WO2017101411A1 - 3d视频录制设备、处理方法以及移动设备 - Google Patents
3d视频录制设备、处理方法以及移动设备 Download PDFInfo
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B35/00—Stereoscopic photography
- G03B35/08—Stereoscopic photography by simultaneous recording
- G03B35/10—Stereoscopic photography by simultaneous recording having single camera with stereoscopic-base-defining system
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B30/00—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N13/00—Stereoscopic video systems; Multi-view video systems; Details thereof
- H04N13/10—Processing, recording or transmission of stereoscopic or multi-view image signals
- H04N13/106—Processing image signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N13/00—Stereoscopic video systems; Multi-view video systems; Details thereof
- H04N13/10—Processing, recording or transmission of stereoscopic or multi-view image signals
- H04N13/106—Processing image signals
- H04N13/139—Format conversion, e.g. of frame-rate or size
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N13/00—Stereoscopic video systems; Multi-view video systems; Details thereof
- H04N13/20—Image signal generators
- H04N13/204—Image signal generators using stereoscopic image cameras
- H04N13/207—Image signal generators using stereoscopic image cameras using a single two-dimensional [2D] image sensor
- H04N13/218—Image signal generators using stereoscopic image cameras using a single two-dimensional [2D] image sensor using spatial multiplexing
Definitions
- the present patent application relates to a 3D technology application, and in particular to a 3D video recording device, a 3D video processing method, and a mobile device.
- the reason why human vision can distinguish far and near is the difference between two eyes.
- the eyes of the two eyes are not the same except that they are aimed at the front.
- the gap is small, when the retina is transmitted to the brain, the brain uses this tiny gap to produce a near-distance depth, resulting in a three-dimensional sense.
- two images are created by the difference of the angles of the two eyes, and then the two eyes are seen one by one, each seeing an image of one side, and the retina can make the brain have a three-dimensional sense of depth of field.
- the various stereoscopic presentation techniques are mostly based on this principle, which we call the "polarization principle".
- 3D technology is just like the above principle. Today's 3D technology is developing rapidly. Cinemas use 3D movies have been widely used, but today there is no direct use of mobile devices such as mobile phones to shoot 3D technology, especially for most single-camera mobile devices. 3D video with the camera.
- An object of some embodiments of the present invention is to provide a 3D video recording device, a 3D video processing method, and a mobile device.
- the 3D video recording device and the 3D video processing method can enable a mobile device with a single camera to watch 3D with the camera. video.
- a part of the present invention provides a 3D video recording device, the recording device includes a camera, the video recording device further includes: a baffle, located in the middle of the camera, perpendicular to the camera; a mirror assembly, located on a side of the baffle, comprising: a first reflective lens; a second reflective lens parallel to the first reflective lens for receiving light reflected by an object in front of the camera, and reflecting the light to the first a reflective lens for further reflecting the light onto the camera by the first reflective lens; a second mirror set on the other side of the baffle comprising: opposite to the first reflective lens a third reflective lens symmetrically placed on the baffle and a fourth reflective lens disposed symmetrically with respect to the baffle of the second reflective lens.
- Some embodiments of the present invention further provide a 3D video processing method, the processing method comprising: S1) parsing each frame of a video captured by the 3D video recording device described above into an image to obtain a plurality of images; S2) Cutting the plurality of images from the middle to a plurality of left images and a plurality of right images; S3) performing incompletely overlapping the plurality of left images and the plurality of right images to form a plurality of ghost images; S4) The plurality of ghost images are combined into a video.
- Some embodiments of the present invention further provide a mobile device, where the mobile device includes the above-mentioned 3D video recording device, a receiving device for receiving a video captured by the 3D video recording device, and processing means for each of the video One frame is parsed into an image to obtain a plurality of images; the plurality of images are cropped from the middle to a plurality of left images and a plurality of right images; and the plurality of left images and the plurality of right images are incompletely overlapped Splicing to form a plurality of ghost images; and synthesizing the plurality of ghost images into a video.
- the mobile device includes the above-mentioned 3D video recording device, a receiving device for receiving a video captured by the 3D video recording device, and processing means for each of the video
- One frame is parsed into an image to obtain a plurality of images; the plurality of images are cropped from the middle to a plurality of left images and a plurality of right images; and the plurality of left images and the plurality
- the baffle divides the camera into two parts, and the left side uses the first reflective lens and the second reflective lens in the first mirror group to reflect the object to the camera.
