Movatterモバイル変換


[0]ホーム

URL:


USRE48697E1 - High resolution thin multi-aperture imaging systems - Google Patents

High resolution thin multi-aperture imaging systems
Download PDF

Info

Publication number
USRE48697E1
USRE48697E1US16/384,244US201916384244AUSRE48697EUS RE48697 E1USRE48697 E1US RE48697E1US 201916384244 AUS201916384244 AUS 201916384244AUS RE48697 EUSRE48697 EUS RE48697E
Authority
US
United States
Prior art keywords
sensor
image
overlap area
camera
cfa
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
US16/384,244
Inventor
Gal Shabtay
Noy Cohen
Oded Gigushinski
Ephraim Goldenberg
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Corephotonics Ltd
Original Assignee
Corephotonics Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filedlitigationCriticalhttps://patents.darts-ip.com/?family=50827245&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=USRE48697(E1)"Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by Corephotonics LtdfiledCriticalCorephotonics Ltd
Priority to US16/384,244priorityCriticalpatent/USRE48697E1/en
Application grantedgrantedCritical
Publication of USRE48697E1publicationCriticalpatent/USRE48697E1/en
Activelegal-statusCriticalCurrent
Anticipated expirationlegal-statusCritical

Links

Images

Classifications

Definitions

Landscapes

Abstract

A multi-aperture imaging system comprising a first camera with a first sensor that captures a first image and a second camera with a second sensor that captures a second image, the two cameras having either identical or different FOVs. The first sensor may have a standard color filter array (CFA) covering one sensor section and a non-standard color CFA covering another. The second sensor may have either Clear or standard CFA covered sections. Either image may be chosen to be a primary or an auxiliary image, based on a zoom factor. An output image with a point of view determined by the primary image is obtained by registering the auxiliary image to the primary image.

Description

CROSS REFERENCE TO RELATED APPLICATIONS
This application is a Continuation application of U.S. patent application Ser. No. 14/386,823 (now allowed), which was a National Phase application from PCT patent application PCT/IB2013/060356 which claimed priority from U.S. Provisional Patent Application No. 61/730,570 having the same title and filed Nov. 28, 2012, the latter incorporated herein by reference in its entirety.
This broadening reissue application is a continuation of U.S. patent application Ser. No. 16/383,618, filed Apr. 14, 2019, which is a reissue application of U.S. patent application Ser. No. 15/375,090, filed Dec. 11, 2016, now U.S. Pat. No. 9,876,952, which is a continuation of U.S. patent application Ser. No. 14/386,823, filed Apr. 22, 2014, now U.S. Pat. No. 9,538,152, which was a National Phase application from PCT application PCT/IB2013/060356 which claimed priority from U.S. Provisional Patent Application No. 61/730,570 having the same title and filed Nov. 28, 2012, the latter incorporated herein by reference in its entirety. The following three co-pending applications are also continuation reissue applications of U.S. patent application Ser. No. 16/383,618, filed Apr. 14, 2019; U.S. patent application Ser. No. 16/384,140, filed Apr. 15, 2019, U.S. patent application Ser. No. 16/384,197, filed Apr. 15, 2019, and U.S. patent application Ser. No. 16/419,604, filed May 22, 2019.
FIELD
Embodiments disclosed herein relate in general to multi-aperture imaging (“MAI”) systems (where “multi” refers to two or more apertures) and more specifically to thin MAI systems with high color resolution and/or optical zoom.
BACKGROUND
Small digital cameras integrated into mobile (cell) phones, personal digital assistants and music players are becoming ubiquitous. Each year, mobile phone manufacturers add more imaging features to their handsets, causing these mobile imaging devices to converge towards feature sets and image quality that customers expect from stand-alone digital still cameras. Concurrently, the size of these handsets is shrinking, making it necessary to reduce the total size of the camera accordingly while adding more imaging features. Optical Zoom is a primary feature of many digital still cameras but one that mobile phone cameras usually lack, mainly due to camera height constraints in mobile imaging devices, cost and mechanical reliability.
Mechanical zoom solutions are common in digital still cameras but are typically too thick for most camera phones. Furthermore, the F/# (“F number) in such systems typically increases with the zoom factor (ZF) resulting in poor light sensitivity and higher noise (especially in low-light scenarios). In mobile cameras, this also results in resolution compromise, due to the small pixel size of their image sensors and the diffraction limit optics associated with the F/#.
One way of implementing zoom in mobile cameras is by over-sampling the image and cropping and interpolating it in accordance with the desired ZF. While this method is mechanically reliable, it results in thick optics and in an expensive image sensor due to the large number of pixels associated therewith. As an example, if one is interested in implementing a 12 Megapixel camera with X3 ZF, one needs a sensor of 108 Megapixels.
Another way of implementing zoom, as well as increasing the output resolution, is by using a dual-aperture imaging (“DAI”) system. In its basic form, a DAI system includes two optical apertures which may be formed by one or two optical modules, and one or two image sensors (e.g., CMOS or CCD) that grab the optical image or images and convert the data into the electronic domain, where the image can be processed and stored.
The design of a thin MAI system with improved resolution requires a careful choice of parameters coupled with advanced signal processing algorithms to support the output of a high quality image. Known MAI systems, in particular ones with short optical paths, often trade-off functionalities and properties, for example zoom and color resolution, or image resolution and quality for camera module height. Therefore, there is a need for, and it would be advantageous to have thin MAI systems that produce an image with high resolution (and specifically high color resolution) together with zoom functionality.
Moreover, known signal processing algorithms used together with existing MAI systems often further degrade the output image quality by introducing artifacts when combining information from different apertures. A primary source of these artifacts is the image registration process, which has to find correspondences between the different images that are often captured by different sensors with different color filter arrays (CFAs). There is therefore a need for, and it would be advantageous to have an image registration algorithm that is more robust to the type of CFA used by the cameras and which can produce better correspondence between images captured by a multi-aperture system.
SUMMARY
Embodiments disclosed herein teach the use of multi-aperture imaging systems to implement thin cameras (with short optical paths of less than about 9 mm) and/or to realize optical zoom systems in such thin cameras. Embodiments disclosed herein further teach new color filter arrays that optimize the color information which may be achieved in a multi-aperture imaging system with or without zoom. In various embodiments, a MAI system disclosed herein includes at least two sensors or a single sensor divided into at least two areas. Hereinafter, the description refers to “two sensors”, with the understanding that they may represent sections of a single physical sensor (imager chip). Exemplarily, in a dual-aperture imaging system, a left sensor (or left side of a single sensor) captures an image coming from a first aperture while a right sensor (or right side of a single sensor) captures an image coming from a second aperture. In various embodiments disclosed herein, one sensor is a “Wide” sensor while another sensor is a “Tele” sensor, see e.g.FIG. 1A. The Wide sensor includes either a single standard CFA or two different CFAs: a non-standard CFA with higher color sampling rate positioned in an “overlap area” of the sensor (see below description ofFIG. 1B) and a standard CFA with a lower color sampling rate surrounding the overlap area. When including a single standard CFA, the CFA may cover the entire Wide sensor area. A “standard CFA” may include a RGB (Bayer) pattern or a non-Bayer pattern such as RGBE, CYYM, CYGM, RGBW#1, RGBW#2 orRGBW#3. Thus, reference may be made to “standard Bayer” or “standard non-Bayer” patterns or filters. As used herein, “non-standard CFA” refers to a CFA that is different in its pattern that CFAs listed above as “standard”. Exemplary non-standard CFA patterns may include repetitions of a 2×2 micro-cell in which the color filter order is RR-BB, RB-BR or YC-CY where Y=Yellow=Green+Red, C=Cyan=Green+Blue; repetitions of a 3×3 micro-cell in which the color filter order is GBR-RGB-BRG; and repetitions of a 6×6 micro-cell in which the color filter order is RBBRRB-RWRBWB-BBRBRR-RRBRBB-BWBRWR-BRRBBR, or BBGRRG-RGRBGB-GBRGRB-RRGBBG-BGBRGR-GRBGBR, or RBBRRB-RGRBGB-BBRBRR-RRBRBB-BGBRGR-BRRBBR, or, RBRBRB-BGBRGR-RBRBRB-BRBRBR-RGRBGB-BRBRBR.
The Tele sensor may be a Clear sensor (i.e. a sensor without color filters) or a standard CFA sensor. This arrangement of the two (or more than two) sensors and of two (or more than two) Wide and Tele “subset cameras” (or simply “subsets”) related to the two Wide and Tele subsets. Each sensor provides a separate image (referred to respectively as a Wide image and a Tele image), except for the case of a single sensor, where two images are captured (grabbed) by the single sensor (example above). In some embodiments, zoom is achieved by fusing the two images, resulting in higher color resolution that approaches that of a high quality dual-aperture zoom camera. Some thin MAI systems disclosed herein therefore provide zoom, super-resolution, high dynamic range and enhanced user experience.
In some embodiments, in order to reach optical zoom capabilities, a different magnification image of the same scene is grabbed by each subset, resulting in field of view (FOV) overlap between the two subsets. In some embodiments, the two subsets have the same zoom (i.e. same FOV). In some embodiments, the Tele subset is the higher zoom subset and the Wide subset is the lower zoom subset. Post processing is applied on the two images grabbed by the MAI system to fuse and output one fused (combined) output zoom image processed according to a user ZF input request. In some embodiments, the resolution of the fused image may be higher than the resolution of the Wide/Tele sensors. As part of the fusion procedure, up-sampling may be applied on the Wide image to scale it to the Tele image.
In an embodiment there is provided a multi-aperture imaging system comprising a first camera subset that provides a first image, the first camera subset having a first sensor with a first plurality of sensor pixels covered at least in part with a non-standard CFA, the non-standard CFA used to increase a specific color sampling rate relative to a same color sampling rate in a standard CFA; a second camera subset that provides a second image, the second camera subset having a second sensor with a second plurality of sensor pixels either Clear or covered with a standard CFA; and a processor configured to process the first and second images into a combined output image.
In some embodiments, the first and the second camera subsets have identical FOVs and the non-standard CFA may cover an overlap area that includes all the pixels of first sensor, thereby providing increased color resolution. In some such embodiments, the processor is further configured to, during the processing of the first and second images into a combined output image, register respective first and second Luma images obtained from the first and second images, the registered first and second Luma images used together with color information to form the combined output image. In an embodiment, the registration includes finding a corresponding pixel in the second Luma image for each pixel in the first Luma image, whereby the output image is formed by transferring information from the second image to the first image. In another embodiment, the registration includes finding a corresponding pixel in the first Luma image for each pixel in the second Luma image, whereby the output image is formed by transferring information from the first image to the second image.
In some embodiments, the first camera subset has a first FOV, the second camera subset has a second, smaller FOV than the first FOV, and the non-standard CFA covers an overlap area on the first sensor that captures the second FOV, thereby providing both optical zoom and increased color resolution. In some such embodiments, the processor is further configured to, during the processing of the first and second images into a combined output image and based on a ZF input, register respective first and second Luma images obtained from the first and second images, the registered first and second Luma images used together with color information to form the combined output image. For a ZF input that defines an FOV greater than the second FOV, the registration includes finding a corresponding pixel in the second Luma image for each pixel in the first Luma image and the processing includes forming the output image by transferring information from the second image to the first image. For a ZF input that defines an FOV smaller than or equal to the second FOV, the registration includes finding a corresponding pixel in the first Luma image for each pixel in the second Luma image, and the processing includes forming the output image by transferring information from the first image to the second image.
In an embodiment there is provided a multi-aperture imaging system comprising a first camera subset that provides a first image, the first camera subset having a first sensor with a first plurality of sensor pixels covered at least in part with a standard CFA; a second camera subset that provides a second image, the second camera subset having a second sensor with a second plurality of sensor pixels either Clear or covered with a standard CFA; and a processor configured to register first and second Luma images obtained respectively from the first and second images and to process the registered first and second Luma images together with color information into a combined output image.
In some embodiments, the first and the second camera subsets have identical first and second FOVs. In some such embodiments, the registration includes finding a corresponding pixel in the second Luma image for each pixel in the first Luma image and the processing includes forming the output image by transferring information from the second image to the first image. In other such embodiments, the registration includes finding a corresponding pixel in the first Luma image for each pixel in the second Luma image and the processing includes forming the output image by transferring information from the first image to the second image.
In some embodiments, the first camera subset has a first FOV, the second camera subset has a second, smaller FOV than the first FOV, and the processor is further configured to register the first and second Luma images based on a ZF input. For a ZF input that defines an FOV greater than the second FOV, the registration includes finding a corresponding pixel in the second Luma image for each pixel in the first Luma image and the processing includes forming the output image by transferring information from the second image to the first image. For a ZF input that defines an FOV smaller than or equal to the second FOV, the registration includes finding a corresponding pixel in the first Luma image for each pixel in the second Luma image, and the processing includes forming the output image by transferring information from the first image to the second image.
BRIEF DESCRIPTION OF THE DRAWINGS
Non-limiting examples of embodiments disclosed herein are described below with reference to figures attached hereto that are listed following this paragraph. The drawings and descriptions are meant to illuminate and clarify embodiments disclosed herein, and should not be considered limiting in any way.
FIG. 1A shows schematically a block diagram illustrating a dual-aperture zoom imaging system disclosed herein;
FIG. 1B shows an example of an image captured by the Wide sensor and the Tele sensor while illustrating the overlap area on the Wide sensor;
FIG. 2 shows schematically an embodiment of a Wide sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 3 shows schematically another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 4 shows schematically yet another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 5 shows schematically yet another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 6 shows schematically yet another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 7 shows schematically yet another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 8 shows schematically yet another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 9 shows schematically yet another embodiment of a Wide camera sensor that may be implemented in a dual-aperture zoom imaging system disclosed herein;
FIG. 10 shows a schematically in a flow chart an embodiment of a method disclosed herein for acquiring and outputting a zoom image;
FIG. 11A shows exemplary images captured by a triple aperture zoom imaging system disclosed herein;
FIG. 11B illustrates schematically the three sensors of the triple aperture imaging system ofFIG. 11A.
DETAILED DESCRIPTION
Embodiments disclosed herein relate to multi-aperture imaging systems that include at least one Wide sensor with a single CFA or with two different CFAs and at least one Tele sensor. The description continues with particular reference to dual-aperture imaging systems that include two (Wide and Tele) subsets with respective sensors. A three-aperture imaging system is described later with reference toFIGS. 11A-11B.
The Wide sensor includes an overlap area (see description ofFIG. 1B) that captures the Tele FOV. The overlap area may cover the entire Wide sensor or only part of the sensor. The overlap area may include a standard CFA or a non-standard CFA. Since the Tele image is optically magnified compared to the Wide image, the effective sampling rate of the Tele image is higher than that of the Wide image. Thus, the effective color sampling rate in the Wide sensor is much lower than the Clear sampling rate in the Tele sensor. In addition, the Tele and Wide images fusion procedure (see below) requires up-scaling of the color data from the Wide sensor. Up-scaling will not improve color resolution. In some applications, it is therefore advantageous to use a non-standard CFA in the Wide overlap area that increases color resolution for cases in which the Tele sensor includes only Clear pixels. In some embodiments in which the Tele sensor includes a Bayer CFA, the Wide sensor may have a Bayer CFA in the overlap area. In such embodiments, color resolution improvement depends on using color information from the Tele sensor in the fused output image.
FIG. 1A shows schematically a block diagram illustrating a dual-aperture zoom imaging (“DAZI”)system100 disclosed herein.System100 includes a dual-aperture camera102 with aWide subset104 and a Tele subset106 (each subset having a respective sensor), and aprocessor108 that fuses two images, a Wide image obtained with the Wide subset and a Tele image obtained with the Tele subset, into a single fused output image according to a user-defined “applied” ZF input or request. The ZF is input toprocessor108. The Wide sensor may include a non-standard CFA in an overlap area illustrated by110 inFIG. 1B.Overlap area110 is surrounded by anon-overlap area112 with a standard CFA (for example a Bayer pattern).FIG. 1B also shows an example of an image captured by both Wide and Tele sensors. Note that “overlap” and “non-overlap” areas refer to parts of the Wide image as well as to the CFA arrangements of the Wide sensor. The overlap area may cover different portions of a Wide sensor, for example half the sensor area, a third of the sensor area, a quarter of the sensor area, etc. A number of such Wide sensor CFA arrangements are described in more detail with reference toFIGS. 2-9. The non-standard CFA pattern increases the color resolution of the DAZI system.
The Tele sensor may be Clear (providing a Tele Clear image scaled relative to the Wide image) or may include a standard (Bayer or non-Bayer) CFA. It in the latter case, it is desirable to define primary and auxiliary sensors based on the applied ZF. If the ZF is such that the output FOV is larger than the Tele FOV, the primary sensor is the Wide sensor and the auxiliary sensor is the Tele sensor. If the ZF is such that the output FOV is equal to, or smaller than the Tele FOV, the primary sensor is the Tele sensor and the auxiliary sensor is the Wide sensor. The point of view defined by the output image is that of the primary sensor.
FIG. 2 shows schematically an embodiment of aWide sensor200 that may be implemented in a DAZI system such assystem100.Sensor200 has anon-overlap area202 with a Bayer CFA and anoverlap area204 covered by a non-standard CFA with a repetition of a 4×4 micro-cell in which the color filter order is BBRR-RBBR-RRBB-BRRB. In this figure, as well as inFIGS. 3-9, “Width1” and “Height1” refer to the full Wide sensor dimension. “Width2” and “Height2” refer to the dimensions of the Wide sensor overlap area. Note that inFIG. 2 (as in followingFIGS. 3-5 and 7, 8) the empty row and column to the left and top of the overlap area are for clarity purposes only, and that the sensor pixels follow there the pattern of the non-overlap area (as shown inFIG. 6). Inoverlap area204, R and B are sampled at ½0.5Nyquist frequency in the diagonal (left to right) direction with 2 pixel intervals instead of at ½ Nyquist frequency in a standard Bayer pattern.
FIG. 3 shows schematically an embodiment of aWide sensor300 that may be implemented in a DAZI system such assystem100.Sensor300 has anon-overlap area302 with a Bayer CFA and anoverlap area304 covered by a non-standard CFA with a repetition of a 2×2 micro-cell in which the color filter order is BR-RB. In the overlap area, R and B are sampled at ½0.5Nyquist frequency in both diagonal directions.
FIG. 4 shows schematically an embodiment of aWide sensor400 that may be implemented in a DAZI system such assystem100.Sensor400 has anon-overlap area402 with a Bayer CFA and anoverlap area404 covered by a non-standard CFA with a repetition of a 2×2 micro-cell in which the color filter order is YC-CY, where Y=Yellow=Green+Red, C=Cyan=Green+Blue. As a result, in the overlap area, R and B are sampled at ½0.5Nyquist frequency in a diagonal direction. The non-standard CFA includes green information for registration purposes. This allows for example registration between the two images where the object is green, since there is green information in both sensor images.
FIG. 5 shows schematically an embodiment of aWide sensor500 that may be implemented in a DAZI system such assystem100.Sensor500 has anon-overlap area502 with a Bayer CFA and anoverlap area504 covered by a non-standard CFA with a repetition of a 6×6 micro-cell in which the color filter order is RBBRRB-RWRBWB-BBRBRR-RRBRBB-BWBRWR-BRRBBR, where “W” represents White or Clear pixels. In the overlap area, R and B are sampled at a higher frequency than in a standard CFA. For example, in a Bayer pixel order, the Red average sampling rate (“Rs”) is 0.25 (sampled once for every 4 pixels). In the overlap area pattern, Rsis 0.44.
FIG. 6 shows schematically an embodiment of aWide sensor600 that may be implemented in a DAZI system such assystem100.Sensor600 has anon-overlap area602 with a Bayer CFA and anoverlap area604 covered by a non-standard CFA with a repetition of a 6×6 micro-cell in which the color filter order is BBGRRG-RGRBGB-GBRGRB-RRGBBG-BGBRGR-GRBGBR. In the overlap area, R and B are sampled at a higher frequency than in a standard CFA. For example, in the overlap area pattern, Rsis 0.33 vs. 0.25 in a Bayer pixel order.
FIG. 7 shows schematically an embodiment of aWide sensor700 that may be implemented in a DAZI system such assystem100.Sensor700 has anon-overlap area702 with a Bayer CFA and anoverlap area704 covered by a non-standard CFA with a repetition of a 3×3 micro-cell in which the color filter order is GBR-RGB-BRG. In the overlap area, R and B are sampled at a higher frequency than in a standard CFA. For example, in the overlap area pattern, Rsis 0.33 vs. 0.25 in a Bayer pixel order.
FIG. 8 shows schematically an embodiment of a Wide sensor800 that may be implemented in a DAZI system such assystem100. Sensor800 has anon-overlap area802 with a Bayer CFA and anoverlap area804 covered by a non-standard CFA with a repetition of a 6×6 micro-cell in which the color filter order is RBBRRB-RGRBGB-BBRBRR-RRBRBB-BGBRGR-BRRBBR. In the overlap area, R and B are sampled at a higher frequency than in a standard CFA. For example, in the overlap area pattern, Rs is0.44 vs. 0.25 in a Bayer pixel order.
FIG. 9 shows schematically an embodiment of aWide sensor900 that may be implemented in a DAZI system such assystem100.Sensor900 has anon-overlap area902 with a Bayer CFA and anoverlap area904 covered by a non-standard CFA with a repetition of a 6×6 micro-cell in which the color filter order is RBRBRB-BGBRGR-RBRBRB-BRBRBR-RGRBGB-BRBRBR. In the overlap area, R and B are sampled at a higher frequency than in a standard CFA. For example, in the overlap area pattern, Rsis 0.44 vs. 0.25 in a Bayer pixel order.
Processing Flow
In use, an image is acquired withimaging system100 and is processed according to steps illustrated in a flowchart shown inFIG. 10. Instep1000, demosaicing is performed on the Wide overlap area pixels (which refer to the Tele image FOV) according to the specific CFA pattern. If the CFA in the Wide overlap area is a standard CFA, a standard demosaicing process may be applied to it. If the CFA in the Wide overlap area is non-standard CFA, the overlap and non-overlap subsets of pixels may need different demosaicing processes. That is, the Wide overlap area may need a non-standard demosaicing process and the Wide non-overlap area may need a standard demosaicing process. Exemplary and non-limiting non-standard demosaicing interpolations for the overlap area of each of the Wide sensors shown inFIGS. 2-9 are given in detail below. The aim of the demosaicing is to reconstruct missing colors in each pixel. Demosaicing is applied also to the Tele sensor pixels if the Tele sensor is not a Clear only sensor. This will result in a Wide subset color image where the colors (in the overlap area) hold higher resolution than those of a standard CFA pattern. Instep1002, the Tele image is registered (mapped) into the Wide image. The mapping includes finding correspondences between pixels in the two images. Instep1002, actual registration is performed on luminance Tele and Wide images (respectively LumaTeleand Lumawide) calculated from the pixel information of the Tele and Wide cameras. These luminance images are estimates for the scene luminance as captured by each camera and do not include any color information. If the Wide or Tele sensors have CFAs, the calculation of the luminance images is performed on the respective demosaiced images. The calculation of the Wide luminance image varies according to the type of non-standard CFA used in the Wide overlap area. If the CFA permits calculation of a full RGB demosaiced image, the luminance image calculation is straightforward. If the CFA is such that it does not permit calculation of a full RGB demosaiced image, the luminance image is estimated from the available color channels. If the Tele sensor is a Clear sensor, the Tele luminance image is just the pixel information. Performing the registration on luminance images has the advantage of enabling registration between images captured by sensors with different CFAs or between images captured by a standard CFA or non-standard CFA sensor and a standard CFA or Clear sensor and avoiding color artifacts that may arise from erroneous registration.
Instep1004, the data from the Wide and Tele images is processed together with the registration information fromstep1002 to form a high quality output zoom image. In cases where the Tele sensor is a Clear only sensor, the high resolution luminance component is taken from the Tele sensor and color resolution is taken from the Wide sensor. In cases where the Tele sensor includes a CFA, both color and luminance data are taken from the Tele subset to form the high quality zoom image. In addition, color and luminance data is taken from the Wide subset.
Exemplary Process for Fusing a Zoom Image
1. Special Demosaicing
In this step, the Wide image is interpolated to reconstruct the missing pixel values. Standard demosaicing is applied in the non-overlap area. If the overlap area includes a standard CFA, standard demosaicing is applied there as well. If the overlap area includes a non-standard CFA, a special demosaicing algorithm is applied, depending on the CFA pattern used. In addition, in case the Tele sensor has a CFA, standard demosaicing is applied to reconstruct the missing pixel values in each pixel location and to generate a full RGB color image.
2. Registration Preparation
    • Tele image: a luminance image LumaTeleis calculated from the Tele sensor pixels. If the Tele subset has a Clear sensor,LumaTeleis simply the sensor pixels data. If the Tele subset has a standard CFA,LumaTeleis calculated from the demosaiced Tele image.
    • Wide image: as a first step, in case the Wide overlap CFA permits estimating the luminance component of the image, the luminance component is calculated from the demosaiced Wide image, LumaWide. If the CFA is one of those depicted inFIGS. 4-9, a luminance image is calculated first. If the CFA is one of the CFAs depicted inFIG. 2 orFIG. 3, a luminance image is not calculated. Instead, the following registration step is performed between a weighted average of the demosaiced channels of the Wide image and LumaTele. For convenience, this weighted average image is also denoted LumaWide. For example, if the Wide sensor CFA in the overlap region is as shown inFIG. 2, the demosaiced channels RWideand BWideare averaged to create LumaWideaccording to LumaWide=(f1*RWide+f2*BWide/(f1+f2), where f1 may be f1=1 and f2 may be f2=1.
    • Low-pass filtering is applied on the Tele luminance image in order to match its spatial frequency content to that of the LumaWideimage. This improves the registration performance, as after low-pass filtering the luminance images become more similar. The calculation is LumaTele→Low pass filter→LumaTeleLP, where “LP” denotes an image after low pass filtering.
      3. Registration of LumaWideand LumaTeleLP
This step of the algorithm calculates the mapping between the overlap areas in the two luminance images. The registration step does not depend on the type of CFA used (or the lack thereof), as it is applied on luminance images. The same registration step can therefore be applied on Wide and Tele images captured by standard CFA sensors, as well as by any combination of CFAs or Clear sensor pixels disclosed herein. The registration process chooses either the Wide image or the Tele image to be a primary image. The other image is defined as an auxiliary image. The registration process considers the primary image as the baseline image and registers the overlap area in the auxiliary image to it, by finding for each pixel in the overlap area of the primary image its corresponding pixel in the auxiliary image. The output image point of view is determined according to the primary image point of view (camera angle). Various correspondence metrics could be used for this purpose, among which are a sum of absolute differences and correlation.
In an embodiment, the choice of the Wide image or the Tele image as the primary and auxiliary images is based on the ZF chosen for the output image. If the chosen ZF is larger than the ratio between the focal-lengths of the Tele and Wide cameras, the Tele image is set to be the primary image and the Wide image is set to be the auxiliary image. If the chosen ZF is smaller than or equal to the ratio between the focal-lengths of the Tele and Wide cameras, the Wide image is set to be the primary image and the Tele image is set to be the auxiliary image. In another embodiment independent of a zoom factor, the Wide image is always the primary image and the Tele image is always the auxiliary image. The output of the registration stage is a map relating Wide image pixels indices to matching Tele image pixels indices.
4. Combination into a High Resolution Image
In this final step, the primary and auxiliary images are used to produce a high resolution image. One can distinguish between several cases:
a. If the Wide image is the primary image, and the Tele image was generated from a Clear sensor, LumaWideis calculated and replaced or averaged with LumaTelein the overlap area between the two images to create a luminance output image, matching corresponding pixels according to the registration map LumaOut=c1*LumaWide+c2*LumaTele. The values of c1 and c2 may change between different pixels in the image. Then, RGB values of the output are calculated from LumaOutand RWide, GWide, and BWide.
b. If the Wide image is the primary image and the Tele image was generated from a CFA sensor, LumaTeleis calculated and is combined with LumaWidein the overlap area between the two images, according to the flow described in4a.
c. If the Tele image is the primary image generated from a Clear sensor, the RGB values of the output are calculated from the LumaTeleimage and RWide, GWide, and BWide(matching pixels according to the registration map).
d. If the Tele image is the primary image generated from a CFA sensor, the RGB values of the output (matching pixels according to the registration map) are calculated either by using only the Tele image data, or by also combining data from the Wide image. The choice depends on the zoom factor.
Certain portions of the registered Wide and Tele images are used to generate the output image based on the ZF of the output image. In an embodiment, if the ZF of the output image defines a FOV smaller than the Tele FOV, the fused high resolution image is cropped to the required field of view and digital interpolation is applied to scale up the image to the required output image resolution.
Exemplary and Non-Limiting Pixel Interpolations Specifications for the Overlap Area
FIG. 2
B11B12R13
R21B22B23
R31R32B33

