1. Field of the Invention
The present invention relates to an endoscope apparatus having a function of performing a measurement using a phase-shifting method, and a measurement method through phase-shifting.
2. Description of Related Art
In industrial fields, medical fields, and the like, endoscope apparatuses are used to observe or check inside of a mechanical structure, inside of a patient's body, and the like. There are known endoscope apparatuses which have a function of performing a three-dimensional measurement of a subject using a phase-shifting method (for example, refer to United States Patent Application Publication No. 2009/0225320). The way of the measurement using the phase-shifting method is as follows. A line pattern having a predetermined period is projected on a subject, and an image of the subject is obtained. This procedure is repeated while shifting the phase of the line pattern projected on the subject by a predetermined amount, until the total amount of the phase shift corresponds to the predetermined period of the line pattern. Based on the obtained images, the three-dimensional measurement of the subject is performed using the principle of triangulation.
A conventional endoscope apparatus disclosed in United States Patent Application Publication No. 2009/0225320 includes an observation unit for observing a subject, a pattern projection unit for projecting line patterns on the subject, and a light source which is connected to the pattern projection unit. As shown in
An endoscope apparatus according to an aspect of the present invention is capable of performing measurement of a subject using a phase-shift method, and includes: a main body; an insertion portion connected to the main body; and a plurality of pattern projection units, each of the plurality of pattern projection units including: a pattern window which is provided in a distal end of the insertion portion; and a pattern portion which has a line pattern in which a plurality of lines are periodically disposed with a predetermined period, the lines being parallel to each other, in which: the pattern portions of the plurality of pattern projection units are disposed such that the lines of the line patterns of the pattern portions are parallel to each other, and the line patterns of the pattern portions are shifted from each other by 1/n of the predetermined period of the line pattern, where the number of the plurality of pattern projection units assumed to be n (n≧3); and the pattern windows of the plurality of pattern projection units are disposed such that all of the pattern windows have an overlapped portion in a direction perpendicular to the line of the pattern portion.
Hereinafter, embodiments of the invention will be described with reference to the drawings.
A first embodiment of the invention will be described with reference to
An observation unit 5 for observing a subject and a plurality (three in the present embodiment) of pattern projection units 6a, 6b, and 6c are provided in the endoscope 2 and the main body 3. The plurality of pattern projection units 6a, 6b, and 6c projects on the subject patterns for measurement using the phase-shifting method. A plurality (three in the present embodiment) of light devices 7a, 7b, and 7c is provided in the main body 3. Known illuminations such as halogen lamps and LEDs may be employed as the light devices 7a, 7b, and 7c.
The endoscope 2 has a long and thin insertion portion 20, and an operation portion 24 which performs an operation required in executing various kinds of operation controls of the entire apparatus. The insertion portion 20 includes a hard distal portion 21 which is formed of a cylindrical shape having a distal surface 21A, a bent portion 22 capable of being bent, for example, in the vertical and horizontal directions, and a flexible tube portion 23 with the flexibility, sequentially from the distal side. As shown in
A video signal processing circuit 54 (described later), a light switch portion 9 which switches the emission of light by controlling on-off of the plurality of light devices 7a, 7b, and 7c, and a CPU 10 which performs an operation control of these portions are provided in the control portion 8 of the main body 3.
The configuration of the observation portion 5 will be described.
A subject image is formed through the objective optical adaptor 52, and is photoelectrically converted into an image signal by the imaging device 53. The image signal is input from the imaging device 53 to the video signal processing circuit 54 through the signal cable 55, and is converted into a video signal (image data) in the video signal processing circuit 54. The subject image is displayed on the monitor 4 based on the video signal.
Next, the configuration of the pattern projection units 6a, 6b, and 6c will be described.
The emitting portion 62a is provided in the main body 3, and emits light to the outside via the pattern window 61a. In this embodiment, the emitting portion 62a is a light guide which connects the light device 7a and the pattern portion 63a.
The pattern portion 63a is provided in the insertion portion 20 between the pattern window 61a and the emitting portion 62a. A pattern of the pattern portion 63a is shown in
The coherent fiber 64a is provided in the insertion portion 20, and connects the pattern window 61a and the pattern portion 63a.