- the third reflective mirror and the fourth reflective lens in the second mirror group are used to reflect the object to the right side of the camera to ensure that the image captured by the camera is divided into left and right parts.
- each frame of the image having the two parts is parsed to be a plurality of images, and the plurality of images are The middle crops and performs incompletely overlapping stitching to form a ghost image, and finally the video is synthesized.
- people can use a single camera mobile device to watch 3D video with the camera.
- FIG. 1 is a schematic structural diagram of a 3D video recording apparatus provided by the present invention.
- FIG. 2 is a schematic diagram of an image taken by a 3D video recording device provided by the present invention.
- FIG. 3 is a flow chart of a 3D video processing method provided by the present invention.
- FIG. 4 is a schematic structural diagram of a mobile device provided by the present invention.
- FIG. 1 is a schematic structural diagram of a 3D video recording apparatus according to some embodiments of the present invention.
- the embodiment provides a 3D video recording device, where the recording device includes a camera, and the video recording device further includes: a baffle 1 located in the middle of the camera, perpendicular to the camera; a mirror group, located on a side of the baffle 1, comprising: a first reflecting lens 3; a second reflecting lens 4, parallel to the first reflecting lens, for receiving light reflected by an object in front of the camera, and reflecting the light And the first reflecting mirror 3 is further reflected by the first reflecting lens 3 to the camera; the second mirror group is located on the other side of the baffle 1 and includes: A third reflecting mirror 5 in which the reflecting lens 3 is symmetrically placed with respect to the baffle 1 and a fourth reflecting mirror 6 placed symmetrically with respect to the baffle 1 of the second reflecting mirror 4.
- the baffle 1 is located in the middle of the camera, effectively separating the light on both sides of the baffle 1 to ensure that the camera can be successfully divided into two parts, and the first mirror group and the second mirror group completely correspond to the baffle 1
- the light reflected by the object can be reflected to the camera in two ways in a similar route.
- the light on the left side of the baffle 1 is reflected to the camera through the second reflecting lens 4 and the first reflecting lens 3, and the light on the right side of the baffle 1 is reflected to the camera through the fourth reflecting lens 6 and the third reflecting lens 5.
- the first reflecting lens 3 and the third reflecting lens 5 are optimally 45 degrees with the camera, and the second reflecting lens 4 and the fourth reflecting lens 6 are parallel to the first reflecting lens 3 and the third reflecting lens 5, respectively. Best, but not limited to this.
- the image taken by this 3D video recording device is roughly as shown in FIG. 2.
- FIG. 2 there is a clear black line in the middle of the image.
- the five-pointed star and the six-pointed star in the left image are the same objects as the five-pointed star and the six-pointed star in the right image.
- the left image is basically the same as the right image, but there is still The nuances, the left image is partly to the left of the left part of the camera, and the left part of the object is taken (the left half of the rectangle in the figure), while the right image is taken to the right by the right part of the camera. As shown in the right half of the rectangle).
- the apparatus further includes a telescopic device for moving the second reflecting lens 4 and the fourth reflecting lens 6 in opposite directions during expansion and contraction to respectively expand/reduce and reduce the first reflecting The distance between the lens 3 and the third reflecting lens 5.
- the user When the user wants to take a wider range, he may choose to use the telescopic device to move the second reflecting lens 4 away from the first reflecting lens 3 while keeping the fourth reflecting lens 6 away from the third reflecting lens 5, similarly, if the user wants To take a smaller range, the second reflecting mirror 4 can be brought close to the first reflecting mirror 3 by the telescopic device while the fourth reflecting mirror 6 is brought close to the third reflecting mirror 5.
- a 3D video processing method includes: S1) parsing each frame of a video captured by the 3D video recording device described above into an image to obtain a plurality of images; and S2) displaying the plurality of images. Cropping from the middle to a plurality of left images and a plurality of right images; S3) performing incomplete overlap splicing of the plurality of left images and the plurality of right images to form a plurality of ghost images; S4) displaying the plurality of ghost images Synthetic video.
- the step S3) further includes that the left image and the right image are incompletely overlapped and stitched by a distance difference between the first mirror group and the second mirror, or may be adjusted later by adjusting the line of sight.
