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Title:
METHOD AND APPARATUS FOR CHECKING THE AUTHENTICITY OF DOCUMENTS AND DOCUMENTS USED THEREFOR
Document Type and Number:
WIPO Patent Application WO/1987/001845
Kind Code:
A1
Abstract:
A method and an apparatus for checking the authenticity of documents, such as banknotes or credit-cards. The documents comprise a number of randomly distributed conductive fibres of which the distribution is scanned by microwaves and the response is transformed into a digital coded signal. A digital mark on the document, which is representative for the distribution of an individual document, is read off, transcoded, and compared with said coded signal for producing an approval signal. The use of a microwave scanning system in conjunction with documents having a random distribution of suitable fibres ensures a great repetitivity and security of the system.

Inventors:
SAMYN JOHAN (BE)
Application Number:
PCT/BE1986/000028
Publication Date:
March 26, 1987
Filing Date:
September 09, 1986
Export Citation:
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Assignee:
BEKAERT SA NV (BE)
International Classes:
D21H21/48; D21H27/00; G07D7/00; G06K7/00; G06K17/00; G06K19/10; G07D7/10; G07D7/20; G07F7/08; (IPC1-7): G07D7/00; D21H5/10
Foreign References:
US4218674A1980-08-19
FR2455773A11980-11-28
US3313941A1967-04-11
DE2417564A11975-10-23
FR2531248A11984-02-03
FR2531247A11984-02-03
EP0064102A21982-11-10
GB2136180A1984-09-12
GB2084929A1982-04-21
FR2177768A11973-11-09
Other References:
See also references of EP 0236365A1
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Claims:
13 -CLAIMS
1. : A method of checking the authenticity of documents, made of a nonconducting material and having a physical characteristic of which the value randomly changes over a number of subareas of a checking area, and further comprising a digi tal mark which is characteristic for the distribution of said value over said subareas, the method comprising the scanning of said checkingarea of such document for detecting the distribution of said value over said subareas, producing a digi tal scanning signal which is characteristic for such distribution as scanned, reading off said digi tal mark on said document and producing a digital marksignal which is characteristic for the digi tal mark as read off, and comparing said scanning signal with said mark signal , characterized by the use of documents comprising a number of particles with electromagnetic properties which are sensibly different from those of said nonconducting material and which are randomly distributed in at least said checking area, and that said scanning Is conducted by means of a microwave bundle that impinges on said checkingarea and produces a response microwave bundle and by measuring this response bundle.
2. A method according to claim 1 , characterized by the use of documents with particles in the form of electrical conducting fibres .
3. A method according to claim 2, characterized by the use of documents with particles in the form of metallic fibres of a length ranging from 0.5 to 15 mm and a diameter ranging from 2 to 25 μm. 14 .
4. A method according to claim 3 , characterized by the use of documents with particles in the form of stainless steel fibres which are randomly distributed over said 2 checking area in a density of 1 g/m .
5. A method according to any one of claims 1 to 4, in which the response microwave bundle is the bundle after traversing said document.
6. A method according to any one of claims 1 to 5, in which the scanning of the document is conducted over a rectilinear strip part of said document, by producing a rectilinear relative movement between the microwave bundle and the document, so that the bundle sweeps over subsequent „ sub areas of said document .
7. A method according to claim 6, in which a digital mark is used in the form of a magnetic flux pattern in a magnetic strip of said document.
8. A method according to any one of claims 1 to 7, in which a document is used in the form of a rectangular card of a length ranging from 8 to 12 cm and a width ranging from 4 to 8 cm, having a lengthwise running magnetic strip.
9. An apparatus adapted for checking the authenticity of documents made of a nonconducting material comprising a number of particles with electromagnetic properties which are sensibly different from those of said nonconducting material and which are randomly distributed in at least a checking area of such document, the documents being provided wi th a digi tal mark, the apparatus comprising 25 a checking station adapted for receiving such document, means for scanning the checking area of such document for detecting the distribution of such particles over a number of subareas of said checking area and for producing a digi tal scanningsignal which is characteristic for such distribution as scanned, means for producing a second digi al signal and for comparing the latter wi th said scanning signal , characterized by the fact that said scanning means comprise an emi tter of a microwave bundle directed towards the checking area of the document when in said checking station for producing a response microwave bundle, and a receiver of the response bundle, and that the apparatus further comprises means for reading off said digi tal mark from said document when in said checkingstation, the output of the latter means being connected to the input of said means for producing said second digi tal signal .
10. An apparatus according to claim 9, in which said checking station is in the form of a transverse passage for the document through a waveguide between said emi tter and receiver, and that said scanning means comprise means for producing a rectilinear relative movement of the document through said passage.
11. 22An apparatus according to any one of claims 9 or 10, in which said readingoff means comprise a readinghead of a magnetic flux pattern in a magnetic strip.
12. A document made of a nonconducting material comprising a number of particles, randomly distributed in an area of said document and made of a material wi th electromagnetic properties , different from those of said nonconducting material , the document being provided wi th a digital mark which is characteristic for the distribution of the particles over a number of subareas of said area, characterized by the fact that said particles are electrical conducting fibres.
13. A document according to claim 12, in which said particles are metallic fibres of a length ranging from 0.5 to 15 mm and a diameter ranging from 2 to 25 μm.
14. A document according to claim 13, in which the particles are stainless steel fibres which are randomly distributed over said nonconducting material of said area 2 in a density of 1 g/m .
15. A document according to any one of claims 12 to 14, in which said digital mark is in the form of a magnetic flux pattern in a magnetic strip of said document.
16. A document according to any one of claims 12 to 15, in the form of a rectangular card of a length ranging from 8 to 12 cm and a width ranging from 4 to 8 cm, and having a lengthwise running magnetic strip.
Description:
METHOD AND APPARATUS FOR CHECKING THE AUTHENTICITY OF DOCUMENTS AND DOCUMENTS USED THEREFOR

