WO2001050736A1 - Document reading apparatus having a waveguide formed in a substrate - Google Patents

Document reading apparatus having a waveguide formed in a substrate Download PDF

Info

Publication number
WO2001050736A1
WO2001050736A1 PCT/US2001/000170 US0100170W WO0150736A1 WO 2001050736 A1 WO2001050736 A1 WO 2001050736A1 US 0100170 W US0100170 W US 0100170W WO 0150736 A1 WO0150736 A1 WO 0150736A1
Authority
WO
WIPO (PCT)
Prior art keywords
light
waveguide
light pipe
document
reflective layer
Prior art date
Application number
PCT/US2001/000170
Other languages
French (fr)
Inventor
Raja Tuli
Original Assignee
Docuport, Inc.
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
Application filed by Docuport, Inc. filed Critical Docuport, Inc.
Priority to JP2001550990A priority Critical patent/JP2003524956A/en
Priority to AU26261/01A priority patent/AU2626101A/en
Priority to EP01900844A priority patent/EP1247395A4/en
Publication of WO2001050736A1 publication Critical patent/WO2001050736A1/en

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/024Details of scanning heads ; Means for illuminating the original
    • H04N1/028Details of scanning heads ; Means for illuminating the original for picture information pick-up
    • H04N1/02815Means for illuminating the original, not specific to a particular type of pick-up head
    • H04N1/0282Using a single or a few point light sources, e.g. a laser diode
    • H04N1/02835Using a single or a few point light sources, e.g. a laser diode in combination with a light guide, e.g. optical fibre, glass plate
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/024Details of scanning heads ; Means for illuminating the original
    • H04N1/028Details of scanning heads ; Means for illuminating the original for picture information pick-up
    • H04N1/03Details of scanning heads ; Means for illuminating the original for picture information pick-up with photodetectors arranged in a substantially linear array
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/024Details of scanning heads ; Means for illuminating the original
    • H04N1/028Details of scanning heads ; Means for illuminating the original for picture information pick-up
    • H04N1/03Details of scanning heads ; Means for illuminating the original for picture information pick-up with photodetectors arranged in a substantially linear array
    • H04N1/0301Details of scanning heads ; Means for illuminating the original for picture information pick-up with photodetectors arranged in a substantially linear array using a bent optical path between the scanned line and the photodetector array, e.g. a folded optical path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/10Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa using flat picture-bearing surfaces
    • H04N1/107Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa using flat picture-bearing surfaces with manual scanning
    • H04N1/1071Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa using flat picture-bearing surfaces with manual scanning using a folded light path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/10Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa using flat picture-bearing surfaces
    • H04N1/107Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa using flat picture-bearing surfaces with manual scanning