In order to reconstruct the missing R22 pixel, we perform R22=(R31+R13)/2. The same operation is performed for all missing Blue pixels.
FIG. 3
R11B12R13
B21R22B23
R31B32R33

In order to reconstruct the missing B22 pixel, we perform B22=(B12+B21+B32+B23)/4. The same operation is performed for all missing Red pixels.
FIG. 4
Y11C12Y13
C21Y22C23
Y31C32Y33

In order to reconstruct the missing C22 pixel, we perform C22=(C12+C21+C32+C23)/4. The same operation is performed for all missing Yellow pixels.
FIG. 5
Case1: W is Center Pixel
R11B12B13
R21W22R23
B31B32R33

In order to reconstruct the missing 22 pixels, we perform the following:
B22=(B12+B32)/2
R22=(R21+R23)/2
G22=(W22−R22−B22) (assuming that W includes the same amount of R, G and B colors).
Case2: R22 is Center Pixel
B11B12R13R14
W21R22B23W24
B31R32B33R34
B22=(B11 +R33)/2
In order to reconstruct the missing 22 pixels, we perform the following:
W22=(2*W21+W24)/3
G22=(W22−R22−B22) (assuming that W contains the same amount of R, G and B colors). The same operation is performed for Blue as the center pixel.
FIG. 6
B11B12G13R14
R21G22R23B24
G31B32R33G34
R41R42G43B44

In order to reconstruct the missing 22 pixels, we perform the following:
B22=(B12+B32)/2
R22=(R21+R23)/2.
In order to reconstruct the missing 32 pixels, we perform the following:
G32=(2*G31+2*G22+G43)/5
R32=(R41+2*R42+2*R33+R23+R21)/7.
FIG. 7
G11B12R13G14
R21G22B23R24
B31R32G33B34
G41B42R43G44

In order to reconstruct the missing 22 pixels, we perform the following:
B22=(2*B12+2*B23+B31)/5
R22=(2*R21+2*R32+R13)/5
and similarly for all other missing pixels.
FIG. 8
R11B12B13R14
R21G22R23B24
B31B32R33B34
R41R42B43R44
B51G52B53R54

In order to reconstruct the missing 22 pixels, we perform the following:
B22=(2*B12+2*B32+B13)/5
R22=(2*R21+2*R23+R11)/5.
In order to reconstruct the missing 32 pixels, we perform the following:
G32=(2*G22+G52)/3
R32=(2*R33+2*R42+R41+R21+R23)/7.
FIG. 9
R11B12R13B14
B21G22B23R24
R31B32R33B34
B41R42B43R44
R51G52R53B54

In order to reconstruct the missing 22 pixels, we perform the following:
B22=(B12+B32+B23+B21)/4
R22=(R11+R13+R31+R33)/4.
In order to reconstruct the missing 32 pixels, we perform the following:
G32=(2*G22+G52)/3
R32=(R42+R31+R33)/3.
Triple-Aperture Zoom Imaging System with Improved Color Resolution
As mentioned, a multi-aperture zoom or non-zoom imaging system disclosed herein may include more than two apertures. A non-limiting andexemplary embodiment1100 of a triple-aperture imaging system is shown inFIGS. 11A-11B.System1100 includes a first Wide subset camera1102 (with exemplarily X1), a second Wide subset camera (with exemplarily X1.5, and referred to as a “Wide-Tele” subset) and a Tele subset camera (with exemplarily X2).FIG. 11A shows exemplary images captured byimaging system1100, whileFIG. 11B illustrates schematically three sensors marked1102,1104 and1106, which belong respectively to the Wide, Wide-Tele and Tele subsets.FIG. 11B also shows the CFA arrangements in each sensor:sensors1102 and1104 are similar to Wide sensors described above with reference to any ofFIGS. 2-9, in the sense that they include an overlap area and a non-overlap area. The overlap area includes a non-standard CFA. In both Wide sensors, the non-overlap area may have a Clear pattern or a standard CFA. Thus, neither Wide subset is solely a Clear channel camera. The Tele sensor may be Clear or have a standard Bayer CFA or a standard non-Bayer CFA. In use, an image is acquired withimaging system1100 and processed as follows: demosaicing is performed on the overlap area pixels of the Wide and Wide-Tele sensors according to the specific CFA pattern in each overlap area. The overlap and non-overlap subsets of pixels in each of these sensors may need different demos aicing. Exemplary and non-limiting demosaicing specifications for the overlap area for Wide sensors shown inFIGS. 2-9 are given above. The aim is to reconstruct the missing colors in each and every pixel. In cases in which the Tele subset sensor is not Clear only, demosaicing is performed as well. The Wide and Wide-Tele subset color images acquired this way will have colors (in the overlap area) holding higher resolution than that of a standard CFA pattern. Then, the Tele image acquired with the Tele sensor is registered (mapped) into the respective Wide image. The data from the Wide, Wide-Tele and Tele images is then processed to form a high quality zoom image. In cases where the Tele subset is Clear only, high Luma resolution is taken from the Tele sensor and color resolution is taken from the Wide sensor. In cases where the Tele subset includes a CFA, both color and Luma resolution is taken from the Tele subset. In addition, color resolution is taken from the Wide sensor. The resolution of the fused image may be higher than the resolution of both sensors.
While this disclosure has been described in terms of certain embodiments and generally associated methods, alterations and permutations of the embodiments and methods will be apparent to those skilled in the art. For example, multi-aperture imaging systems with more than two Wide or Wide-Tele subsets (and sensors) or with more than one Tele subset (and sensor) may be constructed and used according to principles set forth herein. Similarly, non-zoom multi-aperture imaging systems with more than two sensors, at least one of which has a non-standard CFA, may be constructed and used according to principles set forth herein. The disclosure is to be understood as not limited by the specific embodiments described herein, but only by the scope of the appended claims.

Claims (18)

What is claimed is:
1. A multi-aperture imaging system comprising:
a) a first camera that provides a first camera image, the first camera having a first sensor with a first plurality of sensor pixels covered at least in part with a non-standard color filter array (CFA) used to increase a specific color sampling rate relative to a same color sampling rate in a standard CFA, wherein the nonstandard CFA includes a repetition of a n×n micro-cell where n=4 and wherein each micro-cell includes a BBRR-RBBR-RRBB-BRRB color filter order;
b) a second camera that provides a second camera image, the second camera having a second sensor with a second plurality of sensor pixels, the second plurality of sensor pixels being either Clear or covered with a standard CFA, wherein the second camera image has an overlap area with the first camera image; and
c) a processor configured to process the first and second camera images into a fused output image, wherein in the overlap area pixels of the second camera image are registered with corresponding pixels of the first camera image.
2. A multi-aperture imaging system comprising:
a) a first camera that provides a first camera image, the first camera having a first sensor with a first plurality of sensor pixels covered at least in part with a non-standard color filter array (CFA) used to increase a specific color sampling rate relative to a same color sampling rate in a standard CFA. wherein the non-standard CFA includes a repetition of a n×n micro-cell where n=6 and wherein each micro-cell includes a color filter order selected from the group consisting of RBBRRB-RWRBWB-BBRBRR-RRBRBB-BWBRWR-BRRBBR, BBGRRG-RGRBGB-GBRGRB-RRGBBG-BGBRGR-GRBGBR, RBBRRB-RGRBGB-BBRBRR-RRBRBB-BGBRGR-BRRBBR and RBRBRB-BGBRGR-RBRBRB-BRBRBR-RGRBGB-BRBRBR;
b) a second camera that provides a second camera image, the second camera having a second sensor with a second plurality of sensor pixels, the second plurality of sensor pixels being either Clear or covered with a standard CFA, wherein the second camera image has an overlap area with the first camera image; and
c) a processor configured to process the first and second camera images into a fused output image, wherein in the overlap area pixels of the second camera image are registered with corresponding pixels of the first camera image.
3. The multi-aperture imaging system ofclaim 1, wherein the first camera is a Wide camera with a field of view FOVWand wherein the second camera is a Tele camera with a field of view FOVTsmaller than FOVW.
4. A method of acquiring images by a multi-aperture imaging system, the method comprising:
a) providing a first image generated by a first camera of the imaging system, the first camera having a first field of view (F0V1);
b) providing a second image generated by a second camera of the imaging system, the second camera having a second field of view (FOV2) such that FOV2<FOV1, the second image having an overlap area with the first image; and
c) fusing the first and second images into a fused image, wherein the fusing includes applying a registration process between the first and second images, the registration process including:
i. extracting a first Luma image from the first image
ii. extracting a second Luma image from the second image,
iii. applying low-pass filtering on the second Luma image in order to match its spatial frequency content to that of the first Luma image and to generate a low-pass second Luma image, and
iv. applying registration on the low-pass second Luma image and the first Luma image,
wherein the non-standard CFA includes a repetition of a n×n micro-cell where n=4 and
wherein each micro-cell includes a BBRR-RBBR-RRBB-BRRB color filter order.
5. The method ofclaim 4, wherein n=6 instead of n=4 and wherein instead of each micro-cell including a BBRR-RBBR-RRBB-BRRB color filter order, each micro-cell includes a color filter order selected from the group consisting of RBBRRB-RWRBWB-BBRBRR-RRBRBB-BWBRWR-BRRBBR, BBGRRG-RGRBGB-GBRGRB-RRGBBG-BGBRGR-GRBGBR, RBBRRB-RGRBGB-BBRBRR-RRBRBB-BGBRGR-BRRBBR and RBRBRB-BGBRGR-RBRBRB-BRBRBR-RGRBGB-BRBRBR.
6. A multi-aperture imaging system comprising:
a) a first camera having a first field of view (FOV1), a first zoom factor (X1) and a first sensor with a first filter array (FA);
b) a second camera having a second field of view (FOV2), a second zoom factor (X2) and a second sensor with a second filter array, the first sensor having a first overlap area with the second sensor and a first non-overlap area; and
c) a third camera having a third field of view (FOV3), a third zoom factor (X3) and a third sensor with a third filter array, the second sensor having a second overlap area with the third sensor and a second non-overlap area,
wherein X1 is different from X3 and X2
wherein a FA pattern of the first FA in the first overlap area differs from a FA pattern of the first FA in the first non-overlap area or the second FA in the second non-overlap area,
wherein an FA pattern of the second FA in the second overlap area differs from the FA pattern of the first FA in the first non-overlap area or the second FA in the second non-overlap area.
7. The multi-aperture imaging system of claim 6, wherein the third filter array is one of an RGB (Bayer), RGBE, CYYM, CYGM, RGBW#1, RGBW#2 or RGBW#3 color filter array.
8. The multi-aperture imaging system of claim 6, wherein X3 is greater than X1.
9. The multi-aperture imaging system of claim 6, wherein X3 is greater than X2.
10. The multi-aperture imaging system of claim 6, wherein X2 is greater than X1.
11. The multi-aperture imaging system of claim 6, wherein the second non-overlap area filter array is one of an RGB (Bayer), RGBE, CYYM, CYGM, RGBW#1, RGBW#2 or RGBW#3 color filter array.
12. The multi-aperture imaging system of claim 9, wherein the third filter array is a clear filter array.
13. The multi-aperture imaging system of claim of claim 9, wherein the second non-overlap area filter array is a clear filter array.
14. The multi-aperture imaging system of claim of claim 13, wherein the third color filter array is a Bayer color filter array.
15. The multi-aperture imaging system of claim 9, wherein the first non-overlap area filter array is one of an RGB (Bayer), RGBE, CYYM, CYGM, RGBW#1, RGBW#2 or RGBW#3 color filter array.
16. The multi-aperture imaging system of claim 9, wherein the first non-overlap area color filter array is a Bayer color filter array.
17. A multi-aperture imaging system comprising:
a) a first camera having a first field of view (FOV1) and a first sensor;
b) a second camera having a second field of view (FOV2) and a second sensor with a color filter array (CFA) that includes a red color filter, a green color filter and a blue color filter, the first sensor having a first non-overlap area with the second sensor and a first overlap area with the second sensor; and
c) a third camera having a third field of view (FOV3) and a third sensor with a Bayer color filter array, the second sensor having a second overlap area with the third sensor and a second non-overlap area,
wherein FOV1>FOV2>FOV3
wherein the first sensor comprises a Bayer CFA in the first non-overlap area,
wherein a CFA pattern of the first sensor in the first overlap area differs from the Bayer CFA of the first sensor in the first non-overlap area or a second CFA pattern of the second sensor in the second non-overlap area,
wherein a CFA pattern of the second sensor in the second overlap area differs from the Bayer CFA of the first sensor in the first non-overlap area or the CFA pattern of the second sensor in the second non-overlap area.
18. A multi-aperture imaging system comprising:
a) a first camera having a first field of view (FOV1) and a first sensor with a first color filter array (CFA) that includes a red color filter, a green color filter and a blue color filter;
b) a second camera having a second field of view (FOV2) and a second sensor with a second CFA that includes a red color filter, a green color filter and a blue color filter, the first sensor having a first overlap area with the second sensor and a first non-overlap area; and
c) a third camera having a third field of view (FOV3) and a third sensor with a third color filter array that includes a red color filter, a green color filter and a blue color filter, the second sensor having a second overlap area with the third sensor and a second non-overlap area,
wherein FOV1>FOV2>FOV3
wherein a CFA pattern of the first sensor in the first overlap area differs from a CFA pattern of the first sensor in the first non-overlap area or a second CFA pattern of the second sensor in the second non-overlap area,
wherein a CFA pattern of the second sensor in the second overlap area differs from the CFA pattern of the first sensor in the first non-overlap area or the CFA pattern of the second sensor in the second non-overlap area.
US16/384,2442012-11-282019-04-15High resolution thin multi-aperture imaging systemsActiveUSRE48697E1 (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
US16/384,244USRE48697E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems

