US20090283342A1 - Finger/stylus touch pad - Google Patents

Finger/stylus touch pad Download PDF

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US20090283342A1
US20090283342A1 US12/508,328 US50832809A US2009283342A1 US 20090283342 A1 US20090283342 A1 US 20090283342A1 US 50832809 A US50832809 A US 50832809A US 2009283342 A1 US2009283342 A1 US 2009283342A1
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touch pad
conductive
conductive lines
pad module
stylus
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US12/508,328
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Richard Robert Schediwy
Federico Faggin
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Synaptics Inc
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Synaptics Inc
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Assigned to WELLS FARGO BANK, NATIONAL ASSOCIATION reassignment WELLS FARGO BANK, NATIONAL ASSOCIATION SECURITY INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: SYNAPTICS INCORPORATED
Assigned to SYNAPTICS INCORPORATED reassignment SYNAPTICS INCORPORATED ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: FAGGIN, FEDERICO, SCHEDIWY, RICHARD ROBERT
Assigned to WELLS FARGO BANK, NATIONAL ASSOCIATION reassignment WELLS FARGO BANK, NATIONAL ASSOCIATION SECURITY INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: SYNAPTICS INCORPORATED
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/044Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
    • G06F3/0443Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means using a single layer of sensing electrodes

Definitions

  • the present invention involves a touch pad module for use with an electronic device, such as a notebook computer, which makes use of such modules to implement user input functions.
  • the touch pad module is configured of certain insulative and conductive layers as to enable the electronic device to sense input data from both finger and stylus.
  • capacitive touch pad pointing devices have entered widespread use in personal computers.
  • capacitive sensing technologies used in touch pad devices today:
  • Gerpheide teaches the application of an oscillating potential of a given frequency and phase to all electrodes on one side of a virtual dipole, and an oscillating potential of the same frequency and opposite phase to those on the other side.
  • Electronic circuits develop a “balanced signal” which is zero when no finger is present, and which has the polarity of a finger on one side of the center of the virtual dipole, and the opposite polarity of the finger on the opposite side.
  • the virtual dipole is scanned sequentially across the tablet.
  • the finger is “tracked” by moving the virtual dipole toward the finger once the finger has moved more than a row or column of the matrix constituting the capacitive sensor touch pad. Because the virtual dipole method operates by generating a balance signal that is zero when the capacitance does not vary with distance, it only senses the perimeter of the finger contact area, rather than the entire contact area.
  • This approach is to provide a position sensing system including a position sensing transducer comprising a touch-sensitive surface disposed on a substrate, such as a printed circuit board, including a matrix of conductive lines.
  • a first set of conductive lines runs in a first direction and is insulated from the a second set of conductive lines running in a second direction generally perpendicular to the first direction.
  • An insulating layer is disposed over the first and second sets of conductive lines.
  • the insulative layer is thin enough to promote significant capacitive coupling between a finger placed on its surface and the first and second sets of conductive lines. Sensing electrodes respond to the proximity of a finger to translate the capacitance changes of the conductors caused by the finger proximity into position and touch pressure information.
  • the finger is detected by a plurality of horizontally-aligned sensor electrodes disposed on a first layer, separated by an insulator from a plurality of vertically-aligned sensor electrodes disposed on a second layer.
  • sensor electrodes are often formed as, but are not limited to, standard copper printed circuit board traces.
  • FIG. 1 An example of such an electrode arrangement is shown in FIG. 1 .
  • Sensor array 10 is provided comprising substrate 12 including a set of first conductive traces 14 disposed on top of surface 16 thereof and run in a first direction to comprise row positions of sensor array 10 .
  • the set of second conductive traces 18 are disposed on a bottom surface 20 thereof and run in a second direction preferably orthogonal to the first direction to form the column positions of the sensor array 10 .
  • the set of first and second conductive traces 14 and 18 are alternately in contact with periodic sense pads 22 comprising enlarged areas, shown as diamonds in FIGS. 1A-1C . While sense pads 22 are shown as diamonds in FIGS. 1A-1C , any shapes such as circles, which allows close packing the sense pads 22 is equivalent for purposes of this discussion.
  • capacitive touch pads such as those described above, work well with fingers, but are normally unable to sense a pen or stylus.
  • Capacitive touch pads are typically used as pointing devices.
  • Resistive touch pads work well with pens, but require an uncomfortable amount of pressure when used with fingers.
  • Resistive touch pads are typically used as writing or drawing input devices. To date, there has not been a practical touch pad which would work well with both fingers and pens along with a single input device to serve both functions. Such a touch pad would be especially valuable in portable applications where space is at a premium.
  • the present invention is directed to a touch pad module to implement user input functions to an electronic device.
  • the module comprises a sensor layer having a length and width for detecting position of a conductive object in contact with a touch pad module.
  • An insulative layer is positioned over and contiguous with the sensor layer and a moderately conductive layer is positioned over and contiguous with the insulative layer to provide a touch pad module which can be used as both capacitive and resistive elements have been employed in the past to receive input information from both a finger conductive stylus.
  • FIGS. 1A through 1D are top plan and side views of capacitive touch pads of the prior art.
  • FIGS. 2A and B show, in perspective, the effect of a finger contacting a capacitive touch pad module and a graph illustrating capacitance versus horizontal position on the pad.
  • FIGS. 3A and B show a depiction, in plan view, and in graphical form, of the measurement of finger capacitance in one dimension and the capacitance of various electrodes based upon finger pressure.
  • FIGS. 4A and B show, in perspective, and in graphical form, the effect of a stylus on a capacitive touch pad module and the capacitance generated as a result.
  • FIGS. 5A and B are similar to the depictions shown in FIGS. 4A and B with the contact area of the stylus enlarged.
  • FIGS. 6A and B show, in perspective, a stylus used in conjunction with the touch pad module of the present invention and a capacitance graph generated as a result.
  • FIGS. 7A and B illustrate in perspective, and in graphical form, the results of the application of a stylus to a touch pad wherein the conductance of its top surface is too high.
  • FIGS. 8A and B illustrate in perspective, and in graphical form, the results of the application of a stylus to a touch pad wherein the conductance of its top surface is too low.
  • FIGS. 9A and B are similar to FIGS. 8A and B with a finger employed in place of the conductive stylus.
  • FIGS. 10A and B are again similar to FIGS. 8A and B showing the boundary effects of the conductive stylus contacting the touch pad module of the present invention near its periphery.
  • FIG. 11 is the touch pad module of the present invention in perspective showing the embodiment of providing the user with visual feedback created by the application of suitable stylus.
  • FIG. 12 is a graph of capacitance versus time showing the distinguishing characteristics between the use of stylus and finger in discriminating these two objects in providing positional input data to a suitable electronic device in using the present invention.
  • the present invention involves a touch pad module for use with an electronic apparatus which makes use of such a module to implement all or part of its user input functions.
  • notebook and desktop computers as well as copiers are typical examples of such electronic apparatus having need for a touch pad device such as that disclosed herein.
  • a touch pad allows the user to manipulate a graphics cursor on a CRT display or allows a user to manipulate a stylus thereby allowing input of written text.
  • the touch pad comprises a sensitive planar surface and a means for detecting the position of an object, such as a finger or stylus, near or in contact with the sensitive planar surface.
  • the touch pad continuously communicates this position information to the electronic apparatus typically at a rate of from 40 to 100 Hz.
  • the touch pad module of the present invention can be used to implement user input functions to an electronic device through the use of both the finger of a user as well as through the use of a conductive stylus held by the user.
  • FIG. 2 shows the effect of a finger on a sensor of the prior art, that is, capacitive sensor intended to accept positional data by the application of a fingertip to the touch pad module.
  • Above the electrodes 202 is an insulating layer 201 which provides the surface 203 over which the finger 204 is detected (see FIG. 2A ).
  • each electrode on electrode layer 202 provides one plate of a capacitor and the finger 204 , if present, provides a second plate, with the insulating layer 201 forming the dielectric between them.
  • Sensing electrodes scan the array of electrodes for increased capacitance to ground caused by the presence of a finger or other object over them. By measuring the capacitance on both the horizontal and the vertical electrodes, the location of the finger can be determined.
  • FIG. 2B shows a graph of capacitance versus horizontal position on the pad.
  • the capacitance is proportional to the finger's circular area of contact. Hence, the capacitance is highest near the center of the finger and tapers off toward the edge of the region of contact. Away from the finger, the capacitance is essentially zero, i.e., unaffected by the finger.
  • Touch pads measure the finger position by locating the peak 206 of the curve 205 in FIG. 2B .
  • FIG. 3 shows the effects of fingers of various sizes on the electrode matrix.
  • electrode grid 351 is shown in just the horizontal dimension, and the electrodes are shown as linear wires when, in fact, a more complex pattern such as linear strings of diamond shapes may be preferred in practice.
