The invention relates to a medium discrimination apparatus, and more particularly to a medium discrimination apparatus and a discrimination method thereof, capable of minimizing noise to improve medium discriminating capability.
In the present specification, the term of media represents, for example, paper moneys, checks, tickets, and certificates. The media have a thinner thickness than a width or a length thereof, and exist in various forms. In the present specification, the paper moneys will be described as an example of the media.
In general, a paper money discrimination apparatus is applied to an automatic teller machine, a medium handler, or an automatic vending machine to recognize a magnetic component, images, watermarks, fluorescent inks, and a variety of figures and characters printed on a paper money and to find out the type of the paper money and discriminate if the paper money is genuine or counterfeit.
Referring to
In this case, sensing surfaces of the first and second magnetic sensors 12a and 12b are directed downward to be exposed, and provided perpendicularly to a transfer direction of the paper money 30 so that the magnetic component printed on the paper money 30 can be detected.
The first and second magnetic sensors 12a and 12b are magnetoresistance sensors, that is, magnetic pattern recognition sensors.
Upper paper money feeding rollers 14a and 14b are provided in line with the first and second magnetic sensors 12a and 12b, and driven corresponding to lower paper money feeding rollers 24a and 24b to transfer the introduced paper money 30.
The lower paper money feeding rollers 24a and 24b to transfer the paper money 30 according to the rotation of a paper money feeding roller shaft 20, and sensor contact rollers 26a and 26b to make a magnetic component printed on the paper money 30 be more exactly detected by lifting the paper money 30, which is moving, to the first and second magnetic sensors 12a and 12b, so that the paper money 30 approximates the first and second magnetic sensors 12a and 12b, are provided in a lower bracket 20.
The rollers 24a, 24b, 26a, and 26b are arranged at a predetermined interval along the paper money feeding roller shaft 22 in such a manner that the lower paper money feeding rollers 24a and 24b face the upper paper money feeding rollers 14a and 14b, and the sensor contact rollers 26a and 26b face the first and second magnetic sensors 12a and 12b.
Lower support springs 28a and 28b are provided at both ends of the paper money feeding roller shaft 22 to continuously push upward the paper money feeding roller shaft 22. Accordingly, spaces between the rollers 24a, 24b, 26a, and 26b and to the upper paper money feeding rollers 14a and 14b and the first and second magnetic sensors 12a and 12b respectively facing the rollers 24a, 24b, 26a, and 26b can be maintained closely. In this case, bearers 29a and 29b are provided to prevent the rollers 24a, 24b, 26a, and 26b from being excessively close to the upper paper money feeding rollers 14a and 14b and the first and second magnetic sensors 12a and 12b respectively due to the elasticity of the lower support springs 28a and 28b.
Meanwhile, although not shown, the paper money discrimination apparatus comprises Amp & Band-pass Filters, which receive sensed analog signals for the magnetic component from the first and second magnetic sensors 12a and 12b, respectively, amplify the analog signals to signals having stable intensities, and filter noises amplified together with the amplification of the analog signals, an AD (Analog to Digital) converter, which coverts the two filtered analog signals into digital signals, and an MCU (Micro-Controller Unit) which reads the two converted digital signals to discriminate if the introduced paper money 30 is genuine or counterfeit.
In the paper money discrimination apparatus having the above structure, a paper money can be in closely contact with magnetic sensors by a roller that is elastically supported, so that the performance to discriminate between paper moneys can be improved.
The magnetic component detected by the first and second magnetic sensors 12a and 12b contains a noise component. The noise component is generated because the first and second magnetic sensors 12a and 12b are affected by a magnetic field generated due to the operation of an actuator (e.g., a motor or a solenoid) provided in the vicinity of the first and second magnetic sensors 12a and 12b. In addition, the noise component is generated because switching noise of an internal circuit (i.e., a power circuit) is introduced into the first and second magnetic sensors 12a and 12b.
As shown in
However, the paper money discrimination apparatus has the following problems.
Since the noise B has a relatively large magnetic intensity value, when the MCU reads the magnetic component A of the paper money 30 to discriminate if the paper money is genuine or counterfeit, the noise B degrades the ability of the MCU to discriminate if the paper money is genuine or counterfeit.
In addition, since the MCU receives two digital signals (see {circle around (a)} and {circle around (b)}) from the AD converter and performs a predetermined operation with respect to both of the two digital signals, time to discriminate if the paper money is genuine or counterfeit is required as much as that of the operation.