- the most important step is splicing. If the distance between the left image and the right image is not well controlled during splicing, it is very likely that the 3D effect may be weakened or even unable to form a 3D effect. If viewing with some 3D polarized glasses, the 3D effect can be debugged by adjusting the glasses, but if the 3D polarized glasses are not adjusted, then a precise distance value is required for the distance between the left image and the right image to be completely overlapped. After a plurality of tests and glasses trials, the distance value of the first mirror group and the second mirror is preferably adjusted by the distance between the first mirror group and the second mirror, but may not be limited thereto.
- the processing method is processed as described above, one can use the polarized 3D glasses for viewing. It should be noted that the above processing process is not only for the video captured by the 3D video recording device described above, but can be processed and used in the foregoing. Any video similar to the video captured by the 3D video recording device can directly utilize the 3D video of the embodiment if it has a similar source. Processing methods are processed.
- the processing method may further include performing red light filtering on the plurality of left images and performing blue light filtering on the plurality of right images. That is, if the image to be processed is a "full color" image (no obvious reddish blue, no red and blue 3D video characteristics), but needs to be viewed with red and blue glasses, then between step S2) and step S3) above. Add a red and blue light filtering step to perform red light filtering for the left image and blue light filtering for the right image.
- the mobile device includes the above-mentioned 3D video recording device 11; the receiving device 12 is configured to receive a video captured by the 3D video recording device; and the processing device 13, For parsing each frame of the video into an image to obtain a plurality of images; cropping the plurality of images from a median to a plurality of left images and a plurality of right images; and the plurality of left images and the The plurality of right images are incompletely overlapped to form a plurality of ghost images; and the plurality of ghost images are combined into a video.