Applications Claiming Priority (6)

Application NumberPriority DateFiling DateTitle
US201261730570P2012-11-282012-11-28
US14/386,823US9538152B2 (en)2012-11-282013-11-23High resolution thin multi-aperture imaging systems
PCT/IB2013/060356WO2014083489A1 (en)2012-11-282013-11-23High-resolution thin multi-aperture imaging systems
US15/375,090US9876952B2 (en)2012-11-282016-12-11High resolution thin multi-aperture imaging systems
US16/383,618USRE48444E1 (en)2012-11-282019-04-14High resolution thin multi-aperture imaging systems
US16/384,244USRE48697E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems

Related Parent Applications (1)

Application NumberTitlePriority DateFiling Date
US15/375,090ReissueUS9876952B2 (en)2012-11-282016-12-11High resolution thin multi-aperture imaging systems

Publications (1)

Publication NumberPublication Date
USRE48697E1true USRE48697E1 (en)2021-08-17

Family

ID=50827245

Family Applications (10)

Application NumberTitlePriority DateFiling Date
US14/386,823Active2034-05-19US9538152B2 (en)2012-11-282013-11-23High resolution thin multi-aperture imaging systems
US15/278,046Expired - Fee RelatedUS9581496B2 (en)2012-01-292016-09-28Snapshot spectral imaging based on digital cameras
US15/375,090CeasedUS9876952B2 (en)2012-11-282016-12-11High resolution thin multi-aperture imaging systems
US15/439,091Expired - Fee RelatedUS9927300B2 (en)2012-01-292017-02-22Snapshot spectral imaging based on digital cameras
US15/878,939AbandonedUS20180160040A1 (en)2012-11-282018-01-24High resolution thin multi-aperture imaging systems
US16/383,618Active - ReinstatedUSRE48444E1 (en)2012-11-282019-04-14High resolution thin multi-aperture imaging systems
US16/384,140ActiveUSRE48945E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems
US16/384,244ActiveUSRE48697E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems
US16/384,197Active - ReinstatedUSRE48477E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems
US16/419,604ActiveUSRE49256E1 (en)2012-11-282019-05-22High resolution thin multi-aperture imaging systems

Family Applications Before (7)

Application NumberTitlePriority DateFiling Date
US14/386,823Active2034-05-19US9538152B2 (en)2012-11-282013-11-23High resolution thin multi-aperture imaging systems
US15/278,046Expired - Fee RelatedUS9581496B2 (en)2012-01-292016-09-28Snapshot spectral imaging based on digital cameras
US15/375,090CeasedUS9876952B2 (en)2012-11-282016-12-11High resolution thin multi-aperture imaging systems
US15/439,091Expired - Fee RelatedUS9927300B2 (en)2012-01-292017-02-22Snapshot spectral imaging based on digital cameras
US15/878,939AbandonedUS20180160040A1 (en)2012-11-282018-01-24High resolution thin multi-aperture imaging systems
US16/383,618Active - ReinstatedUSRE48444E1 (en)2012-11-282019-04-14High resolution thin multi-aperture imaging systems
US16/384,140ActiveUSRE48945E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems

Family Applications After (2)

Application NumberTitlePriority DateFiling Date
US16/384,197Active - ReinstatedUSRE48477E1 (en)2012-11-282019-04-15High resolution thin multi-aperture imaging systems
US16/419,604ActiveUSRE49256E1 (en)2012-11-282019-05-22High resolution thin multi-aperture imaging systems

Country Status (4)

CountryLink
US (10)US9538152B2 (en)
CN (6)CN112911252B (en)
IL (4)IL238900B (en)
WO (1)WO2014083489A1 (en)

Families Citing this family (165)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US11792538B2 (en)2008-05-202023-10-17Adeia Imaging LlcCapturing and processing of images including occlusions focused on an image sensor by a lens stack array
DK3876510T3 (en)2008-05-202024-11-11Adeia Imaging Llc CAPTURE AND PROCESSING OF IMAGES USING MONOLITHIC CAMERA ARRAY WITH HETEROGENEOUS IMAGES
US8866920B2 (en)2008-05-202014-10-21Pelican Imaging CorporationCapturing and processing of images using monolithic camera array with heterogeneous imagers
EP2502115A4 (en)2009-11-202013-11-06Pelican Imaging Corp CAPTURE AND IMAGE PROCESSING USING A MONOLITHIC CAMERAS NETWORK EQUIPPED WITH HETEROGENEOUS IMAGERS
US8928793B2 (en)2010-05-122015-01-06Pelican Imaging CorporationImager array interfaces
US8878950B2 (en)2010-12-142014-11-04Pelican Imaging CorporationSystems and methods for synthesizing high resolution images using super-resolution processes
EP2708019B1 (en)2011-05-112019-10-16FotoNation LimitedSystems and methods for transmitting and receiving array camera image data
US20130070060A1 (en)2011-09-192013-03-21Pelican Imaging CorporationSystems and methods for determining depth from multiple views of a scene that include aliasing using hypothesized fusion
CN104081414B (en)2011-09-282017-08-01Fotonation开曼有限公司 Systems and methods for encoding and decoding light field image files
EP2817955B1 (en)2012-02-212018-04-11FotoNation Cayman LimitedSystems and methods for the manipulation of captured light field image data
US9210392B2 (en)2012-05-012015-12-08Pelican Imaging CoporationCamera modules patterned with pi filter groups
JP2015534734A (en)2012-06-282015-12-03ペリカン イメージング コーポレイション System and method for detecting defective camera arrays, optical arrays, and sensors
US20140002674A1 (en)2012-06-302014-01-02Pelican Imaging CorporationSystems and Methods for Manufacturing Camera Modules Using Active Alignment of Lens Stack Arrays and Sensors
PL4296963T3 (en)2012-08-212025-04-28Adeia Imaging LlcMethod for depth detection in images captured using array cameras
WO2014032020A2 (en)2012-08-232014-02-27Pelican Imaging CorporationFeature based high resolution motion estimation from low resolution images captured using an array source
EP4307659A1 (en)2012-09-282024-01-17Adeia Imaging LLCGenerating images from light fields utilizing virtual viewpoints
WO2014078443A1 (en)2012-11-132014-05-22Pelican Imaging CorporationSystems and methods for array camera focal plane control
US9462164B2 (en)2013-02-212016-10-04Pelican Imaging CorporationSystems and methods for generating compressed light field representation data using captured light fields, array geometry, and parallax information
US9374512B2 (en)2013-02-242016-06-21Pelican Imaging CorporationThin form factor computational array cameras and modular array cameras
US9774789B2 (en)2013-03-082017-09-26Fotonation Cayman LimitedSystems and methods for high dynamic range imaging using array cameras
US8866912B2 (en)2013-03-102014-10-21Pelican Imaging CorporationSystem and methods for calibration of an array camera using a single captured image
US9106784B2 (en)2013-03-132015-08-11Pelican Imaging CorporationSystems and methods for controlling aliasing in images captured by an array camera for use in super-resolution processing
WO2014165244A1 (en)2013-03-132014-10-09Pelican Imaging CorporationSystems and methods for synthesizing images from image data captured by an array camera using restricted depth of field depth maps in which depth estimation precision varies
US9124831B2 (en)2013-03-132015-09-01Pelican Imaging CorporationSystem and methods for calibration of an array camera
US9888194B2 (en)2013-03-132018-02-06Fotonation Cayman LimitedArray camera architecture implementing quantum film image sensors
US9578259B2 (en)2013-03-142017-02-21Fotonation Cayman LimitedSystems and methods for reducing motion blur in images or video in ultra low light with array cameras
WO2014153098A1 (en)2013-03-142014-09-25Pelican Imaging CorporationPhotmetric normalization in array cameras
US9438888B2 (en)2013-03-152016-09-06Pelican Imaging CorporationSystems and methods for stereo imaging with camera arrays
US10223838B2 (en)*2013-03-152019-03-05Derek A. DevriesMethod and system of mobile-device control with a plurality of fixed-gradient focused digital cameras
US9497429B2 (en)2013-03-152016-11-15Pelican Imaging CorporationExtended color processing on pelican array cameras
US9445003B1 (en)2013-03-152016-09-13Pelican Imaging CorporationSystems and methods for synthesizing high resolution images using image deconvolution based on motion and depth information
US10122993B2 (en)2013-03-152018-11-06Fotonation LimitedAutofocus system for a conventional camera that uses depth information from an array camera
KR101634516B1 (en)*2013-06-132016-06-28코어포토닉스 리미티드Dual aperture zoom digital camera
KR102081087B1 (en)2013-06-172020-02-25삼성전자주식회사Image adjustment apparatus and image sensor for synchronous image and non-synchronous image
JP2016523389A (en)2013-07-042016-08-08コアフォトニクス リミテッド Compact telephoto lens assembly
US9857568B2 (en)2013-07-042018-01-02Corephotonics Ltd.Miniature telephoto lens assembly
US9880054B2 (en)*2013-07-262018-01-30Inview Technology CorporationSimplified compressive sensing spectral imager
CN108989649B (en)2013-08-012021-03-19核心光电有限公司 Slim multi-aperture imaging system with autofocus and method of use
US9473708B1 (en)2013-08-072016-10-18Google Inc.Devices and methods for an imaging system with a dual camera architecture
US9898856B2 (en)2013-09-272018-02-20Fotonation Cayman LimitedSystems and methods for depth-assisted perspective distortion correction
CN105492954B (en)2013-11-062018-04-27核心光电有限公司 Electromagnetic Actuators for Digital Video Cameras
US9264592B2 (en)2013-11-072016-02-16Pelican Imaging CorporationArray camera modules incorporating independently aligned lens stacks
US10119808B2 (en)2013-11-182018-11-06Fotonation LimitedSystems and methods for estimating depth from projected texture using camera arrays
WO2015081279A1 (en)2013-11-262015-06-04Pelican Imaging CorporationArray camera configurations incorporating multiple constituent array cameras
US10089740B2 (en)2014-03-072018-10-02Fotonation LimitedSystem and methods for depth regularization and semiautomatic interactive matting using RGB-D images
CN103986867B (en)*2014-04-242017-04-05宇龙计算机通信科技(深圳)有限公司A kind of image taking terminal and image capturing method
WO2016004115A1 (en)2014-07-012016-01-07Apple Inc.Mobile camera system
EP3172700B1 (en)*2014-07-212021-04-28Politecnico Di TorinoImproved method for fingerprint matching and camera identification, device and system
KR102157675B1 (en)*2014-07-252020-09-18삼성전자주식회사Image photographing apparatus and methods for photographing image thereof
US9225889B1 (en)2014-08-182015-12-29Entropix, Inc.Photographic image acquisition device and method
TWI600322B (en)2014-09-022017-09-21蘋果公司Method for operating an electronic device with an integratd camera and related electronic device and non-transitory computer readable storage medium
JP2017531976A (en)2014-09-292017-10-26フォトネイション ケイマン リミテッド System and method for dynamically calibrating an array camera
CN106464795A (en)*2014-10-222017-02-22宇龙计算机通信科技(深圳)有限公司Image generation method based on dual camera module and dual camera module
CN112433331B (en)2015-01-032022-07-08核心光电有限公司Miniature telephoto lens module and camera using the same
US9992396B1 (en)2015-02-022018-06-05Apple Inc.Focusing lighting module
US11381747B2 (en)2015-02-132022-07-05Apple Inc.Dual camera magnet arrangement
US9781345B1 (en)2015-02-132017-10-03Apple Inc.Dual camera magnet arrangement
US9846919B2 (en)2015-02-162017-12-19Samsung Electronics Co., Ltd.Data processing device for processing multiple sensor data and system including the same
US9942474B2 (en)2015-04-172018-04-10Fotonation Cayman LimitedSystems and methods for performing high speed video capture and depth estimation using array cameras
EP3286915B1 (en)2015-04-232021-12-08Apple Inc.Digital viewfinder user interface for multiple cameras
WO2017008206A1 (en)2015-07-102017-01-19SZ DJI Technology Co., Ltd.Dual lens system having a light splitter
US10230898B2 (en)*2015-08-132019-03-12Corephotonics Ltd.Dual aperture zoom camera with video support and switching / non-switching dynamic control
US9998666B2 (en)*2015-08-262018-06-12Duke UniversitySystems and methods for burst image deblurring
DE102015217253A1 (en)*2015-09-102017-03-16Robert Bosch Gmbh Environment detecting device for a vehicle and method for capturing an image by means of an environment detecting device
US9769389B2 (en)2015-09-302017-09-19Apple Inc.Mobile zoom using multiple optical image stabilization cameras
US10063783B2 (en)*2015-09-302018-08-28Apple Inc.Mobile zoom using multiple optical image stabilization cameras
US10382698B2 (en)2015-09-302019-08-13Apple Inc.Mobile zoom using multiple optical image stabilization cameras
US10264188B2 (en)2015-09-302019-04-16Apple Inc.Mobile zoom using multiple optical image stabilization cameras
US9774787B2 (en)2015-09-302017-09-26Apple Inc.Mobile zoom using multiple optical image stabilization cameras
US9769419B2 (en)2015-09-302017-09-19Cisco Technology, Inc.Camera system for video conference endpoints
KR102480600B1 (en)*2015-10-212022-12-23삼성전자주식회사Method for low-light image quality enhancement of image processing devices and method of operating an image processing system for performing the method
KR102446442B1 (en)*2015-11-242022-09-23삼성전자주식회사 Digital photographing apparatus and method of operation thereof
JP6711612B2 (en)*2015-12-212020-06-17キヤノン株式会社 Image processing apparatus, image processing method, and imaging apparatus
TWI592646B (en)*2015-12-232017-07-21高準精密工業股份有限公司Optical device
US10359618B2 (en)2016-01-112019-07-23Nikon CorporationMultispectral stereoscopic endoscope system and use of same
CN106990646A (en)2016-01-202017-07-28深圳富泰宏精密工业有限公司 Multi-lens system, its working method and portable electronic device
US10194089B2 (en)*2016-02-082019-01-29Qualcomm IncorporatedSystems and methods for implementing seamless zoom function using multiple cameras
JP7290907B2 (en)*2016-03-102023-06-14シスメックス株式会社 Optical instrument and image formation method
JP2017169111A (en)*2016-03-172017-09-21ソニー株式会社Imaging control apparatus, imaging control method, and imaging apparatus
CN108781278A (en)*2016-03-302018-11-09Lg 电子株式会社Image processing apparatus and mobile terminal
US10539763B2 (en)2016-03-312020-01-21Sony CorporationOptical system, electronic device, camera, method and computer program
US20170318273A1 (en)2016-04-282017-11-02Qualcomm IncorporatedShift-and-match fusion of color and mono images
US10009536B2 (en)2016-06-122018-06-26Apple Inc.Applying a simulated optical effect based on data received from multiple camera sensors
US9936129B2 (en)*2016-06-152018-04-03Obsidian Sensors, Inc.Generating high resolution images
US10290111B2 (en)2016-07-262019-05-14Qualcomm IncorporatedSystems and methods for compositing images
KR102255789B1 (en)2016-08-302021-05-26삼성전자주식회사Optical Module and Optical device Using the same
US10616493B2 (en)*2016-08-312020-04-07Huawei Technologies Co., Ltd.Multi camera system for zoom
KR102547104B1 (en)*2016-09-062023-06-23삼성전자주식회사Electronic device and method for processing plural images
US10297034B2 (en)2016-09-302019-05-21Qualcomm IncorporatedSystems and methods for fusing images
WO2018076460A1 (en)*2016-10-282018-05-03华为技术有限公司Photographing method for terminal, and terminal
US10810720B2 (en)2016-11-032020-10-20Huawei Technologies Co., Ltd.Optical imaging method and apparatus
US9860456B1 (en)*2016-11-112018-01-02Motorola Mobility LlcBayer-clear image fusion for dual camera
WO2018104494A1 (en)*2016-12-082018-06-14Koninklijke Philips N.V.Apparatus and method for determining a refractive index
TWI626620B (en)*2016-12-202018-06-11廣東歐珀移動通訊有限公司 Image processing method and device, electronic device and computer readable storage medium
DE102017204035B3 (en)2017-03-102018-09-13Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. A multi-aperture imaging apparatus, imaging system, and method of providing a multi-aperture imaging apparatus
DE102017206442B4 (en)2017-04-132021-01-28Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Device for imaging partial fields of view, multi-aperture imaging device and method for providing the same
DE102017206429A1 (en)2017-04-132018-10-18Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. A multi-aperture imaging apparatus, imaging system, and method of providing a multi-aperture imaging apparatus
KR102204596B1 (en)*2017-06-022021-01-19삼성전자주식회사Processor, image processing device comprising the same, and method for image processing
DK180859B1 (en)2017-06-042022-05-23Apple Inc USER INTERFACE CAMERA EFFECTS
US10972672B2 (en)*2017-06-052021-04-06Samsung Electronics Co., Ltd.Device having cameras with different focal lengths and a method of implementing cameras with different focal lengths
US10482618B2 (en)2017-08-212019-11-19Fotonation LimitedSystems and methods for hybrid depth regularization
WO2019059632A1 (en)*2017-09-252019-03-28한국과학기술원Method and system for reconstructing hyperspectral image by using prism
US10462370B2 (en)2017-10-032019-10-29Google LlcVideo stabilization
KR102318013B1 (en)2017-10-132021-10-27삼성전자 주식회사Electronic device composing a plurality of images and method
US10337857B2 (en)*2017-10-172019-07-02Raytheon CompanyMulti-spectral boresight alignment methods and systems
US11112964B2 (en)2018-02-092021-09-07Apple Inc.Media capture lock affordance for graphical user interface
KR102418852B1 (en)*2018-02-142022-07-11삼성전자주식회사Electronic device and method for controlling an image display
US12067650B2 (en)*2018-03-202024-08-20Nec CorporationImaging apparatus and imaging method
CN111641778B (en)*2018-03-262021-05-04华为技术有限公司 A shooting method, device and equipment
US10171738B1 (en)2018-05-042019-01-01Google LlcStabilizing video to reduce camera and face movement
US10375313B1 (en)2018-05-072019-08-06Apple Inc.Creative camera
US11722764B2 (en)2018-05-072023-08-08Apple Inc.Creative camera
TWI693828B (en)*2018-06-282020-05-11圓展科技股份有限公司Image-capturing device and method for operating the same
CN108900772A (en)*2018-07-192018-11-27维沃移动通信有限公司A kind of mobile terminal and image capturing method
DK201870623A1 (en)2018-09-112020-04-15Apple Inc.User interfaces for simulated depth effects
CN110896444B (en)*2018-09-132022-01-04深圳市鸿合创新信息技术有限责任公司Double-camera switching method and equipment
CN109163809B (en)*2018-09-252020-10-13北京理工大学Multi-aperture view field partially overlapped dual-band thermal imaging method and device
US11321857B2 (en)2018-09-282022-05-03Apple Inc.Displaying and editing images with depth information
US11128792B2 (en)2018-09-282021-09-21Apple Inc.Capturing and displaying images with multiple focal planes
CN109587455B (en)*2019-02-012024-05-03思特威(上海)电子科技股份有限公司Intelligent zooming image sensor
US11706521B2 (en)2019-05-062023-07-18Apple Inc.User interfaces for capturing and managing visual media
US11770601B2 (en)2019-05-062023-09-26Apple Inc.User interfaces for capturing and managing visual media
US10645294B1 (en)2019-05-062020-05-05Apple Inc.User interfaces for capturing and managing visual media
US11685016B2 (en)2019-08-262023-06-27Lake Country Tool, LlcCooling device for a rotating polishing disk
EP4475551A1 (en)2019-08-262024-12-11Samsung Electronics Co., LtdSystem and method for content enhancement using quad color filter array sensors
US11270110B2 (en)2019-09-172022-03-08Boston Polarimetrics, Inc.Systems and methods for surface modeling using polarization cues
KR102680342B1 (en)*2019-09-232024-07-03삼성전자주식회사Electronic device for performing video hdr process based on image data obtained by plurality of image sensors
WO2021071992A1 (en)2019-10-072021-04-15Boston Polarimetrics, Inc.Systems and methods for augmentation of sensor systems and imaging systems with polarization
KR102625261B1 (en)2019-10-212024-01-12삼성전자주식회사Image device
CN110855883B (en)*2019-11-052021-07-20浙江大华技术股份有限公司Image processing system, method, device equipment and storage medium
CN112839215B (en)*2019-11-222022-05-13华为技术有限公司 Camera module, camera, terminal device, image information determination method and storage medium
DE112020005932T5 (en)2019-11-302023-01-05Boston Polarimetrics, Inc. SYSTEMS AND METHODS FOR SEGMENTATION OF TRANSPARENT OBJECTS USING POLARIZATION CHARACTERISTICS
EP4081933A4 (en)2020-01-292024-03-20Intrinsic Innovation LLCSystems and methods for characterizing object pose detection and measurement systems
US11797863B2 (en)2020-01-302023-10-24Intrinsic Innovation LlcSystems and methods for synthesizing data for training statistical models on different imaging modalities including polarized images
US11509837B2 (en)2020-05-122022-11-22Qualcomm IncorporatedCamera transition blending
US11953700B2 (en)2020-05-272024-04-09Intrinsic Innovation LlcMulti-aperture polarization optical systems using beam splitters
US11151736B1 (en)*2020-05-302021-10-19Center For Quantitative CytometryApparatus and method to obtain unprocessed intrinsic data cubes for generating intrinsic hyper-spectral data cubes
US11054973B1 (en)2020-06-012021-07-06Apple Inc.User interfaces for managing media
CN111683234B (en)*2020-06-042022-05-31深圳开立生物医疗科技股份有限公司 An endoscope imaging method, device and related equipment
US11190689B1 (en)2020-07-292021-11-30Google LlcMulti-camera video stabilization
JP7477158B2 (en)*2020-07-312024-05-01i-PRO株式会社 3-chip camera
JP7693289B2 (en)*2020-08-042025-06-17キヤノン株式会社 Imaging device
US11212449B1 (en)2020-09-252021-12-28Apple Inc.User interfaces for media capture and management
KR102820172B1 (en)*2020-11-262025-06-16삼성전자주식회사Electronic device including image sensor having multi-crop function
TWI831078B (en)*2020-12-112024-02-01國立中央大學Optical system and optical image processing method by applying image restoration
US12069227B2 (en)2021-03-102024-08-20Intrinsic Innovation LlcMulti-modal and multi-spectral stereo camera arrays
US12020455B2 (en)2021-03-102024-06-25Intrinsic Innovation LlcSystems and methods for high dynamic range image reconstruction
US11954886B2 (en)2021-04-152024-04-09Intrinsic Innovation LlcSystems and methods for six-degree of freedom pose estimation of deformable objects
US11290658B1 (en)2021-04-152022-03-29Boston Polarimetrics, Inc.Systems and methods for camera exposure control
US11539876B2 (en)2021-04-302022-12-27Apple Inc.User interfaces for altering visual media
US11778339B2 (en)2021-04-302023-10-03Apple Inc.User interfaces for altering visual media
US12067746B2 (en)2021-05-072024-08-20Intrinsic Innovation LlcSystems and methods for using computer vision to pick up small objects
CN113364975B (en)2021-05-102022-05-20荣耀终端有限公司Image fusion method and electronic equipment
US12112024B2 (en)2021-06-012024-10-08Apple Inc.User interfaces for managing media styles
US12175741B2 (en)2021-06-222024-12-24Intrinsic Innovation LlcSystems and methods for a vision guided end effector
US12340538B2 (en)2021-06-252025-06-24Intrinsic Innovation LlcSystems and methods for generating and using visual datasets for training computer vision models
US12172310B2 (en)2021-06-292024-12-24Intrinsic Innovation LlcSystems and methods for picking objects using 3-D geometry and segmentation
US11689813B2 (en)2021-07-012023-06-27Intrinsic Innovation LlcSystems and methods for high dynamic range imaging using crossed polarizers
US11350048B1 (en)*2021-07-252022-05-31Shenzhen GOODIX Technology Co., Ltd.Luminance-adaptive processing of hexa-deca RGBW color filter arrays in CMOS image sensors
US12293535B2 (en)2021-08-032025-05-06Intrinsic Innovation LlcSystems and methods for training pose estimators in computer vision
CN115908210A (en)*2021-08-052023-04-04中兴通讯股份有限公司Image processing method, electronic device, computer-readable storage medium
US12174281B2 (en)2021-09-282024-12-24Regents Of The University Of MinnesotaSystem and method for control of motion in medical images using aggregation
US11676306B1 (en)*2022-11-052023-06-13Center For Quantitative CytometryEnhancing and mapping the multi-dimentional color differentiation of intrinsic images
CN115880198B (en)*2023-02-012023-07-07荣耀终端有限公司Image processing method and device
US20240373121A1 (en)2023-05-052024-11-07Apple Inc.User interfaces for controlling media capture settings