Further, to prevent the noise B from being introduced from the internal circuit or the outside, a high-price magnetic shielding layer and non-magnetic material may be used. In this case, costs are additionally caused by the magnetic shielding layer and the non-magnetic material, so that the maintenance for the paper money discrimination apparatus may be difficult.
Accordingly, the present invention has been made to solve the above-mentioned problems occurring in the prior art. An object of the present invention is to provide a medium discrimination apparatus and a discrimination method thereof, capable of minimizing noise when a paper money is introduced, thereby improving the paper money discriminating ability.
Another object of the present invention is to reduce the discrimination time for the papery money.
According to one aspect of the present invention, a medium discrimination apparatus comprises a plurality of magnetic sensors comprising a first magnetic sensor to sense a magnetic component printed on a specific position of an introduced medium and having a form of an analog signal containing a noise, and a second magnetic sensor to sense a noise which is caused when the medium is transferred and has a form of an analog signal, a differential analog/digital converter to perform a subtraction operation for the noises sensed by the first and second magnetic sensors and convert result from the subtraction operation into one digital signal, and a controller to discriminate if the introduced medium is genuine or counterfeit according to the converted digital signal.
The medium discrimination apparatus further comprises amplifier/band-pass filter parts corresponding to the magnetic sensors in one-to-one correspondence, amplifying the magnetic component of the analog signals which are sensed by the magnetic sensors, and filtering the noises, and a storage part to store reference values used when genuineness of the medium is discriminated.
The reference value is an intensity value of the magnetic component printed on the specific position of the medium.
Each magnetic sensor is a magnetic pattern recognition sensor.
According to another aspect of the present invention, a medium discrimination method includes introducing a medium, sensing by at least two magnetic sensors a magnetic component, which is printed on a specific position of the introduced medium and has a form of an analog signal containing a noise, and a noise which is caused when the medium is transferred and has a form of an analog signal, subtracting the noises of the analog signals by canceling the noise contained in the magnetic component of the analog signal, converting the subtracted noises of the analog signals into a digital signal, and determining if the introduced medium is genuine or counterfeit based on the digital signal.
The noise has intensity lower than intensity of the magnetic component according to the subtraction operation.
According to another aspect of the present invention, a medium discrimination apparatus comprises a plurality of magnetic sensors to sense a magnetic component printed on a specific position of an introduced medium, a subtraction part to perform a subtraction operation with respect to magnetic component signals sensed by and output from the magnetic sensors, and a medium discrimination part to receive an output signal obtained from the subtraction operation by the subtraction part to discriminate if the medium is genuine or counterfeit.
The magnetic sensors comprise first and second magnetic sensors.
The subtraction part comprises a first interface part to receive a first magnetic component signal sensed by and output from the first magnetic sensor, a second interface part to receive a second magnetic component signal sensed by and output from the second magnetic sensor and, a differential circuit part to perform the subtraction operation of each other with respect to the first and second magnetic component signals.
According to still another aspect of the present invention, a medium discrimination apparatus comprises at least one first sensor configured to be in contact with a medium and detecting a magnetic component signal of the medium, a second sensor configured not to be in contact with the medium and detecting a noise signal generated when the medium is transferred, a subtraction/extraction part to perform a subtraction operation with respect to a noise signal contained in the magnetic component signal detected by the first sensor and the noise signal detected by the second sensor to extract the magnetic component signal, an analog/digital converter to convert the extracted signal into a digital signal, and a controller to discriminate if the medium is genuine or counterfeit based on the digital signal.
The medium discrimination apparatus further comprises a plurality of amplifying parts to amplify the detected signals by the first and second sensors. All of the amplifying parts have amplification factors identical to each other.
The first and second sensors are magnetoresistance sensors.
According to still yet another aspect of the present invention, a medium discrimination method comprises detecting a noise signal generated when a medium is transferred and a magnetic component signal printed on the medium, extracting the magnetic component signal by canceling out the noise signal, and determining if the medium is genuine or counterfeit based on the extracted magnetic component signal.
The magnetic component signal contains the noise signal generated when the medium is transferred. The extracting the magnetic component signal extracts the magnetic component signal by performing subtraction operation of the noise signal which is generated when the medium is transferred and the noise signal contained in the magnetic component signal.
The magnetic component signal is detected by a sensor being in contact with the medium, and the noise signal is detected by a sensor not being in contact with the medium.