  • the finger (not shown) makes an approximately circular area of contact with the surface. This circular region 352 is typically large enough to cover several adjacent electrodes. The capacitance on an electrode is proportional to the area of the electrode that is covered by the finger.
  • FIG. 3B shows graph 355 of the capacitances of the various electrodes.
  • the capacitance 356 of the electrode nearest the center of the finger is highest because that electrode has the greatest overlap with the finger.
  • the adjacent electrodes sense a reduced but non-zero capacitance.
  • the relative magnitudes of the detected capacitances on the nearby electrodes can be used to determine the position of the finger accurately with sub-electrode resolution.
  • One popular method computes the centroid of the entire curve 355 ; another method finds the electrode with maximum capacitance and interpolates using a quadratic fit to the adjacent electrode readings.
  • finger 353 is narrower than the distance between electrodes, then it may produce a signal on just one electrode 357 and high-resolution interpolation is impossible. If the finger 354 is extremely narrow, it may fall entirely between electrodes and not register at all as shown at 358 . Fortunately, real fingers are wide enough to allow for good interpolation with a touch pad having a feasible number of electrodes (e.g., 15 electrodes in each dimension).
  • the stylus To use a stylus with such a capacitive sensing touch pad, the stylus must have certain special properties. First, the stylus must be conductive so as to form the required second plate of detectable capacitance. The conductive stylus is grounded either by direct contact with the skin of the effectively grounded human, or by capacitive coupling to the human. Suitable materials for the stylus include metals, and highly conductive plastics such as nylon loaded with carbon fibers or carbon powder.
  • the stylus must form a large enough signal on at least two adjacent traces in each dimension to allow for accurate position measurement.
  • Traditional stylus designs feature a pointed tip which is not large enough to form a signal on more than one trace, as shown in FIG. 4 .
  • Stylus 301 has such a small contact area 302 that the resulting capacitance signal 303 is both too narrow and too low in amplitude for effective position measurement.
  • FIG. 5 illustrates the latter design.
  • Stylus 401 is tipped with plate 402 , whose area has been chosen to mimic the contact area of a typical finger.
  • the capacitive signal 403 created by the plate on the electrodes is a good simulation of the signal produced by a true finger (compare curve 403 to curve 205 of FIG. 2 ).
  • Stylus designs of this kind have been built and shown to work, but they are too clumsy, bulky and fragile to gain wide acceptance among users.
  • the present invention involves placing a moderately conductive layer above the insulating layer, so that the grounded conductive stylus makes contact with the moderately conductive layer.
  • the conductive layer effectively spreads out the ground image of the tip of the stylus, forming a larger second capacitor plate which can be sensed by more than one electrode on each of the horizontal and vertical axes.
  • Electrode 503 and insulating layer 502 have been covered by moderately conductive layer 501 .
  • Layer 501 is made from a conductive material durable enough to be exposed as the surface of the touch pad with no protective coating.
  • a suitable material for this purpose is conductive carbon powder in a plastic carrier material such as epoxy.
  • a conductive stylus 504 is then touched to the surface. Because stylus 504 is held by the human, the stylus is effectively grounded as previously disclosed. The tip of stylus 504 makes electrical contact with conductive layer 501 , causing a grounded region 505 to form on the conductive layer.
  • layer 501 is only moderately conductive, the grounding effect dissipates with distance from the point of contact with the stylus.
  • a sensing circuit which measures capacitance to ground will measure a strong signal in region 505 , but little or no signal far away from region 505 and the stylus tip.
  • the perceived image size of the tip of the stylus can be adjusted to provide sufficient signal on an appropriate number of electrodes. This permits the stylus 504 to be formed in any convenient size and shape, such as that of a familiar fine-tipped pen.
  • the conductive layer is too conductive, then the image will be very large, possibly even covering the entire surface of the touch pad. In this case it may not be possible to determine the location of the stylus by measuring the capacitance on each electrode.
  • layer 601 has such high conductance (i.e., such low resistance) that stylus 602 creates a grounded region 603 that covers a large fraction of the surface.
  • the capacitance graph 604 is so wide that it is hard to measure the peak of the curve accurately.
  • contact with a stylus anywhere on the surface would produce a uniform grounding effect over the entire surface and no position information could be gained.
  • layer 701 has such low conductance (i.e., such high resistance) that grounded region 703 is very small, producing a graph 704 which is not much better than graph 303 with no conductive layer at all.
  • the conductivity of the surface layer should be chosen such that the image of the stylus is about the same size as the image generated by a finger on a normal capacitive sensor (note the similarity of capacitance graphs 205 of FIGS. 2 and 506 of FIG. 6 ).
  • a key benefit of the present invention is that the touch pad can still be used effectively with a finger, as well as with a stylus as previously disclosed.
  • finger 802 touches the surface and produces a grounded region 803 which is larger than the image of a finger on a normal touch pad, but not so large as to render the resulting capacitance graph 804 unusable for calculating the finger position.
  • a conductive layer 801 allows the touch pad to work well with either a stylus or a finger.
  • the present invention can cause a noticeable distortion in the measured position.
  • stylus 902 being close to edge 904 of the sensor, causes grounded region 903 to be truncated into a semicircular shape.
  • the resulting capacitance graph shows a truncated and lop-sided curve as seen in FIG. 10B .
  • the true peak of the curve, and thus the true stylus position, is shown by arrow 906 .
  • the centroid method if employed, will calculate a different position 905 because the curve is truncated on one side.
  • the simplest solution to the boundary distortion effect is to make the touch pad somewhat larger than needed, then to cover the sensor with a bezel with a smaller opening that prevents the finger or stylus from nearing the true edge of the sensor.
  • Another solution is to compensate for the distortion in later processing on the computed position data. This is possible because the effect of the distortion is predictable and repeatable, especially if the conductance of layer 901 is a well-controlled manufacturing variable.
  • a stylus is placed at various positions across the sensor, and the corresponding measured positions tabulated.
  • the resulting table describes a mathematical function. It is easy to see that the effect shown in FIG. 10 produces a monotonic distortion in the measured position, which means the tabulated function has an inverse which can be computed by means well known in the art.
  • the distortion is compensated by applying this inverse function to each measured position during operation of the touch pad.
  • the stylus can be made to leave a mark on the surface of the touch pad, giving a visual feedback to the user.
  • the touch pad is made of the same electrode layer 1003 , insulating layer 1002 , and conductive layer 1001 , but conductive layer 1001 is made of a material whose properties cause stylus 1004 to leave a visible trail 1005 on the surface.
  • the material may be pliant so that the stylus leaves a groove, or have other mechanical or chemical properties that cause the stylus to leave a mark.
  • the stylus can be made of a sacrificial material such as pencil graphite which leaves a trail when moved across the surface. With an appropriate surface material, the markings can be easily wiped off so that subsequent marks are more easily visible.
  • layer 1001 may be made transparent and layer 1002 may be made of a material which changes color or reflectivity when mechanically disturbed.
  • all three layers 1001 , 1002 , and 1003 may be made transparent, and the whole assembly placed over a display screen such as a liquid crystal display (LCD) which can provide visual feedback under software control.
  • LCD liquid crystal display
  • the conductive layer on the touch pad surface will expand any grounded contact by a roughly constant distance which in the preferred embodiment is comparable to the width of a finger.
  • a stylus tip which is essentially a point of negligible size, is expanded to be finger-sized by the conductive layer.
  • a finger has a finger-sized contact area, which is expanded to a much larger size by the conductive layer.
  • a finger can be expected to produce a grounded region of approximately twice the width or diameter as that of a stylus. With the diameter increased by a factor of two, the total area of grounded contact is increased by a factor of four.
  • the system can measure either the total number of electrodes reporting increased capacitance (the diameter of the grounded region) or the total summed capacitance among all the electrodes (the area of the grounded region) to guess whether the contact is a stylus or a finger.
  • a capacitance signal produced by a finger will tend to fluctuate as the angle of contact of the finger on the surface changes, but a stylus signal will remain very constant.
  • the stylus signal is independent of the angle at which the stylus is held because the contact area of the stylus tip itself is negligible.
  • the stylus will produce no signal until contact is made with the surface, whereupon the signal will jump immediately to full strength, whereas a finger will begin producing a small signal as it approaches the surface since a finger-sized conductor creates some capacitance merely by proximity to a capacitance sensor.
  • FIG. 12 illustrates a graph of total summed capacitance “Z” versus time.
  • a stylus contact is made which is characterized by a small, steady, sharp Z signal 1201 .
  • a finger contact occurs with a larger, more varying signal 1202 with a smoother rise and fall.
  • the present invention recognizes, for the first time, that the application of a conductive layer above the insulating layer of a capacitive touch pad provides such an input device which works well with both a finger and a conductive stylus.
  • the size of the stylus tip can be made as small as desired without impacting the ability of the touch pad to accurately determine its location.