- the baffle 1 divides the camera into two parts, and the left side uses the first reflective lens 3 and the second reflective lens 4 in the first mirror group to reflect the object to the left side.
- the third reflective mirror 5 and the fourth reflective lens 6 in the second mirror group are used to reflect the object to the right side of the camera to ensure that the image captured by the camera is divided into two parts.
- each frame of the image with two parts is parsed into a plurality of images, and a plurality of images are cropped from the middle and incompletely overlapped to form a ghost image. Image, finally composite video.
- the 3D video recording device and the 3D video processing method provided by the embodiment can enable a mobile device that uses a single camera to watch 3D video with the camera.
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Abstract
一种3D视频录制设备(11)、3D视频处理方法和移动设备,该录制设备(11)包括摄像头,还包括:挡板(1),位于所述摄像头正中间,与所述摄像头垂直;第一反光镜组,位于所述挡板(1)一侧,包括:第一反光镜片(3);第二反光镜片(4),与所述第一反光镜片(3)平行,用于接收摄像头前方物体反射的光,并将该光反射到第一反光镜片(3)上,以由该第一反光镜片(3)进一步将该光反射至所述摄像头上;第二反光镜组,位于所述挡板(1)另一侧,包括:与所述第一反光镜片(3)相对于所述挡板(1)对称放置的第三反光镜片(5)以及与所述第二反光镜片(4)相对于所述挡板(1)对称放置的第四反光镜片(6)。采用上述设备和方法可以使得人们利用单摄像头的移动设备随拍随看3D视频。
Description
本申请要求于2015年12月14日提交中国专利局、申请号为201510926690.8的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本专利申请涉及3D技术应用,具体地,涉及一种3D视频录制设备、一种3D视频处理方法以及移动设备。
人的视觉之所以能分辨远近,是靠两只眼睛的差距。两只眼睛除了瞄准正前方以外,看任何一样东西两眼的角度都不会相同。虽然差距很小,但经视网膜传到大脑里,脑子就用这微小的差距,产生远近的深度,从而产生立体感。根据这一原理,用两只眼睛视角的差距制造出两个影像,然后让两只眼睛一边一个,各看到自己一边的影像,透过视网膜就可以使大脑产生景深的立体感。各式各样的立体演示技术,也多是运用这一原理,我们称其为“偏光原理”。3D技术正如上述原理而来,现今3D技术发展迅速,电影院使用3D影片已经较为广泛,但现今并没有直接利用手机等移动设备拍摄3D的技术,尤其是对于多数单摄像头的移动设备并不能做到3D视频的随拍随看。
发明内容
本发明部分实施例的目的是提供一种3D视频录制设备、一种3D视频处理方法以及移动设备,该3D视频录制设备和3D视频处理方法可以使得人们利用单摄像头的移动设备随拍随看3D视频。
为了实现上述目的,本发明部分实施例提供了一种3D视频录制设备,该录制设备包括摄像头,该视频录制设备还包括:挡板,位于所述摄像头正中间,与所述摄像头垂直;第一反光镜组,位于所述挡板一侧,包括:第一反光镜片;第二反光镜片,与所述第一反光镜片平行,用于接收摄像头前方物体反射的光,并将该光反射到第一反光镜片上,以由该第一反光镜片进一步将该光反射至所述摄像头上;第二反光镜组,位于所述挡板另一侧,包括:与所述第一反光镜片相对于所述挡板对称放置的第三反光镜片以及与所述第二反光镜片相对于所述挡板对称放置的第四反光镜片。