The medium discrimination method further comprises amplifying the detected signals, and amplifying the extracted magnetic component signal, wherein the detected signals are amplified at amplification factors identical to each other.
As described above, the medium discrimination apparatus and discrimination method thereof according to the present invention have the following effects.
When a paper money is introduced into the medium discrimination apparatus, signals for a magnetic component printed on the paper money are combined into one signal through a subtraction function, so that a noise introduced from an internal circuit or the outside can be minimized. Accordingly, the ability of discriminating between media can be improved, and time taken to discriminate between the media can be reduced.
In addition, low-price material can be used in the medium discrimination apparatus and an external housing thereof instead of metallic material, so that the cost reduction and the maintenance can be easily achieved.
Hereinafter, a medium discrimination apparatus and a control method thereof according to an exemplary embodiment of the present invention will be described in detail with reference to accompanying drawings.
Referring to
The first and second magnetic sensors 110a and 110b sense the introduced paper money at a preset interval (e.g., 1 mm or 2 mm) to obtain an analog waveform based on the sensed magnetic component. The preset interval may be decreased or increased if necessary.
The first and second magnetic sensors 12a and 12b are magnetoresistance sensors, preferably, magnetic pattern recognition sensors. The number of the magnetic sensors is not limited to two. Three or more magnetic sensors may be provided, and installed at the optimal positions according to the printed magnetic component, so that the paper money discrimination ability of the paper money discrimination apparatus 100 can be improved.
As the magnetic component is repeatedly used and time lapses, the intensity of the magnetic component is degraded. Accordingly, first and second Amp & Band-pass Filters 120a and 120b are provided to amplify the magnetic component and filter noise amplified according to the amplification of the magnetic component.
The first and second magnetic sensors 110a and 110b correspond to the first and second Amp & Band-pass filters 120a and 120b in one-to-one correspondence.
A differential analog/digital converter (AD converter) 130 is provided to perform a subtraction operation for the magnetic component filtered by the first and second Amp & Band-pass filters 120a and 120b and convert the magnetic component performed the subtraction operation into a digital signal. According to the subtraction operation, a magnetic component of an analog signal transmitted from the second Amp & Band-pass filter 120b is subtracted from a magnetic component of the analog signal transmitted from the first Amp & Band-pass filter 120a. Surely, the magnetic component of the analog signal transmitted from the first Amp & Band-pass filter 120a can be subtracted from the magnetic component of the analog signal transmitted from the second Amp & Band-pass filter 120b. Accordingly, the two analog signals are combined into one analog signal in which most noise is removed. The AD converter 130 quantizes the combined analog signal into the digital signal.
A controller 140 is provided to receive and read the digital signal. The controller 140 compares one received digital signal with reference values for genuine paper money to discriminate if the paper money is genuine or counterfeit.
A storage part 150 is provided to store the reference values for the genuine paper money such that the controller 140 can discriminate if the introduced paper money is genuine or counterfeit based on the reference values. The reference values comprise a position value of the magnetic component printed on the paper money and the intensity value of the magnetic component corresponding to the position value.
Hereinafter, the medium discrimination method according to the first embodiment of the present invention having the above structure will be described in detail with reference to
Referring to
If the introduction of the paper money is detected, the controller 140 transmits a control signal to the first and second magnetic sensors 110a and 110b.
When the paper money moves, the first and second magnetic sensors 110 and 110b sense a magnetic component printed on a specific position of the paper money according to the control signal (step S102). In other words, the first and second magnetic sensors 110a and 110b sense the magnetic component of the paper money at a preset interval, for example, at an interval of 1 mm.
The first and second magnetic sensors 110a and 110b transmit the magnetic component sensed at the preset interval in the form of an analog signal to the first and second Amp & Band-pass Filters 120a and 120b respectively.
In step S104, the first and second Amp & Band-pass Filters 120a and 120b amplify each analog signal into an analog signal having great power and filter a noise amplified with the analog signal (step S104). The first and second Amp & Band-pass Filters 120a and 120b transmit the amplified analog signals to the differential AD converter 130.
The differential AD converter 130 receives two filtered analog signals to perform a subtraction operation with respect to the two filtered analog signals. In other words, the differential AD converter 130 subtracts a magnetic component of an analog signal transmitted from the second Amp & Band-pass filter 120b from a magnetic component of an analog signal transmitted from the first Amp & Band-pass filter 120a. Accordingly, the two analog signals are combined into one analog signal in which most noise is removed.