Abstract

A touch pad module to implement user input functions to an electronic device is disclosed. The touch pad module includes a sensor layer which, when used in conjunction with an insulative layer and contiguous conductive layer enable the touch pad module to sense both finger and stylus input data to the electronic device.

Description

    PRIORITY DATA
  • This application is a continuation of U.S. patent application Ser. No. 09/176,639, filed Oct. 20, 1998, which is incorporated herein by reference.
  • FIELD OF THE INVENTION
  • The present invention involves a touch pad module for use with an electronic device, such as a notebook computer, which makes use of such modules to implement user input functions. The touch pad module is configured of certain insulative and conductive layers as to enable the electronic device to sense input data from both finger and stylus.
  • BACKGROUND OF THE INVENTION
  • Over the last several years, capacitive touch pad pointing devices have entered widespread use in personal computers. There are at least three distinct capacitive sensing technologies used in touch pad devices today:
  • 1. The “Field Distortion” approach, used by Cirque and Alps as described in PCT Application No. US90/04584, Publication No. WO91/03039 to Gerpheide. Specifically, Gerpheide teaches the application of an oscillating potential of a given frequency and phase to all electrodes on one side of a virtual dipole, and an oscillating potential of the same frequency and opposite phase to those on the other side. Electronic circuits develop a “balanced signal” which is zero when no finger is present, and which has the polarity of a finger on one side of the center of the virtual dipole, and the opposite polarity of the finger on the opposite side. To characterize the position of the finger initially, the virtual dipole is scanned sequentially across the tablet. Once the finger is located, it is “tracked” by moving the virtual dipole toward the finger once the finger has moved more than a row or column of the matrix constituting the capacitive sensor touch pad. Because the virtual dipole method operates by generating a balance signal that is zero when the capacitance does not vary with distance, it only senses the perimeter of the finger contact area, rather than the entire contact area.
  • 2. The charge-detection approach used by the present assignee and described in its U.S. Pat. No. 5,374,787 to Miller et al. Specifically, the present assignee employs what is called a “finger pointer” technique. This approach is to provide a position sensing system including a position sensing transducer comprising a touch-sensitive surface disposed on a substrate, such as a printed circuit board, including a matrix of conductive lines. A first set of conductive lines runs in a first direction and is insulated from the a second set of conductive lines running in a second direction generally perpendicular to the first direction. An insulating layer is disposed over the first and second sets of conductive lines. The insulative layer is thin enough to promote significant capacitive coupling between a finger placed on its surface and the first and second sets of conductive lines. Sensing electrodes respond to the proximity of a finger to translate the capacitance changes of the conductors caused by the finger proximity into position and touch pressure information.
  • 3. An unrelated approach employed currently by Logitech.
  • All three of these technologies share an important common feature: The finger is detected by a plurality of horizontally-aligned sensor electrodes disposed on a first layer, separated by an insulator from a plurality of vertically-aligned sensor electrodes disposed on a second layer. Such sensor electrodes are often formed as, but are not limited to, standard copper printed circuit board traces.
  • An example of such an electrode arrangement is shown in FIG. 1. Specifically, reference is made to FIGS. 1A through D, top, bottom, composite and cross-sectional views, respectively. Sensor array 10 is provided comprising substrate 12 including a set of first conductive traces 14 disposed on top of surface 16 thereof and run in a first direction to comprise row positions of sensor array 10. The set of second conductive traces 18 are disposed on a bottom surface 20 thereof and run in a second direction preferably orthogonal to the first direction to form the column positions of the sensor array 10. The set of first and second conductive traces 14 and 18 are alternately in contact with periodic sense pads 22 comprising enlarged areas, shown as diamonds in FIGS. 1A-1C. While sense pads 22 are shown as diamonds in FIGS. 1A-1C, any shapes such as circles, which allows close packing the sense pads 22 is equivalent for purposes of this discussion.
  • It is well recognized that capacitive touch pads, such as those described above, work well with fingers, but are normally unable to sense a pen or stylus. Capacitive touch pads are typically used as pointing devices. Resistive touch pads work well with pens, but require an uncomfortable amount of pressure when used with fingers. Resistive touch pads are typically used as writing or drawing input devices. To date, there has not been a practical touch pad which would work well with both fingers and pens along with a single input device to serve both functions. Such a touch pad would be especially valuable in portable applications where space is at a premium.
  • It is thus an object of the present invention to provide an input device in the form of a touch pad module which will accept both finger and stylus input, that is, having the desirable attributes of both a capacitive touch pad for finer input and a resistive touch pad for stylus input in the same module.
  • This and further objects will be more readily apparent when considering the following disclosure and appended claims.
  • BRIEF SUMMARY OF THE INVENTION
  • The present invention is directed to a touch pad module to implement user input functions to an electronic device. The module comprises a sensor layer having a length and width for detecting position of a conductive object in contact with a touch pad module. An insulative layer is positioned over and contiguous with the sensor layer and a moderately conductive layer is positioned over and contiguous with the insulative layer to provide a touch pad module which can be used as both capacitive and resistive elements have been employed in the past to receive input information from both a finger conductive stylus.
  • BRIEF DESCRIPTION OF DRAWINGS
  • FIGS. 1A through 1D are top plan and side views of capacitive touch pads of the prior art.
  • FIGS. 2A and B show, in perspective, the effect of a finger contacting a capacitive touch pad module and a graph illustrating capacitance versus horizontal position on the pad.
  • FIGS. 3A and B show a depiction, in plan view, and in graphical form, of the measurement of finger capacitance in one dimension and the capacitance of various electrodes based upon finger pressure.
  • FIGS. 4A and B show, in perspective, and in graphical form, the effect of a stylus on a capacitive touch pad module and the capacitance generated as a result.
  • FIGS. 5A and B are similar to the depictions shown in FIGS. 4A and B with the contact area of the stylus enlarged.
  • FIGS. 6A and B show, in perspective, a stylus used in conjunction with the touch pad module of the present invention and a capacitance graph generated as a result.
  • FIGS. 7A and B illustrate in perspective, and in graphical form, the results of the application of a stylus to a touch pad wherein the conductance of its top surface is too high.
  • FIGS. 8A and B illustrate in perspective, and in graphical form, the results of the application of a stylus to a touch pad wherein the conductance of its top surface is too low.
  • FIGS. 9A and B are similar to FIGS. 8A and B with a finger employed in place of the conductive stylus.
  • FIGS. 10A and B are again similar to FIGS. 8A and B showing the boundary effects of the conductive stylus contacting the touch pad module of the present invention near its periphery.
  • FIG. 11 is the touch pad module of the present invention in perspective showing the embodiment of providing the user with visual feedback created by the application of suitable stylus.
