adjacent to the first object image A are displayed is the same as a display magnification at which the first object image A is displayed.
Further, in conjunction with the image processing, the image generation portion 34a may perform processing that reduces an unnatural feeling by performing boundary processing that smoothly connects sections at which the first object image and the second object images are adjoining or the like.
Furthermore, as illustrated in
Note that, in the present embodiment also, by forming the second image acquisition portions 12 and 13 by means of an optical system which has a larger magnification than the optical system of the first image acquisition portion 11 and performing image processing to make a display magnification at which regions of the second object images B and C that are away from the first object image A are displayed larger than a display magnification at which regions where the second object images B and C and the first object image A are adjacent are displayed, when displaying the first object image A and the second object images B and C on the monitor 36, the regions of the second object images B and C that are away from the first object image A are displayed with a larger display magnification than the display magnification for the regions at which the second object images B and C and the first object image A are adjacent.
Hereunder, a modification is described using
As illustrated in
Hereunder, another modification is described using
As illustrated in
Specifically, the image generation portion 34a may generate image signals that cause a plurality of indexes 50 that each have a concentric frame shape to be superposed in a light color on the first object image A and the second object images B and C. Similar effects as the effects obtained by the indexes illustrated in
The configuration of the endoscope system of the third embodiment differs from the configuration of the endoscope system of the first embodiment that is illustrated in
Hence, only this difference from the first embodiment is described, and components that are the same as components of the first embodiment are denoted by the same reference characters and a description of such components will not be repeated.
As illustrated in
Specifically, the endoscope system of the third embodiment has a configuration in which, among the plurality of lenses constituting the first image acquisition portion 11, one lens is a moving lens 11z that is movable forward and rearward in the longitudinal axis direction N, and a display magnification at which the image height Z1 is displayed is switchable within a range of Zp to Zn according to the position of the moving lens 11z.
Note that, in this case, although not illustrated in the drawings, the second image acquisition portions 12 and 13 are constituted by optical systems such that the image height Z2 with respect to images picked up by second image pickup portions 40b and 40c becomes a height such that Zp Z2 Zn.
Hence, the moving lens 11z is capable of moving to a first movement position at which, similarly to the foregoing first and second embodiments, a display magnification at which the second object images B and C are displayed is higher than a display magnification at which the first object image A is displayed and, as the opposite of the first movement position, to a second movement position at which a display magnification at which the first object image A is displayed is higher than a display magnification at which the second object images B and C are displayed.
That is, in the present embodiment, not only does the image generation portion 34a generate an image signal so that the display magnification at which the second object images B and C are displayed is higher than the display magnification at which the first object image A is displayed, but also generates an image signal so that, as illustrated in
In other words, as illustrated in
Note that the remaining configuration is the same as in the first and second embodiments that are described above.
According to the above described configuration, on the one hand, similarly to the above described first and second embodiments, when it is desired to give the operator a sense of perspective such as when observing images when inserting the insertion portion 4 or while withdrawing the insertion portion 4, the second object images B and C are displayed on the screens 36b and 36c in a larger size than the size at which the first object image A is displayed on the screen 36a.
Note that, at such time, similarly to the first embodiment that is described above, when generating image signals the image generation portion 34a may perform image processing on the first object image A so that a display magnification at which the first object image A is displayed increases in stages (gradually) from the center of the screen 36a toward the outer circumferential side of the screen 36a, or may perform image processing on the second object images B and C so that a display magnification at which regions BF and CF of the second object images B and C which are regions that are away from the first object image A are displayed becomes higher than a display magnification at which regions BN and CN of the second object images B and C which are regions that are adjacent to the first object image A are displayed. More specifically, the image generation portion 34a may perform image processing so that the magnification increases in stages (gradually) from the regions BN and CN toward the regions BF and CF, respectively.
In addition, the image generation portion 34a may perform image processing so that a display magnification at which areas in the second object images B and C which are areas that are adjacent to the first object image A are displayed becomes the same as a display magnification at which the first object image A is displayed.
Further, in conjunction with the image processing, the image generation portion 34a may perform processing that reduces an unnatural feeling by performing boundary processing that smoothly connects sections at which the first object image and the second object images are adjoining or the like.
On the other hand, when a region of interest is found in the first region, as illustrated in
Hence, because switching between a case of generating a sense of perspective and a case of enlarging a region of interest can be easily performed by moving the moving lens 11z to either one of the first movement position and the second movement position, the operability and observability of the endoscope 2 improves.