Citations (322)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4199785A (en)1979-01-051980-04-22Honeywell Inc.Electronic zoom system
JPS59191146A (en)1983-04-131984-10-30Hitachi LtdOptical scanner
US5005083A (en)1988-05-191991-04-02Siemens AktiengesellschaftFLIR system with two optical channels for observing a wide and a narrow field of view
US5032917A (en)1990-03-121991-07-16Rca Licensing CorporationVideo signal blending apparatus
US5041852A (en)1990-10-181991-08-20Fjui Photo Film Co., Ltd.Camera shake correction system
US5051830A (en)1989-08-181991-09-24Messerschmitt-Bolkow-Blohm GmbhDual lens system for electronic camera
US5099263A (en)1984-11-101992-03-24Minolta Camera Kabushiki KaishaVariable focal length camera
JPH04211230A (en)1989-10-201992-08-03Fuji Photo Film Co LtdCompensator for camera shake by hand
US5248971A (en)1992-05-191993-09-28Mandl William JMethod and apparatus for multiplexed oversampled analog to digital modulation
US5287093A (en)1990-06-111994-02-15Matsushita Electric Industrial Co., Ltd.Image processor for producing cross-faded image from first and second image data
US5394520A (en)1991-09-261995-02-28Hughes Aircraft CompanyImaging apparatus for providing a composite digital representation of a scene within a field of regard
US5436660A (en)1991-03-131995-07-25Sharp Kabushiki KaishaImage sensing apparatus having plurality of optical systems and method of operating such apparatus
US5444478A (en)1992-12-291995-08-22U.S. Philips CorporationImage processing method and device for constructing an image from adjacent images
US5459520A (en)1992-12-081995-10-17Sony CorporationElectronic camera with over-sampling filter and method for over-sampling and interpolating electronic camera image data
JPH07318864A (en)1994-05-201995-12-08Sony CorpOptical axis correcting mechanism
JPH08271976A (en)1995-03-291996-10-18Canon Inc camera
US5657402A (en)1991-11-011997-08-12Massachusetts Institute Of TechnologyMethod of creating a high resolution still image using a plurality of images and apparatus for practice of the method
US5682198A (en)1993-06-281997-10-28Canon Kabushiki KaishaDouble eye image pickup apparatus
US5768443A (en)1995-12-191998-06-16Cognex CorporationMethod for coordinating multiple fields of view in multi-camera
US5926190A (en)1996-08-211999-07-20Apple Computer, Inc.Method and system for simulating motion in a computer graphics application using image registration and view interpolation
US5940641A (en)1997-07-101999-08-17Eastman Kodak CompanyExtending panoramic images
US5982951A (en)1996-05-281999-11-09Canon Kabushiki KaishaApparatus and method for combining a plurality of images
WO2000027131A2 (en)1998-10-302000-05-11C3D LimitedImproved methods and apparatus for 3-d imaging
US6101334A (en)1997-02-182000-08-08Mobi CorporationDual focal length camera
US6128416A (en)1993-09-102000-10-03Olympus Optical Co., Ltd.Image composing technique for optimally composing a single image from a plurality of digital images
US6148120A (en)1997-10-302000-11-14Cognex CorporationWarping of focal images to correct correspondence error
US6208765B1 (en)1998-06-192001-03-27Sarnoff CorporationMethod and apparatus for improving image resolution
US6268611B1 (en)1997-12-182001-07-31Cellavision AbFeature-free registration of dissimilar images using a robust similarity metric
JP2002010276A (en)2000-06-222002-01-11Olympus Optical Co LtdImaging apparatus
US20020005902A1 (en)2000-06-022002-01-17Yuen Henry C.Automatic video recording system using wide-and narrow-field cameras
US20020030163A1 (en)2000-08-092002-03-14Zhang Evan Y.W.Image intensifier and LWIR fusion/combination system
US20020063711A1 (en)1999-05-122002-05-30Imove Inc.Camera system with high resolution image inside a wide angle view
US20020075258A1 (en)1999-05-122002-06-20Imove Inc.Camera system with high resolution image inside a wide angle view
US20020122113A1 (en)1999-08-092002-09-05Foote Jonathan T.Method and system for compensating for parallax in multiple camera systems
US20020167741A1 (en)2001-05-142002-11-14Olympus Optical Co., Ltd.Optical apparatus including lens
US20030030729A1 (en)1996-09-122003-02-13Prentice Wayne E.Dual mode digital imaging and camera system
US6549215B2 (en)1999-05-202003-04-15Compaq Computer CorporationSystem and method for displaying images using anamorphic video
US20030093805A1 (en)2001-11-152003-05-15Gin J.M. JackDual camera surveillance and control system
US6611289B1 (en)1999-01-152003-08-26Yanbin YuDigital cameras using multiple sensors with multiple lenses
US20030160886A1 (en)2002-02-222003-08-28Fuji Photo Film Co., Ltd.Digital camera
JP2003298920A (en)2002-03-292003-10-17Fuji Photo Film Co LtdDigital camera
US20030202113A1 (en)2002-04-302003-10-30Eastman Kodak CompanyElectronic still camera and image processing method
US6643416B1 (en)1999-11-302003-11-04Eastman Kodak CompanyMethod for determining necessary resolution for zoom and crop images
US6650368B1 (en)1999-10-262003-11-18Hewlett-Packard Development Company, Lp.Digital camera and method of enhancing zoom effects
US20040008773A1 (en)2002-06-142004-01-15Canon Kabushiki KaishaMultiple image processing and synthesis using background image extraction
US6680748B1 (en)2001-09-272004-01-20Pixim, Inc.,Multi-mode camera and method therefor
US20040012683A1 (en)2001-01-232004-01-22Masafumi YamasakiShake compensating device for optical devices
US20040017386A1 (en)2002-07-262004-01-29Qiong LiuCapturing and producing shared multi-resolution video
US20040027367A1 (en)2002-04-302004-02-12Maurizio PiluMethod of and apparatus for processing zoomed sequential images
US6714665B1 (en)1994-09-022004-03-30Sarnoff CorporationFully automated iris recognition system utilizing wide and narrow fields of view
US20040061788A1 (en)2002-09-262004-04-01Logitech Europe S.A.Multiple mode capture button for a digital camera
US6724421B1 (en)1994-11-222004-04-20Sensormatic Electronics CorporationVideo surveillance system with pilot and slave cameras
JP2004133054A (en)2002-10-082004-04-30Olympus CorpLens barrel
US6738073B2 (en)1999-05-122004-05-18Imove, Inc.Camera system with both a wide angle view and a high resolution view
US6741250B1 (en)2001-02-092004-05-25Be Here CorporationMethod and system for generation of multiple viewpoints into a scene viewed by motionless cameras and for presentation of a view path
US6750903B1 (en)1998-03-052004-06-15Hitachi, Ltd.Super high resolution camera
US20040141065A1 (en)2003-01-172004-07-22Minolta Co., Ltd.Image taking device with bent optical system
US20040141086A1 (en)2003-01-102004-07-22Olympus CorporationElectronic imaging apparatus
US6778207B1 (en)2000-08-072004-08-17Koninklijke Philips Electronics N.V.Fast digital pan tilt zoom video
JP2004245982A (en)2003-02-132004-09-02Minolta Co LtdImaging lens device and electronic equipment equipped with the same
WO2004084542A1 (en)2003-03-202004-09-30Seijiro TomitaPanoramic picture creating method and device, and monitor system using the method and device
US20040240052A1 (en)2003-06-022004-12-02Pentax CorporationMultiple-focal imaging device, and a mobile device having the multiple-focal-length imaging device
US20050013509A1 (en)2003-07-162005-01-20Ramin SamadaniHigh resolution image reconstruction
US20050046740A1 (en)2003-08-292005-03-03Davis Raymond A..Apparatus including a dual camera module and method of using the same
JP2005099265A (en)2003-09-242005-04-14Fujinon CorpImaging apparatus, imaging method, and range finding method
EP1536633A1 (en)2003-11-272005-06-01Sony CorporationPhotographing apparatus and method, supervising system, program and recording medium
US20050157184A1 (en)2004-01-212005-07-21Konica Minolta Photo Imaging, Inc.Image capturing apparatus
US20050168834A1 (en)2002-10-082005-08-04Olympus CorporationCamera
US20050185049A1 (en)2000-07-132005-08-25Yoshiaki IwaiCamera calibration device and method, and computer system
US20050200718A1 (en)2004-03-102005-09-15Samsung Electronics Co., Ltd.Image photographing apparatus and method
WO2006008805A1 (en)2004-07-202006-01-26Five Dimension Co., Ltd.Electronic imaging device
US7002583B2 (en)2000-08-032006-02-21Stono Technologies, LlcDisplay of images and image transitions
US20060054782A1 (en)2004-08-252006-03-16Olsen Richard IApparatus for multiple camera devices and method of operating same
US20060056056A1 (en)2004-07-192006-03-16Grandeye Ltd.Automatically expanding the zoom capability of a wide-angle video camera
US20060067672A1 (en)2004-09-212006-03-30Canon Kabushiki KaishaPhotographing apparatus and control method therefor
US7038716B2 (en)1999-07-302006-05-02Pixim, Inc.Mobile device equipped with digital image sensor
US20060102907A1 (en)2004-11-172006-05-18Samsung Electronics Co., Ltd.Thin film transistor array panel and method for manufacturing the same
US20060125937A1 (en)2004-12-102006-06-15Ambarella, Inc.High resolution zoom: a novel digital zoom for digital video camera
US20060170793A1 (en)2005-02-032006-08-03Eastman Kodak CompanyDigital imaging system with digital zoom warning
US20060175549A1 (en)2005-02-092006-08-10Miller John LHigh and low resolution camera systems and methods
US20060187310A1 (en)2005-02-182006-08-24Janson Wilbert F JrDigital camera using an express zooming mode to provide expedited operation over an extended zoom range
US20060187322A1 (en)2005-02-182006-08-24Janson Wilbert F JrDigital camera using multiple fixed focal length lenses and multiple image sensors to provide an extended zoom range
US20060187338A1 (en)2005-02-182006-08-24May Michael JCamera phone using multiple lenses and image sensors to provide an extended zoom range
JP2006238325A (en)2005-02-282006-09-07Canon Inc Camera system
US20060227236A1 (en)2005-04-082006-10-12Pak Jae YCamera module and method of manufacturing the same
KR20070005946A (en)2005-07-052007-01-11엘지전자 주식회사 Device for detecting position of camera lens for mobile terminal
US20070024737A1 (en)2005-08-012007-02-01Hideo NakamuraImage capturing device having multiple optical systems
US7206136B2 (en)2005-02-182007-04-17Eastman Kodak CompanyDigital camera using multiple lenses and image sensors to provide an extended zoom range
US20070126911A1 (en)2005-11-162007-06-07Sony CorporationImage capture apparatus and zoom lens
US7248294B2 (en)2001-07-102007-07-24Hewlett-Packard Development Company, L.P.Intelligent feature selection and pan zoom control
US20070177025A1 (en)2006-02-012007-08-02Micron Technology, Inc.Method and apparatus minimizing die area and module size for a dual-camera mobile device
US7256944B2 (en)2005-02-182007-08-14Eastman Kodak CompanyCompact image capture assembly using multiple lenses and image sensors to provide an extended zoom range
US20070189386A1 (en)2005-06-222007-08-16Taro ImagawaImage generation apparatus and image generation method
US20070188653A1 (en)2006-02-132007-08-16Pollock David BMulti-lens array system and method
JP2007228006A (en)2006-02-212007-09-06Casio Comput Co Ltd Digital camera
US20070257184A1 (en)2005-08-252007-11-08Olsen Richard ILarge dynamic range cameras
JP2007306282A (en)2006-05-112007-11-22Citizen Electronics Co Ltd The camera module
US20070285550A1 (en)2006-06-132007-12-13Samsung Electronics Co. Ltd.Method and apparatus for taking images using mobile communication terminal with plurality of camera lenses
US20080017557A1 (en)2006-07-192008-01-24Witdouck Calvin JSystem and Method for Sorting Larvae Cocoons
US20080025634A1 (en)2006-07-272008-01-31Eastman Kodak CompanyProducing an extended dynamic range digital image
US20080024614A1 (en)2006-07-252008-01-31Hsiang-Tsun LiMobile device with dual digital camera sensors and methods of using the same
US20080030611A1 (en)2006-08-012008-02-07Jenkins Michael VDual Sensor Video Camera
US20080030592A1 (en)2006-08-012008-02-07Eastman Kodak CompanyProducing digital image with different resolution portions
US7339621B2 (en)2001-12-132008-03-04Psion Teklogix Systems, Inc.Imager output signal processing
US7346217B1 (en)2001-04-252008-03-18Lockheed Martin CorporationDigital image enhancement using successive zoom images
JP2008076485A (en)2006-09-192008-04-03Konica Minolta Opto IncLens barrel and imaging apparatus
US20080084484A1 (en)2006-10-102008-04-10Nikon CorporationCamera
US7365793B2 (en)2002-10-312008-04-29Hewlett-Packard Development Company, L.P.Image capture system and method
US20080106629A1 (en)2006-11-022008-05-08Kurtz Andrew F integrated display having multiple capture devices
US20080117316A1 (en)2006-11-222008-05-22Fujifilm CorporationMulti-eye image pickup device
US20080129831A1 (en)2006-12-042008-06-05Samsung Electronics Co., Ltd.Apparatus amd method for correcting shake of image photographing device
US7411610B2 (en)2002-05-152008-08-12Idelix Software Inc.Method and system for generating detail-in-context video presentations using a graphical user interface
US7424218B2 (en)2005-07-282008-09-09Microsoft CorporationReal-time preview for panoramic images
US20080218612A1 (en)2007-03-092008-09-11Border John NCamera using multiple lenses and image sensors in a rangefinder configuration to provide a range map
US20080219654A1 (en)2007-03-092008-09-11Border John NCamera using multiple lenses and image sensors to provide improved focusing capability
US20080218613A1 (en)2007-03-092008-09-11Janson Wilbert FCamera using multiple lenses and image sensors operable in a default imaging mode
US20080218611A1 (en)2007-03-092008-09-11Parulski Kenneth AMethod and apparatus for operating a dual lens camera to augment an image
CN101276415A (en)2008-03-032008-10-01北京航空航天大学 Device and method for realizing multi-resolution image acquisition with multiple fixed-focus cameras
US7509041B2 (en)2005-08-012009-03-24Eastman Kodak CompanyImage-capturing device having multiple optical systems
US20090086074A1 (en)2007-09-272009-04-02Omnivision Technologies, Inc.Dual mode camera solution apparatus, system, and method
US20090109556A1 (en)2007-10-312009-04-30Sony CorporationLens barrel and imaging apparatus
US20090122195A1 (en)2007-11-092009-05-14Van Baar JeroenSystem and Method for Combining Image Sequences
US20090122406A1 (en)2006-02-062009-05-14Jarkko RouvinenOptical Image Stabilizer Using Gimballed Prism
US7533819B2 (en)2007-01-312009-05-19Symbol Technologies, Inc.Dual camera assembly for an imaging-based bar code reader
US20090128644A1 (en)2007-11-152009-05-21Camp Jr William OSystem and method for generating a photograph
KR20090058229A (en)2007-12-042009-06-09삼성전기주식회사 Dual camera module
WO2009097552A1 (en)2008-02-012009-08-06Omnivision Cdm Optics, Inc.Image data fusion systems and methods
US20090219547A1 (en)2006-02-062009-09-03Petteri KauhanenMethod and Device for Position Sensing in an Imaging System
US20090252484A1 (en)2005-11-142009-10-08Nikon CorporationImage Blur Correction Device and Camera
US20090295949A1 (en)2008-05-282009-12-03Valtion Teknillinen TutkimuskeskusZoom camera arrangement comprising multiple sub-cameras
US20090324135A1 (en)2008-06-272009-12-31Sony CorporationImage processing apparatus, image processing method, program and recording medium
US20100013906A1 (en)2008-07-172010-01-21Border John NZoom by multiple image capture
KR20100008936A (en)2008-07-172010-01-27삼성전자주식회사Portable terminal having dual camera and photographing method using the same
US20100020221A1 (en)2008-07-242010-01-28David John TupmanCamera Interface in a Portable Handheld Electronic Device
US20100060746A9 (en)2004-08-252010-03-11Richard Ian OlsenSimultaneous multiple field of view digital cameras
US20100097444A1 (en)2008-10-162010-04-22Peter LablansCamera System for Creating an Image From a Plurality of Images
US20100103194A1 (en)2008-10-272010-04-29Huawei Technologies Co., Ltd.Method and system for fusing images
US7738016B2 (en)2006-02-062010-06-15Eastman Kodak CompanyDigital camera with dual optical systems
CN201514511U (en)2009-09-082010-06-23华晶科技股份有限公司 periscope lens structure
US20100165131A1 (en)2008-12-252010-07-01Fujifilm CorporationImage stabilizer and optical instrument therewith
US20100196001A1 (en)2006-04-132010-08-05Ryynaenen MattiActuator mechanism and a shutter mechanism
US7773121B1 (en)2006-05-032010-08-10The United States Of America As Represented By The Administrator Of The National Aeronautics And Space AdministrationHigh-resolution, continuous field-of-view (FOV), non-rotating imaging system
JP2010204341A (en)2009-03-032010-09-16Nikon CorpCamera
US20100238327A1 (en)2009-03-192010-09-23Griffith John DDual Sensor Camera
US7809256B2 (en)2005-07-272010-10-05Sony CorporationImaging lens device and imaging apparatus
US20100259836A1 (en)2009-04-132010-10-14Samsung Electronics Co., Ltd.Zoom lens module
WO2010122841A1 (en)2009-04-222010-10-28コニカミノルタオプト株式会社Mirror-lens barrel, image pickup device and method for manufacturing a mirror-lens barrel
US20100277619A1 (en)2009-05-042010-11-04Lawrence ScarffDual Lens Digital Zoom
US20100283842A1 (en)2007-04-192010-11-11Dvp Technologies Ltd.Imaging system and method for use in monitoring a field of regard
US20100321494A1 (en)2009-06-182010-12-23Theia Technologies, LlcCompact dome camera
US20110058320A1 (en)2009-09-092011-03-10Lg Electronics Inc.Mobile terminal
US20110063446A1 (en)2009-09-142011-03-17Mcmordie DavidSaccadic dual-resolution video analytics camera
US20110063417A1 (en)2009-07-172011-03-17Peters Ii Richard AlanSystem and method for automatic calibration of stereo images
US7918398B2 (en)2007-06-042011-04-05Hand Held Products, Inc.Indicia reading terminal having multiple setting imaging lens
US20110080487A1 (en)2008-05-202011-04-07Pelican Imaging CorporationCapturing and processing of images using monolithic camera array with heterogeneous imagers
JP2011085666A (en)2009-10-132011-04-28Tdk Taiwan CorpLens driving device
US20110121421A1 (en)2008-05-092011-05-26Ecole Polytechnique Federate de Lausanne EPFLImage sensor having nonlinear response
US20110128288A1 (en)2009-12-022011-06-02David PetrouRegion of Interest Selector for Visual Queries
US7964835B2 (en)2005-08-252011-06-21Protarius Filo Ag, L.L.C.Digital cameras with direct luminance and chrominance detection
US20110164172A1 (en)2008-09-102011-07-07Panasonic CorporationCamera body and imaging device
US7978239B2 (en)2007-03-012011-07-12Eastman Kodak CompanyDigital camera using multiple image sensors to provide improved temporal sampling
US20110216228A1 (en)*2009-09-142011-09-08Fujifilm CorporationSolid-state image sensing element, method for driving solid-state image sensing element and image pickup device
US20110229054A1 (en)2008-07-232011-09-22Snell LimitedProcessing of images to represent a transition in viewpoint
US20110234798A1 (en)2010-03-262011-09-29Hon Hai Precision Industry Co., Ltd.Camera device and vehicle with same
US20110234881A1 (en)2010-03-252011-09-29Fujifilm CorporationDisplay apparatus
US20110234853A1 (en)2010-03-262011-09-29Fujifilm CorporationImaging apparatus and display apparatus
US20110242286A1 (en)2010-03-312011-10-06Vincent PaceStereoscopic Camera With Automatic Obstruction Removal
US20110242355A1 (en)2010-04-052011-10-06Qualcomm IncorporatedCombining data from multiple image sensors
US20110285730A1 (en)2010-05-212011-11-24Jimmy Kwok Lap LaiControlling Display Updates For Electro-Optic Displays
US20110292258A1 (en)2010-05-282011-12-01C2Cure, Inc.Two sensor imaging systems
US20110298966A1 (en)2010-05-212011-12-08Jena Optronik GmbhCamera having multiple focal lengths
US8094208B2 (en)*2009-07-172012-01-10The Invention Sciennce Fund I, LLCColor filters and demosaicing techniques for digital imaging
US20120026366A1 (en)2009-04-072012-02-02Nextvision Stabilized Systems Ltd.Continuous electronic zoom for an imaging system with multiple imaging devices having different fixed fov
US8115825B2 (en)2008-02-202012-02-14Apple Inc.Electronic device with two image sensors
US20120044372A1 (en)2010-08-182012-02-23Apple Inc.Dual image sensor image processing system and method
US8134115B2 (en)2009-06-232012-03-13Nokia CorporationColor filters for sub-diffraction limit-sized light sensors
US20120062780A1 (en)2010-09-152012-03-15Morihisa TaijiroImaging apparatus and image capturing method
US20120069235A1 (en)2010-09-202012-03-22Canon Kabushiki KaishaImage capture with focus adjustment
US20120075489A1 (en)2010-09-242012-03-29Nishihara H KeithZoom camera image blending technique
US8149327B2 (en)2009-03-132012-04-03Hon Hai Precision Industry Co., Ltd.Camera module with dual lens modules and image sensors
US20120081566A1 (en)*2010-09-302012-04-05Apple Inc.Flash synchronization using image sensor interface timing signal
US8154610B2 (en)2004-12-302012-04-10Intellectual Ventures Ii LlcImage sensor with built-in ISP and dual camera system
US20120105579A1 (en)2010-11-012012-05-03Lg Electronics Inc.Mobile terminal and method of controlling an image photographing therein
US8179457B2 (en)2009-06-232012-05-15Nokia CorporationGradient color filters for sub-diffraction limit sensors
US20120124525A1 (en)2010-11-122012-05-17Kang MingooMethod for providing display image in multimedia device and thereof
US20120154547A1 (en)2010-07-232012-06-21Hidekuni AizawaImaging device, control method thereof, and program
US20120154614A1 (en)2009-08-212012-06-21Akihiro MoriyaCamera-shake correction device
US20120196648A1 (en)2011-01-312012-08-02Havens William HApparatus, system, and method of use of imaging assembly on mobile terminal
US8238695B1 (en)2005-12-152012-08-07Grandeye, Ltd.Data reduction techniques for processing wide-angle video
US20120229663A1 (en)2011-03-082012-09-13Spectral Instruments Imaging , LlcImaging system having primary and auxiliary camera systems
US8274552B2 (en)2010-12-272012-09-253Dmedia CorporationPrimary and auxiliary image capture devices for image processing and related methods
US20120249815A1 (en)2011-03-292012-10-04Mircrosoft CorporationFolded imaging path camera
CN102739949A (en)2011-04-012012-10-17张可伦Control method for multi-lens camera and multi-lens device
EP2523450A1 (en)2011-05-102012-11-14HTC CorporationHandheld electronic device with dual image capturing method and computer program product
US20120287315A1 (en)2011-05-102012-11-15Htc CorporationHandheld Electronic Device, Dual Image Capturing Method Applying for Thereof, and Computer Program Production for Load into Thereof
US20120320467A1 (en)2011-06-142012-12-20Samsung Electro-Mechanics Co., Ltd.Image photographing device
US20130002928A1 (en)2011-06-282013-01-03Canon Kabushiki KaishaAdjustment of imaging properties for an imaging assembly having light-field optics
US20130016427A1 (en)2011-07-152013-01-17Mitsumi Electric Co., LtdLens holder driving device capable of avoiding deleterious effect on hall elements
US8390729B2 (en)2007-09-052013-03-05International Business Machines CorporationMethod and apparatus for providing a video image having multiple focal lengths
US8391697B2 (en)2009-09-302013-03-05Lg Electronics Inc.Mobile terminal and method of controlling the operation of the mobile terminal
US20130063629A1 (en)2011-09-092013-03-14Apple Inc.Digital camera with light splitter
US8400555B1 (en)2009-12-012013-03-19Adobe Systems IncorporatedFocused plenoptic camera employing microlenses with different focal lengths
US20130076922A1 (en)2011-07-282013-03-28Canon Kabushiki KaishaCorrecting optical device and image pickup apparatus
CN103024272A (en)2012-12-142013-04-03广东欧珀移动通信有限公司 Dual-camera control device, method, system and mobile terminal for mobile terminal
US20130093842A1 (en)2011-10-122013-04-18Canon Kabushiki KaishaImage-capturing device
US20130094126A1 (en)2011-10-142013-04-18Benjamin M. RappoportElectronic Devices Having Displays with Openings
US20130113894A1 (en)2010-07-132013-05-09Ram Srikanth MirlayVariable 3-d camera assembly for still photography
US8439265B2 (en)2009-06-162013-05-14Intel CorporationCamera applications in a handheld device
US8446484B2 (en)2010-04-212013-05-21Nokia CorporationImage processing architecture with pre-scaler
US20130136355A1 (en)*2011-11-292013-05-30Microsoft CorporationAutomatic Estimation and Correction of Vignetting
JP2013106289A (en)2011-11-162013-05-30Konica Minolta Advanced Layers IncImaging apparatus
US20130135445A1 (en)2010-12-272013-05-303Dmedia CorporationPrimary and auxiliary image capture devices for image processing and related methods
US20130155176A1 (en)2011-12-162013-06-20Polycom, Inc.Reflective and Refractive Solutions to Providing Direct Eye Contact Videoconferencing
US8483452B2 (en)2010-03-092013-07-09Sony CorporationImage processing apparatus, image processing method, and program
US20130182150A1 (en)2012-01-122013-07-18Olympus CorporationImage Pickup Apparatus
US20130201360A1 (en)2012-02-032013-08-08Samsung Electronics Co., Ltd.Method of changing an operation mode of a camera image sensor
US20130202273A1 (en)2012-02-072013-08-08Canon Kabushiki KaishaMethod and device for transitioning between an image of a first video sequence and an image of a second video sequence
US8514491B2 (en)2009-11-202013-08-20Pelican Imaging CorporationCapturing and processing of images using monolithic camera array with heterogeneous imagers
US20130235224A1 (en)2012-03-092013-09-12Minwoo ParkVideo camera providing a composite video sequence
US20130250150A1 (en)2010-05-032013-09-26Michael R. MaloneDevices and methods for high-resolution image and video capture
US8547389B2 (en)2010-04-052013-10-01Microsoft CorporationCapturing image structure detail from a first image and color from a second image
US20130258044A1 (en)2012-03-302013-10-03Zetta Research And Development Llc - Forc SeriesMulti-lens camera
US20130270419A1 (en)2012-04-122013-10-17Digitaloptics CorporationCompact Camera Module
US20130278785A1 (en)2012-04-202013-10-24Hoya CorporationImaging apparatus
US8587691B2 (en)2008-11-282013-11-19Samsung Electronics Co., Ltd.Photographing apparatus and method for dynamic range adjustment and stereography
US20130321668A1 (en)2012-05-302013-12-05Ajith KamathPlural Focal-Plane Imaging
US8619148B1 (en)2012-01-042013-12-31Audience, Inc.Image correction after combining images from multiple cameras
US20140009631A1 (en)2012-07-062014-01-09Apple Inc.Vcm ois actuator module
KR20140014787A (en)2012-07-262014-02-06엘지이노텍 주식회사Camera module
US20140049615A1 (en)2010-12-282014-02-20Sony CorporationLens protection device, lens unit and image capture device
US8660420B2 (en)2011-12-132014-02-25Hon Hai Precision Industry Co., Ltd.Adjustable dual lens camera
US20140118584A1 (en)2012-10-312014-05-01Jess Jan Young LeeDevices, methods, and systems for expanded-field-of-view image and video capture
WO2014072818A2 (en)2012-11-082014-05-15Dynaoptics Pte Ltd.Miniature optical zoom lens
CN103841404A (en)2014-03-182014-06-04江西省一元数码科技有限公司Novel three-dimensional image shooting module
US20140192238A1 (en)2010-10-242014-07-10Linx Computational Imaging Ltd.System and Method for Imaging and Image Processing
US20140192253A1 (en)2013-01-052014-07-10Tinz Optics, Inc.Methods and apparatus for capturing and/or processing images
US20140218587A1 (en)2013-02-072014-08-07Motorola Mobility LlcDouble sided camera module
US8803990B2 (en)2011-01-252014-08-12Aptina Imaging CorporationImaging system with multiple sensors for producing high-dynamic-range images
US20140313316A1 (en)2013-01-302014-10-23SeeScan, Inc.Adjustable variable resolution inspection systems and methods using multiple image sensors
US8896655B2 (en)2010-08-312014-11-25Cisco Technology, Inc.System and method for providing depth adaptive video conferencing
US20140362242A1 (en)2012-11-162014-12-11Panasonic Intellectual Property Corporation Of AmericaCamera drive device
KR20140144126A (en)2013-06-102014-12-18삼성전자주식회사Camera lens assembly
US20150002683A1 (en)2013-07-012015-01-01Tdk Taiwan Corp.Optical Anti-Shake Apparatus with Switchable Light Path
US20150042870A1 (en)2013-08-082015-02-12Apple Inc.Mirror tilt actuation
US8976255B2 (en)2011-02-282015-03-10Olympus Imaging Corp.Imaging apparatus
US20150070781A1 (en)2013-09-122015-03-12Hong Kong Applied Science and Technology Research Institute, Co.Multi-lens imaging module and actuator with auto-focus adjustment
US20150092066A1 (en)2013-09-302015-04-02Google Inc.Using a Second Camera to Adjust Settings of First Camera
US20150103147A1 (en)2013-10-142015-04-16Etron Technology, Inc.Image calibration system and calibration method of a stereo camera
US9019387B2 (en)2011-03-182015-04-28Ricoh Company, Ltd.Imaging device and method of obtaining image
US9025073B2 (en)2007-12-042015-05-05Nan Chang O-Film Optoelectronics Technology LtdCompact camera optics
US20150138381A1 (en)2012-06-292015-05-21Lg Innotek Co., Ltd.Camera module
US9041835B2 (en)2010-11-102015-05-26Canon Kabushiki KaishaSelective combining of image data
US20150154776A1 (en)2013-12-032015-06-04Huawei Technologies Co., Ltd.Image splicing method and apparatus
US20150162048A1 (en)2012-06-112015-06-11Sony Computer Entertainment Inc.Image generation device and image generation method
US20150195458A1 (en)2012-07-122015-07-09Sony CorporationImage shake correction device and image shake correction method and image pickup device
US20150215516A1 (en)2014-01-272015-07-30Ratheon CompanyImaging system and methods with variable lateral magnification
US20150237280A1 (en)2014-02-192015-08-20Samsung Electronics Co., Ltd.Image processing device with multiple image signal processors and image processing method
US20150244906A1 (en)2014-02-272015-08-27Tdk Taiwan Corp.Reflecting mirror structure for camera module
US20150242994A1 (en)2010-01-282015-08-27Pathway Innovations And Technologies, Inc.Method and system for accelerating video preview digital camera
US20150253647A1 (en)2014-03-072015-09-10Apple Inc.Folded camera lens systems
US20150253543A1 (en)2014-03-072015-09-10Apple Inc.Folded telephoto camera lens system
US9137447B2 (en)2013-07-312015-09-15Panasonic Intellectual Property Management Co., Ltd.Imaging apparatus that generates an image including an emphasized in-focus part of a captured image
US20150261299A1 (en)2012-07-122015-09-17Dual Aperture, Inc.Gesture-based user interface
US20150271471A1 (en)2014-03-192015-09-24Htc CorporationBlocking detection method for camera and electronic apparatus with cameras
US20150281678A1 (en)2014-03-252015-10-01Samsung Electronics Co., Ltd.Image generating device, 3d image display system having the same and control methods thereof
US20150286033A1 (en)2014-04-042015-10-08Qualcomm IncorporatedAuto-focus in low-profile folded optics multi-camera system
KR20150118012A (en)2014-04-112015-10-21삼성전기주식회사Camera module
US20150316744A1 (en)2014-04-302015-11-05Lite-On Electronics (Guangzhou) LimitedVoice coil motor array module
US9185291B1 (en)2013-06-132015-11-10Corephotonics Ltd.Dual aperture zoom digital camera
US20150334309A1 (en)2014-05-162015-11-19Htc CorporationHandheld electronic apparatus, image capturing apparatus and image capturing method thereof
US9215385B2 (en)2009-06-222015-12-15Ominivision Technologies, Inc.System and method for an image sensor operable in multiple video standards
US9215377B2 (en)2013-12-042015-12-15Nokia Technologies OyDigital zoom with sensor mode change
US20160044250A1 (en)2014-08-102016-02-11Corephotonics Ltd.Zoom dual-aperture camera with folded lens
US9270875B2 (en)2011-07-202016-02-23Broadcom CorporationDual image capture processing
US20160070088A1 (en)2014-09-102016-03-10Hoya CorporationImaging apparatus having bending optical element
US9286680B1 (en)2014-12-232016-03-15Futurewei Technologies, Inc.Computational multi-camera adjustment for smooth view switching and zooming
US9344626B2 (en)2013-11-182016-05-17Apple Inc.Modeless video and still frame capture using interleaved frames of video and still resolutions
US20160154202A1 (en)2013-05-272016-06-02Fraunhofer-Gesellschaft Zur Foerderung Der Angewandten Forschung E.V.Optical structure with ridges arranged at the same and method for producing the same
US20160154204A1 (en)2014-11-282016-06-02Samsung Electro-Mechanics Co., Ltd.Camera module
US9360671B1 (en)2014-06-092016-06-07Google Inc.Systems and methods for image zoom
US9369621B2 (en)2010-05-032016-06-14Invisage Technologies, Inc.Devices and methods for high-resolution image and video capture
US20160212358A1 (en)2011-11-142016-07-21Sony CorporationInformation processing apparatus, method, and non-transitory computer-readable medium
US20160212418A1 (en)2015-01-192016-07-21Aquifi, Inc.Multiple camera system with auto recalibration
US9413930B2 (en)2013-03-142016-08-09Joergen GeerdsCamera system
US9420180B2 (en)2012-05-222016-08-16Zte CorporationMethod and device for switching between double cameras
US20160241751A1 (en)2013-09-232016-08-18Lg Innotek Co., Ltd.Camera Module and Manufacturing Method for Same
US9438792B2 (en)2013-05-172016-09-06Canon Kabushiki KaishaImage-processing apparatus and image-processing method for generating a virtual angle of view
US20160295112A1 (en)2012-10-192016-10-06Qualcomm IncorporatedMulti-camera system using folded optics
US20160301840A1 (en)2013-12-062016-10-13Huawei Device Co., Ltd.Photographing Method for Dual-Lens Device and Dual-Lens Device
US9485432B1 (en)2015-04-292016-11-01Uurmi Systems Private LimitedMethods, systems and apparatuses for dual-camera based zooming
US20160353012A1 (en)2015-05-252016-12-01Htc CorporationZooming control method for camera and electronic apparatus with camera
US20170019616A1 (en)2014-05-152017-01-19Huawei Technologies Co., Ltd.Multi-frame noise reduction method, and terminal
WO2017025822A1 (en)2015-08-132017-02-16Corephotonics Ltd.Dual aperture zoom camera with video support and switching / non-switching dynamic control
US20170070731A1 (en)2015-09-042017-03-09Apple Inc.Single And Multi-Camera Calibration
WO2017037688A1 (en)2015-09-062017-03-09Corephotonics Ltd.Auto focus and optical image stabilization with roll compensation in a compact folded camera
US9618748B2 (en)2008-04-022017-04-11Esight Corp.Apparatus and method for a dynamic “region of interest” in a display system
US20170187962A1 (en)2015-12-232017-06-29Samsung Electronics Co., Ltd.Imaging device module, user terminal apparatus including the imaging device module, and a method of operating the imaging device module
US20170214846A1 (en)2014-09-302017-07-27Huawei Technologies Co., Ltd.Auto-Focus Method and Apparatus and Electronic Device
US20170214866A1 (en)2013-12-062017-07-27Huawei Device Co., Ltd.Image Generating Method and Dual-Lens Device
US9723220B2 (en)2013-05-132017-08-01Canon Kabushiki KaishaImaging apparatus, control method, and program
US9736391B2 (en)2013-12-062017-08-15Huawei Device Co., Ltd.Photographing method of dual-lens device, and dual-lens device
US9736365B2 (en)2013-10-262017-08-15Light Labs Inc.Zoom related methods and apparatus
US20170242225A1 (en)2014-11-192017-08-24Orlo James FiskeThin optical system and camera
US9768310B2 (en)2014-11-252017-09-19Samsung Display Co., Ltd.Thin film transistor, organic light-emitting diode display including the same, and manufacturing method thereof
US20170289458A1 (en)2016-03-312017-10-05Lg Electronics Inc.Mobile terminal and method for controlling the same
US9800798B2 (en)2015-02-132017-10-24Qualcomm IncorporatedSystems and methods for power optimization for imaging devices with dual cameras
US9851803B2 (en)2013-03-152017-12-26Eyecam, LLCAutonomous computing and telecommunications head-up displays glasses
US20180013944A1 (en)2016-02-262018-01-11Essential Products, Inc.Image capture with a camera integrated display
US20180017844A1 (en)2016-07-122018-01-18Tdk Taiwan Corp.Lens driving module
US20180024329A1 (en)2015-04-162018-01-25Corephotonics Ltd.Auto focus and optical image stabilization in a compact folded camera
US9894287B2 (en)2013-12-062018-02-13Huawei Device (Dongguan) Co., Ltd.Method and apparatus for acquiring a high dynamic image using multiple cameras
US9900522B2 (en)2010-12-012018-02-20Magna Electronics Inc.System and method of establishing a multi-camera image using pixel remapping
US20180059379A1 (en)2016-08-262018-03-01Largan Precision Co., Ltd.Optical path folding element, imaging lens module and electronic device
US20180120674A1 (en)2015-06-242018-05-03Corephotonics Ltd.Low profile tri-axis actuator for folded lens camera
US20180150973A1 (en)2015-07-152018-05-31Huawei Technologies Co., Ltd.Method and Apparatus for Calculating Dual-Camera Relative Position, and Device
US20180176426A1 (en)2016-12-202018-06-21Guangdong Oppo Mobile Telecommunications Corp., Ltd.Bracket assembly for mobile terminal and mobile terminal
US20180198897A1 (en)2017-01-112018-07-12Guangdong Oppo Mobile Telecomminications Corp., Lt D.Camera module and mobile terminal
WO2018130898A1 (en)2017-01-122018-07-19Corephotonics Ltd.Compact folded camera
US20180241922A1 (en)2017-02-232018-08-23Qualcomm IncorporatedAdjustment for cameras for low power mode operation
US20180295292A1 (en)2017-04-102018-10-11Samsung Electronics Co., LtdMethod and electronic device for focus control
US20180300901A1 (en)2017-04-182018-10-18Panasonic Intellectual Property Management Co., Ltd.Camera calibration method, recording medium, and camera calibration apparatus
US20190121103A1 (en)2016-05-302019-04-25Corephotonics Ltd.Rotational ball-guided voice coil motor

