The invention relates to a fingerprint sensing apparatus.
As biometric recognition technologies have gradually become mature, many different biometric characteristics are applied to recognize identities of users. Due to the good recognition rate and accuracy, fingerprint recognition technologies are applied in the most extensive manner, wherein optical fingerprint recognition has advantages in cost and thus is the mainstream of the fingerprint recognition technologies at present.
The principle of the existing optical fingerprint recognition technology is to project light by a light source and transmit the light to a fingerprint by a light guide device, the fingerprint on a finger reflects the light to again transmit the light back to a sensor by the light guide device, and the sensor then senses patterns of the fingerprint according to the reflected light and compares the patterns with fingerprint images stored in the system, so as to achieve the recognition function.
However, the existing optical fingerprint recognition technology is still unable to achieve good image contrast, fingerprint image brightness, and fingerprint recognition rate while the volume is relatively thin. Therefore, how to solve the above problems has become one of the goals that people in the art endeavor to accomplish.
In view of the above, the invention provides a fingerprint sensing apparatus which may have good optical quality with a relatively thin volume.
According to an embodiment of the invention, a fingerprint sensing apparatus which is adapted to sense a fingerprint of a user and includes an image sensor, a light source, and a light guide plate is provided. The image sensor is disposed at a first side of the light guide plate, and the light source is disposed at a second side of the light guide plate. The first side is opposite to the second side. The light guide plate includes a plurality of optical fiber devices, each of which includes a fingerprint end adjacent to the fingerprint and a sensing end adjacent to the image sensor. Cross-sectional areas of fiber cores of the optical fiber devices decrease from the fingerprint end to the sensing end.
In the fingerprint sensing apparatus provided in the embodiments of the invention, a cross-sectional area of the fiber core of the optical fiber devices in the light guide plate decreases from the fingerprint end to the sensing end, and therefore light beams emitted from the sensing end are concentrated to a greater extent; accordingly, fingerprint images sensed by the image sensor are of good quality. In addition, the fingerprint sensing apparatus occupies a relatively small volume, which complies with the current trend of miniaturization of electronic apparatuses.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to exemplary embodiments of the disclosure, and examples of the exemplary embodiments are illustrated in the accompanying drawings. Whenever possible, the same reference numerals are used in the drawings and descriptions to indicate the same or similar parts.
Please refer to
The image sensor 110 is an electronic device which may convert an optical signal into an electrical signal, thereby converting an image beam coming from an object into image data. In this embodiment, the type of the image sensor 110 is, for instance, a thin film transistor image sensor or other suitable image sensors, and the invention is not limited to what is described herein. The image sensor 110 is disposed at a first side S1 (e.g., a lower side) of the light guide plate 130.
The light source 120 is an optoelectronic device capable of emitting light beams. In this embodiment, the light source 120 may be a display panel. In other embodiments, the light source 120 may also be a light emitting diode, an organic light emitting diode, or other suitable light emitting devices, and the invention is not limited to what is described herein. The light source 120 is disposed at a second side S2 (e.g., an upper side) of the light guide plate 130, and the light source 120 is disposed between the transparent cover plate 140 and the light guide plate 130.
The light guide plate 130 is a plate-shaped device composed of a plurality of optical fiber devices 132, wherein light beams are adapted to be transmitted in the optical fiber devices 132. Please refer to
The fiber core 132a has a cross section A1 at the fingerprint end E1, a cross section A2 at the sensing end E2, and a side surface S connected to the cross sections A1 and A2, where the side surface S is, for instance, a bevel surface. A center C1 of figure of the cross section A1 of the fiber core 132a at the fingerprint end E1 is aligned to the center C2 of figure of the cross section A2 of the fiber core 132a at the sensing end E2. It can be derived from
On the other hand, the shape of a cross section of the covering part 132b at the fingerprint end E1 is a hollow square, and its width Wb1 is, for instance, 9 micrometers; that is, the cross-sectional area of the covering part 132b at the fingerprint end E1 is, for instance, 17 square micrometers. The shape of a cross section of the covering part 132b at the sensing end E2 is a hollow square, and its width Wb2 is, for instance, 7 micrometers; that is, the cross-sectional area of the covering part 132b at the fingerprint end E1 is, for instance, 13 square micrometers. It can be derived from
Besides, in the light guide plate 130, in the direction from the fingerprint end E1 to the sensing end E2, a length L of the optical fiber devices 132 falls within a range of 4 micrometers to 10 micrometers, but the invention is not limited to what is described herein.