  • FIG. 12 is a graph of capacitance versus time showing the distinguishing characteristics between the use of stylus and finger in discriminating these two objects in providing positional input data to a suitable electronic device in using the present invention.
  • DETAILED DESCRIPTION OF THE INVENTION
  • The present invention involves a touch pad module for use with an electronic apparatus which makes use of such a module to implement all or part of its user input functions. Notebook and desktop computers as well as copiers are typical examples of such electronic apparatus having need for a touch pad device such as that disclosed herein. When used in conjunction with a computer, a touch pad allows the user to manipulate a graphics cursor on a CRT display or allows a user to manipulate a stylus thereby allowing input of written text. The touch pad comprises a sensitive planar surface and a means for detecting the position of an object, such as a finger or stylus, near or in contact with the sensitive planar surface. The touch pad continuously communicates this position information to the electronic apparatus typically at a rate of from 40 to 100 Hz.
  • As noted previously, the touch pad module of the present invention can be used to implement user input functions to an electronic device through the use of both the finger of a user as well as through the use of a conductive stylus held by the user. FIG. 2 shows the effect of a finger on a sensor of the prior art, that is, capacitive sensor intended to accept positional data by the application of a fingertip to the touch pad module. Above the electrodes 202 is an insulating layer 201 which provides the surface 203 over which the finger 204 is detected (see FIG. 2A). In operation, each electrode on electrode layer 202 provides one plate of a capacitor and the finger 204, if present, provides a second plate, with the insulating layer 201 forming the dielectric between them. The conductance of the human body, combined with the human body's inherent capacitance to free space, causes the finger to appear to be electrically grounded in terms of its capacitance to the electrodes. Sensing electrodes scan the array of electrodes for increased capacitance to ground caused by the presence of a finger or other object over them. By measuring the capacitance on both the horizontal and the vertical electrodes, the location of the finger can be determined.
  • FIG. 2B shows a graph of capacitance versus horizontal position on the pad. The capacitance is proportional to the finger's circular area of contact. Hence, the capacitance is highest near the center of the finger and tapers off toward the edge of the region of contact. Away from the finger, the capacitance is essentially zero, i.e., unaffected by the finger. Touch pads measure the finger position by locating the peak 206 of the curve 205 in FIG. 2B.
  • The position of the finger can be determined much more accurately than the distance between the electrodes if the finger is wide enough to provide a measurable signal on more than one of the electrodes in each of the horizontal and vertical dimensions. FIG. 3 shows the effects of fingers of various sizes on the electrode matrix. For simplicity, electrode grid 351 is shown in just the horizontal dimension, and the electrodes are shown as linear wires when, in fact, a more complex pattern such as linear strings of diamond shapes may be preferred in practice. The finger (not shown) makes an approximately circular area of contact with the surface. This circular region 352 is typically large enough to cover several adjacent electrodes. The capacitance on an electrode is proportional to the area of the electrode that is covered by the finger. This area of overlap is largest near the center of the finger, and tapers off toward the edge of the finger contact region. FIG. 3B shows graph 355 of the capacitances of the various electrodes. The capacitance 356 of the electrode nearest the center of the finger is highest because that electrode has the greatest overlap with the finger. Because the finger is large compared to the electrode spacing, the adjacent electrodes sense a reduced but non-zero capacitance. The relative magnitudes of the detected capacitances on the nearby electrodes can be used to determine the position of the finger accurately with sub-electrode resolution. One popular method computes the centroid of the entire curve 355; another method finds the electrode with maximum capacitance and interpolates using a quadratic fit to the adjacent electrode readings.
  • If finger 353 is narrower than the distance between electrodes, then it may produce a signal on just one electrode 357 and high-resolution interpolation is impossible. If the finger 354 is extremely narrow, it may fall entirely between electrodes and not register at all as shown at 358. Fortunately, real fingers are wide enough to allow for good interpolation with a touch pad having a feasible number of electrodes (e.g., 15 electrodes in each dimension).
  • To use a stylus with such a capacitive sensing touch pad, the stylus must have certain special properties. First, the stylus must be conductive so as to form the required second plate of detectable capacitance. The conductive stylus is grounded either by direct contact with the skin of the effectively grounded human, or by capacitive coupling to the human. Suitable materials for the stylus include metals, and highly conductive plastics such as nylon loaded with carbon fibers or carbon powder.
  • Second, the stylus must form a large enough signal on at least two adjacent traces in each dimension to allow for accurate position measurement. Traditional stylus designs feature a pointed tip which is not large enough to form a signal on more than one trace, as shown in FIG. 4. Stylus 301 has such a small contact area 302 that the resulting capacitance signal 303 is both too narrow and too low in amplitude for effective position measurement.
  • Several designs for a wide stylus have been attempted. For example, a ball of conductive foam may be attached to the end of the stylus, or a small circular plate of metal can be attached by a ball joint to the tip. FIG. 5 illustrates the latter design. Stylus 401 is tipped with plate 402, whose area has been chosen to mimic the contact area of a typical finger. Hence, the capacitive signal 403 created by the plate on the electrodes is a good simulation of the signal produced by a true finger (compare curve 403 to curve 205 of FIG. 2). Stylus designs of this kind have been built and shown to work, but they are too clumsy, bulky and fragile to gain wide acceptance among users.
  • For these reasons, the great majority of pen-actuated touch pads currently manufactured use resistive, not capacitive, sensors. In a resistive touch pad, pressure from the finger or stylus pushes a flexible conductive membrane against another conductive surface and thereby detects a measurable electrical signal. The resistive touch pad works well with a pointed stylus, but because it requires actual pressure, the resistive pad is uncomfortable to use with a finger. Also, the large contact area of a finger reduces the accuracy of a resistive pad. Finally, because the resistive touch pad contains moving parts, it is more fragile than a capacitive touch pad. Hence, a capacitive touch pad that could work with a point-tipped stylus would be of considerable value in the marketplace.
  • As noted previously, the present invention involves placing a moderately conductive layer above the insulating layer, so that the grounded conductive stylus makes contact with the moderately conductive layer. The conductive layer effectively spreads out the ground image of the tip of the stylus, forming a larger second capacitor plate which can be sensed by more than one electrode on each of the horizontal and vertical axes.
  • In FIG. 6, electrode 503 and insulating layer 502 have been covered by moderately conductive layer 501. Layer 501 is made from a conductive material durable enough to be exposed as the surface of the touch pad with no protective coating. A suitable material for this purpose is conductive carbon powder in a plastic carrier material such as epoxy. A conductive stylus 504 is then touched to the surface. Because stylus 504 is held by the human, the stylus is effectively grounded as previously disclosed. The tip of stylus 504 makes electrical contact with conductive layer 501, causing a grounded region 505 to form on the conductive layer. Because layer 501 is only moderately conductive, the grounding effect dissipates with distance from the point of contact with the stylus. A sensing circuit which measures capacitance to ground will measure a strong signal in region 505, but little or no signal far away from region 505 and the stylus tip.