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4898467A (en)*1988-11-071990-02-06Eastman Kodak CompanySpectrometer apparatus for self-calibrating color imaging apparatus
KR0120397B1 (en)*1992-04-281997-10-22나카무라 히사오Image display apparatus
US5374956A (en)*1992-05-291994-12-20Eastman Kodak CompanyElectronic imaging apparatus with dithered color filter array
US5303028A (en)*1992-08-241994-04-12Eastman Kodak CompanySpectrometer apparatus for calibrating color imaging apparatus
US5760955A (en)*1995-04-061998-06-02Philips Electronics North America CorporationRear projection screen with reduced speckle
US5629764A (en)*1995-07-071997-05-13Advanced Precision Technology, Inc.Prism fingerprint sensor using a holographic optical element
JP3777893B2 (en)*1999-08-052006-05-24セイコーエプソン株式会社 Liquid crystal display
JP4068869B2 (en)*2002-03-292008-03-26富士フイルム株式会社 Digital camera
CN1666229A (en)*2002-07-042005-09-07皇家飞利浦电子股份有限公司Method and apparatus for signal processing, computer program product, computing system and camera
WO2006011268A1 (en)*2004-07-232006-02-02Hitachi Chemical Co., Ltd.Diffraction type condensing film and surface light source device using the same
KR100982685B1 (en)*2005-10-132010-09-17알제이에스 테크놀로지, 인코포레이티드 System and method for high performance color filter mosaic array
US7456881B2 (en)*2006-01-122008-11-25Aptina Imaging CorporationMethod and apparatus for producing Bayer color mosaic interpolation for imagers
US8582855B2 (en)*2007-01-042013-11-12Koninklijke Philips N.V.Apparatus, method and computer program for producing a corrected image of a region of interest from acquired projection data
GB2449752A (en)*2007-05-262008-12-03Norman Matheson LindsayElectro-optical sensors
US7745779B2 (en)*2008-02-082010-06-29Aptina Imaging CorporationColor pixel arrays having common color filters for multiple adjacent pixels for use in CMOS imagers
EP2284800B1 (en)*2009-07-232018-09-05Samsung Electronics Co., Ltd.Method and system for creating an image
KR20110029217A (en)*2009-09-152011-03-23삼성전자주식회사 Image sensor for outputting RGB signal through internal conversion and image processing device including the same
US8565522B2 (en)*2010-05-212013-10-22Seiko Epson CorporationEnhancing color images