The invention relates to a method of checking the authentici ty of documents made of a non-conducting material , such as paper or plastic, and having a physical characteristic of which the value randomly changes over a number of sub-areas of a checking area, each of said documents further comprising a digi tal mark which is characteristic for the distribution of said value over said sub -areas . Such documents are e.g. banknotes, passports, credit cards, bonds or other security papers . In some cases, the packing foil in which a product is enveloped, is also to consider as a document of which the authenticity must be checked .

It is known to check the authentici ty of such documents by scanning the checking-area of such documents for detecting the distribution of said value over said sub-areas , producing a digi tal scanning signal which is characteristic for such distribution as scanned, reading off said digital mark on said document and producing a digi tal mark-signal which is characteristic for the digi tal mark as read off, and comparing said scanning-signal wl th said mark-signal . In such methods the scanning Is conducted by photo-electric means for detecting the distribution of the darkness of the surface of the document. It is also known per se to scan by means of a magnetic head for detecting the distribution of magnetic particles in the document.

An adapted scanning method, in order to ensure a maximum of securi ty, has to combine an accurate repetitivi ty and a high resolution, i .e . capabili ty to follow sharp variations over short distances . When a scanning system

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cannot follow such sharp variations, i t will only be capable to distinguish two coarsely different patterns from each other, and will not be capable to distinguish two slightly different documents from each other. As a resul t, the documents are less individualized and falsification is more easy .

Besides a high resolution, an accurate repetitivi ty of the scanning signal is also important. Because of magnetic prehistory or disturbing of magnetic fields or deformations of the document, the repetitivi ty of a magnetic scanning system is not ensured, whereas loss of brightness or colour or other damage of the document will disturb the repetitivity of a photo-electric scanning system. However, if the scanning system is not sufficiently repeti tive, the risk that an authentic document would produce a slightly different scanning-signal and be identified as a falsification is not negligible. In these circumstances it is not possible to submit the scanning-signal to a severe cri terion of identi ty wi th a given signal , and it has no sense to improve the resolution as long as the repetitivi ty is not also improved, and inversely.

It is an object of the present invention to provide for this checking method a scanning method in which a good resolution is combined with a very high repeti tivi ty, in such a way that the scanning-signal can be submi tted to very severe criteria for the approval of the document, despite of any wear or limited damage of the document.

The method according to the invention is characterized by the fact that documents are used comprising a number of particles with electromagnetic properties which are sensibly

different from those of said non-conducting material of the document and which are randomly distributed in at least the checking area of the document, and that the scanning is conducted by means of a microwave bundle that impinges on said checking-area and by measuring the response microwave bundl .

