Breast Shape and Upper Torso Enhancement Tool
20190171778 ยท 2019-06-06
Inventors
Cpc classification
G06F2119/18
PHYSICS
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/00
PERFORMING OPERATIONS; TRANSPORTING
G05B19/4099
PHYSICS
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
G06F2113/10
PHYSICS
B29L2031/7532
PERFORMING OPERATIONS; TRANSPORTING
International classification
B33Y50/00
PERFORMING OPERATIONS; TRANSPORTING
G05B19/4099
PHYSICS
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method of making a breast or chest mask that includes enhancing a bust size of a three dimensional (3D) image of a user that illustrates a current body shape, comparing the enhanced 3D image to the current body shape 3D image and subtracting the bust size of the enhanced 3D image from the current body shape 3D image to produce a breast mask product with dimensions based on the compared 3D images.
Claims
1. A method of making a mask that can be worn on a user's upper torso with an imaging device, the method comprising: capturing more than one image of an upper torso of the user with the imaging device; detecting locations on the upper torso from the more than one image; producing a three dimensional (3D) upper torso image of the user from the detected locations; enhancing a bust size of the 3D upper torso to produce an enhanced 3D image; comparing the enhanced 3D image to the 3D upper torso image; producing a 3D image of the mask based on the comparison of the enhanced 3D image and the 3D upper torso image, wherein the mask comprises the difference in volume between the 3D bust size image and the 3D upper torso image; and the mask comprises a shape having an inner surface that conforms to the natural contours of the user's body and an outer surface of that conforms to the contours of the user's desired appearance; and producing the mask from the 3D image of the mask.
2. The method of claim 1, wherein: detecting locations on the upper torso comprises identifying a location at a left side and a right side of a base of a neck of the user; and further comprising calculating a distance between the left side and the right side of the base of the neck; wherein an upper torso circumference is derived by calculating the distance between the left side and the right side of the base of the neck and then multiplying by a numerical value of it multiplied by the number 2.
3. The method of claim 1, wherein determining an upper torso circumference comprises: identifying a location at either side of a base of a neck of the user; identifying a location at a top of a sternum of the user; and calculating a distance between one of the either side and the top of the sternum of the user; calculating an upper torso circumference as the distance between one of the either side and the top of the sternum of the user) multiplied by the number 4.
4. The method of claim 1, wherein detecting locations on the upper torso of the user comprises: identifying a location at each side of a base of a neck of the user; and further comprising: calculating a distance (D) between each side of the base of the neck of the user; and calculating an upper torso circumference from the formula: (D*/2)+2D.
5. The method of claim 1, wherein detecting locations on the upper torso comprises identifying a location at each side of a base of a neck of the user; and further comprising determining a semicircular distance between each side of a base of a neck location at each side of a base of a neck of the user; and calculating a semicircular distance between each side of the base of the neck of the user multiplied by the number 4.
6. The method of claim 1, wherein detecting locations on the upper torso comprises: identifying a location on a breast of the user that is the closest point to the imaging device; and identifying a location immediately below the breast of the user that is on a vertical axis relative to the location of the closest point to the imaging device; and further comprising calculating a breast depth from the horizontal distance between the location immediately below the breast and the closest point to the imaging device.
7. The method of claim 1, wherein detecting locations on the upper torso from the more than one image comprises identifying a position: at each side of a base of a neck (1, 2) of the user; at each edge of a rib cage proximate to the bottom of each breast (11, 12) of the user; a position at which a bra strap goes over a shoulder (3, 5) of the user; a position of maximum curvature at a top of an intersection of an arm and a shoulder (9, 10) of the user; a position at a lowest point of each breast (7, 8) of the user; a position immediately above a sternum (17) of the user; a position at a top-center of each breast as the breast begins to arc away from the chest wall (4, 6) of the user; and a position at a top edge of a bra adjacent to the top, center of the breast as it begins to arc away from the chest wall (13, 14) of the user.
8. The method of claim 1, wherein detecting locations on the upper torso from the more than one image comprises identifying one or more cluster of pixels representing the upper torso; and further comprising: counting the number of pixels in the captured more than one image; and calculating a distance between the image device and the user based on the number of pixels.
9. The method of claim 1, further comprising: identifying an object of known dimensions on the upper torso of the user; and calibrating image dimensions based on the known dimensions of the object.
10. The method of claim 1, further comprising prompting the user to hold the mobile device at a fixed position when the user takes the more than one image.
11. The method of claim 2, further comprising: calculating actual dimensions of the 3D upper torso image with calibration based on an object of the known size.
12. The method of claim 1, further comprising: producing the 3D upper torso image with actual dimensions based on reference to a calibration measurement.
13. The method of claim 1, further comprising: including an object having a known color in the more than one image; comparing the color of the object to the 3D upper torso; and determining a skin tone of the 3D upper torso based on the comparison with the object.
14. The method of claim 13, wherein the object having a known color includes more than one color.
15. The method of claim 1, further comprising: determining the skin tone of the upper torso of the user; and producing the mask with the skin tone of the upper torso of the user.
16. The method of claim 1, wherein producing the mask comprises printing the mask with a 3D printer.
17. The method of claim 1, further comprising: inserting the mask in a bra-like device to be worn by the user.
18. The method of claim 1, wherein producing the mask further comprises producing the mask with tabs and/or slots, and further comprising: attaching straps to the tabs and/or slots for the mask to be worn on the upper torso of the user.