Patent Citations (341)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4199785A (en)1979-01-051980-04-22Honeywell Inc.Electronic zoom system
JPS59191146A (en)1983-04-131984-10-30Hitachi LtdOptical scanner
US5099263A (en)1984-11-101992-03-24Minolta Camera Kabushiki KaishaVariable focal length camera
US5005083A (en)1988-05-191991-04-02Siemens AktiengesellschaftFLIR system with two optical channels for observing a wide and a narrow field of view
US5051830A (en)1989-08-181991-09-24Messerschmitt-Bolkow-Blohm GmbhDual lens system for electronic camera
JPH04211230A (en)1989-10-201992-08-03Fuji Photo Film Co LtdCompensator for camera shake by hand
US5032917A (en)1990-03-121991-07-16Rca Licensing CorporationVideo signal blending apparatus
US5287093A (en)1990-06-111994-02-15Matsushita Electric Industrial Co., Ltd.Image processor for producing cross-faded image from first and second image data
US5041852A (en)1990-10-181991-08-20Fjui Photo Film Co., Ltd.Camera shake correction system
US5436660A (en)1991-03-131995-07-25Sharp Kabushiki KaishaImage sensing apparatus having plurality of optical systems and method of operating such apparatus
US5394520A (en)1991-09-261995-02-28Hughes Aircraft CompanyImaging apparatus for providing a composite digital representation of a scene within a field of regard
US5657402A (en)1991-11-011997-08-12Massachusetts Institute Of TechnologyMethod of creating a high resolution still image using a plurality of images and apparatus for practice of the method
US5248971A (en)1992-05-191993-09-28Mandl William JMethod and apparatus for multiplexed oversampled analog to digital modulation
US5459520A (en)1992-12-081995-10-17Sony CorporationElectronic camera with over-sampling filter and method for over-sampling and interpolating electronic camera image data
US5444478A (en)1992-12-291995-08-22U.S. Philips CorporationImage processing method and device for constructing an image from adjacent images
US5682198A (en)1993-06-281997-10-28Canon Kabushiki KaishaDouble eye image pickup apparatus
US6128416A (en)1993-09-102000-10-03Olympus Optical Co., Ltd.Image composing technique for optimally composing a single image from a plurality of digital images
JPH07318864A (en)1994-05-201995-12-08Sony CorpOptical axis correcting mechanism
US6714665B1 (en)1994-09-022004-03-30Sarnoff CorporationFully automated iris recognition system utilizing wide and narrow fields of view
US6724421B1 (en)1994-11-222004-04-20Sensormatic Electronics CorporationVideo surveillance system with pilot and slave cameras
JPH08271976A (en)1995-03-291996-10-18Canon Inc camera
US5768443A (en)1995-12-191998-06-16Cognex CorporationMethod for coordinating multiple fields of view in multi-camera
US5982951A (en)1996-05-281999-11-09Canon Kabushiki KaishaApparatus and method for combining a plurality of images
US5926190A (en)1996-08-211999-07-20Apple Computer, Inc.Method and system for simulating motion in a computer graphics application using image registration and view interpolation
US20030030729A1 (en)1996-09-122003-02-13Prentice Wayne E.Dual mode digital imaging and camera system
US6101334A (en)1997-02-182000-08-08Mobi CorporationDual focal length camera
US5940641A (en)1997-07-101999-08-17Eastman Kodak CompanyExtending panoramic images
US6148120A (en)1997-10-302000-11-14Cognex CorporationWarping of focal images to correct correspondence error
US6268611B1 (en)1997-12-182001-07-31Cellavision AbFeature-free registration of dissimilar images using a robust similarity metric
US6750903B1 (en)1998-03-052004-06-15Hitachi, Ltd.Super high resolution camera
US6208765B1 (en)1998-06-192001-03-27Sarnoff CorporationMethod and apparatus for improving image resolution
WO2000027131A2 (en)1998-10-302000-05-11C3D LimitedImproved methods and apparatus for 3-d imaging
US6611289B1 (en)1999-01-152003-08-26Yanbin YuDigital cameras using multiple sensors with multiple lenses
US6738073B2 (en)1999-05-122004-05-18Imove, Inc.Camera system with both a wide angle view and a high resolution view
US20020063711A1 (en)1999-05-122002-05-30Imove Inc.Camera system with high resolution image inside a wide angle view
US20020075258A1 (en)1999-05-122002-06-20Imove Inc.Camera system with high resolution image inside a wide angle view
US6549215B2 (en)1999-05-202003-04-15Compaq Computer CorporationSystem and method for displaying images using anamorphic video
US7038716B2 (en)1999-07-302006-05-02Pixim, Inc.Mobile device equipped with digital image sensor
US20020122113A1 (en)1999-08-092002-09-05Foote Jonathan T.Method and system for compensating for parallax in multiple camera systems
US7015954B1 (en)1999-08-092006-03-21Fuji Xerox Co., Ltd.Automatic video system using multiple cameras
US6650368B1 (en)1999-10-262003-11-18Hewlett-Packard Development Company, Lp.Digital camera and method of enhancing zoom effects
US6643416B1 (en)1999-11-302003-11-04Eastman Kodak CompanyMethod for determining necessary resolution for zoom and crop images
US20020005902A1 (en)2000-06-022002-01-17Yuen Henry C.Automatic video recording system using wide-and narrow-field cameras
JP2002010276A (en)2000-06-222002-01-11Olympus Optical Co LtdImaging apparatus
US20050185049A1 (en)2000-07-132005-08-25Yoshiaki IwaiCamera calibration device and method, and computer system
US7002583B2 (en)2000-08-032006-02-21Stono Technologies, LlcDisplay of images and image transitions
US6778207B1 (en)2000-08-072004-08-17Koninklijke Philips Electronics N.V.Fast digital pan tilt zoom video
US20020030163A1 (en)2000-08-092002-03-14Zhang Evan Y.W.Image intensifier and LWIR fusion/combination system
US20040012683A1 (en)2001-01-232004-01-22Masafumi YamasakiShake compensating device for optical devices
US6741250B1 (en)2001-02-092004-05-25Be Here CorporationMethod and system for generation of multiple viewpoints into a scene viewed by motionless cameras and for presentation of a view path
US7346217B1 (en)2001-04-252008-03-18Lockheed Martin CorporationDigital image enhancement using successive zoom images
US20020167741A1 (en)2001-05-142002-11-14Olympus Optical Co., Ltd.Optical apparatus including lens
US7248294B2 (en)2001-07-102007-07-24Hewlett-Packard Development Company, L.P.Intelligent feature selection and pan zoom control
US6680748B1 (en)2001-09-272004-01-20Pixim, Inc.,Multi-mode camera and method therefor
US20030093805A1 (en)2001-11-152003-05-15Gin J.M. JackDual camera surveillance and control system
US7339621B2 (en)2001-12-132008-03-04Psion Teklogix Systems, Inc.Imager output signal processing
US20030160886A1 (en)2002-02-222003-08-28Fuji Photo Film Co., Ltd.Digital camera
JP2003298920A (en)2002-03-292003-10-17Fuji Photo Film Co LtdDigital camera
US20040027367A1 (en)2002-04-302004-02-12Maurizio PiluMethod of and apparatus for processing zoomed sequential images
US20030202113A1 (en)2002-04-302003-10-30Eastman Kodak CompanyElectronic still camera and image processing method
US7411610B2 (en)2002-05-152008-08-12Idelix Software Inc.Method and system for generating detail-in-context video presentations using a graphical user interface
US20040008773A1 (en)2002-06-142004-01-15Canon Kabushiki KaishaMultiple image processing and synthesis using background image extraction
US20040017386A1 (en)2002-07-262004-01-29Qiong LiuCapturing and producing shared multi-resolution video
US20040061788A1 (en)2002-09-262004-04-01Logitech Europe S.A.Multiple mode capture button for a digital camera
US20050168834A1 (en)2002-10-082005-08-04Olympus CorporationCamera
JP2004133054A (en)2002-10-082004-04-30Olympus CorpLens barrel
US7365793B2 (en)2002-10-312008-04-29Hewlett-Packard Development Company, L.P.Image capture system and method
US20040141086A1 (en)2003-01-102004-07-22Olympus CorporationElectronic imaging apparatus
US20040141065A1 (en)2003-01-172004-07-22Minolta Co., Ltd.Image taking device with bent optical system
JP2004245982A (en)2003-02-132004-09-02Minolta Co LtdImaging lens device and electronic equipment equipped with the same
WO2004084542A1 (en)2003-03-202004-09-30Seijiro TomitaPanoramic picture creating method and device, and monitor system using the method and device
US20040240052A1 (en)2003-06-022004-12-02Pentax CorporationMultiple-focal imaging device, and a mobile device having the multiple-focal-length imaging device
US20050013509A1 (en)2003-07-162005-01-20Ramin SamadaniHigh resolution image reconstruction
US7619683B2 (en)2003-08-292009-11-17Aptina Imaging CorporationApparatus including a dual camera module and method of using the same
US20050046740A1 (en)2003-08-292005-03-03Davis Raymond A..Apparatus including a dual camera module and method of using the same
JP2005099265A (en)2003-09-242005-04-14Fujinon CorpImaging apparatus, imaging method, and range finding method
EP1536633A1 (en)2003-11-272005-06-01Sony CorporationPhotographing apparatus and method, supervising system, program and recording medium
US20050157184A1 (en)2004-01-212005-07-21Konica Minolta Photo Imaging, Inc.Image capturing apparatus
US20050200718A1 (en)2004-03-102005-09-15Samsung Electronics Co., Ltd.Image photographing apparatus and method
US20060056056A1 (en)2004-07-192006-03-16Grandeye Ltd.Automatically expanding the zoom capability of a wide-angle video camera
EP1780567A1 (en)2004-07-202007-05-02Five Dimension Co., Ltd.Electronic imaging device
WO2006008805A1 (en)2004-07-202006-01-26Five Dimension Co., Ltd.Electronic imaging device
US7199348B2 (en)2004-08-252007-04-03Newport Imaging CorporationApparatus for multiple camera devices and method of operating same
US20060054782A1 (en)2004-08-252006-03-16Olsen Richard IApparatus for multiple camera devices and method of operating same
US20100060746A9 (en)2004-08-252010-03-11Richard Ian OlsenSimultaneous multiple field of view digital cameras
US20060067672A1 (en)2004-09-212006-03-30Canon Kabushiki KaishaPhotographing apparatus and control method therefor
US20060102907A1 (en)2004-11-172006-05-18Samsung Electronics Co., Ltd.Thin film transistor array panel and method for manufacturing the same
US20060125937A1 (en)2004-12-102006-06-15Ambarella, Inc.High resolution zoom: a novel digital zoom for digital video camera
US7880776B2 (en)2004-12-102011-02-01Ambarella, Inc.High resolution zoom: a novel digital zoom for digital video camera
US8154610B2 (en)2004-12-302012-04-10Intellectual Ventures Ii LlcImage sensor with built-in ISP and dual camera system
US20060170793A1 (en)2005-02-032006-08-03Eastman Kodak CompanyDigital imaging system with digital zoom warning
US20060175549A1 (en)2005-02-092006-08-10Miller John LHigh and low resolution camera systems and methods
US20060187310A1 (en)2005-02-182006-08-24Janson Wilbert F JrDigital camera using an express zooming mode to provide expedited operation over an extended zoom range
US7561191B2 (en)2005-02-182009-07-14Eastman Kodak CompanyCamera phone using multiple lenses and image sensors to provide an extended zoom range
US7256944B2 (en)2005-02-182007-08-14Eastman Kodak CompanyCompact image capture assembly using multiple lenses and image sensors to provide an extended zoom range
US20060187322A1 (en)2005-02-182006-08-24Janson Wilbert F JrDigital camera using multiple fixed focal length lenses and multiple image sensors to provide an extended zoom range
US20060187338A1 (en)2005-02-182006-08-24May Michael JCamera phone using multiple lenses and image sensors to provide an extended zoom range
US7206136B2 (en)2005-02-182007-04-17Eastman Kodak CompanyDigital camera using multiple lenses and image sensors to provide an extended zoom range
US7305180B2 (en)2005-02-182007-12-04Kodak CompanyDigital camera using multiple lenses and image sensors to provide an extended zoom range
JP2006238325A (en)2005-02-282006-09-07Canon Inc Camera system
US20060227236A1 (en)2005-04-082006-10-12Pak Jae YCamera module and method of manufacturing the same
US20070189386A1 (en)2005-06-222007-08-16Taro ImagawaImage generation apparatus and image generation method
KR20070005946A (en)2005-07-052007-01-11엘지전자 주식회사 Device for detecting position of camera lens for mobile terminal
US7809256B2 (en)2005-07-272010-10-05Sony CorporationImaging lens device and imaging apparatus
US7424218B2 (en)2005-07-282008-09-09Microsoft CorporationReal-time preview for panoramic images
US20070024737A1 (en)2005-08-012007-02-01Hideo NakamuraImage capturing device having multiple optical systems
US7509041B2 (en)2005-08-012009-03-24Eastman Kodak CompanyImage-capturing device having multiple optical systems
US20070257184A1 (en)2005-08-252007-11-08Olsen Richard ILarge dynamic range cameras
US7964835B2 (en)2005-08-252011-06-21Protarius Filo Ag, L.L.C.Digital cameras with direct luminance and chrominance detection
US20090252484A1 (en)2005-11-142009-10-08Nikon CorporationImage Blur Correction Device and Camera
US20070126911A1 (en)2005-11-162007-06-07Sony CorporationImage capture apparatus and zoom lens
US8238695B1 (en)2005-12-152012-08-07Grandeye, Ltd.Data reduction techniques for processing wide-angle video
US20070177025A1 (en)2006-02-012007-08-02Micron Technology, Inc.Method and apparatus minimizing die area and module size for a dual-camera mobile device
US7738016B2 (en)2006-02-062010-06-15Eastman Kodak CompanyDigital camera with dual optical systems
US20090122406A1 (en)2006-02-062009-05-14Jarkko RouvinenOptical Image Stabilizer Using Gimballed Prism
US20090219547A1 (en)2006-02-062009-09-03Petteri KauhanenMethod and Device for Position Sensing in an Imaging System
US20070188653A1 (en)2006-02-132007-08-16Pollock David BMulti-lens array system and method
JP2007228006A (en)2006-02-212007-09-06Casio Comput Co Ltd Digital camera
US20100196001A1 (en)2006-04-132010-08-05Ryynaenen MattiActuator mechanism and a shutter mechanism
US7773121B1 (en)2006-05-032010-08-10The United States Of America As Represented By The Administrator Of The National Aeronautics And Space AdministrationHigh-resolution, continuous field-of-view (FOV), non-rotating imaging system
JP2007306282A (en)2006-05-112007-11-22Citizen Electronics Co Ltd The camera module
US20070285550A1 (en)2006-06-132007-12-13Samsung Electronics Co. Ltd.Method and apparatus for taking images using mobile communication terminal with plurality of camera lenses
US20080017557A1 (en)2006-07-192008-01-24Witdouck Calvin JSystem and Method for Sorting Larvae Cocoons
US20080024614A1 (en)2006-07-252008-01-31Hsiang-Tsun LiMobile device with dual digital camera sensors and methods of using the same
US20080025634A1 (en)2006-07-272008-01-31Eastman Kodak CompanyProducing an extended dynamic range digital image
US20080030592A1 (en)2006-08-012008-02-07Eastman Kodak CompanyProducing digital image with different resolution portions
US20080030611A1 (en)2006-08-012008-02-07Jenkins Michael VDual Sensor Video Camera
JP2008076485A (en)2006-09-192008-04-03Konica Minolta Opto IncLens barrel and imaging apparatus
US20080084484A1 (en)2006-10-102008-04-10Nikon CorporationCamera
US20080106629A1 (en)2006-11-022008-05-08Kurtz Andrew F integrated display having multiple capture devices
US20080117316A1 (en)2006-11-222008-05-22Fujifilm CorporationMulti-eye image pickup device
US20080129831A1 (en)2006-12-042008-06-05Samsung Electronics Co., Ltd.Apparatus amd method for correcting shake of image photographing device
US7533819B2 (en)2007-01-312009-05-19Symbol Technologies, Inc.Dual camera assembly for an imaging-based bar code reader
US7978239B2 (en)2007-03-012011-07-12Eastman Kodak CompanyDigital camera using multiple image sensors to provide improved temporal sampling
US7676146B2 (en)2007-03-092010-03-09Eastman Kodak CompanyCamera using multiple lenses and image sensors to provide improved focusing capability
US20080218612A1 (en)2007-03-092008-09-11Border John NCamera using multiple lenses and image sensors in a rangefinder configuration to provide a range map
US20080219654A1 (en)2007-03-092008-09-11Border John NCamera using multiple lenses and image sensors to provide improved focusing capability
US20080218613A1 (en)2007-03-092008-09-11Janson Wilbert FCamera using multiple lenses and image sensors operable in a default imaging mode
US20080218611A1 (en)2007-03-092008-09-11Parulski Kenneth AMethod and apparatus for operating a dual lens camera to augment an image
US20100283842A1 (en)2007-04-192010-11-11Dvp Technologies Ltd.Imaging system and method for use in monitoring a field of regard
US7918398B2 (en)2007-06-042011-04-05Hand Held Products, Inc.Indicia reading terminal having multiple setting imaging lens
US8390729B2 (en)2007-09-052013-03-05International Business Machines CorporationMethod and apparatus for providing a video image having multiple focal lengths
US20090086074A1 (en)2007-09-272009-04-02Omnivision Technologies, Inc.Dual mode camera solution apparatus, system, and method
US20090109556A1 (en)2007-10-312009-04-30Sony CorporationLens barrel and imaging apparatus
US20090122195A1 (en)2007-11-092009-05-14Van Baar JeroenSystem and Method for Combining Image Sequences
US20090128644A1 (en)2007-11-152009-05-21Camp Jr William OSystem and method for generating a photograph
US9025073B2 (en)2007-12-042015-05-05Nan Chang O-Film Optoelectronics Technology LtdCompact camera optics
KR20090058229A (en)2007-12-042009-06-09삼성전기주식회사 Dual camera module
WO2009097552A1 (en)2008-02-012009-08-06Omnivision Cdm Optics, Inc.Image data fusion systems and methods
US20110064327A1 (en)*2008-02-012011-03-17Dagher Joseph CImage Data Fusion Systems And Methods
US8115825B2 (en)2008-02-202012-02-14Apple Inc.Electronic device with two image sensors
CN101276415A (en)2008-03-032008-10-01北京航空航天大学 Device and method for realizing multi-resolution image acquisition with multiple fixed-focus cameras
US9618748B2 (en)2008-04-022017-04-11Esight Corp.Apparatus and method for a dynamic “region of interest” in a display system
US20110121421A1 (en)2008-05-092011-05-26Ecole Polytechnique Federate de Lausanne EPFLImage sensor having nonlinear response
US20110080487A1 (en)2008-05-202011-04-07Pelican Imaging CorporationCapturing and processing of images using monolithic camera array with heterogeneous imagers
US20090295949A1 (en)2008-05-282009-12-03Valtion Teknillinen TutkimuskeskusZoom camera arrangement comprising multiple sub-cameras
US20090324135A1 (en)2008-06-272009-12-31Sony CorporationImage processing apparatus, image processing method, program and recording medium
KR101477178B1 (en)2008-07-172014-12-29삼성전자주식회사 A portable terminal having a dual camera and a photographing method using the same
KR20100008936A (en)2008-07-172010-01-27삼성전자주식회사Portable terminal having dual camera and photographing method using the same
US20100013906A1 (en)2008-07-172010-01-21Border John NZoom by multiple image capture
US20110229054A1 (en)2008-07-232011-09-22Snell LimitedProcessing of images to represent a transition in viewpoint
US20100020221A1 (en)2008-07-242010-01-28David John TupmanCamera Interface in a Portable Handheld Electronic Device
US20110164172A1 (en)2008-09-102011-07-07Panasonic CorporationCamera body and imaging device
US20100097444A1 (en)2008-10-162010-04-22Peter LablansCamera System for Creating an Image From a Plurality of Images
US20100103194A1 (en)2008-10-272010-04-29Huawei Technologies Co., Ltd.Method and system for fusing images
US8587691B2 (en)2008-11-282013-11-19Samsung Electronics Co., Ltd.Photographing apparatus and method for dynamic range adjustment and stereography
US20100165131A1 (en)2008-12-252010-07-01Fujifilm CorporationImage stabilizer and optical instrument therewith
JP2010204341A (en)2009-03-032010-09-16Nikon CorpCamera
US8149327B2 (en)2009-03-132012-04-03Hon Hai Precision Industry Co., Ltd.Camera module with dual lens modules and image sensors
US8542287B2 (en)2009-03-192013-09-24Digitaloptics CorporationDual sensor camera