  • By controlling the conductivity of layer 501, the perceived image size of the tip of the stylus can be adjusted to provide sufficient signal on an appropriate number of electrodes. This permits the stylus 504 to be formed in any convenient size and shape, such as that of a familiar fine-tipped pen.
  • If the conductive layer is too conductive, then the image will be very large, possibly even covering the entire surface of the touch pad. In this case it may not be possible to determine the location of the stylus by measuring the capacitance on each electrode. In FIG. 7, layer 601 has such high conductance (i.e., such low resistance) that stylus 602 creates a grounded region 603 that covers a large fraction of the surface. Hence, the capacitance graph 604 is so wide that it is hard to measure the peak of the curve accurately. In the extreme case of a highly conductive layer 601, contact with a stylus anywhere on the surface would produce a uniform grounding effect over the entire surface and no position information could be gained.
  • If the conductive layer is not conductive enough, then the image will not be much larger than the tip of the stylus, and it may not be possible to determine the location of the stylus to a resolution any higher than the electrode pitch. In FIG. 8, layer 701 has such low conductance (i.e., such high resistance) that grounded region 703 is very small, producing a graph 704 which is not much better than graph 303 with no conductive layer at all.
  • For best operation, the conductivity of the surface layer should be chosen such that the image of the stylus is about the same size as the image generated by a finger on a normal capacitive sensor (note the similarity of capacitance graphs 205 of FIGS. 2 and 506 of FIG. 6).
  • A key benefit of the present invention is that the touch pad can still be used effectively with a finger, as well as with a stylus as previously disclosed.
  • The fundamental mechanism of the capacitive touch pad as described above continues to detect fingers on touch pads with the additional conductive layer. In FIG. 9, finger 802 touches the surface and produces a grounded region 803 which is larger than the image of a finger on a normal touch pad, but not so large as to render the resulting capacitance graph 804 unusable for calculating the finger position.
  • Thus, the addition of a conductive layer 801 allows the touch pad to work well with either a stylus or a finger.
  • It was determined that when the stylus or finger nears the edge of the sensor, the present invention can cause a noticeable distortion in the measured position. Referring to FIG. 10, stylus 902 being close to edge 904 of the sensor, causes grounded region 903 to be truncated into a semicircular shape. The resulting capacitance graph shows a truncated and lop-sided curve as seen in FIG. 10B. The true peak of the curve, and thus the true stylus position, is shown by arrow 906. The centroid method, if employed, will calculate a different position 905 because the curve is truncated on one side. The simplest solution to the boundary distortion effect is to make the touch pad somewhat larger than needed, then to cover the sensor with a bezel with a smaller opening that prevents the finger or stylus from nearing the true edge of the sensor.
  • Another solution is to compensate for the distortion in later processing on the computed position data. This is possible because the effect of the distortion is predictable and repeatable, especially if the conductance of layer 901 is a well-controlled manufacturing variable. To compensate for the distortion, a stylus is placed at various positions across the sensor, and the corresponding measured positions tabulated. The resulting table describes a mathematical function. It is easy to see that the effect shown in FIG. 10 produces a monotonic distortion in the measured position, which means the tabulated function has an inverse which can be computed by means well known in the art. The distortion is compensated by applying this inverse function to each measured position during operation of the touch pad.
  • By choosing appropriate materials for the stylus tip and touch pad surface, the stylus can be made to leave a mark on the surface of the touch pad, giving a visual feedback to the user. In FIG. 11, the touch pad is made of the same electrode layer 1003, insulating layer 1002, and conductive layer 1001, but conductive layer 1001 is made of a material whose properties cause stylus 1004 to leave a visible trail 1005 on the surface. The material may be pliant so that the stylus leaves a groove, or have other mechanical or chemical properties that cause the stylus to leave a mark. Or, the stylus can be made of a sacrificial material such as pencil graphite which leaves a trail when moved across the surface. With an appropriate surface material, the markings can be easily wiped off so that subsequent marks are more easily visible.
  • It is possible to make materials which are both conductive and transparent to visible light. In this case, layer 1001 may be made transparent and layer 1002 may be made of a material which changes color or reflectivity when mechanically disturbed. In yet another approach, all three layers 1001, 1002, and 1003 may be made transparent, and the whole assembly placed over a display screen such as a liquid crystal display (LCD) which can provide visual feedback under software control.
  • In some applications it may be useful to be able to distinguish between stylus contact and finger contact on the touch pad. Although there is no guaranteed way to make this distinction given only the capacitance graph, it is possible to make a fairly reliable heuristic guess by noting the differences between stylus input graph 506 and finger input graph 804.
  • The conductive layer on the touch pad surface will expand any grounded contact by a roughly constant distance which in the preferred embodiment is comparable to the width of a finger. A stylus tip, which is essentially a point of negligible size, is expanded to be finger-sized by the conductive layer. A finger has a finger-sized contact area, which is expanded to a much larger size by the conductive layer. Thus, a finger can be expected to produce a grounded region of approximately twice the width or diameter as that of a stylus. With the diameter increased by a factor of two, the total area of grounded contact is increased by a factor of four. Hence, the system can measure either the total number of electrodes reporting increased capacitance (the diameter of the grounded region) or the total summed capacitance among all the electrodes (the area of the grounded region) to guess whether the contact is a stylus or a finger.
  • Another useful factor is that a capacitance signal produced by a finger will tend to fluctuate as the angle of contact of the finger on the surface changes, but a stylus signal will remain very constant. The stylus signal is independent of the angle at which the stylus is held because the contact area of the stylus tip itself is negligible. Yet another factor is that the stylus will produce no signal until contact is made with the surface, whereupon the signal will jump immediately to full strength, whereas a finger will begin producing a small signal as it approaches the surface since a finger-sized conductor creates some capacitance merely by proximity to a capacitance sensor.
  • FIG. 12 illustrates a graph of total summed capacitance “Z” versus time. First, a stylus contact is made which is characterized by a small, steady, sharp Z signal 1201. Then, a finger contact occurs with a larger, more varying signal 1202 with a smoother rise and fall.
  • In summary, the present invention recognizes, for the first time, that the application of a conductive layer above the insulating layer of a capacitive touch pad provides such an input device which works well with both a finger and a conductive stylus. In addition, it is noted that the size of the stylus tip can be made as small as desired without impacting the ability of the touch pad to accurately determine its location.