Then, the differential AD converter 130 quantizes the combined analog signal to a digital signal and transmits the digital signal to the controller 140 (step S106). For example, In
Therefore, the controller 140 receives the digital signal and accesses the storage part 150 to read and discriminate the digital signal (step S108). In other words, the controller 140 compares the magnetic component of the paper money contained in the digital signal with the reference values for the genuine paper money stored in the storage part 150 to discriminate if the introduced paper money is genuine. Such a determination can be achieved by determining if a magnetic intensity value at a position, where the magnetic component printed on the paper money is sensed, is identical to the reference values for the genuine paper money. For example, the table showing the reference values of the genuine paper money is illustrated in
As described above, since the controller 140 performs an operation for only one digital signal received therein from the AD converter 130 to discriminate if the paper money is genuine or counterfeit, the time taken to discriminate between the genuineness and counterfeit of the paper money can be reduced.
Meanwhile,
Referring to
The number of the magnetic sensors is not limited to two. Three magnetic sensors may be provided, and installed at the optimal positions according to the printed magnetic component, thereby more improving the paper money discriminating ability of the paper money by the paper money discrimination apparatus.
A subtraction part 220 is provided to receive signals for the sensed magnetic components and perform a subtraction operation for the signals. The subtraction part 220 comprises a first interface part 210a to receive a first magnetic component signal sensed by the first magnetic sensor 210a, a second interface part 222b to receive a second magnetic component signal sensed by the second magnetic sensor 210b, and a differential circuit part 224 to perform the subtraction operation for the first and second magnetic component signals.
A paper money discrimination part 230 is provided to receive an output signal resulting from being performed the subtraction operation by the differential circuit part 224 and discriminate if the introduced paper money is genuine or counterfeit by using the output signal.
Hereinafter, the operating procedure of the medium discrimination apparatus having the above structure will be described.
When the paper money is introduced through a paper money inlet and transferred into the paper money discrimination apparatus 200, the first and second magnetic sensors 210a and 210b sense the magnetic component printed on the specific position of the paper money. In other words, the first and second magnetic sensors 210a and 210b sense the magnetic component of the paper money at a preset interval (e.g., about 1 mm).
After the first and second magnetic component signals sensed by the first and second magnetic sensors 210a and 210b are transferred to the differential circuit part 224 through the first and second interface parts 222a and 222b, the differential circuit part 224 perform a subtraction operation with respect to the first and second magnetic component signals.
Then, the paper money discrimination part 230 receives the output signal resulting from being performed the subtraction operation by the differential circuit part 224 and discriminates if the paper money is genuine or counterfeit.
As described above, according to the embodiment of the present invention, when determining if the paper money is genuine or counterfeit, the subtraction function is used to minimize noise, so that the ability of discriminating between media can be improved. Accordingly, time taken to discriminate between the genuineness and counterfeit of the paper money can be reduced.
Referring to
To reduce the first noise, a third magnetic sensor 320 is provided to detect noise having the same component as that of the first noise. Hereinafter, noise detected by the third magnetic sensor 320 is referred to as second noise. The third magnetic sensor 320 is placed at a position not to be in contact with the introduced paper money. Therefore, the third magnetic sensor 320 detects only the second noise and does not detect the magnetic component printed on the paper money.
All of the first to third magnetic sensors 310a, 310b, and 320 are magnetoresistance sensors having a resistance component varying according to the magnetic component.
First to third amplifying circuit parts 330a, 330b, and 340 are provided to amplify signals detected by the first to third magnetic sensors 310a, 310b, and 320 to predetermined levels. The first to third amplifying circuit parts 330a, 330b, and 340 have the same amplification factor. The first amplifying circuit part 330a comprises first and second amplifying parts 332a and 334a. The second amplifying circuit part 330b comprises first and second amplifying parts 332b and 334b. The third amplifying circuit part 340 comprises first and second amplifying parts 342 and 344. The structure is because the magnetic component of the paper money may be degraded due to the repeated and long use of the paper money. Therefore, preferably, the first to third amplifying circuit parts 330a, 330b, and 340 must have the amplification factor enough to extract the magnetic component. If the first to third magnetic sensors 310a, 310b, and 320 sufficiently extract the magnetic component from the sensed signals, the first to third amplifying circuit parts 330a, 330b, and 340 may not be required.