As shown in
The light devices 7a, 7b, and 7c and the light switch portion 9 will be described. The light device 7a is connected to the pattern projection unit 6a. Light from the light device 7a passes through the emitting portion 62a, the pattern portion 63a, the coherent fiber 64a and the pattern window 61a, and then is emitted to the outside. As a result, in the pattern portion 63a, the line pattern (first pattern) of the pattern portion 63a is formed on the light from the light device 7a. Similarly, the light device 7b is connected to the pattern projection unit 6b, and the line pattern (second pattern) of the pattern portion 63b is formed on the light from the light device 7b. The light device 7c is connected to the pattern projection unit 6c, and the line pattern (third pattern) of the pattern portion 63c is formed on the light from the light device 7c. The plurality of pattern projection units 6a, 6b, and 6c are arranged such that the line A-A connecting the centers of the emitting lights on the distal surface 21A (i.e., on the pattern windows 61a, 61b, and 61c) is parallel to the lines of the pattern portions 63a, 63b, and 63c. With this arrangement, the first, second, and third patterns projected on the subject via the pattern portions 63a, 63b, and 63c are shifted from each other by exactly a third of the predetermined period P. Therefore, it is possible to perform measurement using the phase-shifting method with accuracy.
As shown in
Next, the measurement procedure using the phase-shifting method by the endoscope apparatus 1 will be described.
First, in accordance with the control of the CPU 10, the light switch portion 9 turns on only one (for example, the light device 7a) of the plurality of the light devices, and turns off the other light devices (for example, the light devices 7b and 7c). As a result, since light is emitted only from the pattern projection unit 6a which is connected to the on-state light device 7a, the line pattern (the first pattern) of the pattern portion 63a is projected on the subject. Then, a first subject image, on which the line pattern of the pattern portion 63a is projected, is imaged (First step). Subsequently, the light switch portion 9 turns on only the light device 7b. As a result, the line pattern (the second pattern) of the pattern portion 63b is projected on the subject, and a second subject image, on which the line pattern of the pattern portion 63b is projected, is imaged (Second step). Subsequently, the light switch portion 9 turns on only the light device 7c. As a result, the line pattern (the third pattern) of the pattern portion 63c is projected on the subject, and a third subject image, on which the line pattern of the pattern portion 63c is projected, is imaged (Third step). With this procedure, it is possible to obtain three subject images (i.e., the first, second and third subject images) on which the line patterns which are shifted from each other by a third of the period P are projected. Based on the first, second and third images, a three-dimensional shape of the subject is measured using the principle of triangulation.
Here, at the time of a normal observation in which the subject is observed through the observation window 51 without using the phase-shifting method, the light switch portion 9 turns on all the light devices 7a, 7b, and 7c in accordance with the control of the CPU 10. As a result, since light is emitted from all the pattern projection units 6a, 6b, and 6c, it is possible to perform the normal observation of the subject in a state where light whose pattern almost disappears is projected on the subject.
In the endoscope apparatus 1 of the present embodiment, the light devices 7a, 7b, and 7c which are connected to the pattern projection units 6a, 6b, and 6c, respectively, are provided, and on-off of the light devices 7a, 7b, and 7c is controlled by the light switch portion 9. As a result, only by switching the emission of light with the light switch portion 9, it is possible to subsequently project on the subject the line patterns of the pattern portions 63a, 63b, and 63c of the pattern projection units 6a, 6b, and 6c to perform measurement using the phase-shifting method. Therefore, since there is no need to additionally provide a mechanism for moving a pattern projection unit or a light device, it is possible to reduce the size and the cost of the endoscope apparatus. In addition, since measurement using the phase-shifting method is performed only by controlling on-off of the light devices 7a, 7b, and 7c with the light switch portion 9, the endoscope apparatus 1 of the present embodiment is reliable even when it is used for a long time. In addition, since the positions of the pattern projection units 6a, 6b, and 6c and the light devices 7a, 7b, and 7c are fixed, the projection position of each of the line patterns of pattern portions 63a, 63b, and 63c on the subject is not misaligned. Therefore, it is possible to perform measurement using the phase-shifting method with accuracy. In addition, by turning on all the light devices 7a, 7b, and 7c such that light is emitted from all the pattern projection units 6a, 6b, and 6c, light whose pattern almost disappears is projected on the subject, and the normal observation of the subject can be performed under this light. Therefore, since there is no need to additionally provide an illumination unit for the normal observation, it is possible to further reduce the size of the endoscope apparatus.
A second embodiment of the invention will be described with reference to
As shown in
The emitting portion 62a is a light guide which connects the light device 7a and the pattern portion 63a.
Light from the light device 7a passes through the emitting portion 62a, and is emitted to the outside via the pattern portion 63a and the pattern window 61a which are provided in the distal portion 21.
According to the endoscope apparatus 100 of the present embodiment, similar to the endoscope apparatus 1 of the first embodiment, only by switching the emission of light with the light switch portion 9, it is possible to subsequently project on the subject the line patterns of the pattern portions 63a, 63b, and 63c of the pattern projection units 106a, 106b, and 106c to perform measurement using the phase-shifting method. Further, the pattern portions 63a, 63b and 63c are provided in the distal portion 21 of the insertion portion 20 and light from the pattern portions 63a, 63b and 63c are directly emitted to the outside via the pattern windows 61a, 61b and 61c, respectively. Therefore, since a coherent fiber which connects the pattern portion and the pattern window is unnecessary in the present embodiment, it is possible to further reduce the cost of the endoscope apparatus.