本发明部分实施例还提供了一种3D视频处理方法,该处理方法包括:S1)将上文所述的3D视频录制设备拍摄的视频的每一帧解析为图像以得到多张图像;S2)将所述多张图像从正中间裁剪为多张左图像和多张右图像;S3)将所述多张左图像和所述多张右图像进行不完全重合拼接以形成多张重影图像;S4)将所述多张重影图像合成视频。
本发明部分实施例还提供了一种移动设备,该移动设备包括上述3D视频录制设备;接收装置,用于接收所述3D视频录制设备拍摄的视频;处理装置,用于将所述视频的每一帧解析为图像以得到多张图像;将所述多张图像从正中间裁剪为多张左图像和多张右图像;将所述多张左图像和所述多张右图像进行不完全重合拼接以形成多张重影图像;以及将所述多张重影图像合成视频。
通过上述技术方案,采用本发明部分实施例提供的3D视频录制设备,挡板将摄像头分为两部分,左边利用第一反光镜组中的第一反光镜片和第二反光镜片将物体反射至摄像头的左侧,右边利用第二反光镜组中的第三反光镜片和第四反光镜片将物体反射至摄像头的右侧,以保证摄像头拍出的图像分为左右两部分。通过本发明部分实施例提供的3D视频处理方法,将上述具有两部分的图像的每一帧进行解析,使之成为多个图像,并将多个图像从
中间裁剪并进行不完全重合拼接以形成重影图像,最后合成视频。采用本发明实施例,可以使得人们利用单摄像头的移动设备随拍随看3D视频。
本发明部分实施例的其它特征和优点将在随后的具体实施方式部分予以详细说明。
附图是用来提供对本发明的进一步理解,并且构成说明书的一部分,与下面的具体实施方式一起用于解释本发明,但并不构成对本发明的限制。在附图中:
图1是本发明提供的3D视频录制设备的结构示意图;
图2是本发明提供的3D视频录制设备拍摄出的图像的示意图;
图3是本发明提供的3D视频处理方法的流程图;
图4是本发明提供的移动设备的结构示意图。
附图标记说明
1 挡板 2 外壳
3 第一反光镜片 4 第二反光镜片
5 第三反光镜片 6 第四反光镜片
11 3D视频录制设备 12 接收装置
13 处理装置
以下结合附图对本发明的具体实施方式进行详细说明。应当理解的是,此处所描述的具体实施方式仅用于说明和解释本发明,并不用于限制本发明。
图1是本发明部分实施例提供的3D视频录制设备的结构示意图。如图1所示,本实施例提供一种3D视频录制设备,该录制设备包括摄像头,该视频录制设备还包括:挡板1,位于所述摄像头正中间,与所述摄像头垂直;第一反光镜组,位于所述挡板1一侧,包括:第一反光镜片3;第二反光镜片4,与所述第一反光镜片平行,用于接收摄像头前方物体反射的光,并将该光反射到第一反光镜片3上,以由该第一反光镜片3进一步将该光反射至所述摄像头上;第二反光镜组,位于所述挡板1另一侧,包括:与所述第一反光镜片3相对于所述挡板1对称放置的第三反光镜片5以及与所述第二反光镜片4相对于所述挡板1对称放置的第四反光镜片6。
挡板1位于摄像头正中间,有效分隔开了挡板1两侧的光,保证摄像头可以成功分为两部分拍摄物体,第一反光镜组和第二反光镜组关于挡板1完全对应,经被拍摄物体反射的光可以以相似的路线分两条路被反射到摄像头。挡板1左侧的光经过第二反光镜片4和第一反光镜片3被反射到摄像头,挡板1右侧的光经过第四反光镜片6和第三反光镜片5被反射到摄像头。在此,第一反光镜片3和第三反光镜片5与摄像头呈45度为最佳,而第二反光镜片4和第四反光镜片6分别与第一反光镜片3和第三反光镜片5平行为最佳,但并不限于此。
经此3D视频录制设备拍摄出的图像大致如图2所示。在图2中,图像中间有明显黑线,左图像中五角星和六角星与右图像中五角星和六角星是同样的物体,与人眼一样,左图像与右图像基本相同,但仍有细微差别,左图像因摄像头左部份偏左一些,拍出左边的部分物体(如图中左侧半个长方形),而右图像因摄像头右部份偏右一些,拍出右边的部分物体(如图中右侧半个长方形)。
本实施例中,该设备还包括伸缩装置,用以在伸缩时使所述第二反光镜片4和所述第四反光镜片6朝相反方向移动以分别扩大/缩小与所述第一反光
镜片3和所述第三反光镜片5的距离。
当用户想要拍出更广的范围,可以选择利用伸缩装置,使第二反光镜片4远离第一反光镜片3,同时使第四反光镜片6远离第三反光镜片5,同理,如果用户想要拍更小的范围,可以利用伸缩装置使第二反光镜片4靠近第一反光镜片3,同时使第四反光镜片6靠近第三反光镜片5。
图3是本发明部分实施例提供的3D视频处理方法的流程图。如图3所示,一种3D视频处理方法包括:S1)将上文所述的3D视频录制设备拍摄的视频的每一帧解析为图像以得到多张图像;S2)将所述多张图像从正中间裁剪为多张左图像和多张右图像;S3)将所述多张左图像和所述多张右图像进行不完全重合拼接以形成多张重影图像;S4)将所述多张重影图像合成视频。
步骤S3)还包括所述左图像和所述右图像进行不完全重合拼接的距离为第一反光镜组与第二反光镜组成像距离差,也可后期通过调节视距进行调整。
在上述处理过程中,最重要的步骤在于拼接,如果拼接的时候左图像与右图像相距的距离掌控不好,很有可能或造成3D效果的弱化甚至无法形成3D效果。如果利用某些3D偏振眼镜进行观看,则可以通过调节眼镜来调试3D效果,但如果不调节3D偏振眼镜,那么对左图像与右图像进行不完全重合拼接的距离就需要一个精确的距离值。在经过多次试验与眼镜试用之后,本实施例优选该距离值为第一反光镜组与第二反光镜组成像距离差,也可后期通过调节视距进行调整,但不以此为限。