Note that the other effects are the same as in the foregoing first and second embodiments. Further, in the present embodiment also, by forming the second image acquisition portions 12 and 13 by means of an optical system which has a larger magnification than the optical system of the first image acquisition portion 11 and performing image processing to make a display magnification at which regions of the second object images B and C that are away from the first object image A are displayed larger than a display magnification at which regions where the second object images B and C and the first object image A are adjacent are displayed, when displaying the first object image A and the second object images B and C on the monitor 36, the regions of the second object images B and C which are away from the first object image A are displayed at a larger display magnification than the display magnification for the regions at which the second object images B and C and the first object image A are adjacent.
Hereunder, a further modification is described using
As illustrated in
Specifically, as illustrated in
In this case also, the observation optical system 115 is configured so that the display magnification at which the image height Z1 is displayed at the image pickup portion 180 is switchable within the range of Zp to Zn by moving the moving lens 111bz and, although not illustrated in the drawings, the second image acquisition portion 112 is configured so that the image height Z2 at the image pickup portion 180 is a height such that Zp<Z2<Zn.
Hence, the moving lens 111bz is capable of moving to a first movement position at which, similarly to the above described present embodiment, a display magnification at which the second object image E is displayed is higher than a display magnification at which the first object image D is displayed and, as the opposite of the first movement position, to a second movement position at which a display magnification at which the first object image D is displayed is higher than a display magnification at which the second object image E is displayed.
That is, according to the present configuration also, not only does the image generation portion 34a generate an image signal so that the display magnification at which the second object image E is displayed is higher than the display magnification at which the first object image D is displayed, but also generates an image signal so that, as illustrated in
In other words, as illustrated in
According to the above described configuration, on the one hand, similarly to the present embodiment that is described above, when it is desired to give the operator a sense of perspective such as when observing images when inserting the insertion portion 4 or while withdrawing the insertion portion 4, the second object image E is displayed on the screen 36d in a larger size than the first object image D is displayed thereon.
Note that, in the present modification also, when generating image signals the image generation portion 34a may perform image processing on the first object image D so that a display magnification at which the first object image D is displayed increases in stages (gradually) from the center of the screen 36d toward the outer circumferential side thereof, or may perform image processing on the second object image E so that a display magnification at which a region EF of the second object image E that is a region which is away from the first object image D is displayed becomes higher than a display magnification at which a region EN of the second object image E that is a region which is adjacent to the first object image D is displayed. More specifically, the image generation portion 34a may perform image processing so that the magnification increases in stages (gradually) from the region EN toward the region EF.
In addition, the image generation portion 34a may perform image processing so that a display magnification at which an area in the second object image E that is adjacent to the first object image D is displayed becomes the same as a display magnification at which the first object image D is displayed.
Further, in conjunction with the image processing, the image generation portion 34a may perform processing that reduces an unnatural feeling by performing boundary processing that smoothly connects sections at which the first object image and the second object image are adjoining or the like.
On the other hand, when a region of interest is found in the first region, as illustrated in
Thus, according to the above described configuration also, similar effects as in the present embodiment that is described above can be obtained.
Note that, according to the present modification also, by forming the second image acquisition portion 112 by means of an optical system which has a larger magnification than the optical system of the first image acquisition portion 111 and performing image processing to make a display magnification at which a region of the second object image E that is a region which is away from the first object image D is displayed larger than a display magnification at which regions where the second object image E and the first object image D are adjacent are displayed, when displaying the first object image D and the second object image E on the monitor 36, the region of the second object image E that is a region which is away from the first object image D is displayed at a larger display magnification than the display magnification for the regions at which the second object image E and the first object image D are adjacent.
The configuration of the endoscope system of the fourth embodiment differs from the configuration of the endoscope system of the first embodiment as illustrated in
Hence, only the aforementioned difference will be described, and components that are the same as components of the first embodiment are denoted by the same reference characters and a description of such components will not be repeated.
As illustrated in
Note that, although not illustrated in the drawings, in the present embodiment the second image acquisition portions 12 and 13 are configured so that the second object images B and C are formed on the light-receiving surfaces 80bj and 80cj of the second image pickup portions 80b and 80c at an image height for which the magnification is the same as the magnification for the image height with respect to the peripheral parts of the first object image A.