Although a microwave bundle leaving a waveguide has a thickness dimension of at least half the wavelength, i.e. in the millimeter to centimeter range, it has surprisingly be found that the scanning allows sufficient resolution to divide the checking area in sub-areas of the order of 0.25 mm, and that the measured values for each sub-area are repetitive in the order of 2 X of the maximum obtainable value. As a consequence, a checking area in the form of e.g. a rectilinear strip of 8 cm length allows £he subdivision into 320 sub-areas , where the measurable value can be transformed into 1 out of 64 possible repetitive values .

320 This means 64 different possible combinations for the digital mark on the document. It is consequently very difficult for a falsificator to make a document with its randomly distributed particles and to affix different digital marks the one after the other and to try them out in a checking apparatus until he finds the right mark. On the other hand, if a falsificator tries to imitate an existing document, he may easily read out the mark from the authentic document and affix it on the falsified document, but he will not find a document with precisely the same distribution of particles on which he could affix the mark and which the scanner would not be able to distinguish as having a different distribution.

The particles used in the material of the document shall have different electromagnetic properties than the material of the document. This means a different dielectric constant ε , or magnetic permeability μ or resistivi ty p or other value influencing the microwave so that tήe response microwave bundle, i .e. the reflected bundle or the bundle which has traversed the document, has undergone a changement, e.g. in amplitude or polarization, wi th respect to the bundle that Impinges on the document, so that this changement can be measured. The particles will preferably be in the form of electrical conducting fibres, and more specifically in the form of metallic fibres, distributed over said checking area in a proportion of less than 1

2 g/m . The length of tήe fibres will preferably be in the range of 0.5 to IS mm and their diameter between 2 and 25 μm. Fibres shorter than 0.5 mm are less efficient and longer than 25 mm are more difficul t to mix into the paper or plastic or other non-conducting material during i ts manufacturing. Fibres of less than 2 μπ. thickness would be well usable, but are not easy to manufacture, and If more than 25 μm thick, they would be visible and affect the aspect of the document. For non-round cross-sections , the 'diameter" means the average diameter or thickness . The fibres are preferably made of stainless steel , but can also ie made of carbon . Polymer fibres covered with a metal coating are also usable as conducting fibres .

The invention also relates to an apparatus for conducting the above process, in which the apparatus comprises a checking station adapted for receiving such document, means for scanning the checking area of such document for detecting the distribution of such particles over a number

of sub-areas of said checking area and for producing a digi tal scanning -signal which is characteristic for such distribution as scanned, means for producing a second digital signal and for comparing the latter wi h said scanning signal , which apparatus is characterized by the fact that said scanning means comprise an emitter of a microwave bundle directed towards the checking area of the document when in said checking station for producing a response microwave bundle, and a receiver of the response bundle, and that said apparatus further comprises means for reading-off said digital mark from said document when in said checking-station, the output of the latter means being connected to the input of said means for producing said second digital signal .

Preferably, the response microwave bundle which is to measure, is the bundle transmitted through the document. ' In this case, the checking station (or place where the position of the document is adapted to be checked) can be in the form of a transverse passage for the document through a waveguide between said emitter and receiver, and the scanning means comprise means for producing a rectilinear relative movement of the document through the passage. The scanning is then conducted over a rectilinear strip of the document, and the microwave bundle sweeps over subsequent sub-areas of this strip, which forms the checking area.

The digital mark is preferably in the form of a magnetic flux pattern In a magnetic strip of said document, which is read off by a magnetic reading-head. As the reading is in the form of a sequence of polarizations in one or in the other sense, and not in the form of quantities of magnetization , the danger of non-repetitivity of the reading

of this strip is much less cri tical than any magnetic scanning of the document in order to reproduce the distribution of the fibres .

The invention also relates to the documents, as described above, which are specifically adapted for the present method, among which specifically the documents having the appearance of usual credit-cards, i .e. in the form of a stiff rectangular card of a length ranging from 8 to 12 cm and a width ranging from 4 to 8 cm and having a lengthwise running magnetic strip. Such card can be made of two or more subsequent layers of plastic and/or paper material , where e .g. only one inside layer comprises the fibres .