The transparent cover plate 140 is an optical device that allows the light beam to pass through, and a material of the transparent cover plate 140 is glass, for instance; additionally, the transparent cover plate 140 provides the above-mentioned function of protecting the devices. The transparent cover plate 140 is disposed at the second side S2 of the light guide plate 130.
Optical effects achieved in this embodiment will be explained in detail in the following paragraphs.
When a finger OB of a user touches the transparent cover plate 140, the light source 120 emits a light beam IB, the light beam D3 passes through the transparent cover plate 140 and is transmitted to the fingerprint on the finger OB, and the fingerprint reflects the light beam D3 to form a reflected light beam RB, wherein the reflected light beam RB has graphical information of the fingerprint. The reflected light beam RB then enters the fiber cores 132a of the optical fiber devices 132 from the fingerprint end E1, a total reflection of the reflected light beam RB is performed once or multiple times in the fiber cores 132a, and the reflected light beam RB leaves the fiber cores 132a from the sensing end E2, so to be transmitted to the image sensor 110. After the image sensor 110 receives the reflected light beam RB, the image sensor 110 converts the light signal into an electrical signal to sense patterns of the fingerprint and compare the patterns with fingerprint images stored in the system to achieve the recognition function.
Differences between the optical fiber devices 132′ provided in the comparative embodiment and the optical fiber devices 132 provided in this embodiment are specifically described, and the main difference lies in that the optical fiber devices 132′ include fiber cores 132a′ and covering parts 132b ‘, as shown in
Please refer to
It is worth mentioning that if a stray light beam not coming from the finger OB is transmitted into the fiber core 132a, the side surface S of the fiber core 132a is a bevel surface, and thus the stray light beam may be reflected by the side surface and emitted out of the optical fiber device 132 from the fingerprint end E1, which may reduce an optical cross talk phenomenon of the stray light beam. As such, the image contrast of the fingerprint sensed by the image sensor 110 is good, and thereby the fingerprint recognition rate is further improved.
Please refer to
It is worth mentioning that as long as the cross-sectional area of the fiber core meets the condition of decreasing from the fingerprint end E1 to the sensing end E2, it falls within the scope of the invention, and the invention is not limited to what is described herein.
To sum up, in the fingerprint sensing apparatus provided in the embodiments of the invention, the cross-sectional areas of the fiber cores of the optical fiber devices in the light guide plate decrease from the fingerprint end to the sensing end, and therefore the light beams emitted from the sensing end are concentrated to a greater extent; accordingly, the fingerprint images sensed by the image sensor are of good quality. In addition, the fingerprint sensing apparatus occupies a relatively small volume, which complies with the current trend of miniaturization of electronic apparatuses. In addition, because the side surfaces of the fiber cores are the bevel surfaces, when the stray light beam enters the fiber cores, the stray light beam may be reflected on the bevel surfaces multiple times and emitted from the fingerprint end, which prevents the image sensor at the sensing end from receiving the stray light beam. As a result, the fingerprint sensing apparatus has a good image contrast.
Finally, it should be explained that the above embodiments merely serve to explain the technical solutions of the invention and are not construed as limitations to the invention. Although the invention has been explained in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that modifications may be made to the technical solutions described in the foregoing embodiments, or equivalent replacements of some or all of the technical features may be done; however, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions provided in the embodiments of the invention.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/083456 | 4/7/2020 | WO |
Number | Date | Country | |
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62887687 | Aug 2019 | US |