US20100238327A1 (en)2009-03-192010-09-23Griffith John DDual Sensor Camera
US20120026366A1 (en)2009-04-072012-02-02Nextvision Stabilized Systems Ltd.Continuous electronic zoom for an imaging system with multiple imaging devices having different fixed fov
US20100259836A1 (en)2009-04-132010-10-14Samsung Electronics Co., Ltd.Zoom lens module
WO2010122841A1 (en)2009-04-222010-10-28コニカミノルタオプト株式会社Mirror-lens barrel, image pickup device and method for manufacturing a mirror-lens barrel
US20100277619A1 (en)2009-05-042010-11-04Lawrence ScarffDual Lens Digital Zoom
US8553106B2 (en)2009-05-042013-10-08Digitaloptics CorporationDual lens digital zoom
US8439265B2 (en)2009-06-162013-05-14Intel CorporationCamera applications in a handheld device
US20100321494A1 (en)2009-06-182010-12-23Theia Technologies, LlcCompact dome camera
US9215385B2 (en)2009-06-222015-12-15Ominivision Technologies, Inc.System and method for an image sensor operable in multiple video standards
US8134115B2 (en)2009-06-232012-03-13Nokia CorporationColor filters for sub-diffraction limit-sized light sensors
US8179457B2 (en)2009-06-232012-05-15Nokia CorporationGradient color filters for sub-diffraction limit sensors
US8094208B2 (en)*2009-07-172012-01-10The Invention Sciennce Fund I, LLCColor filters and demosaicing techniques for digital imaging
US20110063417A1 (en)2009-07-172011-03-17Peters Ii Richard AlanSystem and method for automatic calibration of stereo images
US20120154614A1 (en)2009-08-212012-06-21Akihiro MoriyaCamera-shake correction device
CN201514511U (en)2009-09-082010-06-23华晶科技股份有限公司 periscope lens structure
US20110058320A1 (en)2009-09-092011-03-10Lg Electronics Inc.Mobile terminal
US20110063446A1 (en)2009-09-142011-03-17Mcmordie DavidSaccadic dual-resolution video analytics camera
US20110216228A1 (en)*2009-09-142011-09-08Fujifilm CorporationSolid-state image sensing element, method for driving solid-state image sensing element and image pickup device
US8391697B2 (en)2009-09-302013-03-05Lg Electronics Inc.Mobile terminal and method of controlling the operation of the mobile terminal
JP2011085666A (en)2009-10-132011-04-28Tdk Taiwan CorpLens driving device
US8514491B2 (en)2009-11-202013-08-20Pelican Imaging CorporationCapturing and processing of images using monolithic camera array with heterogeneous imagers
US8400555B1 (en)2009-12-012013-03-19Adobe Systems IncorporatedFocused plenoptic camera employing microlenses with different focal lengths
US20110128288A1 (en)2009-12-022011-06-02David PetrouRegion of Interest Selector for Visual Queries
US20150242994A1 (en)2010-01-282015-08-27Pathway Innovations And Technologies, Inc.Method and system for accelerating video preview digital camera
US8483452B2 (en)2010-03-092013-07-09Sony CorporationImage processing apparatus, image processing method, and program
US20110234881A1 (en)2010-03-252011-09-29Fujifilm CorporationDisplay apparatus
US20110234798A1 (en)2010-03-262011-09-29Hon Hai Precision Industry Co., Ltd.Camera device and vehicle with same
US20110234853A1 (en)2010-03-262011-09-29Fujifilm CorporationImaging apparatus and display apparatus
US20110242286A1 (en)2010-03-312011-10-06Vincent PaceStereoscopic Camera With Automatic Obstruction Removal
US20110242355A1 (en)2010-04-052011-10-06Qualcomm IncorporatedCombining data from multiple image sensors
US8547389B2 (en)2010-04-052013-10-01Microsoft CorporationCapturing image structure detail from a first image and color from a second image
US8446484B2 (en)2010-04-212013-05-21Nokia CorporationImage processing architecture with pre-scaler
US9369621B2 (en)2010-05-032016-06-14Invisage Technologies, Inc.Devices and methods for high-resolution image and video capture
US20130250150A1 (en)2010-05-032013-09-26Michael R. MaloneDevices and methods for high-resolution image and video capture
US20110298966A1 (en)2010-05-212011-12-08Jena Optronik GmbhCamera having multiple focal lengths
US20110285730A1 (en)2010-05-212011-11-24Jimmy Kwok Lap LaiControlling Display Updates For Electro-Optic Displays
US20110292258A1 (en)2010-05-282011-12-01C2Cure, Inc.Two sensor imaging systems
US20130113894A1 (en)2010-07-132013-05-09Ram Srikanth MirlayVariable 3-d camera assembly for still photography
US20120154547A1 (en)2010-07-232012-06-21Hidekuni AizawaImaging device, control method thereof, and program
US20120044372A1 (en)2010-08-182012-02-23Apple Inc.Dual image sensor image processing system and method
US8896655B2 (en)2010-08-312014-11-25Cisco Technology, Inc.System and method for providing depth adaptive video conferencing
US20120062780A1 (en)2010-09-152012-03-15Morihisa TaijiroImaging apparatus and image capturing method
US20120069235A1 (en)2010-09-202012-03-22Canon Kabushiki KaishaImage capture with focus adjustment
US20120075489A1 (en)2010-09-242012-03-29Nishihara H KeithZoom camera image blending technique
US20120081566A1 (en)*2010-09-302012-04-05Apple Inc.Flash synchronization using image sensor interface timing signal
US9413984B2 (en)2010-10-242016-08-09Linx Computational Imaging Ltd.Luminance source selection in a multi-lens camera
US20140192238A1 (en)2010-10-242014-07-10Linx Computational Imaging Ltd.System and Method for Imaging and Image Processing
US9025077B2 (en)2010-10-242015-05-05Linx Computational Imaging Ltd.Geometrically distorted luminance in a multi-lens camera
US9681057B2 (en)2010-10-242017-06-13Linx Computational Imaging Ltd.Exposure timing manipulation in a multi-lens camera
US9578257B2 (en)2010-10-242017-02-21Linx Computational Imaging Ltd.Geometrically distorted luminance in a multi-lens camera
US20120105579A1 (en)2010-11-012012-05-03Lg Electronics Inc.Mobile terminal and method of controlling an image photographing therein
US9041835B2 (en)2010-11-102015-05-26Canon Kabushiki KaishaSelective combining of image data
US20120124525A1 (en)2010-11-122012-05-17Kang MingooMethod for providing display image in multimedia device and thereof
US9900522B2 (en)2010-12-012018-02-20Magna Electronics Inc.System and method of establishing a multi-camera image using pixel remapping
US20130135445A1 (en)2010-12-272013-05-303Dmedia CorporationPrimary and auxiliary image capture devices for image processing and related methods
US8274552B2 (en)2010-12-272012-09-253Dmedia CorporationPrimary and auxiliary image capture devices for image processing and related methods
US20140049615A1 (en)2010-12-282014-02-20Sony CorporationLens protection device, lens unit and image capture device
US8803990B2 (en)2011-01-252014-08-12Aptina Imaging CorporationImaging system with multiple sensors for producing high-dynamic-range images
US20120196648A1 (en)2011-01-312012-08-02Havens William HApparatus, system, and method of use of imaging assembly on mobile terminal
US8976255B2 (en)2011-02-282015-03-10Olympus Imaging Corp.Imaging apparatus
US20120229663A1 (en)2011-03-082012-09-13Spectral Instruments Imaging , LlcImaging system having primary and auxiliary camera systems
US9019387B2 (en)2011-03-182015-04-28Ricoh Company, Ltd.Imaging device and method of obtaining image
US20120249815A1 (en)2011-03-292012-10-04Mircrosoft CorporationFolded imaging path camera
CN102739949A (en)2011-04-012012-10-17张可伦Control method for multi-lens camera and multi-lens device
US20120287315A1 (en)2011-05-102012-11-15Htc CorporationHandheld Electronic Device, Dual Image Capturing Method Applying for Thereof, and Computer Program Production for Load into Thereof
EP2523450A1 (en)2011-05-102012-11-14HTC CorporationHandheld electronic device with dual image capturing method and computer program product
US20120320467A1 (en)2011-06-142012-12-20Samsung Electro-Mechanics Co., Ltd.Image photographing device
US20130002928A1 (en)2011-06-282013-01-03Canon Kabushiki KaishaAdjustment of imaging properties for an imaging assembly having light-field optics
US20130016427A1 (en)2011-07-152013-01-17Mitsumi Electric Co., LtdLens holder driving device capable of avoiding deleterious effect on hall elements
US9270875B2 (en)2011-07-202016-02-23Broadcom CorporationDual image capture processing
US20130076922A1 (en)2011-07-282013-03-28Canon Kabushiki KaishaCorrecting optical device and image pickup apparatus
US20130063629A1 (en)2011-09-092013-03-14Apple Inc.Digital camera with light splitter
US20130093842A1 (en)2011-10-122013-04-18Canon Kabushiki KaishaImage-capturing device
US20130094126A1 (en)2011-10-142013-04-18Benjamin M. RappoportElectronic Devices Having Displays with Openings
US20160212358A1 (en)2011-11-142016-07-21Sony CorporationInformation processing apparatus, method, and non-transitory computer-readable medium
JP2013106289A (en)2011-11-162013-05-30Konica Minolta Advanced Layers IncImaging apparatus
US20130136355A1 (en)*2011-11-292013-05-30Microsoft CorporationAutomatic Estimation and Correction of Vignetting
US8660420B2 (en)2011-12-132014-02-25Hon Hai Precision Industry Co., Ltd.Adjustable dual lens camera
US20130155176A1 (en)2011-12-162013-06-20Polycom, Inc.Reflective and Refractive Solutions to Providing Direct Eye Contact Videoconferencing
US8619148B1 (en)2012-01-042013-12-31Audience, Inc.Image correction after combining images from multiple cameras
US20130182150A1 (en)2012-01-122013-07-18Olympus CorporationImage Pickup Apparatus
US20130201360A1 (en)2012-02-032013-08-08Samsung Electronics Co., Ltd.Method of changing an operation mode of a camera image sensor
US20130202273A1 (en)2012-02-072013-08-08Canon Kabushiki KaishaMethod and device for transitioning between an image of a first video sequence and an image of a second video sequence
US20130235224A1 (en)2012-03-092013-09-12Minwoo ParkVideo camera providing a composite video sequence
US20130258044A1 (en)2012-03-302013-10-03Zetta Research And Development Llc - Forc SeriesMulti-lens camera
US20130270419A1 (en)2012-04-122013-10-17Digitaloptics CorporationCompact Camera Module
US20130278785A1 (en)2012-04-202013-10-24Hoya CorporationImaging apparatus
US9420180B2 (en)2012-05-222016-08-16Zte CorporationMethod and device for switching between double cameras
US20130321668A1 (en)2012-05-302013-12-05Ajith KamathPlural Focal-Plane Imaging
US20150162048A1 (en)2012-06-112015-06-11Sony Computer Entertainment Inc.Image generation device and image generation method
US20150138381A1 (en)2012-06-292015-05-21Lg Innotek Co., Ltd.Camera module
US20140009631A1 (en)2012-07-062014-01-09Apple Inc.Vcm ois actuator module
US20150261299A1 (en)2012-07-122015-09-17Dual Aperture, Inc.Gesture-based user interface
US20150195458A1 (en)2012-07-122015-07-09Sony CorporationImage shake correction device and image shake correction method and image pickup device
KR20140014787A (en)2012-07-262014-02-06엘지이노텍 주식회사Camera module
US20160295112A1 (en)2012-10-192016-10-06Qualcomm IncorporatedMulti-camera system using folded optics
US20140118584A1 (en)2012-10-312014-05-01Jess Jan Young LeeDevices, methods, and systems for expanded-field-of-view image and video capture
WO2014072818A2 (en)2012-11-082014-05-15Dynaoptics Pte Ltd.Miniature optical zoom lens
US20140362242A1 (en)2012-11-162014-12-11Panasonic Intellectual Property Corporation Of AmericaCamera drive device
CN103024272A (en)2012-12-142013-04-03广东欧珀移动通信有限公司 Dual-camera control device, method, system and mobile terminal for mobile terminal
US20140192253A1 (en)2013-01-052014-07-10Tinz Optics, Inc.Methods and apparatus for capturing and/or processing images
US20140313316A1 (en)2013-01-302014-10-23SeeScan, Inc.Adjustable variable resolution inspection systems and methods using multiple image sensors
US20140218587A1 (en)2013-02-072014-08-07Motorola Mobility LlcDouble sided camera module
US9413930B2 (en)2013-03-142016-08-09Joergen GeerdsCamera system
US9851803B2 (en)2013-03-152017-12-26Eyecam, LLCAutonomous computing and telecommunications head-up displays glasses
US9723220B2 (en)2013-05-132017-08-01Canon Kabushiki KaishaImaging apparatus, control method, and program
US9438792B2 (en)2013-05-172016-09-06Canon Kabushiki KaishaImage-processing apparatus and image-processing method for generating a virtual angle of view
US20160154202A1 (en)2013-05-272016-06-02Fraunhofer-Gesellschaft Zur Foerderung Der Angewandten Forschung E.V.Optical structure with ridges arranged at the same and method for producing the same
KR20140144126A (en)2013-06-102014-12-18삼성전자주식회사Camera lens assembly
US9185291B1 (en)2013-06-132015-11-10Corephotonics Ltd.Dual aperture zoom digital camera
US20150002683A1 (en)2013-07-012015-01-01Tdk Taiwan Corp.Optical Anti-Shake Apparatus with Switchable Light Path
US9137447B2 (en)2013-07-312015-09-15Panasonic Intellectual Property Management Co., Ltd.Imaging apparatus that generates an image including an emphasized in-focus part of a captured image
US20150042870A1 (en)2013-08-082015-02-12Apple Inc.Mirror tilt actuation
US20150070781A1 (en)2013-09-122015-03-12Hong Kong Applied Science and Technology Research Institute, Co.Multi-lens imaging module and actuator with auto-focus adjustment
US20160241751A1 (en)2013-09-232016-08-18Lg Innotek Co., Ltd.Camera Module and Manufacturing Method for Same
US20150092066A1 (en)2013-09-302015-04-02Google Inc.Using a Second Camera to Adjust Settings of First Camera
US20150103147A1 (en)2013-10-142015-04-16Etron Technology, Inc.Image calibration system and calibration method of a stereo camera
US9736365B2 (en)2013-10-262017-08-15Light Labs Inc.Zoom related methods and apparatus
US9344626B2 (en)2013-11-182016-05-17Apple Inc.Modeless video and still frame capture using interleaved frames of video and still resolutions
US20150154776A1 (en)2013-12-032015-06-04Huawei Technologies Co., Ltd.Image splicing method and apparatus
US9215377B2 (en)2013-12-042015-12-15Nokia Technologies OyDigital zoom with sensor mode change
US9894287B2 (en)2013-12-062018-02-13Huawei Device (Dongguan) Co., Ltd.Method and apparatus for acquiring a high dynamic image using multiple cameras
US20160301840A1 (en)2013-12-062016-10-13Huawei Device Co., Ltd.Photographing Method for Dual-Lens Device and Dual-Lens Device
US9736391B2 (en)2013-12-062017-08-15Huawei Device Co., Ltd.Photographing method of dual-lens device, and dual-lens device
US20170214866A1 (en)2013-12-062017-07-27Huawei Device Co., Ltd.Image Generating Method and Dual-Lens Device
US20150215516A1 (en)2014-01-272015-07-30Ratheon CompanyImaging system and methods with variable lateral magnification
US20150237280A1 (en)2014-02-192015-08-20Samsung Electronics Co., Ltd.Image processing device with multiple image signal processors and image processing method
US20150244906A1 (en)2014-02-272015-08-27Tdk Taiwan Corp.Reflecting mirror structure for camera module
US20150253647A1 (en)2014-03-072015-09-10Apple Inc.Folded camera lens systems
US20150253543A1 (en)2014-03-072015-09-10Apple Inc.Folded telephoto camera lens system
CN103841404A (en)2014-03-182014-06-04江西省一元数码科技有限公司Novel three-dimensional image shooting module
US20150271471A1 (en)2014-03-192015-09-24Htc CorporationBlocking detection method for camera and electronic apparatus with cameras
US20150281678A1 (en)2014-03-252015-10-01Samsung Electronics Co., Ltd.Image generating device, 3d image display system having the same and control methods thereof
US20160353008A1 (en)2014-04-042016-12-01Qualcomm IncorporatedAuto-focus in low-profile folded optics multi-camera system
US20150286033A1 (en)2014-04-042015-10-08Qualcomm IncorporatedAuto-focus in low-profile folded optics multi-camera system
KR20150118012A (en)2014-04-112015-10-21삼성전기주식회사Camera module
US20150316744A1 (en)2014-04-302015-11-05Lite-On Electronics (Guangzhou) LimitedVoice coil motor array module
US20170019616A1 (en)2014-05-152017-01-19Huawei Technologies Co., Ltd.Multi-frame noise reduction method, and terminal
US20150334309A1 (en)2014-05-162015-11-19Htc CorporationHandheld electronic apparatus, image capturing apparatus and image capturing method thereof
US9360671B1 (en)2014-06-092016-06-07Google Inc.Systems and methods for image zoom
US20160291295A1 (en)2014-08-102016-10-06Corephotonics Ltd.Zoom dual-aperture camera with folded lens
US20160044250A1 (en)2014-08-102016-02-11Corephotonics Ltd.Zoom dual-aperture camera with folded lens
US20160070088A1 (en)2014-09-102016-03-10Hoya CorporationImaging apparatus having bending optical element
US20170214846A1 (en)2014-09-302017-07-27Huawei Technologies Co., Ltd.Auto-Focus Method and Apparatus and Electronic Device
US20170242225A1 (en)2014-11-192017-08-24Orlo James FiskeThin optical system and camera
US9768310B2 (en)2014-11-252017-09-19Samsung Display Co., Ltd.Thin film transistor, organic light-emitting diode display including the same, and manufacturing method thereof
US20160154204A1 (en)2014-11-282016-06-02Samsung Electro-Mechanics Co., Ltd.Camera module
US9286680B1 (en)2014-12-232016-03-15Futurewei Technologies, Inc.Computational multi-camera adjustment for smooth view switching and zooming
US20160212418A1 (en)2015-01-192016-07-21Aquifi, Inc.Multiple camera system with auto recalibration
US9800798B2 (en)2015-02-132017-10-24Qualcomm IncorporatedSystems and methods for power optimization for imaging devices with dual cameras
US20180024329A1 (en)2015-04-162018-01-25Corephotonics Ltd.Auto focus and optical image stabilization in a compact folded camera
US9927600B2 (en)2015-04-162018-03-27Corephotonics LtdMethod and system for providing auto focus and optical image stabilization in a compact folded camera
US9485432B1 (en)2015-04-292016-11-01Uurmi Systems Private LimitedMethods, systems and apparatuses for dual-camera based zooming
US20160353012A1 (en)2015-05-252016-12-01Htc CorporationZooming control method for camera and electronic apparatus with camera
US20180120674A1 (en)2015-06-242018-05-03Corephotonics Ltd.Low profile tri-axis actuator for folded lens camera
US20180150973A1 (en)2015-07-152018-05-31Huawei Technologies Co., Ltd.Method and Apparatus for Calculating Dual-Camera Relative Position, and Device
WO2017025822A1 (en)2015-08-132017-02-16Corephotonics Ltd.Dual aperture zoom camera with video support and switching / non-switching dynamic control
US20170070731A1 (en)2015-09-042017-03-09Apple Inc.Single And Multi-Camera Calibration
WO2017037688A1 (en)2015-09-062017-03-09Corephotonics Ltd.Auto focus and optical image stabilization with roll compensation in a compact folded camera
US20170187962A1 (en)2015-12-232017-06-29Samsung Electronics Co., Ltd.Imaging device module, user terminal apparatus including the imaging device module, and a method of operating the imaging device module
US20180013944A1 (en)2016-02-262018-01-11Essential Products, Inc.Image capture with a camera integrated display
US20170289458A1 (en)2016-03-312017-10-05Lg Electronics Inc.Mobile terminal and method for controlling the same
US20190121103A1 (en)2016-05-302019-04-25Corephotonics Ltd.Rotational ball-guided voice coil motor
US20180017844A1 (en)2016-07-122018-01-18Tdk Taiwan Corp.Lens driving module
US20180059379A1 (en)2016-08-262018-03-01Largan Precision Co., Ltd.Optical path folding element, imaging lens module and electronic device
US20180176426A1 (en)2016-12-202018-06-21Guangdong Oppo Mobile Telecommunications Corp., Ltd.Bracket assembly for mobile terminal and mobile terminal
US20180198897A1 (en)2017-01-112018-07-12Guangdong Oppo Mobile Telecomminications Corp., Lt D.Camera module and mobile terminal
WO2018130898A1 (en)2017-01-122018-07-19Corephotonics Ltd.Compact folded camera
US20180241922A1 (en)2017-02-232018-08-23Qualcomm IncorporatedAdjustment for cameras for low power mode operation
US20180295292A1 (en)2017-04-102018-10-11Samsung Electronics Co., LtdMethod and electronic device for focus control
US20180300901A1 (en)2017-04-182018-10-18Panasonic Intellectual Property Management Co., Ltd.Camera calibration method, recording medium, and camera calibration apparatus