Definitions

  • a contact-type reading apparatus co nprises a contact glass, a linear array of light-emitting diodes (LEDs) thai serves as an illumination source which sends rays of light through a light guide that focuses the light onto the surface of the document to be read.
  • the LEDs and the light guide span the entire reading length reading apparatus.
  • the illuminated portion of the document is reflected and focussed by an optic fiber lens array onto an optical sensor array.
  • the optical sensor array consists of one or more solid state devices comprising multiple individual photo cells in a linear array, which convert the image focussed onto them into electrical signals, producing a digital image which can be stored in an internal memory for future use.
  • This kind of contact-type reading apparatus is rr easily adaptable for use in a portable reading apparatus.
  • the LEDs pose two problems. First, to evenly iiluminate the document to be read, the LEDs must span the entire length of the reading apparatus. However, this arrangement is too cumbersome for a portable device. Second, the LEDs require considerable current to function, thus a substantial amount of battery power would be wasted on merely illuminating the LEDs, in a portable apparatus.
  • the wave-c ide includes a clear, glass or plastic pipe with an LED located at either end.
  • the inside bottom surface of the pipe is painted " white and as the LEDs discharge light through the pipe, the light is reflected by the white paint and the light is dispersed evenly in order to illuminate the document as ic passes over the substrate. Then, the illuminated portion of the document is reflected and focussed by a lens array onto an optical sensor array.
  • the scanner is extremely lightweight and .arrow in design because the bulkiness of a linear array of LEDs is eliminated, and is replaced with a waveguide that is formed in a substrate.
  • the length of the scanner is approximately equal to the width of a standard sheet of paper.
  • the reading mechanisms are the long length of the unit such that the reading method comprises pressing the unit across a document to be read and manually moving the moduie in the direction desired.
  • the waveguide comprises a light pipe, which light pipe includes light sources disposed at either end, and a reflective cladding deposited on an inside lateral surface.
  • the light sources emanate a plurality cf light rays through the light pipe and which propagate in the light pipe until striking an area of the reflective layer.
  • the light rays are directed away from the reflective layer and onto the scan iine of the document.
  • Light from the illuminated scan line is reflected back through the waveguide array an onto the optical le ns array.
  • the optical lens array then focuses the light onto an optical sensor array.
  • the optical sensor array converts the image received into electrical signals to produce a digital image to be stored in an internal memory.
  • light of the illuminated scan line is reflected back through the waveguide formed in a substrate end strikes a mirrored surface.
  • the mirrored surface is positioned at an angle relative to the waveguide and directs the light from an illuminated scan line through an optical lens array.
  • the optical lens array focuses the light onto another mirrored surface thrt is mounted at an angle.
  • the mirrored surface reflects the light onto an optical sensor array, which convert the image into a digital image, to be stored in an internal memory.
  • Figure 1 illustrates a schematic view of the hand-held scanner.
  • Figure 2 illustrates a cross-sectional view of the hand-held scanner.
  • Figure 3 illustrates a schematic view of the hand-held scanner.
  • Figure 4 illustrates a cross-sectional view of the hand-held scanner with mirrored surfaces.
  • the present invention relates generally to ⁇ hand-held scanner that comprises contact 'mage scanning technology, and more particularly a waveguide formed in a substrate.
  • the present invention constitutes a waveguide formed in a substrate positioned between a document to be scanned and an optic fiber lens array.
  • a scan line of the document is in direct contact with, or in close proximity to, the waveguide.
  • the waveguide being comprised of a light transmitting medium, for example an elongAe light pipe, which light pipe includes light sources, such as LEDs, disposed at each end, eliminates the weight and bulk provided by a linear array of LEDs found in other contact image sensor scanners. Also, there is a reducicn in battery power required.
  • the waveguide formed in a substrate is a fundamental component in providing a compact and efficient hand-held scanner constructed according to the present invention.
  • the hand-held scanner is lightweight, and slim in design, so as to be easily manipulated and carried by a user.
  • the length of the scanner is approximately equal to the width of a standard sheet of paper, i.e. 8 1/2 inches; therefore the scanner is able to scan the entire width of a standard document. Scanning is initiated by the user placing the scanner flat across

Landscapes

  • Engineering & Computer Science (AREA)
  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Facsimile Scanning Arrangements (AREA)
  • Light Sources And Details Of Projection-Printing Devices (AREA)
  • Image Input (AREA)

Abstract

A hand-held scanner comprises contact image scanning technology. A waveguide (2) formed in a substrate is comprised of an elongate light pipe (5) which includes a reflective layer (7) deposited on an inside lateral surface. Light sources (6) disposed at each end of the light pipe emit rays of light through the light pipe (5). The rays of light propagate in the light pipe (5) until striking an area of a reflective surface (7). The reflective surface directs the rays away from the lateral surface and onto the scan line of a document (3). The light of the illuminated scan line is reflected back through the waveguide, through a slit (10) not covered by the reflective layer (7), and onto an optical lens array (8) which focuses the light onto an optical sensor array (11) that converts the image into a digital image to be saved in an internal memory. In a further embodiment (Fig. 4), the waveguide (2) includes a mirrored surface (12) that directs the light of the illuminated scan line through the waveguide (2) and through the optical lens array (8).