The invention will now further be explained wi th reference to the drawings, given by way of example only,' and in which : Figure 1 is a perspective side-view of an apparatus according to the invention. Figure 2 shows a detailed transverse section of the checking-station and the microwave scanning means associated to this checking-station , as used in the apparatus of Figure 1. Figure 3 and 4 show a number of diagrams of signals, produced by the microwave receiver when checking the checking-area of a document passing through the checking-station of Figure 1 , for different combinations of fibre length, fibre thickness and fibre concentration in tΛe documents passing through the checking-station.*

For the documents to check, a paper of the size of a

, 2 banknote was used, having a weight of 80 g/m , a number of

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stainless steel fibres being embedded and randomly distributed over the whole paper. Different combinations of fibre thickness (8 μ_? or 12 \utt) , fibre length (3 mm or 5 mm) , and fibre concentration (0.05 X to 1 X) were used. The document 1 is introduced in a slot 2 between two flat guiding plates 3 and 4, and leaves tΛ apparatus at the left end of the guiding plates, as shown in figures 1 and 2. On either side of each of the stationary guiding plates 3 and 4, there are two toothed flexible endless belts (5 ' and 6' respectively 5 and 6) running in parallel with the guiding plates, the belts 5, 5 ' and 6, 6 ' being pressed respectively against each other for ensuring the transport of the document through slot 2. The flexible belts are each led around four toothed wheels 7, 8, 9, 10 ; 7' , 8' , 9 ' , 10' ; 12, 14 ; 12', 12' , 13 ' , 14' . The four toothed wheels 7' , 8 ' , 9 ' , 10' for belt 5 ' are fixed in pairs on the same rotation-axle with the four toothed wheels, respectively 11 ' , 12' , 13 ' and 14 ' , for bel t 6 ' , in order to ensure synchronism between belts 5 ' and 6 ' , and trhe same is done with the toothed wheels for belts 5 and 6. A toothed wheel 17, fixed on the axle of one of the pairs of toothed wheels for belts 5 and 6, connected with toothed wheel 18, fixed on the axle of one of the pairs of toothed wheels for belts 5 ' and 6 ' for driving the latter belts by means of an endless belt 20 which is toothed on either side, ensures the synchronism bet-ween belts 5, 6 on one hand and belts 5 ' and 6 ' on the other hand (Uheel 19 is freely rotatable around its axis) . The whole is driven by an endless belt 16, engaging with toothed wheel 15 which is fixed on the axle of wheels 8 and 12, and this endless belt 16 is driven by a motor (not shown) .

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The belts 5, 6, 5 ' , 6 ' transport the document with a constant speed along a detection apparatus 21. It is clear that many other sorts of transport means for paper documents can be designed for producing the movement along the detection apparatus. For stiff documents of small size in card form, such as credit cards, the transport means can e. g. largely be simplified by passing the card between pairs of rollers . It is also possible to have a stationary checking-station , where the microwave-beam will sweep along the document. It is sufficient to create a relative movement between the detection apparatus and the document, allowing the scanning of subsequent sub-areas of the checking area of the document.

The detection apparatus 21 (Figure 2) comprises a microwave oscillator 22, e.g. a Gunn-diode, a waveguide 23 connected to said oscillator and a microwave receiver 24, e.g. comprising e.g. a Schottky diode. As shown on Figure 2, the waveguide 23 which connects the oscillator with the receiver s directed perpendicularly through the guiding plates 3 and 4, and at the cross-point, the plates are provided with an opening or window of the same transverse dimension of the waveguide. In this way, a transverse passage for the document through the waveguide is provided and the receiver is able to measure the amplitude of the microwave after traversing the document. In order to change the microwave pattern in the waveguide and in said window, so as to obtain an optimal detection of the fibres, the waveguide 23 Is provided with a number of tuning-screws 25, 25 ' and 25". The necessity of such tuning can however, if desired, also be avoided when the receiver is provided with an isolator for preventing the waves which have entered the receiver to reflect back into the waveguide again, as well known in the art of microwaves .

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The ampli tude of the microwave after traversing the document is representative for the presence of one or more fibres . It is however also possible to put the receiver on the same side of the guiding plates as the emitter, in order to measure the radiation reflected by the fibres . The emitted microwave radiation can be polarized in one direction, e.g. in the preference direction of the fibres in the paper, if any, but can also be circularly polarized so as to be equally sensible to all fibres, Independently from their direction in the document.

Figure 3 shows 6 types of response patterns (a to f) , obtained by the receiver 24 of the apparatus according to

Figure 1 , working at a frequency of 24.15 GHz and transmi tting a wave in a TE -mode through the waveguide j. ,u

23 of the type WR42 (rectangular , 10.668 mm by 4.318 mm) for papers of different combinations of concentration, thickness and length of the fibres as mentioned above.