Claims (20)

1. A capacitive touch pad module comprising:
a first set of conductive lines;
a second set of conductive lines insulated from the first set of conductive lines;
an insulating layer disposed over the first and second sets of conductive lines;
a conductive layer placed over the insulating layer, the conductive layer configured such that it would spread out a ground image of a grounded conductive stylus in contact with the conductive layer.
2. The capacitive touch pad module of claim 1 wherein the touch pad module further includes a means for distinguishing a characteristic of the conductive object.
3. The capacitive touch pad module of claim 2, wherein the means for distinguishing a characteristic of the conductive object distinguishes between stylus and finger.
4. The capacitive touch pad module of claim 1 wherein the conductive layer comprises a conductive material disposed in a plastic carrier.
5. The capacitive touch pad module of claim 1 wherein the first set of conductive lines runs in a first direction, wherein the second set of conductive lines runs in a second direction generally perpendicular to the first direction, and wherein the first set of conductive lines and the second set of conductive lines form an electrode grid.
6. The capacitive touch pad module of claim 1 wherein a first subset of the first set of conductive lines is configured to have applied to it an oscillating potential of a given frequency and a first phase, and wherein a second subset of the first set of conductive lines is configured to have applied to it an oscillating potential of the given frequency and a second phase, wherein the second phase is opposite to the first phase.
7. The capacitive touch pad module of claim 1 wherein the first set of conductive lines comprise printed circuit board traces and the second set of conductive lines comprise printed circuit board traces.
8. The capacitive touch pad module of claim 1, wherein the first set of conductive lines is transparent, the second set of conductive lines is transparent, the insulating layer is transparent, and the conductive layer is transparent.
9. The capacitive touch pad module of claim 1, wherein the touch pad module is transparent, further comprising:
a display screen under the first set of conductive lines, the second set of conductive lines, the insulating layer, and the conductive layer.
10. A touch pad module comprising:
a surface;
a first set of conductive lines located below the surface;
a second set of conductive lines insulated from the first set of conductive lines and located below the surface, wherein the first and second set of conductive lines are configured to detect changes in capacitance resulting from a stylus in contact with the surface;
an insulating layer disposed over the first and second sets of conductive lines; and
a conductive layer placed over the insulating layer, the conductive layer configured such that it would spread a ground image of a grounded object in contact with the conductive layer.
11. The touch pad module of claim 10 wherein the touch pad module further includes a means for distinguishing between stylus contact and finger contact.
12. The touch pad module of claim 10 wherein the conductive layer comprises a conductive material disposed in a plastic carrier.
13. The touch pad module of claim 10 wherein the first set of conductive lines and the second set of conductive lines form an electrode grid.
14. The touch pad module of claim 10 wherein a first subset of the first set of conductive lines is configured to have applied to it an oscillating potential of a given frequency and a first phase, and wherein a second subset of the first set of conductive lines is configured to have applied to it an oscillating potential of the given frequency and a second phase, wherein the second phase is opposite to the first phase.
15. The touch pad module of claim 10 wherein the touch pad module is transparent, further comprising:
a display screen under the first set of conductive lines, the second set of conductive lines, the insulating layer, and the conductive layer.
16. A capacitive touch pad module comprising:
a surface;
a set of conductive lines disposed under the surface;
an insulating material disposed over the set of conductive lines;
a conductive layer placed over the insulating layer, wherein the set of conductive lines, the insulating layer, and the conductive layer are configured to create a detectable capacitance change when a user places a stylus in contact with the surface, the detectable capacitance change determined in part by the conductive layer, and wherein the conductive layer is configured to create an image of the conductive object to thereby make the detectable capacitance change greater than without the conductive layer.
17. The capacitive touch pad module of claim 16 wherein the set of conductive lines, the insulating layer, and the conductive layer are configured to distinguish between stylus and finger.
18. The capacitive touch pad module of claim 16 wherein the set of conductive lines form an electrode grid.
19. The capacitive touch pad module of claim 16 wherein a first subset of the set of conductive lines is configured to have applied to it an oscillating potential of a given frequency and a first phase, and wherein a second subset of the set of conductive lines is configured to have applied to it an oscillating potential of the given frequency and a second phase, wherein the second phase is opposite to the first phase.
20. The capacitive touch pad module of claim 16 wherein the touch pad module is transparent, and further comprising:
a display screen under the first set of conductive lines, the second set of conductive lines, the insulating layer, and the conductive layer.
US12/508,328 1998-10-20 2009-07-23 Finger/stylus touch pad Abandoned US20090283342A1 (en)

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Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090173534A1 (en) * 2008-01-07 2009-07-09 Apple Inc. I/o connectors with extendable faraday cage
US20110175835A1 (en) * 2010-01-21 2011-07-21 Tpk Touch Solutions (Xiamen) Inc Method for Scanning Projective Capacitive Touch Panel, Storage Medium and Apparatus for Scanning Projective Capacitive Touch Panel
US20110291963A1 (en) * 2010-05-27 2011-12-01 Yoon-Hwan Woo Liquid crystal display panel with embedded touch panel and method for manufacturing the same
US8110744B2 (en) 2008-08-19 2012-02-07 Apple Inc. Flexible shielded cable
US20120075243A1 (en) * 2010-09-24 2012-03-29 Koji Doi Display Device
US20130106760A1 (en) * 2011-10-28 2013-05-02 Atmel Corporation Communication Between a Master Active Stylus and a Slave Touch-Sensor Device
US20130234999A1 (en) * 2012-03-09 2013-09-12 Casio Computer Co., Ltd. Input pen
US20130265279A1 (en) * 2012-04-10 2013-10-10 Samsung Electronics Co., Ltd. Position measuring apparatus and driving method thereof
JP2015052861A (en) * 2013-09-06 2015-03-19 三菱鉛筆株式会社 Film for touch panel
JP2015056025A (en) * 2013-09-12 2015-03-23 三菱鉛筆株式会社 Cover material for touch panel, and touch panel using the same
US20150085201A1 (en) * 2013-09-26 2015-03-26 Henghao Technology Co. Ltd Touch panel
US9483146B2 (en) 2012-10-17 2016-11-01 Perceptive Pixel, Inc. Input classification for multi-touch systems
WO2017003608A1 (en) * 2015-06-27 2017-01-05 Intel Corporation Single stylus for use with multiple inking technologies
TWI569196B (en) * 2014-12-05 2017-02-01 義隆電子股份有限公司 Capacitive touch device and object identifying method for the capacitive touch device
US10203786B1 (en) * 2015-12-09 2019-02-12 Amazon Technologies, Inc. Touch enabled user device with unpowered display
US10444927B2 (en) 2016-11-04 2019-10-15 Microsoft Technology Licensing, Llc Stylus hover and position communication protocol
DE102018206140A1 (en) * 2018-04-20 2019-10-24 Bayerische Motoren Werke Aktiengesellschaft Cover element, system and device