Description

DOCUMENT READING APPARATUS HAVING A WAVEGUIDE FORMED IN A SUBSTRATE
BACKGROUND OF THE INVENTION
Generally, a contact-type reading apparatus co nprises a contact glass, a linear array of light-emitting diodes (LEDs) thai serves as an illumination source which sends rays of light through a light guide that focuses the light onto the surface of the document to be read. The LEDs and the light guide span the entire reading length reading apparatus. The illuminated portion of the document is reflected and focussed by an optic fiber lens array onto an optical sensor array. The optical sensor array consists of one or more solid state devices comprising multiple individual photo cells in a linear array, which convert the image focussed onto them into electrical signals, producing a digital image which can be stored in an internal memory for future use.
This kind of contact-type reading apparatus is rr easily adaptable for use in a portable reading apparatus. The LEDs pose two problems. First, to evenly iiluminate the document to be read, the LEDs must span the entire length of the reading apparatus. However, this arrangement is too cumbersome for a portable device. Second, the LEDs require considerable current to function, thus a substantial amount of battery power would be wasted on merely illuminating the LEDs, in a portable apparatus.
Another kind of contact-type scanner comprises a light pipe, or wave-guide, instead of a linear array of LEDs. The wave-c ide includes a clear, glass or plastic pipe with an LED located at either end. The inside bottom surface of the pipe is painted "white and as the LEDs discharge light through the pipe, the light is reflected by the white paint and the light is dispersed evenly in order to illuminate the document as ic passes over the substrate. Then, the illuminated portion of the document is reflected and focussed by a lens array onto an optical sensor array.
SUMMARY OF THE INVENTION
It is an object of the present invention to disclose a hand-heid scanner comprising contact image sensor scanning technology, and a waveguide formed in a substrate. The scanner is extremely lightweight and .arrow in design because the bulkiness of a linear array of LEDs is eliminated, and is replaced with a waveguide that is formed in a substrate.
The length of the scanner is approximately equal to the width of a standard sheet of paper. The reading mechanisms are the long length of the unit such that the reading method comprises pressing the unit across a document to be read and manually moving the moduie in the direction desired.
The waveguide comprises a light pipe, which light pipe includes light sources disposed at either end, and a reflective cladding deposited on an inside lateral surface. The light sources emanate a plurality cf light rays through the light pipe and which propagate in the light pipe until striking an area of the reflective layer. The light rays are directed away from the reflective layer and onto the scan iine of the document. Light from the illuminated scan line is reflected back through the waveguide array an onto the optical le ns array. The optical lens array then focuses the light onto an optical sensor array. The optical sensor array converts the image received into electrical signals to produce a digital image to be stored in an internal memory.
In another embodiment, light of the illuminated scan line is reflected back through the waveguide formed in a substrate end strikes a mirrored surface. The mirrored surface is positioned at an angle relative to the waveguide and directs the light from an illuminated scan line through an optical lens array. The optical lens array focuses the light onto another mirrored surface thrt is mounted at an angle. The mirrored surface reflects the light onto an optical sensor array, which convert the image into a digital image, to be stored in an internal memory.
BRIEF DESCRIPTION OF THE DRAWINGS
The invention is described in more detail below with respect to an illustrative embodiment shown in the accompanying drawings in which:
Figure 1 illustrates a schematic view of the hand-held scanner.
Figure 2 illustrates a cross-sectional view of the hand-held scanner. Figure 3 illustrates a schematic view of the hand-held scanner.
Figure 4 illustrates a cross-sectional view of the hand-held scanner with mirrored surfaces.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
The preferred embodiments will now be described wit respect to the drawings. To facilitate description, any numera' identifying an element in one figure will represent the same element in any other figure.
The present invention relates generally to λ hand-held scanner that comprises contact 'mage scanning technology, and more particularly a waveguide formed in a substrate.
Briefly, the present invention constitutes a waveguide formed in a substrate positioned between a document to be scanned and an optic fiber lens array. Thus, a scan line of the document is in direct contact with, or in close proximity to, the waveguide. The combination of the waveguide and the substrate in one uniform configuration provides the invention with an extremely slim design. Furthermore, the waveguide being comprised of a light transmitting medium, for example an elongAe light pipe, which light pipe includes light sources, such as LEDs, disposed at each end, eliminates the weight and bulk provided by a linear array of LEDs found in other contact image sensor scanners. Also, there is a reducicn in battery power required. Thus, the waveguide formed in a substrate is a fundamental component in providing a compact and efficient hand-held scanner constructed according to the present invention.
The hand-held scanner is lightweight, and slim in design, so as to be easily manipulated and carried by a user. The length of the scanner is approximately equal to the width of a standard sheet of paper, i.e. 8 1/2 inches; therefore the scanner is able to scan the entire width of a standard document. Scanning is initiated by the user placing the scanner flat across