In Figure 3, the length and thickness of the fibres is kept constant, and the concentration is varied from 0.05 X to 1 X (percentages by weight) . In Figure 3a the concentration is so low, that the response pattern comprises a large horizontal part and this brings down the possibilities to distinguish a great number of patterns from one another. The same occurs for the high concentration of Figure 3f, where the response pattern comprises a large horizontal maximum part. Between both concentrations an optimum can be sought. It is clear that in each case the optimum concentration will depend on the used wavelength and the size of the fibres and

2 that this will in general lie below 1 g/m .

The receiver is less sensible indeed to fibres of less than a quarter wavelength and the sensibili ty shows a small peak at a quarter wavelength, and further raises to a higher peak at a half wavelength . This makes that, the more the fibre length is in the range of higher sensibili ty, the lower the optimum concentration will be. This is shown in Figure 4 a to d, where i t is shown that, for a fibre length of 3 mm, a high concentration above 0.5 X will be desirable, whereas for a fibre length of 5 mm, the optimum will lie between 0.05 and 0.5 X. This makes that, for the sui table wavelengths , the fibre length will preferably range from 5 mm to 15 mm, al though shorter fibres in the range of 0.5 to 5 mm, and less efficient, can also be mixed in the material for the documents .

The influence of the fibre diameter is shown in Figure 4, e to h . For a same weight and length of the fibres, there are less fibres . It is consequently clear that the sensibili ty of trhe receiver for a given weight of fibres, will be lower for thicker diameters , and that the optimum percentage will raise according as the diameter is higher.

The response signal of the receiver 24 is further, in a way well known to those skilled in the art, transformed into a digi tal scanning signal . To this end, t ie obtained signal is e . g. divided in 128 abscissa-posi tions . For each posi tion, the ordlnate is transformed in a digi tal value which ranges between 0 and 63 and this needs 6 binary code bits . For the 128 abscissa posi tions in total , a binary word of 6 x 128 bi ts will then be representative for the obtained response signal or for the distribution of the fibres over 128 sub-areas of the strip-form part of the document which has

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passed the said window between the emi tter and the receiver. This converter of the analog signal of Figure 3 to a digi tal scanning signal forms part of the scanning system and can be realized according to various principles in various possible systems, and i ts details are not of importance for this invention. The only important feature is, that the receiver 24 produces such repetitive response signal , that a safe subdivision of tJie ordlnate into 64 values and even more, appears to be possible, and that there is sufficient resolution for checking the abscissa in 128 positions.

The document 1 to check, is further provided with a digital mark which has a unl vocal relationship, according to a secret transcoding formula, wi th the digital scanning signal , obtained when scanning the document with the scanning system. This digital mark can be put on the document in the form of e.g. readable printed figures, a bar code, perforations, a programmed integrated circuit or a magnetic strip which can be read off with a magnetic reading -head . In order to bring the digital mark on the document to check, the document is introduced In a scanning system for producing said digital word, and the output of the scanning system is connected to a transcoder and further to e.g. a magnetic writing head for writing the transcoded word into a magnetic strip on the document. Other parts of the magnetic strip can then be reserved for other data . In this way, the digital mark, as introduced on the document, is also characteristic , over a certain transcoding formula, of the distribution of the fibres over the 128 sub-areas of the checking area of the document. If not necessary , the transcoding formula can be reduced to i ts simplest form, i .e. identity between the digital scanning signal and the digital word which has been put on tΛe document.

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The apparatus according to claim 1 further comprises the necessary means (not shown) for reading the digital mark on the document. In dependence of the nature of the mark, this may be an optical figure reader, an optical bar code reader, or a magnetic reading-head. The output of this reader is then connected to a comparator (not shown) , where the mark-signal , as read off, is firstly transcoded and compared with the digital scanning -signal obtained from the scanning system. The comparator with its transcoder can be designed in various forms according to various principles, which are well known by those skilled in the art and are not of importance for this invention. Only when the scanning signal corresponds to the transcoded mark signal , the comparator will produce an output-signal , which can be used as an indication that the checked document is authentic.

It is clear that other scanning means, using a microwave bundle which impinges on the document can be designed, in so far as they allow to measure a response bundle which keeps apart the measurements for the different sub areas, without departing from the scope of this Invention. It is also clear that the digital signals and marks can be coded in any sort of code, either purely binary, or binary coded decimal or other. The non-conducting material for the document can be paper or plastic or any other material, in so far as it doesnot reflect the microwave energy to such extent that the detection of the fibres would no longer be possible.