According to such a configuration, as illustrated in
Hence, image processing by the image generation portion 34a is not required in order to display the first object image A on the screen 36a so that the magnification increases in stages (gradually) from the center of the screen 36a toward the respective screens 36b and 36c as in the first embodiment that is described above, and the increase in the magnification can be realized by utilizing only the optical characteristics of the first image acquisition portion 11, and therefore a sense of perspective can be emphasized more easily.
Further, in the present embodiment also, image processing may be performed with respect to the second object images B and C that are displayed on the screens 36b and 36c so that a display magnification at which regions BF and CF of the second object images B and C that are regions which are away from the first object image A are displayed is higher than a display magnification at which regions BN and CN of the second object images B and C that are adjacent to the first object image A are displayed. More specifically, the image generation portion 34a may perform image processing so as to increase the magnification in stages (gradually) from the regions BN and CN toward the regions BF and CF, respectively.
Further, in conjunction with the image processing, the image generation portion 34a may perform processing that reduces an unnatural feeling by performing boundary processing that smoothly connects sections at which the first object image and the second object images are adjoining or the like.
Note that the other effects are the same as in the above described first embodiment. Further, in the present embodiment also, by forming the second image acquisition portions 12 and 13 by means of an optical system which has a larger magnification than the optical system of the first image acquisition portion 11 and performing image processing to make a display magnification at which regions of the second object images B and C that are away from the first object image A are displayed larger than a display magnification at which regions where the second object images B and C and the first object image A are adjacent are displayed, when displaying the first object image A and the second object images B and C on the monitor 36, the regions of the second object images B and C that are away from the first object image A are displayed with a larger display magnification than the display magnification at which the regions at which the second object images B and C and the first object image A are adjacent are displayed.
Hereunder, a different modification is described using
As illustrated in
Specifically, the first image acquisition portion 111 is configured so that the first object image D is formed on the light-receiving surface 180j of the image pickup portion 180 in a manner such that the image height at a center part is low and the image height at a peripheral part is high, and the second image acquisition portion 112 is configured so that the second object image E is formed in a manner such that a display magnification at which a region EF of the second object image E that is a region which is away from the first object image D is displayed is higher than a display magnification at which a region EN of the second object image E that is a region which is adjacent to the first object image D is displayed. More specifically, the second image acquisition portion 112 is configured so that the second object image E is formed in a manner such that the magnification increases in stages (gradually) from the region EN toward the region EF.
More specifically, by setting the light condensing characteristics, sizes and number of lenses constituting the observation optical system 15, the second image acquisition portion 112 has optical characteristics so that the display magnification at which the region EF which is away from the first object image D is displayed is higher than the display magnification at which the region EN that is adjacent to the first object image D is displayed, and thus the height of an image that is formed on the light-receiving surface 180j is varied in stages (gradually). Note that the remaining configuration is the same as in the present embodiment that is described above.
According to this configuration, even in the case of a configuration which includes only one image pickup portion 180, as well as being able to obtain the effects of the present embodiment that are described above, in the configuration illustrated in
Further, in the present modification also, by forming the second image acquisition portion 112 by means of an optical system which has a larger magnification than the optical system of the first image acquisition portion 111 and performing image processing to make a display magnification at which a region of the second object image E that is a region which is away from the first object image D is displayed larger than a display magnification at which regions where the second object image E and the first object image D are adjacent are displayed, when displaying the first object image D and the second object image E on the monitor 36, the region of the second object image E that is away from the first object image D is displayed with a larger display magnification than the display magnification for the regions at which the second object image E and the first object image D are adjacent.
Note that although the foregoing first to fourth embodiments are described taking cases where one or a plurality of screens are displayed on the single monitor 36 as examples, it is needless to say that, regardless of the above descriptions, a configuration may also be adopted in which one object image is displayed on each of a plurality of monitors, respectively.
Hereunder, a modification is described using
As illustrated in
Number | Date | Country | Kind |
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2014-219675 | Oct 2014 | JP | national |
This application is a continuation application of PCT/JP2015/079182 filed on Oct. 15, 2015 and claims benefit of Japanese Application No. 2014-219675 filed in Japan on Oct. 28, 2014, the entire contents of which are incorporated herein by this reference.
Number | Date | Country | |
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Parent | PCT/JP2015/079182 | Oct 2015 | US |
Child | 15465765 | US |