如上文所述处理方法进行处理过后,人们可以使用偏振3D眼镜进行观看,需要说明的是,上述处理过程并非仅针对于前文所述的3D视频录制设备拍摄的视频,而是可以处理与前文所述的3D视频录制设备拍摄出的视频类似的任何视频,如果具有类似的片源,可以直接利用本实施例的3D视频
处理方法进行处理。
本实施例中,该处理方法还可以包括将所述多张左图像进行红光过滤,将所述多张右图像进行蓝光过滤。即如果需要处理的图像为“全色”图像(无明显红蓝色,不具有红蓝3D视频特性),而又需要以红蓝眼镜观看,则可以在上述步骤S2)和步骤S3)之间添加红蓝光过滤步骤,为左图像进行红光过滤,右图像进行蓝光过滤。
本发明部分实施例还提供一种移动设备,如图5所示,该移动设备包括上述3D视频录制设备11;接收装置12,用于接收所述3D视频录制设备拍摄的视频;处理装置13,用于将所述视频的每一帧解析为图像以得到多张图像;将所述多张图像从正中间裁剪为多张左图像和多张右图像;将所述多张左图像和所述多张右图像进行不完全重合拼接以形成多张重影图像;以及将所述多张重影图像合成视频。
通过上述技术方案,采用本实施例提供的3D视频录制设备,挡板1将摄像头分为两部分,左边利用第一反光镜组中的第一反光镜片3和第二反光镜片4将物体反射至摄像头的左侧,右边利用第二反光镜组中的第三反光镜片5和第四反光镜片6将物体反射至摄像头的右侧,以保证摄像头拍出的图像分为左右两部分。通过本实施例提供的3D视频处理方法,将上述具有两部分的图像的每一帧进行解析,使之成为多个图像,并将多个图像从中间裁剪并进行不完全重合拼接以形成重影图像,最后合成视频。通过本实施例提供的3D视频录制设备和3D视频处理方法,可以使得人们利用单摄像头的移动设备随拍随看3D视频。
以上结合附图详细描述了本发明的优选实施方式,但是,本发明并不限于上述实施方式中的具体细节,在本发明的技术构思范围内,可以对本发明的技术方案进行多种简单变型,这些简单变型均属于本发明的保护范围。
另外需要说明的是,在上述具体实施方式中所描述的各个具体技术特
征,在不矛盾的情况下,可以通过任何合适的方式进行组合,为了避免不必要的重复,本发明对各种可能的组合方式不再另行说明。
此外,本发明的各种不同的实施方式之间也可以进行任意组合,只要其不违背本发明的思想,其同样应当视为本发明所公开的内容。
Claims (10)
- 一种3D视频录制设备,该录制设备包括摄像头,该视频录制设备还包括:挡板(1),位于所述摄像头正中间,与所述摄像头垂直;第一反光镜组,位于所述挡板(1)一侧,包括:第一反光镜片(3);第二反光镜片(4),与所述第一反光镜片平行,用于接收摄像头前方物体反射的光,并将该光反射到第一反光镜片(3)上,以由该第一反光镜片(3)进一步将该光反射至所述摄像头上;第二反光镜组,位于所述挡板(1)另一侧,包括:与所述第一反光镜片(3)相对于所述挡板(1)对称放置的第三反光镜片(5)以及与所述第二反光镜片(4)相对于所述挡板(1)对称放置的第四反光镜片(6)。
- 根据权利要求1所述的3D视频录制设备,其中,所述第一反光镜片(3)和所述第三反光镜片(5)与所述摄像头呈45度。
- 根据权利要求1或2所述的3D视频录制设备,其中,该设备还包括:外壳(2),用以包裹和固定所述挡板(1)、所述第一反光镜组以及第二反光镜组。
- 根据权利要求1,2或3所述的3D视频录制设备,其中,该设备还包括伸缩装置,用以在伸缩时使所述第二反光镜片(4)和所述第四反光镜片(6)朝相反方向移动以分别扩大/缩小与所述第一反光镜片(3)和所述第三反光镜片(5)的距离。
- 一种3D视频处理方法,该处理方法包括:S1)将权利要求1-4中任意一项权利要求所述的3D视频录制设备拍摄的视频的每一帧解析为图像以得到多张图像;S2)将所述多张图像从正中间裁剪为多张左图像和多张右图像;S3)将所述多张左图像和所述多张右图像进行不完全重合拼接以形成多张重影图像;S4)将所述多张重影图像合成视频。
- 根据权利要求5所述的3D视频处理方法,其中,所述左图像和所述右图像进行不完全重合拼接的距离为第一反光镜组与第二反光镜组成像距离差。
- 根据权利要求5或6所述的3D视频处理方法,其中,该处理方法还包括将所述多张左图像进行红光过滤,将所述多张右图像进行蓝光过滤。
- 一种移动设备,该移动设备包括:权利要求1-4中任意一项权利要求所述的3D视频录制设备(11);接收装置(12),用于接收所述3D视频录制设备(11)拍摄的视频;处理装置(13),用于将所述视频的每一帧解析为图像以得到多张图像;将所述多张图像从正中间裁剪为多张左图像和多张右图像;将所述多张左图像和所述多张右图像进行不完全重合拼接以形成多张重影图像;以及将所述多张重影图像合成视频。
- 根据权利要求8所述的移动设备,其中,所述左图像和所述右图像进行不完全重合拼接的距离为所述第一反光镜组与所述第二反光镜组成像距离差。
- 根据权利要求8或9所述的移动设备,其中,所述处理装置(13)还用于将所述多张左图像进行红光过滤,将所述多张右图像进行蓝光过滤。
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