19. A device, comprising: a camera to capture a series of images of a trunk of a user; a display screen or camera flash unit to illuminate the user during capture of the series of images; a processor to produce a three-dimensional (3D) image of the trunk of the user based on the captured series of images; an input device to allow the user to enhance a bust size of the 3D image on the display screen to produce an enhanced 3D image on the display screen; and a comparison unit to compare the enhanced 3D image to the 3D image of the trunk of the user; wherein the processor produces a 3D image of a chest mask that can be worn over the chest of the user, wherein the chest mask comprises differences in volume of the dimensions between the enhanced 3D image and the 3D image of the trunk of the user, wherein the chest mask comprises an inner surface that conforms to the natural contours of the user's body and an outer surface that conforms to the contours of the user's desired size; and producing the chest mask with a 3D printer.
Description
DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION
[0033] The described system and method can be used for brassiere measurement and/or to produce a three-dimensional chest or breast mask.
[0034] Referring to
[0035] In one embodiment, the 3D scanner application takes a series of images with lighting provided from several different directions by the display panel of the portable device. In another embodiments, a camera flash or other source of light is used. For example, light can be projected from upper, lower, left and right quadrants of the display panel while capturing a series of four images. In either of these embodiments the user can be instructed to take the series of images in a darkened room.
[0036] In the example of
[0037] Referring to
[0038] Referring to
[0039] At this point, the user has various virtual display options. For example, the user has tools to see what the image looks like in swimwear, a gown, a business suit or other clothing.
[0040] Referring to
[0041] The user can export a stereo lithography (STL) file of the 3D image to a 3D printer. The image of the enhanced breast size can be printed and essentially worn as a mask to try on the new enhanced breast size.
[0042] Referring to
[0043]
[0044]
[0045] Referring to
[0046] The images can then be compared and the varied lighting from different angles and positions can be used to produce a three-dimensional image of the front half or a front portion of the object being photographed. In one embodiment, the images are taken in a darkened room or similar space so that the major source of light is from the cameral flash or display screen of the device.
[0047] The mobile device 812 may be, for example, a smart phone, a computer tablet, and/or any mobile computer device having a camera and a display screen. The mobile device may include, for example, random access memory, storage memory, a central processing unit, an operating system and software applications. The device 812 may be used with a SIM card for mobile communications and the device may also have WiFi, Bluetooth and other types of connectivity. The device 812 may also have a global positioning system, touch screen, display, keyboard, pen stylus, speakers, and a microphone.
[0048] Referring to
[0057] These numbered points can be used to determine various measurements: [0058] 1-17-2 Circumference around base of neck to the sternum [0059] 11-12 Measurement around rib cage, directly under the bust. [0060] 15-16 Horizontal distance between edge of breasts at position where breasts are closest.
[0061]
Band size=(D1+D1+(D1/2))2
[0062] The band size is then rounded up to the nearest size. For example, assume D1 is 5.25, then the band size is calculated as 37.49 based on the following:
(5.25+5.25+(5.25/2))2=37.49
This calculation is then rounded up to the next standardized band size of 38.
[0063]
[0064] For each inch of projection of the breast there is a commensurate increase in cup size. That is because cup size is a measure of depth and not a measure of volume. For example, a 30 inch band size and one inch of projection results in a cup size of A. For each additional inch of depth, the cup size increases to B, C, D, E (DD), F (DDD), G, H, I, J, K, L, respectively. The same relationship holds true for other band sizes. However, as the band size increases to, for example, 32, 34 and 36 inches, the cup size is reduced by one letter to maintain the same volume.
[0065] In one embodiment, the application has an algorithm with a Bayes classifier that classifies image pixels on the trunk/torso of the user into skin pixels and non-skin pixels. Thus, the outline of the bra can be identified and the measurements can be obtained.
[0066]
[0067] In one embodiment, a series of images may be taken at different focus depths. A mathematical algorithm can be used to calculate the angle at which the light is striking each pixel by comparing slight differences between the images taken from the same position but focused at different depths. The image processor 240 can then combine the images to produce a three-dimensional image.
[0068] In another embodiment, the display lighting controller 230 projects light from the display screen of the mobile device from different portions of the display screen. For example, the display screen may be illuminated in separate quadrants to produce multiple images with lighting from different angles. The algorithm uses the illumination from different positions or angles to detect patterns of light reflected off of an object to build a three dimensional model of the portions of the object that are visible to the camera. This technique may be used in conjunction with very low levels of background lighting in order to utilize only the light from the display for imaging purposes.
[0069] By using changing focus depths and/or changes in directions of illumination, the mobile device may be held in a stationary position and still be able to produce a three dimensional image. For example, the user can hold the camera (mobile device) at arms-length from one position to produce a three-dimensional image of the user's upper trunk/torso.
[0070]
[0071] The trunk feature detection unit 310 determines the portions of the object in the field of view that comprises the trunk of a user. The skin and non-skin classifier 320 determines what portion of the trunk is skin and what portion may be clothing. For example, a user can take an imager of her trunk while wearing a bra and the classifier 320 determines the outline of the bra and the outline of the user's body. The measurement unit 350 processes the image in comparison to the dimensions from the reference unit to produce a three-dimensional image with accurate dimensions that include length, width and depth as well as volume.
[0072] The apparatus can be provided on a mobile device, such as, a handheld computing device, having a display screen with touch input and/or a miniature keyboard. The handheld computing device has an operating system, and can run various types of application software, known as apps. The device can also be equipped with Wi-Fi, Bluetooth, and GPS capabilities that can allow connections to the Internet and other Bluetooth-capable devices. A camera can also be used on the device which should have a stable battery power source such as a lithium battery.
[0073] The above description of various embodiments reveals the general nature of the invention so that others can readily modify and/or adapt for various applications other embodiments without departing from the concept, and, therefore, such adaptations and modifications are within the scope of the claims and equivalents. The terminology used herein is for the purpose of description and not of limitation. The means, materials, and steps for carrying out various disclosed functions may take a variety of alternative forms without departing from the invention.