Claims

CLAIMSI claim:
1. An apparatus and method for scanning a document comprising; a waveguide formed in a substrate, such that the document to be scanned passes directly over said waveguide; the waveguide comprises an elongate light pipe, which light pipe includes a reflective layer which evenly disperses a plurality of light rays emitted from light sources disposed at either end of the light pipe; an image of an illuminated portion of the document passes through the waveguide to be imaged.
2. An apparatus and method for reading a document, as claimed in Claim 1 , comprising; a waveguide formed in a substrate such that the document to be scanned passes directly over the waveguide; the waveguide comprises an elongate light pipe, which light pipe comprised a reflective layer which evenly disperses a plurality of light rays emitted from light sources positioned at either end of the light pipe; the light pipe further includes a mirrored surface positioned at an angle; light from an illuminated portion of the document passes through the waveguide and strikes the mirrored surface; the mirrored surface directs the light to be imaged. the document to be scanned and manually ti aversing it in the direction desired.
A preferred embodiment of the present invention is simultaneously illustrated in Figure 1 and Figure 2. Figure 1 depicts a general overview of the handheld scanner 1. Figure 2 depicts a cross-sectional view of the scanner and includes a plurality of interior subassemblies.
Referring to Figure 2, the waveguide 2 is formed in a substrate such that the waveguide is mounted between a document 3 to be scanned and an optic fiber lens array 8. Thus, a scan line 4 of the document to be scanned is in direct contact with, or in close proximity to the waveguide,.
The waveguide 2 (Figure 1 ) is comprised of a light transmitting medium 5, preferably an elongate light pipe, which light pipe is composed of transparent plastic or glass. The light pipe includes light sources 6 ("igi.re 1 ), such as light emitting diodes (LEDs), fixedly mounted at either end of the light pipe.
The light pipe collects a plurality of light rays emitted from the light sources.
The light pipe is configured so that substantially sll of the light rays from the light sources are internally reflected and light travels across the light pipe.
An inside, lateral surface of the light pipe has a reflective cladding layer 7 (Figure 1), which reflective layer is in direct contact with said surface. Preferably, the reflective layer comprises elliptical or triangular shapes and is further comprised of a white paint. The reflective layer covers a substantial area of the inside lateral surface of the light pipe. The light rays emitted from the light sources propagate in the light pipe until striking an area of the reflective layer. The reflective surface redirects the light rays out of the reflective surface of the light pipe and onto the scan line of the document to be scanned, thereby illuminating the scan line.
The reflective layer increases the efficiency of the light sources disposed at each end of the light pipe. The light rays emanated from the light sources are most intense at the ends of the light pipe. Thus, tapered ends of the reflective layer are positioned adjacent to the light sources, to reflect this higher intensity of light rays. Toward the center of the light pipe, where the light rays are less intense, are positioned the widest areas of the reflective layer. Generally, therefore, the reflective layer covers a wider area towards the center of the light pipe, as compared to the area directly adjacent to the ends of the light pipe where the reflective layer covers less area. Thus, intensity variations are eliminated and the light pipe achieves even illumination continuously along the width of the scan line.
To initiate scanning the user places the hand-held scanner flat across the width of the surface of the document to be scanned and manually traverses the scanner perpendicular to the scan line of the document. Referring to Figure 2, a plurality of rays of light, emanated from the light sources, strike portions of the reflective layer 7 and the light rays 9 are reflected away from the reflective surface, towards the scan line 4 cf the document. Light from the illuminated scan line of the document travels through a narrow, elongate slit 10 positioned between the reflective ellipses, and which is not covered by the reflective coating. Thus, the light from the iiiuminated scan line passes directly through the waveguide 2, and onto an optic fiber lens array 8.
The optic fiber lens array images the light onto nn optical sensor array 11. The optical sensor array consists of one or more photoelements comprising multiple individual photo-cells in a linear array. The photo cells . convert the image focussed onto them into electrical signals, producing a digital image which can be further processed to obtain a true representation of the image in a tangible form, or stored in an internal memory for future use. For example, the stored data may be downloaded into a computer cr laptop. The photoelements are arranged along the length of the apparatus such that the entire length of a line of a page may be read and converted to a digital image.