A differential amplifying circuit part 350 is provided to subtract the first and second noise from signals amplified by the first to third amplifying circuit parts 330a, 330b, and 340 and amplify result signals so that only the magnetic component detected by the fist and second magnetic sensors 310a and 310b can be extracted. The differential amplifying circuit part 350 comprises a first differential amplifying part 352a, which performs the subtraction operation with respect to the signals detected by the first and third magnetic sensors 310a and 320 and amplifies result signals, and a second differential amplifying part 352b which performs the subtraction operation with respect to signals detected by the second and third magnetic sensors 310b and 320 and amplifies result signals.
An analog/digital converter (AD converter) 360 is provided to convert the subtracted/amplified signals into digital signals.
A controller 370 is provided to discriminate if the paper money is genuine or counterfeit based on the converted digital signals.
A storage part 380 is provided to store reference values for a genuine paper money.
The internal circuits of the first and third amplifying parts 330a and 340 and the first differential amplifying part 352a are shown in
Hereinafter, the medium discrimination method according to the third embodiment of the present invention having the above structure will be described in detail with reference to
Referring to
After the detection has been completed, the first to third amplifying circuit parts 330a, 330b, and 340 amplify the signals detected by the first to third magnetic sensors 310a, 310b, and 320 to predetermined levels (step S204).
In step S206, the first differential amplifying part 352a subtracts the signals detected by the first and third magnetic sensors 310a and 320 from the signals amplified by the first and third amplifying circuit parts 330a and 340, and amplifies the result signal so that only the magnetic component detected by the first magnetic sensor 310a can be extracted. In other words, after only the magnetic component detected by the first magnetic sensor 310a is extracted by canceling out the first noise signal from the second noise signal, the magnetic component is amplified again. Simultaneously, similarly to the first differential amplifying part 330a, the second differential amplifying part 352b perform a subtraction operation for the signals detected by the second and third magnetic sensors 310b and 320 and amplify the signals.
Then, the AD converter 360 converts the signals subtracted/amplified by the first and second differential amplifying parts 352a and 352b, into digital signals (step S208).
In addition, the controller 370 discriminates if the introduced paper money is genuine or counterfeit based on the converted digital signals (step S210). In other words, the controller 370 reads a magnetic component signal of the paper money contained in the digital signal and compares the magnetic component signal with reference values for genuine paper money stored in the storage part 380, thereby determining if the introduced paper money is genuine or counterfeit. For example,
For example, if an intensity value of signal, which is detected by the first magnetic sensors 310a, is 30 and an intensity value of signal, which is detected by the second magnetic sensors 310b is 0 at a paper money position value of 50 mm, the paper money is discriminated as genuine. In contrast, if an intensity value of signal, which is detected by the first magnetic sensors 310a, is −50 or an intensity value of signal, which is detected by the second magnetic sensors 310b is −30 at a paper money position value of 54 mm, the paper money is discriminated as counterfeit. Meanwhile, when the genuineness or counterfeit of the paper money is discriminated, the detected signal intensity value is regarded as identical to the reference value, if the detected magnetic component intensity value is in the range of a predetermined allowance so as to take into consideration the damage of the paper money or the damage of the magnetic component at the specific position. Although the reference values for genuine paper money have been described with respect to one kind of paper money for the purpose of explanation, the storage part 150 may store reference values for all kinds of paper moneys and all introduction postures of the paper moneys (e.g., the papery money may be introduced from the front or rear of the paper money and may be introduced in a normal state or a turn-over state).
As described above, according to the embodiment of the present invention, when determining if the paper money is genuine or counterfeit, various noises introduced into the paper money discrimination apparatus are removed, so that the ability of discriminating between media can be improved.
Although the exemplary embodiments of the present invention have been described, it is understood that the present invention should not be limited to these exemplary embodiments but various changes and modifications can be made by one ordinary skilled in the art within the spirit and scope of the present invention as hereinafter claimed.
In the above embodiments, although two magnetic sensors are provided to detect a magnetic component, at least one magnetic sensor can be provided at the optimal position. In addition, the amplifying circuit parts and the differential amplifying circuit parts are not limited to the structure of accompanying drawings, but may be configured by using other circuit elements.
Number | Date | Country | Kind |
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10-2008-0060462 | Jun 2008 | KR | national |
10-2008-0073713 | Jul 2008 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR2009/003410 | 6/24/2009 | WO | 00 | 12/15/2010 |