Non-Patent Citations (17)

* Cited by examiner, † Cited by third party
Title
A 3MPixel Multi-Aperture Image Sensor with 0.7μm Pixels in 0.11μm CMOS, Fife et al., Stanford University, 2008, 3 pages.
Compact multi-aperture imaging with high angular resolution, Santacana et al., Publisher: Optical Society of America, 2015, 10 pages.
Defocus Video Matting, McGuire et al., Publisher: ACM SIGGRAPH, Jul. 31, 2005, 11 pages.
Dual camera intelligent sensor for high definition 360 degrees surveillance, Scotti et al., Publisher: IET, May 9, 2000, 8 pages.
Dual-Camera System for Multi-Level Activity Recognition, Bodor et al., Publisher: IEEE, Oct. 2014, 6 pages.
Dual-sensor foveated imaging system, Hua et al., Publisher: Optical Society of America, Jan. 14, 2008, 11 pages.
Engineered to the task: Why camera-phone cameras are different, Giles Humpston, Publisher: Solid State Technology Jun. 2009, 3 pages.
High Performance Imaging Using Large Camera Arrays, Wilburn et al., Publisher: Association for Computing Machinery, Inc., 2005, 12 pages.
International Search Report and Written Opinion issued in related PCT patent application PCT/IB2013/060356, dated Apr. 17, 2014, 15 pages.
Multi-Aperture Photography, Green et al., Publisher: Mitsubishi Electric Research Laboratories, Inc., Jul. 2007, 10 pages.
Multispectral Bilateral Video Fusion, Bennett et al., Publisher: IEEE, May 2007, 10 pages.
Optical Splitting Trees for High-Precision Monocular Imaging, McGuire et al., Publisher: IEEE, 2007, 11 pages.
Real-time Edge-Aware Image Processing with the Bilateral Grid, Chen et al., Publisher: ACM SIGGRAPH, 2007, 9 pages.
Statistical Modeling and Performance Characterization of a Real-Time Dual Camera Surveillance System, Greienhagen et al., Publisher: IEEE, 2000, 8 pages.
Superimposed multi-resolution imaging, Caries et al., Publisher: Optical Society of America, 2017, 13 pages.
Super-resolution imaging using a camera array, Santacana et al., Publisher: Optical Society of America, 2014, 6 pages.
Viewfinder Alignment, Adams et al., Publisher: Eurographics, 2008, 10 pages.

Also Published As

Publication numberPublication date
WO2014083489A1 (en)2014-06-05
US20150085174A1 (en)2015-03-26
IL260978A (en)2019-01-31
US9538152B2 (en)2017-01-03
US20170160135A1 (en)2017-06-08
US9876952B2 (en)2018-01-23
US9581496B2 (en)2017-02-28
CN105556944B (en)2019-03-08
US9927300B2 (en)2018-03-27
CN109963059B (en)2021-07-27
US20170016768A1 (en)2017-01-19
USRE49256E1 (en)2022-10-18
USRE48444E1 (en)2021-02-16
IL315343A (en)2024-10-01
CN116405747A (en)2023-07-07
US20170094164A1 (en)2017-03-30
CN113472989A (en)2021-10-01
USRE48477E1 (en)2021-03-16
CN105556944A (en)2016-05-04
CN112911252B (en)2023-07-04
CN113259565A (en)2021-08-13
IL238900B (en)2018-08-30
IL312771B1 (en)2024-10-01
CN112911252A (en)2021-06-04
US20180160040A1 (en)2018-06-07
IL260978B2 (en)2024-10-01
IL260978B1 (en)2024-06-01
IL312771B2 (en)2025-02-01
USRE48945E1 (en)2022-02-22
CN109963059A (en)2019-07-02
CN113259565B (en)2023-05-19
IL312771A (en)2024-07-01

Similar Documents

PublicationPublication DateTitle
USRE48697E1 (en)High resolution thin multi-aperture imaging systems
US10091405B2 (en)Systems and methods for reducing motion blur in images or video in ultra low light with array cameras
JP5151075B2 (en) Image processing apparatus, image processing method, imaging apparatus, and computer program
US8339483B2 (en)Image processing device, solid-state imaging device, and camera module
US9319585B1 (en)High resolution array camera
JP5404376B2 (en) Camera module and image processing apparatus
US20110141321A1 (en)Method and apparatus for transforming a lens-distorted image to a perspective image in bayer space
KR102619738B1 (en) Signal processing devices and imaging devices
CN103841388A (en)Mosaic removing method and device
JP4962293B2 (en) Image processing apparatus, image processing method, and program
US10616493B2 (en)Multi camera system for zoom
CN114080795A (en)Image sensor and electronic device
HK1221841B (en)High resolution array camera

Legal Events

DateCodeTitleDescription
FEPPFee payment procedure

Free format text:ENTITY STATUS SET TO UNDISCOUNTED (ORIGINAL EVENT CODE: BIG.); ENTITY STATUS OF PATENT OWNER: SMALL ENTITY

FEPPFee payment procedure

Free format text:ENTITY STATUS SET TO SMALL (ORIGINAL EVENT CODE: SMAL); ENTITY STATUS OF PATENT OWNER: SMALL ENTITY

FEPPFee payment procedure

Free format text:ENTITY STATUS SET TO UNDISCOUNTED (ORIGINAL EVENT CODE: BIG.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

MAFPMaintenance fee payment

Free format text:PAYMENT OF MAINTENANCE FEE, 8TH YEAR, LARGE ENTITY (ORIGINAL EVENT CODE: M1552); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

Year of fee payment:8


[8]ページ先頭

©2009-2025 Movatter.jp