The photo-cells are individually positioned equidistant from the waveguide such that their direction of arrangement is perpendicular to the scanner's direction of movement. The linear array of pnotoelements is capable of reading one line of information at a time restricted by the size, spacing and width spanned by the individual photocells in the linear array. Each line of information is read multiple times with 200 or 400 dpi but sent only once to a conventional microprocessor which assembles the image received in lines, and also perform image enhancement techniques to produce a true representation of the image or text being read. The array of photoelements read the lines of information continuously, to form a 2-D image.
The scanner is equipped with a battery (not shown). In that the apparatus is a hand-held unit, an internally disposed electrical power source, such εs a battery, is required for desired operation. Conventional batteries tend to have short lives when used in hand-held scanners because of the amount of energy needed to power the numerous components. However, in the present invention because the waveguide uses a lower intensity light source, i.e. an LED located at each end, the light source requires less power.
An alternate embodiment of the present invention is illustrated in Figure 3 and Figure 4 concurrently. Referring to Figure 3, the hand-held scanner 1 is illustrated. The scanner comprises a waveguide 2 formed in a substrate. The waveguide comprises an elongate light pipe 5, which light pipe is comprised of a transparent plastic or glass. The light pipe further includes a reflective cladding layer 7 deposited on an inside lateral surface. Preferably, the reflective layer has an elliptical shape and is comprised of white paint. Generally, the reflective layer covers a wider area towards the center of the light pipe, as compared to the area directly adjacent to the ends of the light pipe where the reflective layer covers less area. Light sources 6, such as LEDs, are positioned at opposite ends of the light pipe.
The light sources emit a plurality of light rays through the light pipe. The light rays propagate in the light pipe until striking an area of the reflective surface. The reflective layer disperses the light rays emanated by light sources onto a scan line of the document to be scanned. As previously explained, the elliptical shape of the reflective layer uniformly disperses the light rays from the light sources, along the scan line.
Referring to Figure 4, a cross-sectional view of the hand-held scanner is depicted. The waveguide 2 further comprises a mirrored surface 12. The mirrored surface is fixedly mounted at an angle relative to the plane of the waveguide.
Scanning is initiated by the user placing the hand-held scanner flat across the width of the surface of the document 3 to be scanned and manually traversing the scanner perpendicular to the scan line of the document. A plurality of rays of light, emanated from the light sources, propagate in the light pipe until striking portions of the reflective layer 7. The reflective layer reflects the light rays 9 away from the reflective surface, towards the scan line 4 of the document. The light of the illuminated scan line of the document reflects directly back through the waveguide, through an area not covered by the reflective layer. The mirrored surface 12 is positioned such that a first path 14 of the light of the illuminated scan line strikes the mirrored surface. The mirrored surface defines the first path of the light reflected by the illuminated scan line of the document. The mirrored surface subsequently directs the path of the light through an optic fiber lens array 8.
The optic fiber lens array directs the light of the Illuminated scan line onto a second mirrored surface 13. The second mirrored surface is fixedly positioned at an angle relative to the optic fiber iens array, and directs the light of the illuminated scan line onto a linear photosensor array 11. The linear photosensor array is mounted underneath me mirrored surface and comprises a plurality of multiple photo cells arranged in a linear array. The photo cells convert the image into electrical s'gnals, to produce a digital image light received is converted into a digital image which can be further processed to obtain a true representation of the image in a tangible form, or stored in an internal memory for future use.
The invention has been described in detail with particular reference to the preferred embodiments thereof, but it will be understood that variations and modifications can be effected within the spirit and scope of the invention.
PCT/US2001/000170 2000-01-03 2001-01-03 Document reading apparatus having a waveguide formed in a substrate WO2001050736A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
JP2001550990A JP2003524956A (en) 2000-01-03 2001-01-03 Document reading device having waveguide formed on substrate
AU26261/01A AU2626101A (en) 2000-01-03 2001-01-03 Document reading apparatus having a waveguide formed in a substrate
EP01900844A EP1247395A4 (en) 2000-01-03 2001-01-03 Document reading apparatus having a waveguide formed in a substrate