A third embodiment of the invention will be described with reference to
As shown in
Light from the light device 7a passes through the emitting portion 62a, and is emitted to the outside via the pattern portion 63a, the lens 265a, and the pattern window 61a. Since the lens 265a can change the focal length of light from the light device 7a to a value appropriate for imaging or observation of the subject, it is possible to perform the observation more clearly.
According to the endoscope apparatus 200 of the present embodiment, similar to the endoscope apparatuses 1 and 100 of the first and second embodiments, only by switching the emission of light with the light switch portion 9, it is possible to subsequently project on the subject the line patterns of the pattern portions 63a, 63b, and 63c of the pattern projection units 206a, 206b, and 206c to perform measurement using the phase-shifting method. In addition, with the lenses 265a, 265b, and 265c, it is possible to set the focal length of light emitted from the pattern portions 63a, 63b, and 63c to any value in accordance with the distance between the endoscope apparatus 200 and the subject. Therefore, it is possible to clear up the line patterns projected on the subject. Particularly, when the focal length of the lenses 265a, 265b, and 265c is set in accordance with the focal length of the objective optical system 52 of the observation unit 5, it is possible to perform the observation more clearly.
Next, a fourth embodiment of the invention will be described with reference to
As shown in
The emitting portion 362a made of the emission member is provided in the distal portion 21 of the insertion portion 20 immediately behind the pattern portion 363a. The emitting portions 362a, 362b, and 362c are connected to power sources 391a, 391b , and 391c of a light switch portion 309 via power cables 371a, 371b, and 371c, respectively. The light switch portion 309 independently controls on-off of the power source 391a, 391b, and 391c in accordance with the control of the CPU 10. Thereby, the light switch portion 309 switches the emission of light between the emitting portions 362a, 362b, and 362c.
In the endoscope apparatus 300 of the present embodiment, the emitting portions 362a, 362b, and 362c as emission members are provided in the pattern projection units 306a, 306b, and 306c, respectively, and the light switch portion 309 controls on-off of the emitting portions 362a, 362b, and 362c. As a result, only by switching the emission of light with the light switch portion 309, it is possible to subsequently project on the subject the line patterns of the pattern portions 363a, 363b, and 363c of the pattern projection units 306a, 306b, and 306c to perform measurement using the phase-shifting method. In addition, since the LEDs (emission members) are used as the emitting portions 362a, 362b, and 362c, there is no need to provide a light device in the main body 3. Accordingly, it is possible to further reduce the size of the endoscope apparatus.
Note that as a modification shown in
According to an endoscope apparatus 400 of this modification, with the lenses 465a, 465b, and 465c, it is possible to set the focal length of light emitted from the pattern portions 363a, 363b, and 363c to any value in accordance with the distance between the endoscope apparatus 400 and the subject. Therefore, it is possible to clear up the line patterns projected on the subject. Further, when the focal length of the lenses 465a, 465b, and 465c is set in accordance with the focal length of the objective optical system 52 of the observation unit 5, it is possible to perform the observation more clearly.
While preferred embodiments of the invention have been described and illustrated above, it should be understood that these are exemplary of the invention and are not to be considered as limiting. Additions, omissions, substitutions, and other modifications can be made without departing from the scope of the present invention. Accordingly, the invention is not to be considered as being limited by the foregoing description, and is only limited by the scope of the appended claims.
For example, in the above-described embodiments, the normal observation is performed by emitting light from all the pattern projection units. However, a unit for illuminating the subject at the time of the normal observation may be additionally provided.
Specifically, as a modification of the first embodiment shown in
Further, as a modification of the fourth embodiment shown in
Further, in the above-described embodiments, the emission of light is switched by the light switch portion controlling on-off of the light devices. However, the present invention is not limited to this. For example, as another modification of the first embodiment shown in
Further, in the above-described embodiments, endoscope apparatuses having three pattern projection units are described. However, the number of the pattern projection units is not limited to three, and it may be a counting number equal to or more than three. When it is assumed that the number of the pattern projection units is “n”, the pattern portions of the pattern projection units are disposed such that the line patterns of the pattern portions are shifted from each other by 1/n of the period P of the line pattern.
Further, in the above-described embodiments, the pattern windows are disposed such that the line connecting the centers of the pattern windows is parallel to the lines of the pattern portions. However, the present invention is not limited to this, and any arrangement of the pattern windows 61a, 61b, and 61c may be adopted as long as all of the pattern windows have an overlapped portion 2000 in the direction perpendicular to the line of the pattern portion as exemplified in