Families Citing this family (43)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6822640B2 (en) 2001-04-10 2004-11-23 Hewlett-Packard Development Company, L.P. Illuminated touch pad
FR2859525B1 (en) * 2003-09-09 2006-06-02 Delphi Tech Inc SLIDE CAPACITIVE SWITCH
US10203814B2 (en) * 2006-04-20 2019-02-12 Nokia Technologies Oy Sensor arrangement comprising a conductive layer
EP2071436B1 (en) 2006-09-28 2019-01-09 Kyocera Corporation Portable terminal and method for controlling the same
US11449158B2 (en) * 2006-12-28 2022-09-20 International Business Machines Corporation Interactive, touch-sensitive user interface device
US8902174B1 (en) 2008-02-29 2014-12-02 Cypress Semiconductor Corporation Resolving multiple presences over a touch sensor array
US8441452B1 (en) 2008-04-10 2013-05-14 Cypress Semiconductor Corporation Multiple touch detection
JP5206250B2 (en) * 2008-05-02 2013-06-12 セイコーエプソン株式会社 Display device and electronic device
US8816986B1 (en) * 2008-06-01 2014-08-26 Cypress Semiconductor Corporation Multiple touch detection
KR100975868B1 (en) * 2008-07-23 2010-08-13 삼성모바일디스플레이주식회사 Flat panel display device
JP5224973B2 (en) * 2008-08-26 2013-07-03 株式会社ジャパンディスプレイウェスト Information input / output device and information input / output method
US8482545B2 (en) * 2008-10-02 2013-07-09 Wacom Co., Ltd. Combination touch and transducer input system and method
KR20100043437A (en) * 2008-10-20 2010-04-29 삼성전자주식회사 Apparatus and method for determining input in a computiing equipment with touch screen
US20100108409A1 (en) * 2008-11-06 2010-05-06 Jun Tanaka Capacitive coupling type touch panel
KR101021440B1 (en) * 2008-11-14 2011-03-15 한국표준과학연구원 Touch-input device, mobile device and control method thereof
US8305358B2 (en) * 2009-02-10 2012-11-06 Sony Ericsson Mobile Communications Ab Sensor, display including a sensor, and method for using a sensor
US9740341B1 (en) 2009-02-26 2017-08-22 Amazon Technologies, Inc. Capacitive sensing with interpolating force-sensitive resistor array
US10180746B1 (en) 2009-02-26 2019-01-15 Amazon Technologies, Inc. Hardware enabled interpolating sensor and display
TWI414974B (en) * 2009-06-17 2013-11-11 Novatek Microelectronics Corp Touch position sensing method and position sensing system of touch panel
US9244562B1 (en) * 2009-07-31 2016-01-26 Amazon Technologies, Inc. Gestures and touches on force-sensitive input devices
US9785272B1 (en) 2009-07-31 2017-10-10 Amazon Technologies, Inc. Touch distinction
JP5548270B2 (en) 2009-08-21 2014-07-16 アップル インコーポレイテッド Capacitive sensing method and apparatus
CN102043523B (en) * 2009-10-09 2013-11-06 禾瑞亚科技股份有限公司 Method and device for converting sensing information
CN102043508B (en) 2009-10-09 2013-01-02 禾瑞亚科技股份有限公司 Method and device for signal detection
TWI405108B (en) 2009-10-09 2013-08-11 Egalax Empia Technology Inc Method and device for analyzing positions
US9864471B2 (en) 2009-10-09 2018-01-09 Egalax_Empia Technology Inc. Method and processor for analyzing two-dimension information
TWI552024B (en) 2009-10-09 2016-10-01 禾瑞亞科技股份有限公司 Method and device for analyzing two dimension sensing information
TWI414981B (en) 2009-10-09 2013-11-11 Egalax Empia Technology Inc Method and device for dual-differential sensing
CN102043551B (en) * 2009-10-09 2013-05-08 禾瑞亚科技股份有限公司 Method and device for capacitive position detection
TWI407347B (en) 2009-10-09 2013-09-01 Egalax Empia Technology Inc Method and device for position detection
US8810524B1 (en) 2009-11-20 2014-08-19 Amazon Technologies, Inc. Two-sided touch sensor
US8963832B2 (en) * 2010-03-05 2015-02-24 Lenovo Innovations Limited (Hong Kong) Mobile terminal
CN103370679B (en) * 2011-02-18 2016-03-16 三菱电机株式会社 Coordinate entering device and touch-panel device
KR102102663B1 (en) * 2012-10-05 2020-04-22 삼성전자주식회사 Method and apparatus for using a portable terminal
US9632605B2 (en) 2012-10-17 2017-04-25 Perceptive Pixel, Inc. Input classification for multi-touch systems
KR102008780B1 (en) * 2012-12-21 2019-08-08 엘지디스플레이 주식회사 Display device and driving method thereof
US9836154B2 (en) 2013-01-24 2017-12-05 Nook Digital, Llc Selective touch scan area and reporting techniques
US8717325B1 (en) * 2013-02-18 2014-05-06 Atmel Corporation Detecting presence of an object in the vicinity of a touch interface of a device
US9035919B2 (en) * 2013-03-15 2015-05-19 Microchip Technology Incorporated Electrostatics stylus
KR101452302B1 (en) 2013-07-29 2014-10-22 주식회사 하이딥 Touch sensor panel
KR101712346B1 (en) 2014-09-19 2017-03-22 주식회사 하이딥 Touch input device
US9354734B2 (en) 2014-03-04 2016-05-31 Atmel Corporation Common-mode hover detection
JP6527343B2 (en) 2014-08-01 2019-06-05 株式会社 ハイディープHiDeep Inc. Touch input device

Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4124747A (en) * 1974-06-04 1978-11-07 Exxon Research & Engineering Co. Conductive polyolefin sheet element
US4436648A (en) * 1980-12-22 1984-03-13 Bell Telephone Laboratories, Incorporated Electrically conducting thermoplastic material, its manufacture, and resulting article
US4641354A (en) * 1984-03-30 1987-02-03 Hitachi, Ltd. Apparatus for recognizing and displaying handwritten characters and figures
US4731694A (en) * 1986-05-05 1988-03-15 Siemens Aktiengesellschaft Touch selection pad and method of manufacture
US4772422A (en) * 1985-12-02 1988-09-20 Polyplastics Co., Ltd. Electrically conductive resin composition
US5133076A (en) * 1989-06-12 1992-07-21 Grid Systems Corporation Hand held computer
US5207949A (en) * 1990-04-16 1993-05-04 Asahi Kasei Kogyo Kabushiki Kaisha Highly conductive polyoxymethylene resin composition containing carbon black
US5374787A (en) * 1992-06-08 1994-12-20 Synaptics, Inc. Object position detector
US5386219A (en) * 1991-10-16 1995-01-31 International Business Machines Corp. Touch overlay for improved touch sensitivity
US5455901A (en) * 1991-11-12 1995-10-03 Compaq Computer Corporation Input device with deferred translation
US5502461A (en) * 1993-05-11 1996-03-26 Sanyo Electric Co., Ltd. Hand written character input system/allowing change of size of character writing frames
US5558977A (en) * 1995-12-22 1996-09-24 Eastman Kodak Company Imaging element comprising a transparent magnetic layer and a transparent electrically-conductive layer
US5587560A (en) * 1995-04-10 1996-12-24 At&T Global Information Solutions Company Portable handwritten data capture device and method of using
US5600871A (en) * 1995-09-08 1997-02-11 Mandl; Gerhard Combing machine having pneumatic detachment assist
US5983073A (en) * 1997-04-04 1999-11-09 Ditzik; Richard J. Modular notebook and PDA computer systems for personal computing and wireless communications

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5600781A (en) * 1994-09-30 1997-02-04 Intel Corporation Method and apparatus for creating a portable personalized operating environment

Patent Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4124747A (en) * 1974-06-04 1978-11-07 Exxon Research & Engineering Co. Conductive polyolefin sheet element
US4436648A (en) * 1980-12-22 1984-03-13 Bell Telephone Laboratories, Incorporated Electrically conducting thermoplastic material, its manufacture, and resulting article
US4641354A (en) * 1984-03-30 1987-02-03 Hitachi, Ltd. Apparatus for recognizing and displaying handwritten characters and figures
US4772422A (en) * 1985-12-02 1988-09-20 Polyplastics Co., Ltd. Electrically conductive resin composition
US4731694A (en) * 1986-05-05 1988-03-15 Siemens Aktiengesellschaft Touch selection pad and method of manufacture
US5133076A (en) * 1989-06-12 1992-07-21 Grid Systems Corporation Hand held computer
US5207949A (en) * 1990-04-16 1993-05-04 Asahi Kasei Kogyo Kabushiki Kaisha Highly conductive polyoxymethylene resin composition containing carbon black
US5386219A (en) * 1991-10-16 1995-01-31 International Business Machines Corp. Touch overlay for improved touch sensitivity
US5455901A (en) * 1991-11-12 1995-10-03 Compaq Computer Corporation Input device with deferred translation
US5374787A (en) * 1992-06-08 1994-12-20 Synaptics, Inc. Object position detector
US5502461A (en) * 1993-05-11 1996-03-26 Sanyo Electric Co., Ltd. Hand written character input system/allowing change of size of character writing frames
US5587560A (en) * 1995-04-10 1996-12-24 At&T Global Information Solutions Company Portable handwritten data capture device and method of using
US5600871A (en) * 1995-09-08 1997-02-11 Mandl; Gerhard Combing machine having pneumatic detachment assist
US5558977A (en) * 1995-12-22 1996-09-24 Eastman Kodak Company Imaging element comprising a transparent magnetic layer and a transparent electrically-conductive layer
US5983073A (en) * 1997-04-04 1999-11-09 Ditzik; Richard J. Modular notebook and PDA computer systems for personal computing and wireless communications

Cited By (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8587953B2 (en) 2008-01-07 2013-11-19 Apple Inc. Flexible data cable
US20090173533A1 (en) * 2008-01-07 2009-07-09 Apple Inc. Flexible data cable
US8067701B2 (en) * 2008-01-07 2011-11-29 Apple Inc. I/O connectors with extendable faraday cage
US20090173534A1 (en) * 2008-01-07 2009-07-09 Apple Inc. I/o connectors with extendable faraday cage
US8110744B2 (en) 2008-08-19 2012-02-07 Apple Inc. Flexible shielded cable
US20110175835A1 (en) * 2010-01-21 2011-07-21 Tpk Touch Solutions (Xiamen) Inc Method for Scanning Projective Capacitive Touch Panel, Storage Medium and Apparatus for Scanning Projective Capacitive Touch Panel
US20110291963A1 (en) * 2010-05-27 2011-12-01 Yoon-Hwan Woo Liquid crystal display panel with embedded touch panel and method for manufacturing the same
US9575583B2 (en) * 2010-05-27 2017-02-21 Lg Display Co., Ltd. Liquid crystal display panel with embedded touch panel and method for manufacturing the same
US20120075243A1 (en) * 2010-09-24 2012-03-29 Koji Doi Display Device
US10372261B2 (en) 2010-09-24 2019-08-06 Japan Display Inc. Display device
US9569038B2 (en) * 2010-09-24 2017-02-14 Japan Display Inc. Display device
US9946408B2 (en) * 2011-10-28 2018-04-17 Atmel Corporation Communication between a master active stylus and a slave touch-sensor device
US20130106760A1 (en) * 2011-10-28 2013-05-02 Atmel Corporation Communication Between a Master Active Stylus and a Slave Touch-Sensor Device
US20130234999A1 (en) * 2012-03-09 2013-09-12 Casio Computer Co., Ltd. Input pen
US9612692B2 (en) * 2012-04-10 2017-04-04 Samsung Electronics Co., Ltd Position measuring apparatus and driving method thereof
KR20130114934A (en) * 2012-04-10 2013-10-21 삼성전자주식회사 Position measuring apparatus and driving method thereof
US20130265279A1 (en) * 2012-04-10 2013-10-10 Samsung Electronics Co., Ltd. Position measuring apparatus and driving method thereof
KR102000964B1 (en) 2012-04-10 2019-07-17 삼성전자주식회사 Position measuring apparatus and driving method thereof
US9483146B2 (en) 2012-10-17 2016-11-01 Perceptive Pixel, Inc. Input classification for multi-touch systems
JP2015052861A (en) * 2013-09-06 2015-03-19 三菱鉛筆株式会社 Film for touch panel
JP2015056025A (en) * 2013-09-12 2015-03-23 三菱鉛筆株式会社 Cover material for touch panel, and touch panel using the same
US9292140B2 (en) * 2013-09-26 2016-03-22 HengHao Technology Co. LTD. Touch panel
US20150085201A1 (en) * 2013-09-26 2015-03-26 Henghao Technology Co. Ltd Touch panel
TWI569196B (en) * 2014-12-05 2017-02-01 義隆電子股份有限公司 Capacitive touch device and object identifying method for the capacitive touch device
WO2017003608A1 (en) * 2015-06-27 2017-01-05 Intel Corporation Single stylus for use with multiple inking technologies
US10203786B1 (en) * 2015-12-09 2019-02-12 Amazon Technologies, Inc. Touch enabled user device with unpowered display
US10444927B2 (en) 2016-11-04 2019-10-15 Microsoft Technology Licensing, Llc Stylus hover and position communication protocol
DE102018206140A1 (en) * 2018-04-20 2019-10-24 Bayerische Motoren Werke Aktiengesellschaft Cover element, system and device

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US8089470B1 (en) 2012-01-03
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WO2000023873A9 (en) 2000-09-14

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