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US09/476,104 US6441928B1 (en) 2000-01-03 2000-01-03 Apparatus and method for reading a document using a waveguide formed in a substrate
US09/476,104 2000-01-03

Publications (1)

Publication Number Publication Date
WO2001050736A1 true WO2001050736A1 (en) 2001-07-12

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Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2001/000170 WO2001050736A1 (en) 2000-01-03 2001-01-03 Document reading apparatus having a waveguide formed in a substrate

Country Status (7)

Country Link
US (1) US6441928B1 (en)
EP (1) EP1247395A4 (en)
JP (1) JP2003524956A (en)
CN (1) CN1418426A (en)
AU (1) AU2626101A (en)
WO (1) WO2001050736A1 (en)
ZA (1) ZA200206182B (en)

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AT408038B (en) * 1998-03-17 2001-08-27 Keba Rondo Gesmbh READING UNIT FOR A DOCUMENT
JP4089711B2 (en) * 2005-07-08 2008-05-28 コニカミノルタビジネステクノロジーズ株式会社 Image reading apparatus and image forming apparatus having the same
US7532801B2 (en) * 2007-04-05 2009-05-12 Hewlett-Packard Development Company, L.P. Imaging device illumination system
CN101470301B (en) * 2007-12-28 2010-08-25 财团法人工业技术研究院 Composite light guiding film module
WO2009115855A1 (en) * 2008-03-18 2009-09-24 Council Of Scientific & Industrial Research Hand-held device and step-scanning technique for reading by the blind
US8038335B2 (en) * 2009-03-31 2011-10-18 Raja Singh Tuli Apparatus for providing even, focused illumination of a target surface
TWI469620B (en) * 2010-10-01 2015-01-11 Avision Inc Sheet-fed scanner with linking member
CN103581489B (en) * 2012-07-30 2016-05-18 上海中晶科技有限公司 Scanning system

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US5499112A (en) * 1993-01-19 1996-03-12 Cannon Kabushiki Kaisha Light guide, illuminating device having the light guide, and image reading device and information processing apparatus having the illuminating device
US5926286A (en) * 1996-08-22 1999-07-20 Nec Corporation Image sensor apparatus with small convex portions
US5969343A (en) * 1995-08-24 1999-10-19 Matsushita Electric Industrial Co., Ltd. Linear illumination device

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US5499112A (en) * 1993-01-19 1996-03-12 Cannon Kabushiki Kaisha Light guide, illuminating device having the light guide, and image reading device and information processing apparatus having the illuminating device
US5905583A (en) * 1993-01-19 1999-05-18 Canon Kabushiki Kaisha Light guide illuminating device having the light guide, and image reading device and information processing apparatus having the illuminating device
US5969343A (en) * 1995-08-24 1999-10-19 Matsushita Electric Industrial Co., Ltd. Linear illumination device
US6127675A (en) * 1995-08-24 2000-10-03 Matsushita Electric Industrial Co., Ltd. Linear illumination device
US5926286A (en) * 1996-08-22 1999-07-20 Nec Corporation Image sensor apparatus with small convex portions

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See also references of EP1247395A4 *

Also Published As

Publication number Publication date
ZA200206182B (en) 2003-08-20
EP1247395A4 (en) 2003-01-08
JP2003524956A (en) 2003-08-19
AU2626101A (en) 2001-07-16
EP1247395A1 (en) 2002-10-09
US6441928B1 (en) 2002-08-27
CN1418426A (en) 2003-05-14

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